KeyedLoadIC::ChooseMegamorphicStub(Isolate* isolate, ExtraICState extra_state) { // TODO(ishell): remove extra_ic_state if (FLAG_compiled_keyed_generic_loads) { return KeyedLoadGenericStub(isolate).GetCode(); } else { return isolate->builtins()->KeyedLoadIC_Megamorphic(); } } static bool MigrateDeprecated(Handle object) { if (!object->IsJSObject()) return false; Handle receiver = Handle::cast(object); if (!receiver->map()->is_deprecated()) return false; JSObject::MigrateInstance(Handle::cast(object)); return true; } void IC::ConfigureVectorState(IC::State new_state, Handle key) { DCHECK(UseVector()); if (new_state == PREMONOMORPHIC) { nexus()->ConfigurePremonomorphic(); } else if (new_state == MEGAMORPHIC) { if (kind() == Code::LOAD_IC || kind() == Code::STORE_IC) { nexus()->ConfigureMegamorphic(); } else if (kind() == Code::KEYED_LOAD_IC) { KeyedLoadICNexus* nexus = casted_nexus(); nexus->ConfigureMegamorphicKeyed(key->IsName() ? PROPERTY : ELEMENT); } else { DCHECK(kind() == Code::KEYED_STORE_IC); KeyedStoreICNexus* nexus = casted_nexus(); nexus->ConfigureMegamorphicKeyed(key->IsName() ? PROPERTY : ELEMENT); } } else { UNREACHABLE(); } vector_set_ = true; OnTypeFeedbackChanged(isolate(), get_host()); } void IC::ConfigureVectorState(Handle name, Handle map, Handle handler) { DCHECK(UseVector()); if (kind() == Code::LOAD_IC) { LoadICNexus* nexus = casted_nexus(); nexus->ConfigureMonomorphic(map, handler); } else if (kind() == Code::LOAD_GLOBAL_IC) { LoadGlobalICNexus* nexus = casted_nexus(); nexus->ConfigureHandlerMode(handler); } else if (kind() == Code::KEYED_LOAD_IC) { KeyedLoadICNexus* nexus = casted_nexus(); nexus->ConfigureMonomorphic(name, map, handler); } else if (kind() == Code::STORE_IC) { StoreICNexus* nexus = casted_nexus(); nexus->ConfigureMonomorphic(map, handler); } else { DCHECK(kind() == Code::KEYED_STORE_IC); KeyedStoreICNexus* nexus = casted_nexus(); nexus->ConfigureMonomorphic(name, map, handler); } vector_set_ = true; OnTypeFeedbackChanged(isolate(), get_host()); } void IC::ConfigureVectorState(Handle name, MapHandleList* maps, CodeHandleList* handlers) { DCHECK(UseVector()); if (kind() == Code::LOAD_IC) { LoadICNexus* nexus = casted_nexus(); nexus->ConfigurePolymorphic(maps, handlers); } else if (kind() == Code::KEYED_LOAD_IC) { KeyedLoadICNexus* nexus = casted_nexus(); nexus->ConfigurePolymorphic(name, maps, handlers); } else if (kind() == Code::STORE_IC) { StoreICNexus* nexus = casted_nexus(); nexus->ConfigurePolymorphic(maps, handlers); } else { DCHECK(kind() == Code::KEYED_STORE_IC); KeyedStoreICNexus* nexus = casted_nexus(); nexus->ConfigurePolymorphic(name, maps, handlers); } vector_set_ = true; OnTypeFeedbackChanged(isolate(), get_host()); } void IC::ConfigureVectorState(MapHandleList* maps, MapHandleList* transitioned_maps, CodeHandleList* handlers) { DCHECK(UseVector()); DCHECK(kind() == Code::KEYED_STORE_IC); KeyedStoreICNexus* nexus = casted_nexus(); nexus->ConfigurePolymorphic(maps, transitioned_maps, handlers); vector_set_ = true; OnTypeFeedbackChanged(isolate(), get_host()); } MaybeHandle LoadIC::Load(Handle object, Handle name) { // If the object is undefined or null it's illegal to try to get any // of its properties; throw a TypeError in that case. if (object->IsUndefined(isolate()) || object->IsNull(isolate())) { return TypeError(MessageTemplate::kNonObjectPropertyLoad, object, name); } bool use_ic = MigrateDeprecated(object) ? false : FLAG_use_ic; if (state() != UNINITIALIZED) { JSObject::MakePrototypesFast(object, kStartAtReceiver, isolate()); update_receiver_map(object); } // Named lookup in the object. LookupIterator it(object, name); LookupForRead(&it); if (it.IsFound() || !ShouldThrowReferenceError()) { // Update inline cache and stub cache. if (use_ic) UpdateCaches(&it); // Get the property. Handle result; ASSIGN_RETURN_ON_EXCEPTION(isolate(), result, Object::GetProperty(&it), Object); if (it.IsFound()) { return result; } else if (!ShouldThrowReferenceError()) { LOG(isolate(), SuspectReadEvent(*name, *object)); return result; } } return ReferenceError(name); } MaybeHandle LoadGlobalIC::Load(Handle name) { Handle global = isolate()->global_object(); if (name->IsString()) { // Look up in script context table. Handle str_name = Handle::cast(name); Handle script_contexts( global->native_context()->script_context_table()); ScriptContextTable::LookupResult lookup_result; if (ScriptContextTable::Lookup(script_contexts, str_name, &lookup_result)) { Handle result = FixedArray::get(*ScriptContextTable::GetContext( script_contexts, lookup_result.context_index), lookup_result.slot_index, isolate()); if (result->IsTheHole(isolate())) { // Do not install stubs and stay pre-monomorphic for // uninitialized accesses. return ReferenceError(name); } if (FLAG_use_ic && LoadScriptContextFieldStub::Accepted(&lookup_result)) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadScriptContextFieldStub); LoadScriptContextFieldStub stub(isolate(), &lookup_result); PatchCache(name, stub.GetCode()); TRACE_IC("LoadGlobalIC", name); } return result; } } return LoadIC::Load(global, name); } static bool AddOneReceiverMapIfMissing(MapHandleList* receiver_maps, Handle new_receiver_map) { DCHECK(!new_receiver_map.is_null()); for (int current = 0; current < receiver_maps->length(); ++current) { if (!receiver_maps->at(current).is_null() && receiver_maps->at(current).is_identical_to(new_receiver_map)) { return false; } } receiver_maps->Add(new_receiver_map); return true; } bool IC::UpdatePolymorphicIC(Handle name, Handle code) { if (!code->is_handler()) return false; if (is_keyed() && state() != RECOMPUTE_HANDLER) return false; Handle map = receiver_map(); MapHandleList maps; CodeHandleList handlers; TargetMaps(&maps); int number_of_maps = maps.length(); int deprecated_maps = 0; int handler_to_overwrite = -1; for (int i = 0; i < number_of_maps; i++) { Handle current_map = maps.at(i); if (current_map->is_deprecated()) { // Filter out deprecated maps to ensure their instances get migrated. ++deprecated_maps; } else if (map.is_identical_to(current_map)) { // If the receiver type is already in the polymorphic IC, this indicates // there was a prototoype chain failure. In that case, just overwrite the // handler. handler_to_overwrite = i; } else if (handler_to_overwrite == -1 && IsTransitionOfMonomorphicTarget(*current_map, *map)) { handler_to_overwrite = i; } } int number_of_valid_maps = number_of_maps - deprecated_maps - (handler_to_overwrite != -1); if (number_of_valid_maps >= 4) return false; if (number_of_maps == 0 && state() != MONOMORPHIC && state() != POLYMORPHIC) { return false; } DCHECK(UseVector()); if (!nexus()->FindHandlers(&handlers, maps.length())) return false; number_of_valid_maps++; if (number_of_valid_maps > 1 && is_keyed()) return false; Handle ic; if (number_of_valid_maps == 1) { ConfigureVectorState(name, receiver_map(), code); } else { if (handler_to_overwrite >= 0) { handlers.Set(handler_to_overwrite, code); if (!map.is_identical_to(maps.at(handler_to_overwrite))) { maps.Set(handler_to_overwrite, map); } } else { maps.Add(map); handlers.Add(code); } ConfigureVectorState(name, &maps, &handlers); } return true; } void IC::UpdateMonomorphicIC(Handle handler, Handle name) { DCHECK(handler->is_handler()); ConfigureVectorState(name, receiver_map(), handler); } void IC::CopyICToMegamorphicCache(Handle name) { MapHandleList maps; CodeHandleList handlers; TargetMaps(&maps); if (!nexus()->FindHandlers(&handlers, maps.length())) return; for (int i = 0; i < maps.length(); i++) { UpdateMegamorphicCache(*maps.at(i), *name, *handlers.at(i)); } } bool IC::IsTransitionOfMonomorphicTarget(Map* source_map, Map* target_map) { if (source_map == NULL) return true; if (target_map == NULL) return false; ElementsKind target_elements_kind = target_map->elements_kind(); bool more_general_transition = IsMoreGeneralElementsKindTransition( source_map->elements_kind(), target_elements_kind); Map* transitioned_map = nullptr; if (more_general_transition) { MapHandleList map_list; map_list.Add(handle(target_map)); transitioned_map = source_map->FindElementsKindTransitionedMap(&map_list); } return transitioned_map == target_map; } void IC::PatchCache(Handle name, Handle code) { switch (state()) { case UNINITIALIZED: case PREMONOMORPHIC: UpdateMonomorphicIC(code, name); break; case RECOMPUTE_HANDLER: case MONOMORPHIC: if (kind() == Code::LOAD_GLOBAL_IC) { UpdateMonomorphicIC(code, name); break; } // Fall through. case POLYMORPHIC: if (!is_keyed() || state() == RECOMPUTE_HANDLER) { if (UpdatePolymorphicIC(name, code)) break; // For keyed stubs, we can't know whether old handlers were for the // same key. CopyICToMegamorphicCache(name); } DCHECK(UseVector()); ConfigureVectorState(MEGAMORPHIC, name); // Fall through. case MEGAMORPHIC: UpdateMegamorphicCache(*receiver_map(), *name, *code); // Indicate that we've handled this case. DCHECK(UseVector()); vector_set_ = true; break; case GENERIC: UNREACHABLE(); break; } } Handle LoadIC::initialize_stub_in_optimized_code(Isolate* isolate) { if (FLAG_tf_load_ic_stub) { return LoadICTFStub(isolate).GetCode(); } return LoadICStub(isolate).GetCode(); } Handle LoadGlobalIC::initialize_stub_in_optimized_code( Isolate* isolate, ExtraICState extra_state) { return LoadGlobalICStub(isolate, LoadGlobalICState(extra_state)).GetCode(); } Handle KeyedLoadIC::initialize_stub_in_optimized_code( Isolate* isolate, ExtraICState extra_state) { // TODO(ishell): remove extra_ic_state return KeyedLoadICStub(isolate).GetCode(); } Handle KeyedStoreIC::initialize_stub_in_optimized_code( Isolate* isolate, LanguageMode language_mode) { StoreICState state = StoreICState(language_mode); return VectorKeyedStoreICStub(isolate, state).GetCode(); } Handle KeyedStoreIC::ChooseMegamorphicStub(Isolate* isolate, ExtraICState extra_state) { LanguageMode mode = StoreICState::GetLanguageMode(extra_state); return is_strict(mode) ? isolate->builtins()->KeyedStoreIC_Megamorphic_Strict() : isolate->builtins()->KeyedStoreIC_Megamorphic(); } Handle LoadIC::SimpleFieldLoad(FieldIndex index) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadFieldStub); LoadFieldStub stub(isolate(), index); return stub.GetCode(); } bool IsCompatibleReceiver(LookupIterator* lookup, Handle receiver_map) { DCHECK(lookup->state() == LookupIterator::ACCESSOR); Isolate* isolate = lookup->isolate(); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (info->getter() != NULL && !AccessorInfo::IsCompatibleReceiverMap(isolate, info, receiver_map)) { return false; } } else if (accessors->IsAccessorPair()) { Handle getter(Handle::cast(accessors)->getter(), isolate); if (!getter->IsJSFunction() && !getter->IsFunctionTemplateInfo()) { return false; } Handle holder = lookup->GetHolder(); Handle receiver = lookup->GetReceiver(); if (holder->HasFastProperties()) { if (getter->IsJSFunction()) { Handle function = Handle::cast(getter); if (!receiver->IsJSObject() && !function->shared()->IsBuiltin() && is_sloppy(function->shared()->language_mode())) { // Calling sloppy non-builtins with a value as the receiver // requires boxing. return false; } } CallOptimization call_optimization(getter); if (call_optimization.is_simple_api_call() && !call_optimization.IsCompatibleReceiverMap(receiver_map, holder)) { return false; } } } return true; } void LoadIC::UpdateCaches(LookupIterator* lookup) { if (state() == UNINITIALIZED && kind() != Code::LOAD_GLOBAL_IC) { // This is the first time we execute this inline cache. Set the target to // the pre monomorphic stub to delay setting the monomorphic state. ConfigureVectorState(PREMONOMORPHIC, Handle()); TRACE_IC("LoadIC", lookup->name()); return; } Handle code; if (lookup->state() == LookupIterator::JSPROXY || lookup->state() == LookupIterator::ACCESS_CHECK) { code = slow_stub(); } else if (!lookup->IsFound()) { if (kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC) { code = NamedLoadHandlerCompiler::ComputeLoadNonexistent(lookup->name(), receiver_map()); // TODO(jkummerow/verwaest): Introduce a builtin that handles this case. if (code.is_null()) code = slow_stub(); } else { code = slow_stub(); } } else { if (kind() == Code::LOAD_GLOBAL_IC && lookup->state() == LookupIterator::DATA && lookup->GetHolder()->IsJSGlobalObject()) { #if DEBUG Handle holder = lookup->GetHolder(); Handle receiver = lookup->GetReceiver(); DCHECK_EQ(*receiver, *holder); #endif // Now update the cell in the feedback vector. LoadGlobalICNexus* nexus = casted_nexus(); nexus->ConfigurePropertyCellMode(lookup->GetPropertyCell()); TRACE_IC("LoadGlobalIC", lookup->name()); return; } else if (lookup->state() == LookupIterator::ACCESSOR) { if (!IsCompatibleReceiver(lookup, receiver_map())) { TRACE_GENERIC_IC(isolate(), "LoadIC", "incompatible receiver type"); code = slow_stub(); } } else if (lookup->state() == LookupIterator::INTERCEPTOR) { if (kind() == Code::LOAD_GLOBAL_IC) { // The interceptor handler requires name but it is not passed explicitly // to LoadGlobalIC and the LoadGlobalIC dispatcher also does not load // it so we will just use slow stub. code = slow_stub(); } else { // Perform a lookup behind the interceptor. Copy the LookupIterator // since the original iterator will be used to fetch the value. LookupIterator it = *lookup; it.Next(); LookupForRead(&it); if (it.state() == LookupIterator::ACCESSOR && !IsCompatibleReceiver(&it, receiver_map())) { TRACE_GENERIC_IC(isolate(), "LoadIC", "incompatible receiver type"); code = slow_stub(); } } } if (code.is_null()) code = ComputeHandler(lookup); } PatchCache(lookup->name(), code); TRACE_IC("LoadIC", lookup->name()); } void IC::UpdateMegamorphicCache(Map* map, Name* name, Code* code) { isolate()->stub_cache()->Set(name, map, code); } Handle IC::ComputeHandler(LookupIterator* lookup, Handle value) { // Try to find a globally shared handler stub. Handle code = GetMapIndependentHandler(lookup); if (!code.is_null()) return code; // Otherwise check the map's handler cache for a map-specific handler, and // compile one if the cache comes up empty. bool receiver_is_holder = lookup->GetReceiver().is_identical_to(lookup->GetHolder()); CacheHolderFlag flag; Handle stub_holder_map; if (kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC || kind() == Code::KEYED_LOAD_IC) { stub_holder_map = IC::GetHandlerCacheHolder( receiver_map(), receiver_is_holder, isolate(), &flag); } else { DCHECK(kind() == Code::STORE_IC || kind() == Code::KEYED_STORE_IC); // Store handlers cannot be cached on prototypes. flag = kCacheOnReceiver; stub_holder_map = receiver_map(); } code = PropertyHandlerCompiler::Find(lookup->name(), stub_holder_map, kind(), flag); // Use the cached value if it exists, and if it is different from the // handler that just missed. if (!code.is_null()) { Handle handler; if (maybe_handler_.ToHandle(&handler)) { if (!handler.is_identical_to(code)) { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } else { // maybe_handler_ is only populated for MONOMORPHIC and POLYMORPHIC ICs. // In MEGAMORPHIC case, check if the handler in the megamorphic stub // cache (which just missed) is different from the cached handler. if (state() == MEGAMORPHIC && lookup->GetReceiver()->IsHeapObject()) { Map* map = Handle::cast(lookup->GetReceiver())->map(); Code* megamorphic_cached_code = isolate()->stub_cache()->Get(*lookup->name(), map, code->flags()); if (megamorphic_cached_code != *code) { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } else { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } } code = CompileHandler(lookup, value, flag); DCHECK(code->is_handler()); DCHECK(Code::ExtractCacheHolderFromFlags(code->flags()) == flag); Map::UpdateCodeCache(stub_holder_map, lookup->name(), code); return code; } Handle LoadIC::GetMapIndependentHandler(LookupIterator* lookup) { Handle receiver = lookup->GetReceiver(); if (receiver->IsString() && Name::Equals(isolate()->factory()->length_string(), lookup->name())) { FieldIndex index = FieldIndex::ForInObjectOffset(String::kLengthOffset); return SimpleFieldLoad(index); } if (receiver->IsStringWrapper() && Name::Equals(isolate()->factory()->length_string(), lookup->name())) { TRACE_HANDLER_STATS(isolate(), LoadIC_StringLengthStub); StringLengthStub string_length_stub(isolate()); return string_length_stub.GetCode(); } // Use specialized code for getting prototype of functions. if (receiver->IsJSFunction() && Name::Equals(isolate()->factory()->prototype_string(), lookup->name()) && receiver->IsConstructor() && !Handle::cast(receiver) ->map() ->has_non_instance_prototype()) { Handle stub; TRACE_HANDLER_STATS(isolate(), LoadIC_FunctionPrototypeStub); FunctionPrototypeStub function_prototype_stub(isolate()); return function_prototype_stub.GetCode(); } Handle map = receiver_map(); Handle holder = lookup->GetHolder(); bool receiver_is_holder = receiver.is_identical_to(holder); switch (lookup->state()) { case LookupIterator::INTERCEPTOR: break; // Custom-compiled handler. case LookupIterator::ACCESSOR: { // Use simple field loads for some well-known callback properties. // The method will only return true for absolute truths based on the // receiver maps. int object_offset; if (Accessors::IsJSObjectFieldAccessor(map, lookup->name(), &object_offset)) { FieldIndex index = FieldIndex::ForInObjectOffset(object_offset, *map); return SimpleFieldLoad(index); } if (IsCompatibleReceiver(lookup, map)) { Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorPair()) { if (!holder->HasFastProperties()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } // When debugging we need to go the slow path to flood the accessor. if (GetSharedFunctionInfo()->HasDebugInfo()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->getter()) == nullptr) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } // Ruled out by IsCompatibleReceiver() above. DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, map)); if (!holder->HasFastProperties()) return slow_stub(); if (receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadApiGetterStub); int index = lookup->GetAccessorIndex(); LoadApiGetterStub stub(isolate(), true, index); return stub.GetCode(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } } TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (kind() != Code::LOAD_IC && kind() != Code::LOAD_GLOBAL_IC) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } // There is only one shared stub for loading normalized // properties. It does not traverse the prototype chain, so the // property must be found in the object for the stub to be // applicable. if (!receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } TRACE_HANDLER_STATS(isolate(), LoadIC_LoadNormal); return isolate()->builtins()->LoadIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { FieldIndex field = lookup->GetFieldIndex(); if (receiver_is_holder) { return SimpleFieldLoad(field); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); if (receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadConstantStub); LoadConstantStub stub(isolate(), lookup->GetConstantIndex()); return stub.GetCode(); } break; // Custom-compiled handler. } case LookupIterator::INTEGER_INDEXED_EXOTIC: TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); } return Handle::null(); } Handle LoadIC::CompileHandler(LookupIterator* lookup, Handle unused, CacheHolderFlag cache_holder) { Handle holder = lookup->GetHolder(); #ifdef DEBUG // Only used by DCHECKs below. Handle receiver = lookup->GetReceiver(); bool receiver_is_holder = receiver.is_identical_to(holder); #endif // Non-map-specific handler stubs have already been selected. DCHECK(!receiver->IsString() || !Name::Equals(isolate()->factory()->length_string(), lookup->name())); DCHECK(!receiver->IsStringWrapper() || !Name::Equals(isolate()->factory()->length_string(), lookup->name())); DCHECK(!( receiver->IsJSFunction() && Name::Equals(isolate()->factory()->prototype_string(), lookup->name()) && receiver->IsConstructor() && !Handle::cast(receiver) ->map() ->has_non_instance_prototype())); Handle map = receiver_map(); switch (lookup->state()) { case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->getter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadInterceptor); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); // Perform a lookup behind the interceptor. Copy the LookupIterator since // the original iterator will be used to fetch the value. LookupIterator it = *lookup; it.Next(); LookupForRead(&it); return compiler.CompileLoadInterceptor(&it); } case LookupIterator::ACCESSOR: { #ifdef DEBUG int object_offset; DCHECK(!Accessors::IsJSObjectFieldAccessor(map, lookup->name(), &object_offset)); #endif DCHECK(IsCompatibleReceiver(lookup, map)); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorPair()) { DCHECK(holder->HasFastProperties()); DCHECK(!GetSharedFunctionInfo()->HasDebugInfo()); Handle getter(Handle::cast(accessors)->getter(), isolate()); CallOptimization call_optimization(getter); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); if (call_optimization.is_simple_api_call()) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadCallback); int index = lookup->GetAccessorIndex(); Handle code = compiler.CompileLoadCallback( lookup->name(), call_optimization, index); return code; } TRACE_HANDLER_STATS(isolate(), LoadIC_LoadViaGetter); int expected_arguments = Handle::cast(getter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileLoadViaGetter( lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } else { DCHECK(accessors->IsAccessorInfo()); Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->getter()) != nullptr); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, map)); DCHECK(holder->HasFastProperties()); DCHECK(!receiver_is_holder); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadCallback); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle code = compiler.CompileLoadCallback(lookup->name(), info); return code; } UNREACHABLE(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC); DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadGlobal); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle cell = lookup->GetPropertyCell(); Handle code = compiler.CompileLoadGlobal( cell, lookup->name(), lookup->IsConfigurable()); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { FieldIndex field = lookup->GetFieldIndex(); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadField); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadField(lookup->name(), field); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadConstant); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadConstant(lookup->name(), lookup->GetConstantIndex()); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } static Handle TryConvertKey(Handle key, Isolate* isolate) { // This helper implements a few common fast cases for converting // non-smi keys of keyed loads/stores to a smi or a string. if (key->IsHeapNumber()) { double value = Handle::cast(key)->value(); if (std::isnan(value)) { key = isolate->factory()->nan_string(); } else { int int_value = FastD2I(value); if (value == int_value && Smi::IsValid(int_value)) { key = handle(Smi::FromInt(int_value), isolate); } } } else if (key->IsUndefined(isolate)) { key = isolate->factory()->undefined_string(); } return key; } void KeyedLoadIC::UpdateLoadElement(Handle receiver) { Handle receiver_map(receiver->map(), isolate()); DCHECK(receiver_map->instance_type() != JS_VALUE_TYPE && receiver_map->instance_type() != JS_PROXY_TYPE); // Checked by caller. MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { Handle map = target_receiver_maps.at(i); if (map.is_null()) continue; if (map->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSValue"); return; } if (map->instance_type() == JS_PROXY_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSProxy"); return; } } // The first time a receiver is seen that is a transitioned version of the // previous monomorphic receiver type, assume the new ElementsKind is the // monomorphic type. This benefits global arrays that only transition // once, and all call sites accessing them are faster if they remain // monomorphic. If this optimistic assumption is not true, the IC will // miss again and it will become polymorphic and support both the // untransitioned and transitioned maps. if (state() == MONOMORPHIC && !receiver->IsString() && IsMoreGeneralElementsKindTransition( target_receiver_maps.at(0)->elements_kind(), Handle::cast(receiver)->GetElementsKind())) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } DCHECK(state() != GENERIC); // Determine the list of receiver maps that this call site has seen, // adding the map that was just encountered. if (!AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map)) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the generic stub. TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the generic // version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "max polymorph exceeded"); return; } CodeHandleList handlers(target_receiver_maps.length()); TRACE_HANDLER_STATS(isolate(), KeyedLoadIC_PolymorphicElement); ElementHandlerCompiler compiler(isolate()); compiler.CompileElementHandlers(&target_receiver_maps, &handlers); ConfigureVectorState(Handle(), &target_receiver_maps, &handlers); } MaybeHandle KeyedLoadIC::Load(Handle object, Handle key) { if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } Handle load_handle; // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION(isolate(), load_handle, LoadIC::Load(object, Handle::cast(key)), Object); } else if (FLAG_use_ic && !object->IsAccessCheckNeeded() && !object->IsJSValue()) { if (object->IsJSObject() || (object->IsString() && key->IsNumber())) { Handle receiver = Handle::cast(object); if (object->IsString() || key->IsSmi()) UpdateLoadElement(receiver); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "set generic"); } TRACE_IC("LoadIC", key); if (!load_handle.is_null()) return load_handle; Handle result; ASSIGN_RETURN_ON_EXCEPTION(isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } bool StoreIC::LookupForWrite(LookupIterator* it, Handle value, JSReceiver::StoreFromKeyed store_mode) { // Disable ICs for non-JSObjects for now. Handle object = it->GetReceiver(); if (!object->IsJSObject()) return false; Handle receiver = Handle::cast(object); DCHECK(!receiver->map()->is_deprecated()); for (; it->IsFound(); it->Next()) { switch (it->state()) { case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); case LookupIterator::JSPROXY: return false; case LookupIterator::INTERCEPTOR: { Handle holder = it->GetHolder(); InterceptorInfo* info = holder->GetNamedInterceptor(); if (it->HolderIsReceiverOrHiddenPrototype()) { return !info->non_masking() && receiver.is_identical_to(holder) && !info->setter()->IsUndefined(it->isolate()); } else if (!info->getter()->IsUndefined(it->isolate()) || !info->query()->IsUndefined(it->isolate())) { return false; } break; } case LookupIterator::ACCESS_CHECK: if (it->GetHolder()->IsAccessCheckNeeded()) return false; break; case LookupIterator::ACCESSOR: return !it->IsReadOnly(); case LookupIterator::INTEGER_INDEXED_EXOTIC: return false; case LookupIterator::DATA: { if (it->IsReadOnly()) return false; Handle holder = it->GetHolder(); if (receiver.is_identical_to(holder)) { it->PrepareForDataProperty(value); // The previous receiver map might just have been deprecated, // so reload it. update_receiver_map(receiver); return true; } // Receiver != holder. if (receiver->IsJSGlobalProxy()) { PrototypeIterator iter(it->isolate(), receiver); return it->GetHolder().is_identical_to( PrototypeIterator::GetCurrent(iter)); } if (it->HolderIsReceiverOrHiddenPrototype()) return false; if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } } } receiver = it->GetStoreTarget(); if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } MaybeHandle StoreIC::Store(Handle object, Handle name, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (object->IsJSGlobalObject() && name->IsString()) { // Look up in script context table. Handle str_name = Handle::cast(name); Handle global = Handle::cast(object); Handle script_contexts( global->native_context()->script_context_table()); ScriptContextTable::LookupResult lookup_result; if (ScriptContextTable::Lookup(script_contexts, str_name, &lookup_result)) { Handle script_context = ScriptContextTable::GetContext( script_contexts, lookup_result.context_index); if (lookup_result.mode == CONST) { return TypeError(MessageTemplate::kConstAssign, object, name); } Handle previous_value = FixedArray::get(*script_context, lookup_result.slot_index, isolate()); if (previous_value->IsTheHole(isolate())) { // Do not install stubs and stay pre-monomorphic for // uninitialized accesses. return ReferenceError(name); } if (FLAG_use_ic && StoreScriptContextFieldStub::Accepted(&lookup_result)) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreScriptContextFieldStub); StoreScriptContextFieldStub stub(isolate(), &lookup_result); PatchCache(name, stub.GetCode()); } script_context->set(lookup_result.slot_index, *value); return value; } } // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object) || object->IsJSProxy()) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Object::SetProperty(object, name, value, language_mode()), Object); return result; } // If the object is undefined or null it's illegal to try to set any // properties on it; throw a TypeError in that case. if (object->IsUndefined(isolate()) || object->IsNull(isolate())) { return TypeError(MessageTemplate::kNonObjectPropertyStore, object, name); } if (state() != UNINITIALIZED) { JSObject::MakePrototypesFast(object, kStartAtPrototype, isolate()); } LookupIterator it(object, name); if (FLAG_use_ic) UpdateCaches(&it, value, store_mode); MAYBE_RETURN_NULL( Object::SetProperty(&it, value, language_mode(), store_mode)); return value; } Handle CallIC::initialize_stub_in_optimized_code( Isolate* isolate, int argc, ConvertReceiverMode mode, TailCallMode tail_call_mode) { CallICStub stub(isolate, CallICState(argc, mode, tail_call_mode)); Handle code = stub.GetCode(); return code; } Handle StoreIC::initialize_stub_in_optimized_code( Isolate* isolate, LanguageMode language_mode) { VectorStoreICStub stub(isolate, StoreICState(language_mode)); return stub.GetCode(); } void StoreIC::UpdateCaches(LookupIterator* lookup, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (state() == UNINITIALIZED) { // This is the first time we execute this inline cache. Set the target to // the pre monomorphic stub to delay setting the monomorphic state. ConfigureVectorState(PREMONOMORPHIC, Handle()); TRACE_IC("StoreIC", lookup->name()); return; } bool use_ic = LookupForWrite(lookup, value, store_mode); if (!use_ic) { TRACE_GENERIC_IC(isolate(), "StoreIC", "LookupForWrite said 'false'"); } Handle code = use_ic ? ComputeHandler(lookup, value) : slow_stub(); PatchCache(lookup->name(), code); TRACE_IC("StoreIC", lookup->name()); } static Handle PropertyCellStoreHandler( Isolate* isolate, Handle receiver, Handle holder, Handle name, Handle cell, PropertyCellType type) { auto constant_type = Nothing(); if (type == PropertyCellType::kConstantType) { constant_type = Just(cell->GetConstantType()); } StoreGlobalStub stub(isolate, type, constant_type, receiver->IsJSGlobalProxy()); auto code = stub.GetCodeCopyFromTemplate(holder, cell); // TODO(verwaest): Move caching of these NORMAL stubs outside as well. HeapObject::UpdateMapCodeCache(receiver, name, code); return code; } Handle StoreIC::GetMapIndependentHandler(LookupIterator* lookup) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { break; // Custom-compiled handler. } // Currently not handled by CompileStoreTransition. if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "transition from slow"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } DCHECK(lookup->IsCacheableTransition()); break; // Custom-compiled handler. } case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->setter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreInterceptorStub); StoreInterceptorStub stub(isolate()); return stub.GetCode(); } case LookupIterator::ACCESSOR: { if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "accessor on slow map"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->setter()) == nullptr) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter == nullptr"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (AccessorInfo::cast(*accessors)->is_special_data_property() && !lookup->HolderIsReceiverOrHiddenPrototype()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "special data property in prototype chain"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (!AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())) { TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver type"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorPair()) { Handle setter(Handle::cast(accessors)->setter(), isolate()); if (!setter->IsJSFunction() && !setter->IsFunctionTemplateInfo()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter not a function"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } CallOptimization call_optimization(setter); if (call_optimization.is_simple_api_call()) { if (call_optimization.IsCompatibleReceiver(receiver, holder)) { break; // Custom-compiled handler. } TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreNormal); DCHECK(holder.is_identical_to(receiver)); return isolate()->builtins()->StoreIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } if (use_stub) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreFieldStub); StoreFieldStub stub(isolate(), lookup->GetFieldIndex(), lookup->representation()); return stub.GetCode(); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); TRACE_GENERIC_IC(isolate(), "StoreIC", "constant property"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } return Handle::null(); } Handle StoreIC::CompileHandler(LookupIterator* lookup, Handle value, CacheHolderFlag cache_holder) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { // TODO(dcarney): this currently just deopts. Use the transition cell. TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobalTransition); auto cell = isolate()->factory()->NewPropertyCell(); cell->set_value(*value); auto code = PropertyCellStoreHandler( isolate(), store_target, Handle::cast(store_target), lookup->name(), cell, PropertyCellType::kConstant); cell->set_value(isolate()->heap()->the_hole_value()); return code; } Handle transition = lookup->transition_map(); // Currently not handled by CompileStoreTransition. DCHECK(holder->HasFastProperties()); DCHECK(lookup->IsCacheableTransition()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreTransition); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreTransition(transition, lookup->name()); } case LookupIterator::INTERCEPTOR: UNREACHABLE(); case LookupIterator::ACCESSOR: { DCHECK(holder->HasFastProperties()); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->setter()) != 0); DCHECK(!AccessorInfo::cast(*accessors)->is_special_data_property() || lookup->HolderIsReceiverOrHiddenPrototype()); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), info, language_mode()); return code; } else { DCHECK(accessors->IsAccessorPair()); Handle setter(Handle::cast(accessors)->setter(), isolate()); DCHECK(setter->IsJSFunction() || setter->IsFunctionTemplateInfo()); CallOptimization call_optimization(setter); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); if (call_optimization.is_simple_api_call()) { DCHECK(call_optimization.IsCompatibleReceiver(receiver, holder)); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), call_optimization, lookup->GetAccessorIndex()); return code; } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreViaSetter); int expected_arguments = JSFunction::cast(*setter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileStoreViaSetter(receiver, lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobal); DCHECK(holder.is_identical_to(receiver) || receiver->map()->prototype() == *holder); auto cell = lookup->GetPropertyCell(); auto updated_type = PropertyCell::UpdatedType(cell, value, lookup->property_details()); auto code = PropertyCellStoreHandler( isolate(), receiver, Handle::cast(holder), lookup->name(), cell, updated_type); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { #ifdef DEBUG bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } DCHECK(!use_stub); #endif TRACE_HANDLER_STATS(isolate(), StoreIC_StoreField); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreField(lookup); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); UNREACHABLE(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } void KeyedStoreIC::UpdateStoreElement(Handle receiver_map, KeyedAccessStoreMode store_mode) { MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle monomorphic_map = ComputeTransitionedMap(receiver_map, store_mode); store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(monomorphic_map, store_mode); return ConfigureVectorState(Handle(), monomorphic_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { if (!target_receiver_maps.at(i).is_null() && target_receiver_maps.at(i)->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "JSValue"); return; } } // There are several special cases where an IC that is MONOMORPHIC can still // transition to a different GetNonTransitioningStoreMode IC that handles a // superset of the original IC. Handle those here if the receiver map hasn't // changed or it has transitioned to a more general kind. KeyedAccessStoreMode old_store_mode = GetKeyedAccessStoreMode(); Handle previous_receiver_map = target_receiver_maps.at(0); if (state() == MONOMORPHIC) { Handle transitioned_receiver_map = receiver_map; if (IsTransitionStoreMode(store_mode)) { transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); } if ((receiver_map.is_identical_to(previous_receiver_map) && IsTransitionStoreMode(store_mode)) || IsTransitionOfMonomorphicTarget(*previous_receiver_map, *transitioned_receiver_map)) { // If the "old" and "new" maps are in the same elements map family, or // if they at least come from the same origin for a transitioning store, // stay MONOMORPHIC and use the map for the most generic ElementsKind. store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler( transitioned_receiver_map, store_mode); ConfigureVectorState(Handle(), transitioned_receiver_map, handler); return; } if (receiver_map.is_identical_to(previous_receiver_map) && old_store_mode == STANDARD_STORE && (store_mode == STORE_AND_GROW_NO_TRANSITION || store_mode == STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS || store_mode == STORE_NO_TRANSITION_HANDLE_COW)) { // A "normal" IC that handles stores can switch to a version that can // grow at the end of the array, handle OOB accesses or copy COW arrays // and still stay MONOMORPHIC. Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(receiver_map, store_mode); return ConfigureVectorState(Handle(), receiver_map, handler); } } DCHECK(state() != GENERIC); bool map_added = AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map); if (IsTransitionStoreMode(store_mode)) { Handle transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); map_added |= AddOneReceiverMapIfMissing(&target_receiver_maps, transitioned_receiver_map); } if (!map_added) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the megamorphic stub which can handle everything. TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the // megamorphic version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) return; // Make sure all polymorphic handlers have the same store mode, otherwise the // megamorphic stub must be used. store_mode = GetNonTransitioningStoreMode(store_mode); if (old_store_mode != STANDARD_STORE) { if (store_mode == STANDARD_STORE) { store_mode = old_store_mode; } else if (store_mode != old_store_mode) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "store mode mismatch"); return; } } // If the store mode isn't the standard mode, make sure that all polymorphic // receivers are either external arrays, or all "normal" arrays. Otherwise, // use the megamorphic stub. if (store_mode != STANDARD_STORE) { int external_arrays = 0; for (int i = 0; i < target_receiver_maps.length(); ++i) { if (target_receiver_maps[i]->has_fixed_typed_array_elements()) { external_arrays++; } } if (external_arrays != 0 && external_arrays != target_receiver_maps.length()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unsupported combination of external and normal arrays"); return; } } TRACE_HANDLER_STATS(isolate(), KeyedStoreIC_Polymorphic); MapHandleList transitioned_maps(target_receiver_maps.length()); CodeHandleList handlers(target_receiver_maps.length()); PropertyICCompiler::ComputeKeyedStorePolymorphicHandlers( &target_receiver_maps, &transitioned_maps, &handlers, store_mode); ConfigureVectorState(&target_receiver_maps, &transitioned_maps, &handlers); } Handle KeyedStoreIC::ComputeTransitionedMap( Handle map, KeyedAccessStoreMode store_mode) { switch (store_mode) { case STORE_TRANSITION_TO_OBJECT: case STORE_AND_GROW_TRANSITION_TO_OBJECT: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_ELEMENTS : FAST_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_TRANSITION_TO_DOUBLE: case STORE_AND_GROW_TRANSITION_TO_DOUBLE: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_DOUBLE_ELEMENTS : FAST_DOUBLE_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS: DCHECK(map->has_fixed_typed_array_elements()); // Fall through case STORE_NO_TRANSITION_HANDLE_COW: case STANDARD_STORE: case STORE_AND_GROW_NO_TRANSITION: return map; } UNREACHABLE(); return MaybeHandle().ToHandleChecked(); } bool IsOutOfBoundsAccess(Handle receiver, uint32_t index) { uint32_t length = 0; if (receiver->IsJSArray()) { JSArray::cast(*receiver)->length()->ToArrayLength(&length); } else { length = static_cast(receiver->elements()->length()); } return index >= length; } static KeyedAccessStoreMode GetStoreMode(Handle receiver, uint32_t index, Handle value) { bool oob_access = IsOutOfBoundsAccess(receiver, index); // Don't consider this a growing store if the store would send the receiver to // dictionary mode. bool allow_growth = receiver->IsJSArray() && oob_access && !receiver->WouldConvertToSlowElements(index); if (allow_growth) { // Handle growing array in stub if necessary. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_DOUBLE; } if (value->IsHeapObject()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } return STORE_AND_GROW_NO_TRANSITION; } else { // Handle only in-bounds elements accesses. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_TRANSITION_TO_DOUBLE; } else if (value->IsHeapObject()) { return STORE_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_TRANSITION_TO_OBJECT; } } if (!FLAG_trace_external_array_abuse && receiver->map()->has_fixed_typed_array_elements() && oob_access) { return STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS; } Heap* heap = receiver->GetHeap(); if (receiver->elements()->map() == heap->fixed_cow_array_map()) { return STORE_NO_TRANSITION_HANDLE_COW; } else { return STANDARD_STORE; } } } MaybeHandle KeyedStoreIC::Store(Handle object, Handle key, Handle value) { // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); return result; } // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); Handle store_handle; uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION( isolate(), store_handle, StoreIC::Store(object, Handle::cast(key), value, JSReceiver::MAY_BE_STORE_FROM_KEYED), Object); if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unhandled internalized string key"); TRACE_IC("StoreIC", key); } return store_handle; } bool use_ic = FLAG_use_ic && !object->IsStringWrapper() && !object->IsAccessCheckNeeded() && !object->IsJSGlobalProxy(); if (use_ic && !object->IsSmi()) { // Don't use ICs for maps of the objects in Array's prototype chain. We // expect to be able to trap element sets to objects with those maps in // the runtime to enable optimization of element hole access. Handle heap_object = Handle::cast(object); if (heap_object->map()->IsMapInArrayPrototypeChain()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "map in array prototype"); use_ic = false; } } Handle old_receiver_map; bool sloppy_arguments_elements = false; bool key_is_valid_index = false; KeyedAccessStoreMode store_mode = STANDARD_STORE; if (use_ic && object->IsJSObject()) { Handle receiver = Handle::cast(object); old_receiver_map = handle(receiver->map(), isolate()); sloppy_arguments_elements = !is_sloppy(language_mode()) && receiver->elements()->map() == isolate()->heap()->sloppy_arguments_elements_map(); if (!sloppy_arguments_elements) { key_is_valid_index = key->IsSmi() && Smi::cast(*key)->value() >= 0; if (key_is_valid_index) { uint32_t index = static_cast(Smi::cast(*key)->value()); store_mode = GetStoreMode(receiver, index, value); } } } DCHECK(store_handle.is_null()); ASSIGN_RETURN_ON_EXCEPTION(isolate(), store_handle, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); if (use_ic) { if (!old_receiver_map.is_null()) { if (sloppy_arguments_elements) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "arguments receiver"); } else if (key_is_valid_index) { // We should go generic if receiver isn't a dictionary, but our // prototype chain does have dictionary elements. This ensures that // other non-dictionary receivers in the polymorphic case benefit // from fast path keyed stores. if (!old_receiver_map->DictionaryElementsInPrototypeChainOnly()) { UpdateStoreElement(old_receiver_map, store_mode); } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "dictionary or proxy prototype"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-smi-like key"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-JSObject receiver"); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "set generic"); } TRACE_IC("StoreIC", key); return store_handle; } void CallIC::HandleMiss(Handle function) { Handle name = isolate()->factory()->empty_string(); CallICNexus* nexus = casted_nexus(); Object* feedback = nexus->GetFeedback(); // Hand-coded MISS handling is easier if CallIC slots don't contain smis. DCHECK(!feedback->IsSmi()); if (feedback->IsWeakCell() || !function->IsJSFunction() || feedback->IsAllocationSite()) { // We are going generic. nexus->ConfigureMegamorphic(); } else { DCHECK(feedback == *TypeFeedbackVector::UninitializedSentinel(isolate())); Handle js_function = Handle::cast(function); Handle array_function = Handle(isolate()->native_context()->array_function()); if (array_function.is_identical_to(js_function)) { // Alter the slot. nexus->ConfigureMonomorphicArray(); } else if (js_function->context()->native_context() != *isolate()->native_context()) { // Don't collect cross-native context feedback for the CallIC. // TODO(bmeurer): We should collect the SharedFunctionInfo as // feedback in this case instead. nexus->ConfigureMegamorphic(); } else { nexus->ConfigureMonomorphic(js_function); } } if (function->IsJSFunction()) { Handle
handler) { DCHECK(UseVector()); if (kind() == Code::LOAD_IC) { LoadICNexus* nexus = casted_nexus(); nexus->ConfigureMonomorphic(map, handler); } else if (kind() == Code::LOAD_GLOBAL_IC) { LoadGlobalICNexus* nexus = casted_nexus(); nexus->ConfigureHandlerMode(handler); } else if (kind() == Code::KEYED_LOAD_IC) { KeyedLoadICNexus* nexus = casted_nexus(); nexus->ConfigureMonomorphic(name, map, handler); } else if (kind() == Code::STORE_IC) { StoreICNexus* nexus = casted_nexus(); nexus->ConfigureMonomorphic(map, handler); } else { DCHECK(kind() == Code::KEYED_STORE_IC); KeyedStoreICNexus* nexus = casted_nexus(); nexus->ConfigureMonomorphic(name, map, handler); } vector_set_ = true; OnTypeFeedbackChanged(isolate(), get_host()); } void IC::ConfigureVectorState(Handle name, MapHandleList* maps, CodeHandleList* handlers) { DCHECK(UseVector()); if (kind() == Code::LOAD_IC) { LoadICNexus* nexus = casted_nexus(); nexus->ConfigurePolymorphic(maps, handlers); } else if (kind() == Code::KEYED_LOAD_IC) { KeyedLoadICNexus* nexus = casted_nexus(); nexus->ConfigurePolymorphic(name, maps, handlers); } else if (kind() == Code::STORE_IC) { StoreICNexus* nexus = casted_nexus(); nexus->ConfigurePolymorphic(maps, handlers); } else { DCHECK(kind() == Code::KEYED_STORE_IC); KeyedStoreICNexus* nexus = casted_nexus(); nexus->ConfigurePolymorphic(name, maps, handlers); } vector_set_ = true; OnTypeFeedbackChanged(isolate(), get_host()); } void IC::ConfigureVectorState(MapHandleList* maps, MapHandleList* transitioned_maps, CodeHandleList* handlers) { DCHECK(UseVector()); DCHECK(kind() == Code::KEYED_STORE_IC); KeyedStoreICNexus* nexus = casted_nexus(); nexus->ConfigurePolymorphic(maps, transitioned_maps, handlers); vector_set_ = true; OnTypeFeedbackChanged(isolate(), get_host()); } MaybeHandle LoadIC::Load(Handle object, Handle name) { // If the object is undefined or null it's illegal to try to get any // of its properties; throw a TypeError in that case. if (object->IsUndefined(isolate()) || object->IsNull(isolate())) { return TypeError(MessageTemplate::kNonObjectPropertyLoad, object, name); } bool use_ic = MigrateDeprecated(object) ? false : FLAG_use_ic; if (state() != UNINITIALIZED) { JSObject::MakePrototypesFast(object, kStartAtReceiver, isolate()); update_receiver_map(object); } // Named lookup in the object. LookupIterator it(object, name); LookupForRead(&it); if (it.IsFound() || !ShouldThrowReferenceError()) { // Update inline cache and stub cache. if (use_ic) UpdateCaches(&it); // Get the property. Handle result; ASSIGN_RETURN_ON_EXCEPTION(isolate(), result, Object::GetProperty(&it), Object); if (it.IsFound()) { return result; } else if (!ShouldThrowReferenceError()) { LOG(isolate(), SuspectReadEvent(*name, *object)); return result; } } return ReferenceError(name); } MaybeHandle LoadGlobalIC::Load(Handle name) { Handle global = isolate()->global_object(); if (name->IsString()) { // Look up in script context table. Handle str_name = Handle::cast(name); Handle script_contexts( global->native_context()->script_context_table()); ScriptContextTable::LookupResult lookup_result; if (ScriptContextTable::Lookup(script_contexts, str_name, &lookup_result)) { Handle result = FixedArray::get(*ScriptContextTable::GetContext( script_contexts, lookup_result.context_index), lookup_result.slot_index, isolate()); if (result->IsTheHole(isolate())) { // Do not install stubs and stay pre-monomorphic for // uninitialized accesses. return ReferenceError(name); } if (FLAG_use_ic && LoadScriptContextFieldStub::Accepted(&lookup_result)) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadScriptContextFieldStub); LoadScriptContextFieldStub stub(isolate(), &lookup_result); PatchCache(name, stub.GetCode()); TRACE_IC("LoadGlobalIC", name); } return result; } } return LoadIC::Load(global, name); } static bool AddOneReceiverMapIfMissing(MapHandleList* receiver_maps, Handle new_receiver_map) { DCHECK(!new_receiver_map.is_null()); for (int current = 0; current < receiver_maps->length(); ++current) { if (!receiver_maps->at(current).is_null() && receiver_maps->at(current).is_identical_to(new_receiver_map)) { return false; } } receiver_maps->Add(new_receiver_map); return true; } bool IC::UpdatePolymorphicIC(Handle name, Handle code) { if (!code->is_handler()) return false; if (is_keyed() && state() != RECOMPUTE_HANDLER) return false; Handle map = receiver_map(); MapHandleList maps; CodeHandleList handlers; TargetMaps(&maps); int number_of_maps = maps.length(); int deprecated_maps = 0; int handler_to_overwrite = -1; for (int i = 0; i < number_of_maps; i++) { Handle current_map = maps.at(i); if (current_map->is_deprecated()) { // Filter out deprecated maps to ensure their instances get migrated. ++deprecated_maps; } else if (map.is_identical_to(current_map)) { // If the receiver type is already in the polymorphic IC, this indicates // there was a prototoype chain failure. In that case, just overwrite the // handler. handler_to_overwrite = i; } else if (handler_to_overwrite == -1 && IsTransitionOfMonomorphicTarget(*current_map, *map)) { handler_to_overwrite = i; } } int number_of_valid_maps = number_of_maps - deprecated_maps - (handler_to_overwrite != -1); if (number_of_valid_maps >= 4) return false; if (number_of_maps == 0 && state() != MONOMORPHIC && state() != POLYMORPHIC) { return false; } DCHECK(UseVector()); if (!nexus()->FindHandlers(&handlers, maps.length())) return false; number_of_valid_maps++; if (number_of_valid_maps > 1 && is_keyed()) return false; Handle ic; if (number_of_valid_maps == 1) { ConfigureVectorState(name, receiver_map(), code); } else { if (handler_to_overwrite >= 0) { handlers.Set(handler_to_overwrite, code); if (!map.is_identical_to(maps.at(handler_to_overwrite))) { maps.Set(handler_to_overwrite, map); } } else { maps.Add(map); handlers.Add(code); } ConfigureVectorState(name, &maps, &handlers); } return true; } void IC::UpdateMonomorphicIC(Handle handler, Handle name) { DCHECK(handler->is_handler()); ConfigureVectorState(name, receiver_map(), handler); } void IC::CopyICToMegamorphicCache(Handle name) { MapHandleList maps; CodeHandleList handlers; TargetMaps(&maps); if (!nexus()->FindHandlers(&handlers, maps.length())) return; for (int i = 0; i < maps.length(); i++) { UpdateMegamorphicCache(*maps.at(i), *name, *handlers.at(i)); } } bool IC::IsTransitionOfMonomorphicTarget(Map* source_map, Map* target_map) { if (source_map == NULL) return true; if (target_map == NULL) return false; ElementsKind target_elements_kind = target_map->elements_kind(); bool more_general_transition = IsMoreGeneralElementsKindTransition( source_map->elements_kind(), target_elements_kind); Map* transitioned_map = nullptr; if (more_general_transition) { MapHandleList map_list; map_list.Add(handle(target_map)); transitioned_map = source_map->FindElementsKindTransitionedMap(&map_list); } return transitioned_map == target_map; } void IC::PatchCache(Handle name, Handle code) { switch (state()) { case UNINITIALIZED: case PREMONOMORPHIC: UpdateMonomorphicIC(code, name); break; case RECOMPUTE_HANDLER: case MONOMORPHIC: if (kind() == Code::LOAD_GLOBAL_IC) { UpdateMonomorphicIC(code, name); break; } // Fall through. case POLYMORPHIC: if (!is_keyed() || state() == RECOMPUTE_HANDLER) { if (UpdatePolymorphicIC(name, code)) break; // For keyed stubs, we can't know whether old handlers were for the // same key. CopyICToMegamorphicCache(name); } DCHECK(UseVector()); ConfigureVectorState(MEGAMORPHIC, name); // Fall through. case MEGAMORPHIC: UpdateMegamorphicCache(*receiver_map(), *name, *code); // Indicate that we've handled this case. DCHECK(UseVector()); vector_set_ = true; break; case GENERIC: UNREACHABLE(); break; } } Handle LoadIC::initialize_stub_in_optimized_code(Isolate* isolate) { if (FLAG_tf_load_ic_stub) { return LoadICTFStub(isolate).GetCode(); } return LoadICStub(isolate).GetCode(); } Handle LoadGlobalIC::initialize_stub_in_optimized_code( Isolate* isolate, ExtraICState extra_state) { return LoadGlobalICStub(isolate, LoadGlobalICState(extra_state)).GetCode(); } Handle KeyedLoadIC::initialize_stub_in_optimized_code( Isolate* isolate, ExtraICState extra_state) { // TODO(ishell): remove extra_ic_state return KeyedLoadICStub(isolate).GetCode(); } Handle KeyedStoreIC::initialize_stub_in_optimized_code( Isolate* isolate, LanguageMode language_mode) { StoreICState state = StoreICState(language_mode); return VectorKeyedStoreICStub(isolate, state).GetCode(); } Handle KeyedStoreIC::ChooseMegamorphicStub(Isolate* isolate, ExtraICState extra_state) { LanguageMode mode = StoreICState::GetLanguageMode(extra_state); return is_strict(mode) ? isolate->builtins()->KeyedStoreIC_Megamorphic_Strict() : isolate->builtins()->KeyedStoreIC_Megamorphic(); } Handle LoadIC::SimpleFieldLoad(FieldIndex index) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadFieldStub); LoadFieldStub stub(isolate(), index); return stub.GetCode(); } bool IsCompatibleReceiver(LookupIterator* lookup, Handle receiver_map) { DCHECK(lookup->state() == LookupIterator::ACCESSOR); Isolate* isolate = lookup->isolate(); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (info->getter() != NULL && !AccessorInfo::IsCompatibleReceiverMap(isolate, info, receiver_map)) { return false; } } else if (accessors->IsAccessorPair()) { Handle getter(Handle::cast(accessors)->getter(), isolate); if (!getter->IsJSFunction() && !getter->IsFunctionTemplateInfo()) { return false; } Handle holder = lookup->GetHolder(); Handle receiver = lookup->GetReceiver(); if (holder->HasFastProperties()) { if (getter->IsJSFunction()) { Handle function = Handle::cast(getter); if (!receiver->IsJSObject() && !function->shared()->IsBuiltin() && is_sloppy(function->shared()->language_mode())) { // Calling sloppy non-builtins with a value as the receiver // requires boxing. return false; } } CallOptimization call_optimization(getter); if (call_optimization.is_simple_api_call() && !call_optimization.IsCompatibleReceiverMap(receiver_map, holder)) { return false; } } } return true; } void LoadIC::UpdateCaches(LookupIterator* lookup) { if (state() == UNINITIALIZED && kind() != Code::LOAD_GLOBAL_IC) { // This is the first time we execute this inline cache. Set the target to // the pre monomorphic stub to delay setting the monomorphic state. ConfigureVectorState(PREMONOMORPHIC, Handle()); TRACE_IC("LoadIC", lookup->name()); return; } Handle code; if (lookup->state() == LookupIterator::JSPROXY || lookup->state() == LookupIterator::ACCESS_CHECK) { code = slow_stub(); } else if (!lookup->IsFound()) { if (kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC) { code = NamedLoadHandlerCompiler::ComputeLoadNonexistent(lookup->name(), receiver_map()); // TODO(jkummerow/verwaest): Introduce a builtin that handles this case. if (code.is_null()) code = slow_stub(); } else { code = slow_stub(); } } else { if (kind() == Code::LOAD_GLOBAL_IC && lookup->state() == LookupIterator::DATA && lookup->GetHolder()->IsJSGlobalObject()) { #if DEBUG Handle holder = lookup->GetHolder(); Handle receiver = lookup->GetReceiver(); DCHECK_EQ(*receiver, *holder); #endif // Now update the cell in the feedback vector. LoadGlobalICNexus* nexus = casted_nexus(); nexus->ConfigurePropertyCellMode(lookup->GetPropertyCell()); TRACE_IC("LoadGlobalIC", lookup->name()); return; } else if (lookup->state() == LookupIterator::ACCESSOR) { if (!IsCompatibleReceiver(lookup, receiver_map())) { TRACE_GENERIC_IC(isolate(), "LoadIC", "incompatible receiver type"); code = slow_stub(); } } else if (lookup->state() == LookupIterator::INTERCEPTOR) { if (kind() == Code::LOAD_GLOBAL_IC) { // The interceptor handler requires name but it is not passed explicitly // to LoadGlobalIC and the LoadGlobalIC dispatcher also does not load // it so we will just use slow stub. code = slow_stub(); } else { // Perform a lookup behind the interceptor. Copy the LookupIterator // since the original iterator will be used to fetch the value. LookupIterator it = *lookup; it.Next(); LookupForRead(&it); if (it.state() == LookupIterator::ACCESSOR && !IsCompatibleReceiver(&it, receiver_map())) { TRACE_GENERIC_IC(isolate(), "LoadIC", "incompatible receiver type"); code = slow_stub(); } } } if (code.is_null()) code = ComputeHandler(lookup); } PatchCache(lookup->name(), code); TRACE_IC("LoadIC", lookup->name()); } void IC::UpdateMegamorphicCache(Map* map, Name* name, Code* code) { isolate()->stub_cache()->Set(name, map, code); } Handle IC::ComputeHandler(LookupIterator* lookup, Handle value) { // Try to find a globally shared handler stub. Handle code = GetMapIndependentHandler(lookup); if (!code.is_null()) return code; // Otherwise check the map's handler cache for a map-specific handler, and // compile one if the cache comes up empty. bool receiver_is_holder = lookup->GetReceiver().is_identical_to(lookup->GetHolder()); CacheHolderFlag flag; Handle stub_holder_map; if (kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC || kind() == Code::KEYED_LOAD_IC) { stub_holder_map = IC::GetHandlerCacheHolder( receiver_map(), receiver_is_holder, isolate(), &flag); } else { DCHECK(kind() == Code::STORE_IC || kind() == Code::KEYED_STORE_IC); // Store handlers cannot be cached on prototypes. flag = kCacheOnReceiver; stub_holder_map = receiver_map(); } code = PropertyHandlerCompiler::Find(lookup->name(), stub_holder_map, kind(), flag); // Use the cached value if it exists, and if it is different from the // handler that just missed. if (!code.is_null()) { Handle handler; if (maybe_handler_.ToHandle(&handler)) { if (!handler.is_identical_to(code)) { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } else { // maybe_handler_ is only populated for MONOMORPHIC and POLYMORPHIC ICs. // In MEGAMORPHIC case, check if the handler in the megamorphic stub // cache (which just missed) is different from the cached handler. if (state() == MEGAMORPHIC && lookup->GetReceiver()->IsHeapObject()) { Map* map = Handle::cast(lookup->GetReceiver())->map(); Code* megamorphic_cached_code = isolate()->stub_cache()->Get(*lookup->name(), map, code->flags()); if (megamorphic_cached_code != *code) { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } else { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } } code = CompileHandler(lookup, value, flag); DCHECK(code->is_handler()); DCHECK(Code::ExtractCacheHolderFromFlags(code->flags()) == flag); Map::UpdateCodeCache(stub_holder_map, lookup->name(), code); return code; } Handle LoadIC::GetMapIndependentHandler(LookupIterator* lookup) { Handle receiver = lookup->GetReceiver(); if (receiver->IsString() && Name::Equals(isolate()->factory()->length_string(), lookup->name())) { FieldIndex index = FieldIndex::ForInObjectOffset(String::kLengthOffset); return SimpleFieldLoad(index); } if (receiver->IsStringWrapper() && Name::Equals(isolate()->factory()->length_string(), lookup->name())) { TRACE_HANDLER_STATS(isolate(), LoadIC_StringLengthStub); StringLengthStub string_length_stub(isolate()); return string_length_stub.GetCode(); } // Use specialized code for getting prototype of functions. if (receiver->IsJSFunction() && Name::Equals(isolate()->factory()->prototype_string(), lookup->name()) && receiver->IsConstructor() && !Handle::cast(receiver) ->map() ->has_non_instance_prototype()) { Handle stub; TRACE_HANDLER_STATS(isolate(), LoadIC_FunctionPrototypeStub); FunctionPrototypeStub function_prototype_stub(isolate()); return function_prototype_stub.GetCode(); } Handle map = receiver_map(); Handle holder = lookup->GetHolder(); bool receiver_is_holder = receiver.is_identical_to(holder); switch (lookup->state()) { case LookupIterator::INTERCEPTOR: break; // Custom-compiled handler. case LookupIterator::ACCESSOR: { // Use simple field loads for some well-known callback properties. // The method will only return true for absolute truths based on the // receiver maps. int object_offset; if (Accessors::IsJSObjectFieldAccessor(map, lookup->name(), &object_offset)) { FieldIndex index = FieldIndex::ForInObjectOffset(object_offset, *map); return SimpleFieldLoad(index); } if (IsCompatibleReceiver(lookup, map)) { Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorPair()) { if (!holder->HasFastProperties()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } // When debugging we need to go the slow path to flood the accessor. if (GetSharedFunctionInfo()->HasDebugInfo()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->getter()) == nullptr) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } // Ruled out by IsCompatibleReceiver() above. DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, map)); if (!holder->HasFastProperties()) return slow_stub(); if (receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadApiGetterStub); int index = lookup->GetAccessorIndex(); LoadApiGetterStub stub(isolate(), true, index); return stub.GetCode(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } } TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (kind() != Code::LOAD_IC && kind() != Code::LOAD_GLOBAL_IC) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } // There is only one shared stub for loading normalized // properties. It does not traverse the prototype chain, so the // property must be found in the object for the stub to be // applicable. if (!receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } TRACE_HANDLER_STATS(isolate(), LoadIC_LoadNormal); return isolate()->builtins()->LoadIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { FieldIndex field = lookup->GetFieldIndex(); if (receiver_is_holder) { return SimpleFieldLoad(field); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); if (receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadConstantStub); LoadConstantStub stub(isolate(), lookup->GetConstantIndex()); return stub.GetCode(); } break; // Custom-compiled handler. } case LookupIterator::INTEGER_INDEXED_EXOTIC: TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); } return Handle::null(); } Handle LoadIC::CompileHandler(LookupIterator* lookup, Handle unused, CacheHolderFlag cache_holder) { Handle holder = lookup->GetHolder(); #ifdef DEBUG // Only used by DCHECKs below. Handle receiver = lookup->GetReceiver(); bool receiver_is_holder = receiver.is_identical_to(holder); #endif // Non-map-specific handler stubs have already been selected. DCHECK(!receiver->IsString() || !Name::Equals(isolate()->factory()->length_string(), lookup->name())); DCHECK(!receiver->IsStringWrapper() || !Name::Equals(isolate()->factory()->length_string(), lookup->name())); DCHECK(!( receiver->IsJSFunction() && Name::Equals(isolate()->factory()->prototype_string(), lookup->name()) && receiver->IsConstructor() && !Handle::cast(receiver) ->map() ->has_non_instance_prototype())); Handle map = receiver_map(); switch (lookup->state()) { case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->getter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadInterceptor); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); // Perform a lookup behind the interceptor. Copy the LookupIterator since // the original iterator will be used to fetch the value. LookupIterator it = *lookup; it.Next(); LookupForRead(&it); return compiler.CompileLoadInterceptor(&it); } case LookupIterator::ACCESSOR: { #ifdef DEBUG int object_offset; DCHECK(!Accessors::IsJSObjectFieldAccessor(map, lookup->name(), &object_offset)); #endif DCHECK(IsCompatibleReceiver(lookup, map)); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorPair()) { DCHECK(holder->HasFastProperties()); DCHECK(!GetSharedFunctionInfo()->HasDebugInfo()); Handle getter(Handle::cast(accessors)->getter(), isolate()); CallOptimization call_optimization(getter); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); if (call_optimization.is_simple_api_call()) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadCallback); int index = lookup->GetAccessorIndex(); Handle code = compiler.CompileLoadCallback( lookup->name(), call_optimization, index); return code; } TRACE_HANDLER_STATS(isolate(), LoadIC_LoadViaGetter); int expected_arguments = Handle::cast(getter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileLoadViaGetter( lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } else { DCHECK(accessors->IsAccessorInfo()); Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->getter()) != nullptr); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, map)); DCHECK(holder->HasFastProperties()); DCHECK(!receiver_is_holder); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadCallback); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle code = compiler.CompileLoadCallback(lookup->name(), info); return code; } UNREACHABLE(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC); DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadGlobal); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle cell = lookup->GetPropertyCell(); Handle code = compiler.CompileLoadGlobal( cell, lookup->name(), lookup->IsConfigurable()); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { FieldIndex field = lookup->GetFieldIndex(); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadField); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadField(lookup->name(), field); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadConstant); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadConstant(lookup->name(), lookup->GetConstantIndex()); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } static Handle TryConvertKey(Handle key, Isolate* isolate) { // This helper implements a few common fast cases for converting // non-smi keys of keyed loads/stores to a smi or a string. if (key->IsHeapNumber()) { double value = Handle::cast(key)->value(); if (std::isnan(value)) { key = isolate->factory()->nan_string(); } else { int int_value = FastD2I(value); if (value == int_value && Smi::IsValid(int_value)) { key = handle(Smi::FromInt(int_value), isolate); } } } else if (key->IsUndefined(isolate)) { key = isolate->factory()->undefined_string(); } return key; } void KeyedLoadIC::UpdateLoadElement(Handle receiver) { Handle receiver_map(receiver->map(), isolate()); DCHECK(receiver_map->instance_type() != JS_VALUE_TYPE && receiver_map->instance_type() != JS_PROXY_TYPE); // Checked by caller. MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { Handle map = target_receiver_maps.at(i); if (map.is_null()) continue; if (map->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSValue"); return; } if (map->instance_type() == JS_PROXY_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSProxy"); return; } } // The first time a receiver is seen that is a transitioned version of the // previous monomorphic receiver type, assume the new ElementsKind is the // monomorphic type. This benefits global arrays that only transition // once, and all call sites accessing them are faster if they remain // monomorphic. If this optimistic assumption is not true, the IC will // miss again and it will become polymorphic and support both the // untransitioned and transitioned maps. if (state() == MONOMORPHIC && !receiver->IsString() && IsMoreGeneralElementsKindTransition( target_receiver_maps.at(0)->elements_kind(), Handle::cast(receiver)->GetElementsKind())) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } DCHECK(state() != GENERIC); // Determine the list of receiver maps that this call site has seen, // adding the map that was just encountered. if (!AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map)) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the generic stub. TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the generic // version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "max polymorph exceeded"); return; } CodeHandleList handlers(target_receiver_maps.length()); TRACE_HANDLER_STATS(isolate(), KeyedLoadIC_PolymorphicElement); ElementHandlerCompiler compiler(isolate()); compiler.CompileElementHandlers(&target_receiver_maps, &handlers); ConfigureVectorState(Handle(), &target_receiver_maps, &handlers); } MaybeHandle KeyedLoadIC::Load(Handle object, Handle key) { if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } Handle load_handle; // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION(isolate(), load_handle, LoadIC::Load(object, Handle::cast(key)), Object); } else if (FLAG_use_ic && !object->IsAccessCheckNeeded() && !object->IsJSValue()) { if (object->IsJSObject() || (object->IsString() && key->IsNumber())) { Handle receiver = Handle::cast(object); if (object->IsString() || key->IsSmi()) UpdateLoadElement(receiver); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "set generic"); } TRACE_IC("LoadIC", key); if (!load_handle.is_null()) return load_handle; Handle result; ASSIGN_RETURN_ON_EXCEPTION(isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } bool StoreIC::LookupForWrite(LookupIterator* it, Handle value, JSReceiver::StoreFromKeyed store_mode) { // Disable ICs for non-JSObjects for now. Handle object = it->GetReceiver(); if (!object->IsJSObject()) return false; Handle receiver = Handle::cast(object); DCHECK(!receiver->map()->is_deprecated()); for (; it->IsFound(); it->Next()) { switch (it->state()) { case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); case LookupIterator::JSPROXY: return false; case LookupIterator::INTERCEPTOR: { Handle holder = it->GetHolder(); InterceptorInfo* info = holder->GetNamedInterceptor(); if (it->HolderIsReceiverOrHiddenPrototype()) { return !info->non_masking() && receiver.is_identical_to(holder) && !info->setter()->IsUndefined(it->isolate()); } else if (!info->getter()->IsUndefined(it->isolate()) || !info->query()->IsUndefined(it->isolate())) { return false; } break; } case LookupIterator::ACCESS_CHECK: if (it->GetHolder()->IsAccessCheckNeeded()) return false; break; case LookupIterator::ACCESSOR: return !it->IsReadOnly(); case LookupIterator::INTEGER_INDEXED_EXOTIC: return false; case LookupIterator::DATA: { if (it->IsReadOnly()) return false; Handle holder = it->GetHolder(); if (receiver.is_identical_to(holder)) { it->PrepareForDataProperty(value); // The previous receiver map might just have been deprecated, // so reload it. update_receiver_map(receiver); return true; } // Receiver != holder. if (receiver->IsJSGlobalProxy()) { PrototypeIterator iter(it->isolate(), receiver); return it->GetHolder().is_identical_to( PrototypeIterator::GetCurrent(iter)); } if (it->HolderIsReceiverOrHiddenPrototype()) return false; if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } } } receiver = it->GetStoreTarget(); if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } MaybeHandle StoreIC::Store(Handle object, Handle name, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (object->IsJSGlobalObject() && name->IsString()) { // Look up in script context table. Handle str_name = Handle::cast(name); Handle global = Handle::cast(object); Handle script_contexts( global->native_context()->script_context_table()); ScriptContextTable::LookupResult lookup_result; if (ScriptContextTable::Lookup(script_contexts, str_name, &lookup_result)) { Handle script_context = ScriptContextTable::GetContext( script_contexts, lookup_result.context_index); if (lookup_result.mode == CONST) { return TypeError(MessageTemplate::kConstAssign, object, name); } Handle previous_value = FixedArray::get(*script_context, lookup_result.slot_index, isolate()); if (previous_value->IsTheHole(isolate())) { // Do not install stubs and stay pre-monomorphic for // uninitialized accesses. return ReferenceError(name); } if (FLAG_use_ic && StoreScriptContextFieldStub::Accepted(&lookup_result)) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreScriptContextFieldStub); StoreScriptContextFieldStub stub(isolate(), &lookup_result); PatchCache(name, stub.GetCode()); } script_context->set(lookup_result.slot_index, *value); return value; } } // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object) || object->IsJSProxy()) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Object::SetProperty(object, name, value, language_mode()), Object); return result; } // If the object is undefined or null it's illegal to try to set any // properties on it; throw a TypeError in that case. if (object->IsUndefined(isolate()) || object->IsNull(isolate())) { return TypeError(MessageTemplate::kNonObjectPropertyStore, object, name); } if (state() != UNINITIALIZED) { JSObject::MakePrototypesFast(object, kStartAtPrototype, isolate()); } LookupIterator it(object, name); if (FLAG_use_ic) UpdateCaches(&it, value, store_mode); MAYBE_RETURN_NULL( Object::SetProperty(&it, value, language_mode(), store_mode)); return value; } Handle CallIC::initialize_stub_in_optimized_code( Isolate* isolate, int argc, ConvertReceiverMode mode, TailCallMode tail_call_mode) { CallICStub stub(isolate, CallICState(argc, mode, tail_call_mode)); Handle code = stub.GetCode(); return code; } Handle StoreIC::initialize_stub_in_optimized_code( Isolate* isolate, LanguageMode language_mode) { VectorStoreICStub stub(isolate, StoreICState(language_mode)); return stub.GetCode(); } void StoreIC::UpdateCaches(LookupIterator* lookup, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (state() == UNINITIALIZED) { // This is the first time we execute this inline cache. Set the target to // the pre monomorphic stub to delay setting the monomorphic state. ConfigureVectorState(PREMONOMORPHIC, Handle()); TRACE_IC("StoreIC", lookup->name()); return; } bool use_ic = LookupForWrite(lookup, value, store_mode); if (!use_ic) { TRACE_GENERIC_IC(isolate(), "StoreIC", "LookupForWrite said 'false'"); } Handle code = use_ic ? ComputeHandler(lookup, value) : slow_stub(); PatchCache(lookup->name(), code); TRACE_IC("StoreIC", lookup->name()); } static Handle PropertyCellStoreHandler( Isolate* isolate, Handle receiver, Handle holder, Handle name, Handle cell, PropertyCellType type) { auto constant_type = Nothing(); if (type == PropertyCellType::kConstantType) { constant_type = Just(cell->GetConstantType()); } StoreGlobalStub stub(isolate, type, constant_type, receiver->IsJSGlobalProxy()); auto code = stub.GetCodeCopyFromTemplate(holder, cell); // TODO(verwaest): Move caching of these NORMAL stubs outside as well. HeapObject::UpdateMapCodeCache(receiver, name, code); return code; } Handle StoreIC::GetMapIndependentHandler(LookupIterator* lookup) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { break; // Custom-compiled handler. } // Currently not handled by CompileStoreTransition. if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "transition from slow"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } DCHECK(lookup->IsCacheableTransition()); break; // Custom-compiled handler. } case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->setter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreInterceptorStub); StoreInterceptorStub stub(isolate()); return stub.GetCode(); } case LookupIterator::ACCESSOR: { if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "accessor on slow map"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->setter()) == nullptr) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter == nullptr"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (AccessorInfo::cast(*accessors)->is_special_data_property() && !lookup->HolderIsReceiverOrHiddenPrototype()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "special data property in prototype chain"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (!AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())) { TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver type"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorPair()) { Handle setter(Handle::cast(accessors)->setter(), isolate()); if (!setter->IsJSFunction() && !setter->IsFunctionTemplateInfo()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter not a function"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } CallOptimization call_optimization(setter); if (call_optimization.is_simple_api_call()) { if (call_optimization.IsCompatibleReceiver(receiver, holder)) { break; // Custom-compiled handler. } TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreNormal); DCHECK(holder.is_identical_to(receiver)); return isolate()->builtins()->StoreIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } if (use_stub) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreFieldStub); StoreFieldStub stub(isolate(), lookup->GetFieldIndex(), lookup->representation()); return stub.GetCode(); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); TRACE_GENERIC_IC(isolate(), "StoreIC", "constant property"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } return Handle::null(); } Handle StoreIC::CompileHandler(LookupIterator* lookup, Handle value, CacheHolderFlag cache_holder) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { // TODO(dcarney): this currently just deopts. Use the transition cell. TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobalTransition); auto cell = isolate()->factory()->NewPropertyCell(); cell->set_value(*value); auto code = PropertyCellStoreHandler( isolate(), store_target, Handle::cast(store_target), lookup->name(), cell, PropertyCellType::kConstant); cell->set_value(isolate()->heap()->the_hole_value()); return code; } Handle transition = lookup->transition_map(); // Currently not handled by CompileStoreTransition. DCHECK(holder->HasFastProperties()); DCHECK(lookup->IsCacheableTransition()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreTransition); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreTransition(transition, lookup->name()); } case LookupIterator::INTERCEPTOR: UNREACHABLE(); case LookupIterator::ACCESSOR: { DCHECK(holder->HasFastProperties()); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->setter()) != 0); DCHECK(!AccessorInfo::cast(*accessors)->is_special_data_property() || lookup->HolderIsReceiverOrHiddenPrototype()); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), info, language_mode()); return code; } else { DCHECK(accessors->IsAccessorPair()); Handle setter(Handle::cast(accessors)->setter(), isolate()); DCHECK(setter->IsJSFunction() || setter->IsFunctionTemplateInfo()); CallOptimization call_optimization(setter); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); if (call_optimization.is_simple_api_call()) { DCHECK(call_optimization.IsCompatibleReceiver(receiver, holder)); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), call_optimization, lookup->GetAccessorIndex()); return code; } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreViaSetter); int expected_arguments = JSFunction::cast(*setter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileStoreViaSetter(receiver, lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobal); DCHECK(holder.is_identical_to(receiver) || receiver->map()->prototype() == *holder); auto cell = lookup->GetPropertyCell(); auto updated_type = PropertyCell::UpdatedType(cell, value, lookup->property_details()); auto code = PropertyCellStoreHandler( isolate(), receiver, Handle::cast(holder), lookup->name(), cell, updated_type); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { #ifdef DEBUG bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } DCHECK(!use_stub); #endif TRACE_HANDLER_STATS(isolate(), StoreIC_StoreField); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreField(lookup); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); UNREACHABLE(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } void KeyedStoreIC::UpdateStoreElement(Handle receiver_map, KeyedAccessStoreMode store_mode) { MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle monomorphic_map = ComputeTransitionedMap(receiver_map, store_mode); store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(monomorphic_map, store_mode); return ConfigureVectorState(Handle(), monomorphic_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { if (!target_receiver_maps.at(i).is_null() && target_receiver_maps.at(i)->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "JSValue"); return; } } // There are several special cases where an IC that is MONOMORPHIC can still // transition to a different GetNonTransitioningStoreMode IC that handles a // superset of the original IC. Handle those here if the receiver map hasn't // changed or it has transitioned to a more general kind. KeyedAccessStoreMode old_store_mode = GetKeyedAccessStoreMode(); Handle previous_receiver_map = target_receiver_maps.at(0); if (state() == MONOMORPHIC) { Handle transitioned_receiver_map = receiver_map; if (IsTransitionStoreMode(store_mode)) { transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); } if ((receiver_map.is_identical_to(previous_receiver_map) && IsTransitionStoreMode(store_mode)) || IsTransitionOfMonomorphicTarget(*previous_receiver_map, *transitioned_receiver_map)) { // If the "old" and "new" maps are in the same elements map family, or // if they at least come from the same origin for a transitioning store, // stay MONOMORPHIC and use the map for the most generic ElementsKind. store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler( transitioned_receiver_map, store_mode); ConfigureVectorState(Handle(), transitioned_receiver_map, handler); return; } if (receiver_map.is_identical_to(previous_receiver_map) && old_store_mode == STANDARD_STORE && (store_mode == STORE_AND_GROW_NO_TRANSITION || store_mode == STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS || store_mode == STORE_NO_TRANSITION_HANDLE_COW)) { // A "normal" IC that handles stores can switch to a version that can // grow at the end of the array, handle OOB accesses or copy COW arrays // and still stay MONOMORPHIC. Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(receiver_map, store_mode); return ConfigureVectorState(Handle(), receiver_map, handler); } } DCHECK(state() != GENERIC); bool map_added = AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map); if (IsTransitionStoreMode(store_mode)) { Handle transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); map_added |= AddOneReceiverMapIfMissing(&target_receiver_maps, transitioned_receiver_map); } if (!map_added) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the megamorphic stub which can handle everything. TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the // megamorphic version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) return; // Make sure all polymorphic handlers have the same store mode, otherwise the // megamorphic stub must be used. store_mode = GetNonTransitioningStoreMode(store_mode); if (old_store_mode != STANDARD_STORE) { if (store_mode == STANDARD_STORE) { store_mode = old_store_mode; } else if (store_mode != old_store_mode) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "store mode mismatch"); return; } } // If the store mode isn't the standard mode, make sure that all polymorphic // receivers are either external arrays, or all "normal" arrays. Otherwise, // use the megamorphic stub. if (store_mode != STANDARD_STORE) { int external_arrays = 0; for (int i = 0; i < target_receiver_maps.length(); ++i) { if (target_receiver_maps[i]->has_fixed_typed_array_elements()) { external_arrays++; } } if (external_arrays != 0 && external_arrays != target_receiver_maps.length()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unsupported combination of external and normal arrays"); return; } } TRACE_HANDLER_STATS(isolate(), KeyedStoreIC_Polymorphic); MapHandleList transitioned_maps(target_receiver_maps.length()); CodeHandleList handlers(target_receiver_maps.length()); PropertyICCompiler::ComputeKeyedStorePolymorphicHandlers( &target_receiver_maps, &transitioned_maps, &handlers, store_mode); ConfigureVectorState(&target_receiver_maps, &transitioned_maps, &handlers); } Handle KeyedStoreIC::ComputeTransitionedMap( Handle map, KeyedAccessStoreMode store_mode) { switch (store_mode) { case STORE_TRANSITION_TO_OBJECT: case STORE_AND_GROW_TRANSITION_TO_OBJECT: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_ELEMENTS : FAST_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_TRANSITION_TO_DOUBLE: case STORE_AND_GROW_TRANSITION_TO_DOUBLE: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_DOUBLE_ELEMENTS : FAST_DOUBLE_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS: DCHECK(map->has_fixed_typed_array_elements()); // Fall through case STORE_NO_TRANSITION_HANDLE_COW: case STANDARD_STORE: case STORE_AND_GROW_NO_TRANSITION: return map; } UNREACHABLE(); return MaybeHandle().ToHandleChecked(); } bool IsOutOfBoundsAccess(Handle receiver, uint32_t index) { uint32_t length = 0; if (receiver->IsJSArray()) { JSArray::cast(*receiver)->length()->ToArrayLength(&length); } else { length = static_cast(receiver->elements()->length()); } return index >= length; } static KeyedAccessStoreMode GetStoreMode(Handle receiver, uint32_t index, Handle value) { bool oob_access = IsOutOfBoundsAccess(receiver, index); // Don't consider this a growing store if the store would send the receiver to // dictionary mode. bool allow_growth = receiver->IsJSArray() && oob_access && !receiver->WouldConvertToSlowElements(index); if (allow_growth) { // Handle growing array in stub if necessary. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_DOUBLE; } if (value->IsHeapObject()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } return STORE_AND_GROW_NO_TRANSITION; } else { // Handle only in-bounds elements accesses. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_TRANSITION_TO_DOUBLE; } else if (value->IsHeapObject()) { return STORE_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_TRANSITION_TO_OBJECT; } } if (!FLAG_trace_external_array_abuse && receiver->map()->has_fixed_typed_array_elements() && oob_access) { return STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS; } Heap* heap = receiver->GetHeap(); if (receiver->elements()->map() == heap->fixed_cow_array_map()) { return STORE_NO_TRANSITION_HANDLE_COW; } else { return STANDARD_STORE; } } } MaybeHandle KeyedStoreIC::Store(Handle object, Handle key, Handle value) { // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); return result; } // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); Handle store_handle; uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION( isolate(), store_handle, StoreIC::Store(object, Handle::cast(key), value, JSReceiver::MAY_BE_STORE_FROM_KEYED), Object); if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unhandled internalized string key"); TRACE_IC("StoreIC", key); } return store_handle; } bool use_ic = FLAG_use_ic && !object->IsStringWrapper() && !object->IsAccessCheckNeeded() && !object->IsJSGlobalProxy(); if (use_ic && !object->IsSmi()) { // Don't use ICs for maps of the objects in Array's prototype chain. We // expect to be able to trap element sets to objects with those maps in // the runtime to enable optimization of element hole access. Handle heap_object = Handle::cast(object); if (heap_object->map()->IsMapInArrayPrototypeChain()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "map in array prototype"); use_ic = false; } } Handle old_receiver_map; bool sloppy_arguments_elements = false; bool key_is_valid_index = false; KeyedAccessStoreMode store_mode = STANDARD_STORE; if (use_ic && object->IsJSObject()) { Handle receiver = Handle::cast(object); old_receiver_map = handle(receiver->map(), isolate()); sloppy_arguments_elements = !is_sloppy(language_mode()) && receiver->elements()->map() == isolate()->heap()->sloppy_arguments_elements_map(); if (!sloppy_arguments_elements) { key_is_valid_index = key->IsSmi() && Smi::cast(*key)->value() >= 0; if (key_is_valid_index) { uint32_t index = static_cast(Smi::cast(*key)->value()); store_mode = GetStoreMode(receiver, index, value); } } } DCHECK(store_handle.is_null()); ASSIGN_RETURN_ON_EXCEPTION(isolate(), store_handle, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); if (use_ic) { if (!old_receiver_map.is_null()) { if (sloppy_arguments_elements) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "arguments receiver"); } else if (key_is_valid_index) { // We should go generic if receiver isn't a dictionary, but our // prototype chain does have dictionary elements. This ensures that // other non-dictionary receivers in the polymorphic case benefit // from fast path keyed stores. if (!old_receiver_map->DictionaryElementsInPrototypeChainOnly()) { UpdateStoreElement(old_receiver_map, store_mode); } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "dictionary or proxy prototype"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-smi-like key"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-JSObject receiver"); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "set generic"); } TRACE_IC("StoreIC", key); return store_handle; } void CallIC::HandleMiss(Handle function) { Handle name = isolate()->factory()->empty_string(); CallICNexus* nexus = casted_nexus(); Object* feedback = nexus->GetFeedback(); // Hand-coded MISS handling is easier if CallIC slots don't contain smis. DCHECK(!feedback->IsSmi()); if (feedback->IsWeakCell() || !function->IsJSFunction() || feedback->IsAllocationSite()) { // We are going generic. nexus->ConfigureMegamorphic(); } else { DCHECK(feedback == *TypeFeedbackVector::UninitializedSentinel(isolate())); Handle js_function = Handle::cast(function); Handle array_function = Handle(isolate()->native_context()->array_function()); if (array_function.is_identical_to(js_function)) { // Alter the slot. nexus->ConfigureMonomorphicArray(); } else if (js_function->context()->native_context() != *isolate()->native_context()) { // Don't collect cross-native context feedback for the CallIC. // TODO(bmeurer): We should collect the SharedFunctionInfo as // feedback in this case instead. nexus->ConfigureMegamorphic(); } else { nexus->ConfigureMonomorphic(js_function); } } if (function->IsJSFunction()) { Handle
code) { if (!code->is_handler()) return false; if (is_keyed() && state() != RECOMPUTE_HANDLER) return false; Handle map = receiver_map(); MapHandleList maps; CodeHandleList handlers; TargetMaps(&maps); int number_of_maps = maps.length(); int deprecated_maps = 0; int handler_to_overwrite = -1; for (int i = 0; i < number_of_maps; i++) { Handle current_map = maps.at(i); if (current_map->is_deprecated()) { // Filter out deprecated maps to ensure their instances get migrated. ++deprecated_maps; } else if (map.is_identical_to(current_map)) { // If the receiver type is already in the polymorphic IC, this indicates // there was a prototoype chain failure. In that case, just overwrite the // handler. handler_to_overwrite = i; } else if (handler_to_overwrite == -1 && IsTransitionOfMonomorphicTarget(*current_map, *map)) { handler_to_overwrite = i; } } int number_of_valid_maps = number_of_maps - deprecated_maps - (handler_to_overwrite != -1); if (number_of_valid_maps >= 4) return false; if (number_of_maps == 0 && state() != MONOMORPHIC && state() != POLYMORPHIC) { return false; } DCHECK(UseVector()); if (!nexus()->FindHandlers(&handlers, maps.length())) return false; number_of_valid_maps++; if (number_of_valid_maps > 1 && is_keyed()) return false; Handle ic; if (number_of_valid_maps == 1) { ConfigureVectorState(name, receiver_map(), code); } else { if (handler_to_overwrite >= 0) { handlers.Set(handler_to_overwrite, code); if (!map.is_identical_to(maps.at(handler_to_overwrite))) { maps.Set(handler_to_overwrite, map); } } else { maps.Add(map); handlers.Add(code); } ConfigureVectorState(name, &maps, &handlers); } return true; } void IC::UpdateMonomorphicIC(Handle handler, Handle name) { DCHECK(handler->is_handler()); ConfigureVectorState(name, receiver_map(), handler); } void IC::CopyICToMegamorphicCache(Handle name) { MapHandleList maps; CodeHandleList handlers; TargetMaps(&maps); if (!nexus()->FindHandlers(&handlers, maps.length())) return; for (int i = 0; i < maps.length(); i++) { UpdateMegamorphicCache(*maps.at(i), *name, *handlers.at(i)); } } bool IC::IsTransitionOfMonomorphicTarget(Map* source_map, Map* target_map) { if (source_map == NULL) return true; if (target_map == NULL) return false; ElementsKind target_elements_kind = target_map->elements_kind(); bool more_general_transition = IsMoreGeneralElementsKindTransition( source_map->elements_kind(), target_elements_kind); Map* transitioned_map = nullptr; if (more_general_transition) { MapHandleList map_list; map_list.Add(handle(target_map)); transitioned_map = source_map->FindElementsKindTransitionedMap(&map_list); } return transitioned_map == target_map; } void IC::PatchCache(Handle name, Handle code) { switch (state()) { case UNINITIALIZED: case PREMONOMORPHIC: UpdateMonomorphicIC(code, name); break; case RECOMPUTE_HANDLER: case MONOMORPHIC: if (kind() == Code::LOAD_GLOBAL_IC) { UpdateMonomorphicIC(code, name); break; } // Fall through. case POLYMORPHIC: if (!is_keyed() || state() == RECOMPUTE_HANDLER) { if (UpdatePolymorphicIC(name, code)) break; // For keyed stubs, we can't know whether old handlers were for the // same key. CopyICToMegamorphicCache(name); } DCHECK(UseVector()); ConfigureVectorState(MEGAMORPHIC, name); // Fall through. case MEGAMORPHIC: UpdateMegamorphicCache(*receiver_map(), *name, *code); // Indicate that we've handled this case. DCHECK(UseVector()); vector_set_ = true; break; case GENERIC: UNREACHABLE(); break; } } Handle LoadIC::initialize_stub_in_optimized_code(Isolate* isolate) { if (FLAG_tf_load_ic_stub) { return LoadICTFStub(isolate).GetCode(); } return LoadICStub(isolate).GetCode(); } Handle LoadGlobalIC::initialize_stub_in_optimized_code( Isolate* isolate, ExtraICState extra_state) { return LoadGlobalICStub(isolate, LoadGlobalICState(extra_state)).GetCode(); } Handle KeyedLoadIC::initialize_stub_in_optimized_code( Isolate* isolate, ExtraICState extra_state) { // TODO(ishell): remove extra_ic_state return KeyedLoadICStub(isolate).GetCode(); } Handle KeyedStoreIC::initialize_stub_in_optimized_code( Isolate* isolate, LanguageMode language_mode) { StoreICState state = StoreICState(language_mode); return VectorKeyedStoreICStub(isolate, state).GetCode(); } Handle KeyedStoreIC::ChooseMegamorphicStub(Isolate* isolate, ExtraICState extra_state) { LanguageMode mode = StoreICState::GetLanguageMode(extra_state); return is_strict(mode) ? isolate->builtins()->KeyedStoreIC_Megamorphic_Strict() : isolate->builtins()->KeyedStoreIC_Megamorphic(); } Handle LoadIC::SimpleFieldLoad(FieldIndex index) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadFieldStub); LoadFieldStub stub(isolate(), index); return stub.GetCode(); } bool IsCompatibleReceiver(LookupIterator* lookup, Handle receiver_map) { DCHECK(lookup->state() == LookupIterator::ACCESSOR); Isolate* isolate = lookup->isolate(); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (info->getter() != NULL && !AccessorInfo::IsCompatibleReceiverMap(isolate, info, receiver_map)) { return false; } } else if (accessors->IsAccessorPair()) { Handle getter(Handle::cast(accessors)->getter(), isolate); if (!getter->IsJSFunction() && !getter->IsFunctionTemplateInfo()) { return false; } Handle holder = lookup->GetHolder(); Handle receiver = lookup->GetReceiver(); if (holder->HasFastProperties()) { if (getter->IsJSFunction()) { Handle function = Handle::cast(getter); if (!receiver->IsJSObject() && !function->shared()->IsBuiltin() && is_sloppy(function->shared()->language_mode())) { // Calling sloppy non-builtins with a value as the receiver // requires boxing. return false; } } CallOptimization call_optimization(getter); if (call_optimization.is_simple_api_call() && !call_optimization.IsCompatibleReceiverMap(receiver_map, holder)) { return false; } } } return true; } void LoadIC::UpdateCaches(LookupIterator* lookup) { if (state() == UNINITIALIZED && kind() != Code::LOAD_GLOBAL_IC) { // This is the first time we execute this inline cache. Set the target to // the pre monomorphic stub to delay setting the monomorphic state. ConfigureVectorState(PREMONOMORPHIC, Handle()); TRACE_IC("LoadIC", lookup->name()); return; } Handle code; if (lookup->state() == LookupIterator::JSPROXY || lookup->state() == LookupIterator::ACCESS_CHECK) { code = slow_stub(); } else if (!lookup->IsFound()) { if (kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC) { code = NamedLoadHandlerCompiler::ComputeLoadNonexistent(lookup->name(), receiver_map()); // TODO(jkummerow/verwaest): Introduce a builtin that handles this case. if (code.is_null()) code = slow_stub(); } else { code = slow_stub(); } } else { if (kind() == Code::LOAD_GLOBAL_IC && lookup->state() == LookupIterator::DATA && lookup->GetHolder()->IsJSGlobalObject()) { #if DEBUG Handle holder = lookup->GetHolder(); Handle receiver = lookup->GetReceiver(); DCHECK_EQ(*receiver, *holder); #endif // Now update the cell in the feedback vector. LoadGlobalICNexus* nexus = casted_nexus(); nexus->ConfigurePropertyCellMode(lookup->GetPropertyCell()); TRACE_IC("LoadGlobalIC", lookup->name()); return; } else if (lookup->state() == LookupIterator::ACCESSOR) { if (!IsCompatibleReceiver(lookup, receiver_map())) { TRACE_GENERIC_IC(isolate(), "LoadIC", "incompatible receiver type"); code = slow_stub(); } } else if (lookup->state() == LookupIterator::INTERCEPTOR) { if (kind() == Code::LOAD_GLOBAL_IC) { // The interceptor handler requires name but it is not passed explicitly // to LoadGlobalIC and the LoadGlobalIC dispatcher also does not load // it so we will just use slow stub. code = slow_stub(); } else { // Perform a lookup behind the interceptor. Copy the LookupIterator // since the original iterator will be used to fetch the value. LookupIterator it = *lookup; it.Next(); LookupForRead(&it); if (it.state() == LookupIterator::ACCESSOR && !IsCompatibleReceiver(&it, receiver_map())) { TRACE_GENERIC_IC(isolate(), "LoadIC", "incompatible receiver type"); code = slow_stub(); } } } if (code.is_null()) code = ComputeHandler(lookup); } PatchCache(lookup->name(), code); TRACE_IC("LoadIC", lookup->name()); } void IC::UpdateMegamorphicCache(Map* map, Name* name, Code* code) { isolate()->stub_cache()->Set(name, map, code); } Handle IC::ComputeHandler(LookupIterator* lookup, Handle value) { // Try to find a globally shared handler stub. Handle code = GetMapIndependentHandler(lookup); if (!code.is_null()) return code; // Otherwise check the map's handler cache for a map-specific handler, and // compile one if the cache comes up empty. bool receiver_is_holder = lookup->GetReceiver().is_identical_to(lookup->GetHolder()); CacheHolderFlag flag; Handle stub_holder_map; if (kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC || kind() == Code::KEYED_LOAD_IC) { stub_holder_map = IC::GetHandlerCacheHolder( receiver_map(), receiver_is_holder, isolate(), &flag); } else { DCHECK(kind() == Code::STORE_IC || kind() == Code::KEYED_STORE_IC); // Store handlers cannot be cached on prototypes. flag = kCacheOnReceiver; stub_holder_map = receiver_map(); } code = PropertyHandlerCompiler::Find(lookup->name(), stub_holder_map, kind(), flag); // Use the cached value if it exists, and if it is different from the // handler that just missed. if (!code.is_null()) { Handle handler; if (maybe_handler_.ToHandle(&handler)) { if (!handler.is_identical_to(code)) { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } else { // maybe_handler_ is only populated for MONOMORPHIC and POLYMORPHIC ICs. // In MEGAMORPHIC case, check if the handler in the megamorphic stub // cache (which just missed) is different from the cached handler. if (state() == MEGAMORPHIC && lookup->GetReceiver()->IsHeapObject()) { Map* map = Handle::cast(lookup->GetReceiver())->map(); Code* megamorphic_cached_code = isolate()->stub_cache()->Get(*lookup->name(), map, code->flags()); if (megamorphic_cached_code != *code) { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } else { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } } code = CompileHandler(lookup, value, flag); DCHECK(code->is_handler()); DCHECK(Code::ExtractCacheHolderFromFlags(code->flags()) == flag); Map::UpdateCodeCache(stub_holder_map, lookup->name(), code); return code; } Handle LoadIC::GetMapIndependentHandler(LookupIterator* lookup) { Handle receiver = lookup->GetReceiver(); if (receiver->IsString() && Name::Equals(isolate()->factory()->length_string(), lookup->name())) { FieldIndex index = FieldIndex::ForInObjectOffset(String::kLengthOffset); return SimpleFieldLoad(index); } if (receiver->IsStringWrapper() && Name::Equals(isolate()->factory()->length_string(), lookup->name())) { TRACE_HANDLER_STATS(isolate(), LoadIC_StringLengthStub); StringLengthStub string_length_stub(isolate()); return string_length_stub.GetCode(); } // Use specialized code for getting prototype of functions. if (receiver->IsJSFunction() && Name::Equals(isolate()->factory()->prototype_string(), lookup->name()) && receiver->IsConstructor() && !Handle::cast(receiver) ->map() ->has_non_instance_prototype()) { Handle stub; TRACE_HANDLER_STATS(isolate(), LoadIC_FunctionPrototypeStub); FunctionPrototypeStub function_prototype_stub(isolate()); return function_prototype_stub.GetCode(); } Handle map = receiver_map(); Handle holder = lookup->GetHolder(); bool receiver_is_holder = receiver.is_identical_to(holder); switch (lookup->state()) { case LookupIterator::INTERCEPTOR: break; // Custom-compiled handler. case LookupIterator::ACCESSOR: { // Use simple field loads for some well-known callback properties. // The method will only return true for absolute truths based on the // receiver maps. int object_offset; if (Accessors::IsJSObjectFieldAccessor(map, lookup->name(), &object_offset)) { FieldIndex index = FieldIndex::ForInObjectOffset(object_offset, *map); return SimpleFieldLoad(index); } if (IsCompatibleReceiver(lookup, map)) { Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorPair()) { if (!holder->HasFastProperties()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } // When debugging we need to go the slow path to flood the accessor. if (GetSharedFunctionInfo()->HasDebugInfo()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->getter()) == nullptr) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } // Ruled out by IsCompatibleReceiver() above. DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, map)); if (!holder->HasFastProperties()) return slow_stub(); if (receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadApiGetterStub); int index = lookup->GetAccessorIndex(); LoadApiGetterStub stub(isolate(), true, index); return stub.GetCode(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } } TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (kind() != Code::LOAD_IC && kind() != Code::LOAD_GLOBAL_IC) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } // There is only one shared stub for loading normalized // properties. It does not traverse the prototype chain, so the // property must be found in the object for the stub to be // applicable. if (!receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } TRACE_HANDLER_STATS(isolate(), LoadIC_LoadNormal); return isolate()->builtins()->LoadIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { FieldIndex field = lookup->GetFieldIndex(); if (receiver_is_holder) { return SimpleFieldLoad(field); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); if (receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadConstantStub); LoadConstantStub stub(isolate(), lookup->GetConstantIndex()); return stub.GetCode(); } break; // Custom-compiled handler. } case LookupIterator::INTEGER_INDEXED_EXOTIC: TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); } return Handle::null(); } Handle LoadIC::CompileHandler(LookupIterator* lookup, Handle unused, CacheHolderFlag cache_holder) { Handle holder = lookup->GetHolder(); #ifdef DEBUG // Only used by DCHECKs below. Handle receiver = lookup->GetReceiver(); bool receiver_is_holder = receiver.is_identical_to(holder); #endif // Non-map-specific handler stubs have already been selected. DCHECK(!receiver->IsString() || !Name::Equals(isolate()->factory()->length_string(), lookup->name())); DCHECK(!receiver->IsStringWrapper() || !Name::Equals(isolate()->factory()->length_string(), lookup->name())); DCHECK(!( receiver->IsJSFunction() && Name::Equals(isolate()->factory()->prototype_string(), lookup->name()) && receiver->IsConstructor() && !Handle::cast(receiver) ->map() ->has_non_instance_prototype())); Handle map = receiver_map(); switch (lookup->state()) { case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->getter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadInterceptor); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); // Perform a lookup behind the interceptor. Copy the LookupIterator since // the original iterator will be used to fetch the value. LookupIterator it = *lookup; it.Next(); LookupForRead(&it); return compiler.CompileLoadInterceptor(&it); } case LookupIterator::ACCESSOR: { #ifdef DEBUG int object_offset; DCHECK(!Accessors::IsJSObjectFieldAccessor(map, lookup->name(), &object_offset)); #endif DCHECK(IsCompatibleReceiver(lookup, map)); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorPair()) { DCHECK(holder->HasFastProperties()); DCHECK(!GetSharedFunctionInfo()->HasDebugInfo()); Handle getter(Handle::cast(accessors)->getter(), isolate()); CallOptimization call_optimization(getter); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); if (call_optimization.is_simple_api_call()) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadCallback); int index = lookup->GetAccessorIndex(); Handle code = compiler.CompileLoadCallback( lookup->name(), call_optimization, index); return code; } TRACE_HANDLER_STATS(isolate(), LoadIC_LoadViaGetter); int expected_arguments = Handle::cast(getter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileLoadViaGetter( lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } else { DCHECK(accessors->IsAccessorInfo()); Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->getter()) != nullptr); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, map)); DCHECK(holder->HasFastProperties()); DCHECK(!receiver_is_holder); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadCallback); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle code = compiler.CompileLoadCallback(lookup->name(), info); return code; } UNREACHABLE(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC); DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadGlobal); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle cell = lookup->GetPropertyCell(); Handle code = compiler.CompileLoadGlobal( cell, lookup->name(), lookup->IsConfigurable()); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { FieldIndex field = lookup->GetFieldIndex(); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadField); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadField(lookup->name(), field); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadConstant); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadConstant(lookup->name(), lookup->GetConstantIndex()); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } static Handle TryConvertKey(Handle key, Isolate* isolate) { // This helper implements a few common fast cases for converting // non-smi keys of keyed loads/stores to a smi or a string. if (key->IsHeapNumber()) { double value = Handle::cast(key)->value(); if (std::isnan(value)) { key = isolate->factory()->nan_string(); } else { int int_value = FastD2I(value); if (value == int_value && Smi::IsValid(int_value)) { key = handle(Smi::FromInt(int_value), isolate); } } } else if (key->IsUndefined(isolate)) { key = isolate->factory()->undefined_string(); } return key; } void KeyedLoadIC::UpdateLoadElement(Handle receiver) { Handle receiver_map(receiver->map(), isolate()); DCHECK(receiver_map->instance_type() != JS_VALUE_TYPE && receiver_map->instance_type() != JS_PROXY_TYPE); // Checked by caller. MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { Handle map = target_receiver_maps.at(i); if (map.is_null()) continue; if (map->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSValue"); return; } if (map->instance_type() == JS_PROXY_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSProxy"); return; } } // The first time a receiver is seen that is a transitioned version of the // previous monomorphic receiver type, assume the new ElementsKind is the // monomorphic type. This benefits global arrays that only transition // once, and all call sites accessing them are faster if they remain // monomorphic. If this optimistic assumption is not true, the IC will // miss again and it will become polymorphic and support both the // untransitioned and transitioned maps. if (state() == MONOMORPHIC && !receiver->IsString() && IsMoreGeneralElementsKindTransition( target_receiver_maps.at(0)->elements_kind(), Handle::cast(receiver)->GetElementsKind())) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } DCHECK(state() != GENERIC); // Determine the list of receiver maps that this call site has seen, // adding the map that was just encountered. if (!AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map)) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the generic stub. TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the generic // version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "max polymorph exceeded"); return; } CodeHandleList handlers(target_receiver_maps.length()); TRACE_HANDLER_STATS(isolate(), KeyedLoadIC_PolymorphicElement); ElementHandlerCompiler compiler(isolate()); compiler.CompileElementHandlers(&target_receiver_maps, &handlers); ConfigureVectorState(Handle(), &target_receiver_maps, &handlers); } MaybeHandle KeyedLoadIC::Load(Handle object, Handle key) { if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } Handle load_handle; // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION(isolate(), load_handle, LoadIC::Load(object, Handle::cast(key)), Object); } else if (FLAG_use_ic && !object->IsAccessCheckNeeded() && !object->IsJSValue()) { if (object->IsJSObject() || (object->IsString() && key->IsNumber())) { Handle receiver = Handle::cast(object); if (object->IsString() || key->IsSmi()) UpdateLoadElement(receiver); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "set generic"); } TRACE_IC("LoadIC", key); if (!load_handle.is_null()) return load_handle; Handle result; ASSIGN_RETURN_ON_EXCEPTION(isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } bool StoreIC::LookupForWrite(LookupIterator* it, Handle value, JSReceiver::StoreFromKeyed store_mode) { // Disable ICs for non-JSObjects for now. Handle object = it->GetReceiver(); if (!object->IsJSObject()) return false; Handle receiver = Handle::cast(object); DCHECK(!receiver->map()->is_deprecated()); for (; it->IsFound(); it->Next()) { switch (it->state()) { case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); case LookupIterator::JSPROXY: return false; case LookupIterator::INTERCEPTOR: { Handle holder = it->GetHolder(); InterceptorInfo* info = holder->GetNamedInterceptor(); if (it->HolderIsReceiverOrHiddenPrototype()) { return !info->non_masking() && receiver.is_identical_to(holder) && !info->setter()->IsUndefined(it->isolate()); } else if (!info->getter()->IsUndefined(it->isolate()) || !info->query()->IsUndefined(it->isolate())) { return false; } break; } case LookupIterator::ACCESS_CHECK: if (it->GetHolder()->IsAccessCheckNeeded()) return false; break; case LookupIterator::ACCESSOR: return !it->IsReadOnly(); case LookupIterator::INTEGER_INDEXED_EXOTIC: return false; case LookupIterator::DATA: { if (it->IsReadOnly()) return false; Handle holder = it->GetHolder(); if (receiver.is_identical_to(holder)) { it->PrepareForDataProperty(value); // The previous receiver map might just have been deprecated, // so reload it. update_receiver_map(receiver); return true; } // Receiver != holder. if (receiver->IsJSGlobalProxy()) { PrototypeIterator iter(it->isolate(), receiver); return it->GetHolder().is_identical_to( PrototypeIterator::GetCurrent(iter)); } if (it->HolderIsReceiverOrHiddenPrototype()) return false; if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } } } receiver = it->GetStoreTarget(); if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } MaybeHandle StoreIC::Store(Handle object, Handle name, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (object->IsJSGlobalObject() && name->IsString()) { // Look up in script context table. Handle str_name = Handle::cast(name); Handle global = Handle::cast(object); Handle script_contexts( global->native_context()->script_context_table()); ScriptContextTable::LookupResult lookup_result; if (ScriptContextTable::Lookup(script_contexts, str_name, &lookup_result)) { Handle script_context = ScriptContextTable::GetContext( script_contexts, lookup_result.context_index); if (lookup_result.mode == CONST) { return TypeError(MessageTemplate::kConstAssign, object, name); } Handle previous_value = FixedArray::get(*script_context, lookup_result.slot_index, isolate()); if (previous_value->IsTheHole(isolate())) { // Do not install stubs and stay pre-monomorphic for // uninitialized accesses. return ReferenceError(name); } if (FLAG_use_ic && StoreScriptContextFieldStub::Accepted(&lookup_result)) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreScriptContextFieldStub); StoreScriptContextFieldStub stub(isolate(), &lookup_result); PatchCache(name, stub.GetCode()); } script_context->set(lookup_result.slot_index, *value); return value; } } // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object) || object->IsJSProxy()) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Object::SetProperty(object, name, value, language_mode()), Object); return result; } // If the object is undefined or null it's illegal to try to set any // properties on it; throw a TypeError in that case. if (object->IsUndefined(isolate()) || object->IsNull(isolate())) { return TypeError(MessageTemplate::kNonObjectPropertyStore, object, name); } if (state() != UNINITIALIZED) { JSObject::MakePrototypesFast(object, kStartAtPrototype, isolate()); } LookupIterator it(object, name); if (FLAG_use_ic) UpdateCaches(&it, value, store_mode); MAYBE_RETURN_NULL( Object::SetProperty(&it, value, language_mode(), store_mode)); return value; } Handle CallIC::initialize_stub_in_optimized_code( Isolate* isolate, int argc, ConvertReceiverMode mode, TailCallMode tail_call_mode) { CallICStub stub(isolate, CallICState(argc, mode, tail_call_mode)); Handle code = stub.GetCode(); return code; } Handle StoreIC::initialize_stub_in_optimized_code( Isolate* isolate, LanguageMode language_mode) { VectorStoreICStub stub(isolate, StoreICState(language_mode)); return stub.GetCode(); } void StoreIC::UpdateCaches(LookupIterator* lookup, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (state() == UNINITIALIZED) { // This is the first time we execute this inline cache. Set the target to // the pre monomorphic stub to delay setting the monomorphic state. ConfigureVectorState(PREMONOMORPHIC, Handle()); TRACE_IC("StoreIC", lookup->name()); return; } bool use_ic = LookupForWrite(lookup, value, store_mode); if (!use_ic) { TRACE_GENERIC_IC(isolate(), "StoreIC", "LookupForWrite said 'false'"); } Handle code = use_ic ? ComputeHandler(lookup, value) : slow_stub(); PatchCache(lookup->name(), code); TRACE_IC("StoreIC", lookup->name()); } static Handle PropertyCellStoreHandler( Isolate* isolate, Handle receiver, Handle holder, Handle name, Handle cell, PropertyCellType type) { auto constant_type = Nothing(); if (type == PropertyCellType::kConstantType) { constant_type = Just(cell->GetConstantType()); } StoreGlobalStub stub(isolate, type, constant_type, receiver->IsJSGlobalProxy()); auto code = stub.GetCodeCopyFromTemplate(holder, cell); // TODO(verwaest): Move caching of these NORMAL stubs outside as well. HeapObject::UpdateMapCodeCache(receiver, name, code); return code; } Handle StoreIC::GetMapIndependentHandler(LookupIterator* lookup) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { break; // Custom-compiled handler. } // Currently not handled by CompileStoreTransition. if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "transition from slow"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } DCHECK(lookup->IsCacheableTransition()); break; // Custom-compiled handler. } case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->setter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreInterceptorStub); StoreInterceptorStub stub(isolate()); return stub.GetCode(); } case LookupIterator::ACCESSOR: { if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "accessor on slow map"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->setter()) == nullptr) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter == nullptr"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (AccessorInfo::cast(*accessors)->is_special_data_property() && !lookup->HolderIsReceiverOrHiddenPrototype()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "special data property in prototype chain"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (!AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())) { TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver type"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorPair()) { Handle setter(Handle::cast(accessors)->setter(), isolate()); if (!setter->IsJSFunction() && !setter->IsFunctionTemplateInfo()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter not a function"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } CallOptimization call_optimization(setter); if (call_optimization.is_simple_api_call()) { if (call_optimization.IsCompatibleReceiver(receiver, holder)) { break; // Custom-compiled handler. } TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreNormal); DCHECK(holder.is_identical_to(receiver)); return isolate()->builtins()->StoreIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } if (use_stub) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreFieldStub); StoreFieldStub stub(isolate(), lookup->GetFieldIndex(), lookup->representation()); return stub.GetCode(); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); TRACE_GENERIC_IC(isolate(), "StoreIC", "constant property"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } return Handle::null(); } Handle StoreIC::CompileHandler(LookupIterator* lookup, Handle value, CacheHolderFlag cache_holder) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { // TODO(dcarney): this currently just deopts. Use the transition cell. TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobalTransition); auto cell = isolate()->factory()->NewPropertyCell(); cell->set_value(*value); auto code = PropertyCellStoreHandler( isolate(), store_target, Handle::cast(store_target), lookup->name(), cell, PropertyCellType::kConstant); cell->set_value(isolate()->heap()->the_hole_value()); return code; } Handle transition = lookup->transition_map(); // Currently not handled by CompileStoreTransition. DCHECK(holder->HasFastProperties()); DCHECK(lookup->IsCacheableTransition()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreTransition); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreTransition(transition, lookup->name()); } case LookupIterator::INTERCEPTOR: UNREACHABLE(); case LookupIterator::ACCESSOR: { DCHECK(holder->HasFastProperties()); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->setter()) != 0); DCHECK(!AccessorInfo::cast(*accessors)->is_special_data_property() || lookup->HolderIsReceiverOrHiddenPrototype()); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), info, language_mode()); return code; } else { DCHECK(accessors->IsAccessorPair()); Handle setter(Handle::cast(accessors)->setter(), isolate()); DCHECK(setter->IsJSFunction() || setter->IsFunctionTemplateInfo()); CallOptimization call_optimization(setter); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); if (call_optimization.is_simple_api_call()) { DCHECK(call_optimization.IsCompatibleReceiver(receiver, holder)); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), call_optimization, lookup->GetAccessorIndex()); return code; } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreViaSetter); int expected_arguments = JSFunction::cast(*setter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileStoreViaSetter(receiver, lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobal); DCHECK(holder.is_identical_to(receiver) || receiver->map()->prototype() == *holder); auto cell = lookup->GetPropertyCell(); auto updated_type = PropertyCell::UpdatedType(cell, value, lookup->property_details()); auto code = PropertyCellStoreHandler( isolate(), receiver, Handle::cast(holder), lookup->name(), cell, updated_type); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { #ifdef DEBUG bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } DCHECK(!use_stub); #endif TRACE_HANDLER_STATS(isolate(), StoreIC_StoreField); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreField(lookup); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); UNREACHABLE(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } void KeyedStoreIC::UpdateStoreElement(Handle receiver_map, KeyedAccessStoreMode store_mode) { MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle monomorphic_map = ComputeTransitionedMap(receiver_map, store_mode); store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(monomorphic_map, store_mode); return ConfigureVectorState(Handle(), monomorphic_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { if (!target_receiver_maps.at(i).is_null() && target_receiver_maps.at(i)->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "JSValue"); return; } } // There are several special cases where an IC that is MONOMORPHIC can still // transition to a different GetNonTransitioningStoreMode IC that handles a // superset of the original IC. Handle those here if the receiver map hasn't // changed or it has transitioned to a more general kind. KeyedAccessStoreMode old_store_mode = GetKeyedAccessStoreMode(); Handle previous_receiver_map = target_receiver_maps.at(0); if (state() == MONOMORPHIC) { Handle transitioned_receiver_map = receiver_map; if (IsTransitionStoreMode(store_mode)) { transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); } if ((receiver_map.is_identical_to(previous_receiver_map) && IsTransitionStoreMode(store_mode)) || IsTransitionOfMonomorphicTarget(*previous_receiver_map, *transitioned_receiver_map)) { // If the "old" and "new" maps are in the same elements map family, or // if they at least come from the same origin for a transitioning store, // stay MONOMORPHIC and use the map for the most generic ElementsKind. store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler( transitioned_receiver_map, store_mode); ConfigureVectorState(Handle(), transitioned_receiver_map, handler); return; } if (receiver_map.is_identical_to(previous_receiver_map) && old_store_mode == STANDARD_STORE && (store_mode == STORE_AND_GROW_NO_TRANSITION || store_mode == STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS || store_mode == STORE_NO_TRANSITION_HANDLE_COW)) { // A "normal" IC that handles stores can switch to a version that can // grow at the end of the array, handle OOB accesses or copy COW arrays // and still stay MONOMORPHIC. Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(receiver_map, store_mode); return ConfigureVectorState(Handle(), receiver_map, handler); } } DCHECK(state() != GENERIC); bool map_added = AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map); if (IsTransitionStoreMode(store_mode)) { Handle transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); map_added |= AddOneReceiverMapIfMissing(&target_receiver_maps, transitioned_receiver_map); } if (!map_added) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the megamorphic stub which can handle everything. TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the // megamorphic version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) return; // Make sure all polymorphic handlers have the same store mode, otherwise the // megamorphic stub must be used. store_mode = GetNonTransitioningStoreMode(store_mode); if (old_store_mode != STANDARD_STORE) { if (store_mode == STANDARD_STORE) { store_mode = old_store_mode; } else if (store_mode != old_store_mode) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "store mode mismatch"); return; } } // If the store mode isn't the standard mode, make sure that all polymorphic // receivers are either external arrays, or all "normal" arrays. Otherwise, // use the megamorphic stub. if (store_mode != STANDARD_STORE) { int external_arrays = 0; for (int i = 0; i < target_receiver_maps.length(); ++i) { if (target_receiver_maps[i]->has_fixed_typed_array_elements()) { external_arrays++; } } if (external_arrays != 0 && external_arrays != target_receiver_maps.length()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unsupported combination of external and normal arrays"); return; } } TRACE_HANDLER_STATS(isolate(), KeyedStoreIC_Polymorphic); MapHandleList transitioned_maps(target_receiver_maps.length()); CodeHandleList handlers(target_receiver_maps.length()); PropertyICCompiler::ComputeKeyedStorePolymorphicHandlers( &target_receiver_maps, &transitioned_maps, &handlers, store_mode); ConfigureVectorState(&target_receiver_maps, &transitioned_maps, &handlers); } Handle KeyedStoreIC::ComputeTransitionedMap( Handle map, KeyedAccessStoreMode store_mode) { switch (store_mode) { case STORE_TRANSITION_TO_OBJECT: case STORE_AND_GROW_TRANSITION_TO_OBJECT: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_ELEMENTS : FAST_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_TRANSITION_TO_DOUBLE: case STORE_AND_GROW_TRANSITION_TO_DOUBLE: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_DOUBLE_ELEMENTS : FAST_DOUBLE_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS: DCHECK(map->has_fixed_typed_array_elements()); // Fall through case STORE_NO_TRANSITION_HANDLE_COW: case STANDARD_STORE: case STORE_AND_GROW_NO_TRANSITION: return map; } UNREACHABLE(); return MaybeHandle().ToHandleChecked(); } bool IsOutOfBoundsAccess(Handle receiver, uint32_t index) { uint32_t length = 0; if (receiver->IsJSArray()) { JSArray::cast(*receiver)->length()->ToArrayLength(&length); } else { length = static_cast(receiver->elements()->length()); } return index >= length; } static KeyedAccessStoreMode GetStoreMode(Handle receiver, uint32_t index, Handle value) { bool oob_access = IsOutOfBoundsAccess(receiver, index); // Don't consider this a growing store if the store would send the receiver to // dictionary mode. bool allow_growth = receiver->IsJSArray() && oob_access && !receiver->WouldConvertToSlowElements(index); if (allow_growth) { // Handle growing array in stub if necessary. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_DOUBLE; } if (value->IsHeapObject()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } return STORE_AND_GROW_NO_TRANSITION; } else { // Handle only in-bounds elements accesses. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_TRANSITION_TO_DOUBLE; } else if (value->IsHeapObject()) { return STORE_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_TRANSITION_TO_OBJECT; } } if (!FLAG_trace_external_array_abuse && receiver->map()->has_fixed_typed_array_elements() && oob_access) { return STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS; } Heap* heap = receiver->GetHeap(); if (receiver->elements()->map() == heap->fixed_cow_array_map()) { return STORE_NO_TRANSITION_HANDLE_COW; } else { return STANDARD_STORE; } } } MaybeHandle KeyedStoreIC::Store(Handle object, Handle key, Handle value) { // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); return result; } // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); Handle store_handle; uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION( isolate(), store_handle, StoreIC::Store(object, Handle::cast(key), value, JSReceiver::MAY_BE_STORE_FROM_KEYED), Object); if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unhandled internalized string key"); TRACE_IC("StoreIC", key); } return store_handle; } bool use_ic = FLAG_use_ic && !object->IsStringWrapper() && !object->IsAccessCheckNeeded() && !object->IsJSGlobalProxy(); if (use_ic && !object->IsSmi()) { // Don't use ICs for maps of the objects in Array's prototype chain. We // expect to be able to trap element sets to objects with those maps in // the runtime to enable optimization of element hole access. Handle heap_object = Handle::cast(object); if (heap_object->map()->IsMapInArrayPrototypeChain()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "map in array prototype"); use_ic = false; } } Handle old_receiver_map; bool sloppy_arguments_elements = false; bool key_is_valid_index = false; KeyedAccessStoreMode store_mode = STANDARD_STORE; if (use_ic && object->IsJSObject()) { Handle receiver = Handle::cast(object); old_receiver_map = handle(receiver->map(), isolate()); sloppy_arguments_elements = !is_sloppy(language_mode()) && receiver->elements()->map() == isolate()->heap()->sloppy_arguments_elements_map(); if (!sloppy_arguments_elements) { key_is_valid_index = key->IsSmi() && Smi::cast(*key)->value() >= 0; if (key_is_valid_index) { uint32_t index = static_cast(Smi::cast(*key)->value()); store_mode = GetStoreMode(receiver, index, value); } } } DCHECK(store_handle.is_null()); ASSIGN_RETURN_ON_EXCEPTION(isolate(), store_handle, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); if (use_ic) { if (!old_receiver_map.is_null()) { if (sloppy_arguments_elements) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "arguments receiver"); } else if (key_is_valid_index) { // We should go generic if receiver isn't a dictionary, but our // prototype chain does have dictionary elements. This ensures that // other non-dictionary receivers in the polymorphic case benefit // from fast path keyed stores. if (!old_receiver_map->DictionaryElementsInPrototypeChainOnly()) { UpdateStoreElement(old_receiver_map, store_mode); } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "dictionary or proxy prototype"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-smi-like key"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-JSObject receiver"); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "set generic"); } TRACE_IC("StoreIC", key); return store_handle; } void CallIC::HandleMiss(Handle function) { Handle name = isolate()->factory()->empty_string(); CallICNexus* nexus = casted_nexus(); Object* feedback = nexus->GetFeedback(); // Hand-coded MISS handling is easier if CallIC slots don't contain smis. DCHECK(!feedback->IsSmi()); if (feedback->IsWeakCell() || !function->IsJSFunction() || feedback->IsAllocationSite()) { // We are going generic. nexus->ConfigureMegamorphic(); } else { DCHECK(feedback == *TypeFeedbackVector::UninitializedSentinel(isolate())); Handle js_function = Handle::cast(function); Handle array_function = Handle(isolate()->native_context()->array_function()); if (array_function.is_identical_to(js_function)) { // Alter the slot. nexus->ConfigureMonomorphicArray(); } else if (js_function->context()->native_context() != *isolate()->native_context()) { // Don't collect cross-native context feedback for the CallIC. // TODO(bmeurer): We should collect the SharedFunctionInfo as // feedback in this case instead. nexus->ConfigureMegamorphic(); } else { nexus->ConfigureMonomorphic(js_function); } } if (function->IsJSFunction()) { Handle
ic; if (number_of_valid_maps == 1) { ConfigureVectorState(name, receiver_map(), code); } else { if (handler_to_overwrite >= 0) { handlers.Set(handler_to_overwrite, code); if (!map.is_identical_to(maps.at(handler_to_overwrite))) { maps.Set(handler_to_overwrite, map); } } else { maps.Add(map); handlers.Add(code); } ConfigureVectorState(name, &maps, &handlers); } return true; } void IC::UpdateMonomorphicIC(Handle handler, Handle name) { DCHECK(handler->is_handler()); ConfigureVectorState(name, receiver_map(), handler); } void IC::CopyICToMegamorphicCache(Handle name) { MapHandleList maps; CodeHandleList handlers; TargetMaps(&maps); if (!nexus()->FindHandlers(&handlers, maps.length())) return; for (int i = 0; i < maps.length(); i++) { UpdateMegamorphicCache(*maps.at(i), *name, *handlers.at(i)); } } bool IC::IsTransitionOfMonomorphicTarget(Map* source_map, Map* target_map) { if (source_map == NULL) return true; if (target_map == NULL) return false; ElementsKind target_elements_kind = target_map->elements_kind(); bool more_general_transition = IsMoreGeneralElementsKindTransition( source_map->elements_kind(), target_elements_kind); Map* transitioned_map = nullptr; if (more_general_transition) { MapHandleList map_list; map_list.Add(handle(target_map)); transitioned_map = source_map->FindElementsKindTransitionedMap(&map_list); } return transitioned_map == target_map; } void IC::PatchCache(Handle name, Handle code) { switch (state()) { case UNINITIALIZED: case PREMONOMORPHIC: UpdateMonomorphicIC(code, name); break; case RECOMPUTE_HANDLER: case MONOMORPHIC: if (kind() == Code::LOAD_GLOBAL_IC) { UpdateMonomorphicIC(code, name); break; } // Fall through. case POLYMORPHIC: if (!is_keyed() || state() == RECOMPUTE_HANDLER) { if (UpdatePolymorphicIC(name, code)) break; // For keyed stubs, we can't know whether old handlers were for the // same key. CopyICToMegamorphicCache(name); } DCHECK(UseVector()); ConfigureVectorState(MEGAMORPHIC, name); // Fall through. case MEGAMORPHIC: UpdateMegamorphicCache(*receiver_map(), *name, *code); // Indicate that we've handled this case. DCHECK(UseVector()); vector_set_ = true; break; case GENERIC: UNREACHABLE(); break; } } Handle LoadIC::initialize_stub_in_optimized_code(Isolate* isolate) { if (FLAG_tf_load_ic_stub) { return LoadICTFStub(isolate).GetCode(); } return LoadICStub(isolate).GetCode(); } Handle LoadGlobalIC::initialize_stub_in_optimized_code( Isolate* isolate, ExtraICState extra_state) { return LoadGlobalICStub(isolate, LoadGlobalICState(extra_state)).GetCode(); } Handle KeyedLoadIC::initialize_stub_in_optimized_code( Isolate* isolate, ExtraICState extra_state) { // TODO(ishell): remove extra_ic_state return KeyedLoadICStub(isolate).GetCode(); } Handle KeyedStoreIC::initialize_stub_in_optimized_code( Isolate* isolate, LanguageMode language_mode) { StoreICState state = StoreICState(language_mode); return VectorKeyedStoreICStub(isolate, state).GetCode(); } Handle KeyedStoreIC::ChooseMegamorphicStub(Isolate* isolate, ExtraICState extra_state) { LanguageMode mode = StoreICState::GetLanguageMode(extra_state); return is_strict(mode) ? isolate->builtins()->KeyedStoreIC_Megamorphic_Strict() : isolate->builtins()->KeyedStoreIC_Megamorphic(); } Handle LoadIC::SimpleFieldLoad(FieldIndex index) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadFieldStub); LoadFieldStub stub(isolate(), index); return stub.GetCode(); } bool IsCompatibleReceiver(LookupIterator* lookup, Handle receiver_map) { DCHECK(lookup->state() == LookupIterator::ACCESSOR); Isolate* isolate = lookup->isolate(); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (info->getter() != NULL && !AccessorInfo::IsCompatibleReceiverMap(isolate, info, receiver_map)) { return false; } } else if (accessors->IsAccessorPair()) { Handle getter(Handle::cast(accessors)->getter(), isolate); if (!getter->IsJSFunction() && !getter->IsFunctionTemplateInfo()) { return false; } Handle holder = lookup->GetHolder(); Handle receiver = lookup->GetReceiver(); if (holder->HasFastProperties()) { if (getter->IsJSFunction()) { Handle function = Handle::cast(getter); if (!receiver->IsJSObject() && !function->shared()->IsBuiltin() && is_sloppy(function->shared()->language_mode())) { // Calling sloppy non-builtins with a value as the receiver // requires boxing. return false; } } CallOptimization call_optimization(getter); if (call_optimization.is_simple_api_call() && !call_optimization.IsCompatibleReceiverMap(receiver_map, holder)) { return false; } } } return true; } void LoadIC::UpdateCaches(LookupIterator* lookup) { if (state() == UNINITIALIZED && kind() != Code::LOAD_GLOBAL_IC) { // This is the first time we execute this inline cache. Set the target to // the pre monomorphic stub to delay setting the monomorphic state. ConfigureVectorState(PREMONOMORPHIC, Handle()); TRACE_IC("LoadIC", lookup->name()); return; } Handle code; if (lookup->state() == LookupIterator::JSPROXY || lookup->state() == LookupIterator::ACCESS_CHECK) { code = slow_stub(); } else if (!lookup->IsFound()) { if (kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC) { code = NamedLoadHandlerCompiler::ComputeLoadNonexistent(lookup->name(), receiver_map()); // TODO(jkummerow/verwaest): Introduce a builtin that handles this case. if (code.is_null()) code = slow_stub(); } else { code = slow_stub(); } } else { if (kind() == Code::LOAD_GLOBAL_IC && lookup->state() == LookupIterator::DATA && lookup->GetHolder()->IsJSGlobalObject()) { #if DEBUG Handle holder = lookup->GetHolder(); Handle receiver = lookup->GetReceiver(); DCHECK_EQ(*receiver, *holder); #endif // Now update the cell in the feedback vector. LoadGlobalICNexus* nexus = casted_nexus(); nexus->ConfigurePropertyCellMode(lookup->GetPropertyCell()); TRACE_IC("LoadGlobalIC", lookup->name()); return; } else if (lookup->state() == LookupIterator::ACCESSOR) { if (!IsCompatibleReceiver(lookup, receiver_map())) { TRACE_GENERIC_IC(isolate(), "LoadIC", "incompatible receiver type"); code = slow_stub(); } } else if (lookup->state() == LookupIterator::INTERCEPTOR) { if (kind() == Code::LOAD_GLOBAL_IC) { // The interceptor handler requires name but it is not passed explicitly // to LoadGlobalIC and the LoadGlobalIC dispatcher also does not load // it so we will just use slow stub. code = slow_stub(); } else { // Perform a lookup behind the interceptor. Copy the LookupIterator // since the original iterator will be used to fetch the value. LookupIterator it = *lookup; it.Next(); LookupForRead(&it); if (it.state() == LookupIterator::ACCESSOR && !IsCompatibleReceiver(&it, receiver_map())) { TRACE_GENERIC_IC(isolate(), "LoadIC", "incompatible receiver type"); code = slow_stub(); } } } if (code.is_null()) code = ComputeHandler(lookup); } PatchCache(lookup->name(), code); TRACE_IC("LoadIC", lookup->name()); } void IC::UpdateMegamorphicCache(Map* map, Name* name, Code* code) { isolate()->stub_cache()->Set(name, map, code); } Handle IC::ComputeHandler(LookupIterator* lookup, Handle value) { // Try to find a globally shared handler stub. Handle code = GetMapIndependentHandler(lookup); if (!code.is_null()) return code; // Otherwise check the map's handler cache for a map-specific handler, and // compile one if the cache comes up empty. bool receiver_is_holder = lookup->GetReceiver().is_identical_to(lookup->GetHolder()); CacheHolderFlag flag; Handle stub_holder_map; if (kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC || kind() == Code::KEYED_LOAD_IC) { stub_holder_map = IC::GetHandlerCacheHolder( receiver_map(), receiver_is_holder, isolate(), &flag); } else { DCHECK(kind() == Code::STORE_IC || kind() == Code::KEYED_STORE_IC); // Store handlers cannot be cached on prototypes. flag = kCacheOnReceiver; stub_holder_map = receiver_map(); } code = PropertyHandlerCompiler::Find(lookup->name(), stub_holder_map, kind(), flag); // Use the cached value if it exists, and if it is different from the // handler that just missed. if (!code.is_null()) { Handle handler; if (maybe_handler_.ToHandle(&handler)) { if (!handler.is_identical_to(code)) { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } else { // maybe_handler_ is only populated for MONOMORPHIC and POLYMORPHIC ICs. // In MEGAMORPHIC case, check if the handler in the megamorphic stub // cache (which just missed) is different from the cached handler. if (state() == MEGAMORPHIC && lookup->GetReceiver()->IsHeapObject()) { Map* map = Handle::cast(lookup->GetReceiver())->map(); Code* megamorphic_cached_code = isolate()->stub_cache()->Get(*lookup->name(), map, code->flags()); if (megamorphic_cached_code != *code) { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } else { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } } code = CompileHandler(lookup, value, flag); DCHECK(code->is_handler()); DCHECK(Code::ExtractCacheHolderFromFlags(code->flags()) == flag); Map::UpdateCodeCache(stub_holder_map, lookup->name(), code); return code; } Handle LoadIC::GetMapIndependentHandler(LookupIterator* lookup) { Handle receiver = lookup->GetReceiver(); if (receiver->IsString() && Name::Equals(isolate()->factory()->length_string(), lookup->name())) { FieldIndex index = FieldIndex::ForInObjectOffset(String::kLengthOffset); return SimpleFieldLoad(index); } if (receiver->IsStringWrapper() && Name::Equals(isolate()->factory()->length_string(), lookup->name())) { TRACE_HANDLER_STATS(isolate(), LoadIC_StringLengthStub); StringLengthStub string_length_stub(isolate()); return string_length_stub.GetCode(); } // Use specialized code for getting prototype of functions. if (receiver->IsJSFunction() && Name::Equals(isolate()->factory()->prototype_string(), lookup->name()) && receiver->IsConstructor() && !Handle::cast(receiver) ->map() ->has_non_instance_prototype()) { Handle stub; TRACE_HANDLER_STATS(isolate(), LoadIC_FunctionPrototypeStub); FunctionPrototypeStub function_prototype_stub(isolate()); return function_prototype_stub.GetCode(); } Handle map = receiver_map(); Handle holder = lookup->GetHolder(); bool receiver_is_holder = receiver.is_identical_to(holder); switch (lookup->state()) { case LookupIterator::INTERCEPTOR: break; // Custom-compiled handler. case LookupIterator::ACCESSOR: { // Use simple field loads for some well-known callback properties. // The method will only return true for absolute truths based on the // receiver maps. int object_offset; if (Accessors::IsJSObjectFieldAccessor(map, lookup->name(), &object_offset)) { FieldIndex index = FieldIndex::ForInObjectOffset(object_offset, *map); return SimpleFieldLoad(index); } if (IsCompatibleReceiver(lookup, map)) { Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorPair()) { if (!holder->HasFastProperties()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } // When debugging we need to go the slow path to flood the accessor. if (GetSharedFunctionInfo()->HasDebugInfo()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->getter()) == nullptr) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } // Ruled out by IsCompatibleReceiver() above. DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, map)); if (!holder->HasFastProperties()) return slow_stub(); if (receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadApiGetterStub); int index = lookup->GetAccessorIndex(); LoadApiGetterStub stub(isolate(), true, index); return stub.GetCode(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } } TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (kind() != Code::LOAD_IC && kind() != Code::LOAD_GLOBAL_IC) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } // There is only one shared stub for loading normalized // properties. It does not traverse the prototype chain, so the // property must be found in the object for the stub to be // applicable. if (!receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } TRACE_HANDLER_STATS(isolate(), LoadIC_LoadNormal); return isolate()->builtins()->LoadIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { FieldIndex field = lookup->GetFieldIndex(); if (receiver_is_holder) { return SimpleFieldLoad(field); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); if (receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadConstantStub); LoadConstantStub stub(isolate(), lookup->GetConstantIndex()); return stub.GetCode(); } break; // Custom-compiled handler. } case LookupIterator::INTEGER_INDEXED_EXOTIC: TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); } return Handle::null(); } Handle LoadIC::CompileHandler(LookupIterator* lookup, Handle unused, CacheHolderFlag cache_holder) { Handle holder = lookup->GetHolder(); #ifdef DEBUG // Only used by DCHECKs below. Handle receiver = lookup->GetReceiver(); bool receiver_is_holder = receiver.is_identical_to(holder); #endif // Non-map-specific handler stubs have already been selected. DCHECK(!receiver->IsString() || !Name::Equals(isolate()->factory()->length_string(), lookup->name())); DCHECK(!receiver->IsStringWrapper() || !Name::Equals(isolate()->factory()->length_string(), lookup->name())); DCHECK(!( receiver->IsJSFunction() && Name::Equals(isolate()->factory()->prototype_string(), lookup->name()) && receiver->IsConstructor() && !Handle::cast(receiver) ->map() ->has_non_instance_prototype())); Handle map = receiver_map(); switch (lookup->state()) { case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->getter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadInterceptor); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); // Perform a lookup behind the interceptor. Copy the LookupIterator since // the original iterator will be used to fetch the value. LookupIterator it = *lookup; it.Next(); LookupForRead(&it); return compiler.CompileLoadInterceptor(&it); } case LookupIterator::ACCESSOR: { #ifdef DEBUG int object_offset; DCHECK(!Accessors::IsJSObjectFieldAccessor(map, lookup->name(), &object_offset)); #endif DCHECK(IsCompatibleReceiver(lookup, map)); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorPair()) { DCHECK(holder->HasFastProperties()); DCHECK(!GetSharedFunctionInfo()->HasDebugInfo()); Handle getter(Handle::cast(accessors)->getter(), isolate()); CallOptimization call_optimization(getter); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); if (call_optimization.is_simple_api_call()) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadCallback); int index = lookup->GetAccessorIndex(); Handle code = compiler.CompileLoadCallback( lookup->name(), call_optimization, index); return code; } TRACE_HANDLER_STATS(isolate(), LoadIC_LoadViaGetter); int expected_arguments = Handle::cast(getter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileLoadViaGetter( lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } else { DCHECK(accessors->IsAccessorInfo()); Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->getter()) != nullptr); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, map)); DCHECK(holder->HasFastProperties()); DCHECK(!receiver_is_holder); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadCallback); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle code = compiler.CompileLoadCallback(lookup->name(), info); return code; } UNREACHABLE(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC); DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadGlobal); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle cell = lookup->GetPropertyCell(); Handle code = compiler.CompileLoadGlobal( cell, lookup->name(), lookup->IsConfigurable()); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { FieldIndex field = lookup->GetFieldIndex(); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadField); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadField(lookup->name(), field); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadConstant); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadConstant(lookup->name(), lookup->GetConstantIndex()); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } static Handle TryConvertKey(Handle key, Isolate* isolate) { // This helper implements a few common fast cases for converting // non-smi keys of keyed loads/stores to a smi or a string. if (key->IsHeapNumber()) { double value = Handle::cast(key)->value(); if (std::isnan(value)) { key = isolate->factory()->nan_string(); } else { int int_value = FastD2I(value); if (value == int_value && Smi::IsValid(int_value)) { key = handle(Smi::FromInt(int_value), isolate); } } } else if (key->IsUndefined(isolate)) { key = isolate->factory()->undefined_string(); } return key; } void KeyedLoadIC::UpdateLoadElement(Handle receiver) { Handle receiver_map(receiver->map(), isolate()); DCHECK(receiver_map->instance_type() != JS_VALUE_TYPE && receiver_map->instance_type() != JS_PROXY_TYPE); // Checked by caller. MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { Handle map = target_receiver_maps.at(i); if (map.is_null()) continue; if (map->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSValue"); return; } if (map->instance_type() == JS_PROXY_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSProxy"); return; } } // The first time a receiver is seen that is a transitioned version of the // previous monomorphic receiver type, assume the new ElementsKind is the // monomorphic type. This benefits global arrays that only transition // once, and all call sites accessing them are faster if they remain // monomorphic. If this optimistic assumption is not true, the IC will // miss again and it will become polymorphic and support both the // untransitioned and transitioned maps. if (state() == MONOMORPHIC && !receiver->IsString() && IsMoreGeneralElementsKindTransition( target_receiver_maps.at(0)->elements_kind(), Handle::cast(receiver)->GetElementsKind())) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } DCHECK(state() != GENERIC); // Determine the list of receiver maps that this call site has seen, // adding the map that was just encountered. if (!AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map)) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the generic stub. TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the generic // version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "max polymorph exceeded"); return; } CodeHandleList handlers(target_receiver_maps.length()); TRACE_HANDLER_STATS(isolate(), KeyedLoadIC_PolymorphicElement); ElementHandlerCompiler compiler(isolate()); compiler.CompileElementHandlers(&target_receiver_maps, &handlers); ConfigureVectorState(Handle(), &target_receiver_maps, &handlers); } MaybeHandle KeyedLoadIC::Load(Handle object, Handle key) { if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } Handle load_handle; // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION(isolate(), load_handle, LoadIC::Load(object, Handle::cast(key)), Object); } else if (FLAG_use_ic && !object->IsAccessCheckNeeded() && !object->IsJSValue()) { if (object->IsJSObject() || (object->IsString() && key->IsNumber())) { Handle receiver = Handle::cast(object); if (object->IsString() || key->IsSmi()) UpdateLoadElement(receiver); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "set generic"); } TRACE_IC("LoadIC", key); if (!load_handle.is_null()) return load_handle; Handle result; ASSIGN_RETURN_ON_EXCEPTION(isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } bool StoreIC::LookupForWrite(LookupIterator* it, Handle value, JSReceiver::StoreFromKeyed store_mode) { // Disable ICs for non-JSObjects for now. Handle object = it->GetReceiver(); if (!object->IsJSObject()) return false; Handle receiver = Handle::cast(object); DCHECK(!receiver->map()->is_deprecated()); for (; it->IsFound(); it->Next()) { switch (it->state()) { case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); case LookupIterator::JSPROXY: return false; case LookupIterator::INTERCEPTOR: { Handle holder = it->GetHolder(); InterceptorInfo* info = holder->GetNamedInterceptor(); if (it->HolderIsReceiverOrHiddenPrototype()) { return !info->non_masking() && receiver.is_identical_to(holder) && !info->setter()->IsUndefined(it->isolate()); } else if (!info->getter()->IsUndefined(it->isolate()) || !info->query()->IsUndefined(it->isolate())) { return false; } break; } case LookupIterator::ACCESS_CHECK: if (it->GetHolder()->IsAccessCheckNeeded()) return false; break; case LookupIterator::ACCESSOR: return !it->IsReadOnly(); case LookupIterator::INTEGER_INDEXED_EXOTIC: return false; case LookupIterator::DATA: { if (it->IsReadOnly()) return false; Handle holder = it->GetHolder(); if (receiver.is_identical_to(holder)) { it->PrepareForDataProperty(value); // The previous receiver map might just have been deprecated, // so reload it. update_receiver_map(receiver); return true; } // Receiver != holder. if (receiver->IsJSGlobalProxy()) { PrototypeIterator iter(it->isolate(), receiver); return it->GetHolder().is_identical_to( PrototypeIterator::GetCurrent(iter)); } if (it->HolderIsReceiverOrHiddenPrototype()) return false; if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } } } receiver = it->GetStoreTarget(); if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } MaybeHandle StoreIC::Store(Handle object, Handle name, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (object->IsJSGlobalObject() && name->IsString()) { // Look up in script context table. Handle str_name = Handle::cast(name); Handle global = Handle::cast(object); Handle script_contexts( global->native_context()->script_context_table()); ScriptContextTable::LookupResult lookup_result; if (ScriptContextTable::Lookup(script_contexts, str_name, &lookup_result)) { Handle script_context = ScriptContextTable::GetContext( script_contexts, lookup_result.context_index); if (lookup_result.mode == CONST) { return TypeError(MessageTemplate::kConstAssign, object, name); } Handle previous_value = FixedArray::get(*script_context, lookup_result.slot_index, isolate()); if (previous_value->IsTheHole(isolate())) { // Do not install stubs and stay pre-monomorphic for // uninitialized accesses. return ReferenceError(name); } if (FLAG_use_ic && StoreScriptContextFieldStub::Accepted(&lookup_result)) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreScriptContextFieldStub); StoreScriptContextFieldStub stub(isolate(), &lookup_result); PatchCache(name, stub.GetCode()); } script_context->set(lookup_result.slot_index, *value); return value; } } // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object) || object->IsJSProxy()) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Object::SetProperty(object, name, value, language_mode()), Object); return result; } // If the object is undefined or null it's illegal to try to set any // properties on it; throw a TypeError in that case. if (object->IsUndefined(isolate()) || object->IsNull(isolate())) { return TypeError(MessageTemplate::kNonObjectPropertyStore, object, name); } if (state() != UNINITIALIZED) { JSObject::MakePrototypesFast(object, kStartAtPrototype, isolate()); } LookupIterator it(object, name); if (FLAG_use_ic) UpdateCaches(&it, value, store_mode); MAYBE_RETURN_NULL( Object::SetProperty(&it, value, language_mode(), store_mode)); return value; } Handle CallIC::initialize_stub_in_optimized_code( Isolate* isolate, int argc, ConvertReceiverMode mode, TailCallMode tail_call_mode) { CallICStub stub(isolate, CallICState(argc, mode, tail_call_mode)); Handle code = stub.GetCode(); return code; } Handle StoreIC::initialize_stub_in_optimized_code( Isolate* isolate, LanguageMode language_mode) { VectorStoreICStub stub(isolate, StoreICState(language_mode)); return stub.GetCode(); } void StoreIC::UpdateCaches(LookupIterator* lookup, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (state() == UNINITIALIZED) { // This is the first time we execute this inline cache. Set the target to // the pre monomorphic stub to delay setting the monomorphic state. ConfigureVectorState(PREMONOMORPHIC, Handle()); TRACE_IC("StoreIC", lookup->name()); return; } bool use_ic = LookupForWrite(lookup, value, store_mode); if (!use_ic) { TRACE_GENERIC_IC(isolate(), "StoreIC", "LookupForWrite said 'false'"); } Handle code = use_ic ? ComputeHandler(lookup, value) : slow_stub(); PatchCache(lookup->name(), code); TRACE_IC("StoreIC", lookup->name()); } static Handle PropertyCellStoreHandler( Isolate* isolate, Handle receiver, Handle holder, Handle name, Handle cell, PropertyCellType type) { auto constant_type = Nothing(); if (type == PropertyCellType::kConstantType) { constant_type = Just(cell->GetConstantType()); } StoreGlobalStub stub(isolate, type, constant_type, receiver->IsJSGlobalProxy()); auto code = stub.GetCodeCopyFromTemplate(holder, cell); // TODO(verwaest): Move caching of these NORMAL stubs outside as well. HeapObject::UpdateMapCodeCache(receiver, name, code); return code; } Handle StoreIC::GetMapIndependentHandler(LookupIterator* lookup) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { break; // Custom-compiled handler. } // Currently not handled by CompileStoreTransition. if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "transition from slow"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } DCHECK(lookup->IsCacheableTransition()); break; // Custom-compiled handler. } case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->setter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreInterceptorStub); StoreInterceptorStub stub(isolate()); return stub.GetCode(); } case LookupIterator::ACCESSOR: { if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "accessor on slow map"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->setter()) == nullptr) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter == nullptr"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (AccessorInfo::cast(*accessors)->is_special_data_property() && !lookup->HolderIsReceiverOrHiddenPrototype()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "special data property in prototype chain"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (!AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())) { TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver type"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorPair()) { Handle setter(Handle::cast(accessors)->setter(), isolate()); if (!setter->IsJSFunction() && !setter->IsFunctionTemplateInfo()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter not a function"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } CallOptimization call_optimization(setter); if (call_optimization.is_simple_api_call()) { if (call_optimization.IsCompatibleReceiver(receiver, holder)) { break; // Custom-compiled handler. } TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreNormal); DCHECK(holder.is_identical_to(receiver)); return isolate()->builtins()->StoreIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } if (use_stub) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreFieldStub); StoreFieldStub stub(isolate(), lookup->GetFieldIndex(), lookup->representation()); return stub.GetCode(); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); TRACE_GENERIC_IC(isolate(), "StoreIC", "constant property"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } return Handle::null(); } Handle StoreIC::CompileHandler(LookupIterator* lookup, Handle value, CacheHolderFlag cache_holder) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { // TODO(dcarney): this currently just deopts. Use the transition cell. TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobalTransition); auto cell = isolate()->factory()->NewPropertyCell(); cell->set_value(*value); auto code = PropertyCellStoreHandler( isolate(), store_target, Handle::cast(store_target), lookup->name(), cell, PropertyCellType::kConstant); cell->set_value(isolate()->heap()->the_hole_value()); return code; } Handle transition = lookup->transition_map(); // Currently not handled by CompileStoreTransition. DCHECK(holder->HasFastProperties()); DCHECK(lookup->IsCacheableTransition()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreTransition); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreTransition(transition, lookup->name()); } case LookupIterator::INTERCEPTOR: UNREACHABLE(); case LookupIterator::ACCESSOR: { DCHECK(holder->HasFastProperties()); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->setter()) != 0); DCHECK(!AccessorInfo::cast(*accessors)->is_special_data_property() || lookup->HolderIsReceiverOrHiddenPrototype()); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), info, language_mode()); return code; } else { DCHECK(accessors->IsAccessorPair()); Handle setter(Handle::cast(accessors)->setter(), isolate()); DCHECK(setter->IsJSFunction() || setter->IsFunctionTemplateInfo()); CallOptimization call_optimization(setter); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); if (call_optimization.is_simple_api_call()) { DCHECK(call_optimization.IsCompatibleReceiver(receiver, holder)); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), call_optimization, lookup->GetAccessorIndex()); return code; } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreViaSetter); int expected_arguments = JSFunction::cast(*setter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileStoreViaSetter(receiver, lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobal); DCHECK(holder.is_identical_to(receiver) || receiver->map()->prototype() == *holder); auto cell = lookup->GetPropertyCell(); auto updated_type = PropertyCell::UpdatedType(cell, value, lookup->property_details()); auto code = PropertyCellStoreHandler( isolate(), receiver, Handle::cast(holder), lookup->name(), cell, updated_type); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { #ifdef DEBUG bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } DCHECK(!use_stub); #endif TRACE_HANDLER_STATS(isolate(), StoreIC_StoreField); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreField(lookup); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); UNREACHABLE(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } void KeyedStoreIC::UpdateStoreElement(Handle receiver_map, KeyedAccessStoreMode store_mode) { MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle monomorphic_map = ComputeTransitionedMap(receiver_map, store_mode); store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(monomorphic_map, store_mode); return ConfigureVectorState(Handle(), monomorphic_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { if (!target_receiver_maps.at(i).is_null() && target_receiver_maps.at(i)->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "JSValue"); return; } } // There are several special cases where an IC that is MONOMORPHIC can still // transition to a different GetNonTransitioningStoreMode IC that handles a // superset of the original IC. Handle those here if the receiver map hasn't // changed or it has transitioned to a more general kind. KeyedAccessStoreMode old_store_mode = GetKeyedAccessStoreMode(); Handle previous_receiver_map = target_receiver_maps.at(0); if (state() == MONOMORPHIC) { Handle transitioned_receiver_map = receiver_map; if (IsTransitionStoreMode(store_mode)) { transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); } if ((receiver_map.is_identical_to(previous_receiver_map) && IsTransitionStoreMode(store_mode)) || IsTransitionOfMonomorphicTarget(*previous_receiver_map, *transitioned_receiver_map)) { // If the "old" and "new" maps are in the same elements map family, or // if they at least come from the same origin for a transitioning store, // stay MONOMORPHIC and use the map for the most generic ElementsKind. store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler( transitioned_receiver_map, store_mode); ConfigureVectorState(Handle(), transitioned_receiver_map, handler); return; } if (receiver_map.is_identical_to(previous_receiver_map) && old_store_mode == STANDARD_STORE && (store_mode == STORE_AND_GROW_NO_TRANSITION || store_mode == STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS || store_mode == STORE_NO_TRANSITION_HANDLE_COW)) { // A "normal" IC that handles stores can switch to a version that can // grow at the end of the array, handle OOB accesses or copy COW arrays // and still stay MONOMORPHIC. Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(receiver_map, store_mode); return ConfigureVectorState(Handle(), receiver_map, handler); } } DCHECK(state() != GENERIC); bool map_added = AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map); if (IsTransitionStoreMode(store_mode)) { Handle transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); map_added |= AddOneReceiverMapIfMissing(&target_receiver_maps, transitioned_receiver_map); } if (!map_added) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the megamorphic stub which can handle everything. TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the // megamorphic version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) return; // Make sure all polymorphic handlers have the same store mode, otherwise the // megamorphic stub must be used. store_mode = GetNonTransitioningStoreMode(store_mode); if (old_store_mode != STANDARD_STORE) { if (store_mode == STANDARD_STORE) { store_mode = old_store_mode; } else if (store_mode != old_store_mode) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "store mode mismatch"); return; } } // If the store mode isn't the standard mode, make sure that all polymorphic // receivers are either external arrays, or all "normal" arrays. Otherwise, // use the megamorphic stub. if (store_mode != STANDARD_STORE) { int external_arrays = 0; for (int i = 0; i < target_receiver_maps.length(); ++i) { if (target_receiver_maps[i]->has_fixed_typed_array_elements()) { external_arrays++; } } if (external_arrays != 0 && external_arrays != target_receiver_maps.length()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unsupported combination of external and normal arrays"); return; } } TRACE_HANDLER_STATS(isolate(), KeyedStoreIC_Polymorphic); MapHandleList transitioned_maps(target_receiver_maps.length()); CodeHandleList handlers(target_receiver_maps.length()); PropertyICCompiler::ComputeKeyedStorePolymorphicHandlers( &target_receiver_maps, &transitioned_maps, &handlers, store_mode); ConfigureVectorState(&target_receiver_maps, &transitioned_maps, &handlers); } Handle KeyedStoreIC::ComputeTransitionedMap( Handle map, KeyedAccessStoreMode store_mode) { switch (store_mode) { case STORE_TRANSITION_TO_OBJECT: case STORE_AND_GROW_TRANSITION_TO_OBJECT: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_ELEMENTS : FAST_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_TRANSITION_TO_DOUBLE: case STORE_AND_GROW_TRANSITION_TO_DOUBLE: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_DOUBLE_ELEMENTS : FAST_DOUBLE_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS: DCHECK(map->has_fixed_typed_array_elements()); // Fall through case STORE_NO_TRANSITION_HANDLE_COW: case STANDARD_STORE: case STORE_AND_GROW_NO_TRANSITION: return map; } UNREACHABLE(); return MaybeHandle().ToHandleChecked(); } bool IsOutOfBoundsAccess(Handle receiver, uint32_t index) { uint32_t length = 0; if (receiver->IsJSArray()) { JSArray::cast(*receiver)->length()->ToArrayLength(&length); } else { length = static_cast(receiver->elements()->length()); } return index >= length; } static KeyedAccessStoreMode GetStoreMode(Handle receiver, uint32_t index, Handle value) { bool oob_access = IsOutOfBoundsAccess(receiver, index); // Don't consider this a growing store if the store would send the receiver to // dictionary mode. bool allow_growth = receiver->IsJSArray() && oob_access && !receiver->WouldConvertToSlowElements(index); if (allow_growth) { // Handle growing array in stub if necessary. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_DOUBLE; } if (value->IsHeapObject()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } return STORE_AND_GROW_NO_TRANSITION; } else { // Handle only in-bounds elements accesses. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_TRANSITION_TO_DOUBLE; } else if (value->IsHeapObject()) { return STORE_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_TRANSITION_TO_OBJECT; } } if (!FLAG_trace_external_array_abuse && receiver->map()->has_fixed_typed_array_elements() && oob_access) { return STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS; } Heap* heap = receiver->GetHeap(); if (receiver->elements()->map() == heap->fixed_cow_array_map()) { return STORE_NO_TRANSITION_HANDLE_COW; } else { return STANDARD_STORE; } } } MaybeHandle KeyedStoreIC::Store(Handle object, Handle key, Handle value) { // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); return result; } // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); Handle store_handle; uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION( isolate(), store_handle, StoreIC::Store(object, Handle::cast(key), value, JSReceiver::MAY_BE_STORE_FROM_KEYED), Object); if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unhandled internalized string key"); TRACE_IC("StoreIC", key); } return store_handle; } bool use_ic = FLAG_use_ic && !object->IsStringWrapper() && !object->IsAccessCheckNeeded() && !object->IsJSGlobalProxy(); if (use_ic && !object->IsSmi()) { // Don't use ICs for maps of the objects in Array's prototype chain. We // expect to be able to trap element sets to objects with those maps in // the runtime to enable optimization of element hole access. Handle heap_object = Handle::cast(object); if (heap_object->map()->IsMapInArrayPrototypeChain()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "map in array prototype"); use_ic = false; } } Handle old_receiver_map; bool sloppy_arguments_elements = false; bool key_is_valid_index = false; KeyedAccessStoreMode store_mode = STANDARD_STORE; if (use_ic && object->IsJSObject()) { Handle receiver = Handle::cast(object); old_receiver_map = handle(receiver->map(), isolate()); sloppy_arguments_elements = !is_sloppy(language_mode()) && receiver->elements()->map() == isolate()->heap()->sloppy_arguments_elements_map(); if (!sloppy_arguments_elements) { key_is_valid_index = key->IsSmi() && Smi::cast(*key)->value() >= 0; if (key_is_valid_index) { uint32_t index = static_cast(Smi::cast(*key)->value()); store_mode = GetStoreMode(receiver, index, value); } } } DCHECK(store_handle.is_null()); ASSIGN_RETURN_ON_EXCEPTION(isolate(), store_handle, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); if (use_ic) { if (!old_receiver_map.is_null()) { if (sloppy_arguments_elements) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "arguments receiver"); } else if (key_is_valid_index) { // We should go generic if receiver isn't a dictionary, but our // prototype chain does have dictionary elements. This ensures that // other non-dictionary receivers in the polymorphic case benefit // from fast path keyed stores. if (!old_receiver_map->DictionaryElementsInPrototypeChainOnly()) { UpdateStoreElement(old_receiver_map, store_mode); } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "dictionary or proxy prototype"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-smi-like key"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-JSObject receiver"); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "set generic"); } TRACE_IC("StoreIC", key); return store_handle; } void CallIC::HandleMiss(Handle function) { Handle name = isolate()->factory()->empty_string(); CallICNexus* nexus = casted_nexus(); Object* feedback = nexus->GetFeedback(); // Hand-coded MISS handling is easier if CallIC slots don't contain smis. DCHECK(!feedback->IsSmi()); if (feedback->IsWeakCell() || !function->IsJSFunction() || feedback->IsAllocationSite()) { // We are going generic. nexus->ConfigureMegamorphic(); } else { DCHECK(feedback == *TypeFeedbackVector::UninitializedSentinel(isolate())); Handle js_function = Handle::cast(function); Handle array_function = Handle(isolate()->native_context()->array_function()); if (array_function.is_identical_to(js_function)) { // Alter the slot. nexus->ConfigureMonomorphicArray(); } else if (js_function->context()->native_context() != *isolate()->native_context()) { // Don't collect cross-native context feedback for the CallIC. // TODO(bmeurer): We should collect the SharedFunctionInfo as // feedback in this case instead. nexus->ConfigureMegamorphic(); } else { nexus->ConfigureMonomorphic(js_function); } } if (function->IsJSFunction()) { Handle
handler, Handle name) { DCHECK(handler->is_handler()); ConfigureVectorState(name, receiver_map(), handler); } void IC::CopyICToMegamorphicCache(Handle name) { MapHandleList maps; CodeHandleList handlers; TargetMaps(&maps); if (!nexus()->FindHandlers(&handlers, maps.length())) return; for (int i = 0; i < maps.length(); i++) { UpdateMegamorphicCache(*maps.at(i), *name, *handlers.at(i)); } } bool IC::IsTransitionOfMonomorphicTarget(Map* source_map, Map* target_map) { if (source_map == NULL) return true; if (target_map == NULL) return false; ElementsKind target_elements_kind = target_map->elements_kind(); bool more_general_transition = IsMoreGeneralElementsKindTransition( source_map->elements_kind(), target_elements_kind); Map* transitioned_map = nullptr; if (more_general_transition) { MapHandleList map_list; map_list.Add(handle(target_map)); transitioned_map = source_map->FindElementsKindTransitionedMap(&map_list); } return transitioned_map == target_map; } void IC::PatchCache(Handle name, Handle code) { switch (state()) { case UNINITIALIZED: case PREMONOMORPHIC: UpdateMonomorphicIC(code, name); break; case RECOMPUTE_HANDLER: case MONOMORPHIC: if (kind() == Code::LOAD_GLOBAL_IC) { UpdateMonomorphicIC(code, name); break; } // Fall through. case POLYMORPHIC: if (!is_keyed() || state() == RECOMPUTE_HANDLER) { if (UpdatePolymorphicIC(name, code)) break; // For keyed stubs, we can't know whether old handlers were for the // same key. CopyICToMegamorphicCache(name); } DCHECK(UseVector()); ConfigureVectorState(MEGAMORPHIC, name); // Fall through. case MEGAMORPHIC: UpdateMegamorphicCache(*receiver_map(), *name, *code); // Indicate that we've handled this case. DCHECK(UseVector()); vector_set_ = true; break; case GENERIC: UNREACHABLE(); break; } } Handle LoadIC::initialize_stub_in_optimized_code(Isolate* isolate) { if (FLAG_tf_load_ic_stub) { return LoadICTFStub(isolate).GetCode(); } return LoadICStub(isolate).GetCode(); } Handle LoadGlobalIC::initialize_stub_in_optimized_code( Isolate* isolate, ExtraICState extra_state) { return LoadGlobalICStub(isolate, LoadGlobalICState(extra_state)).GetCode(); } Handle KeyedLoadIC::initialize_stub_in_optimized_code( Isolate* isolate, ExtraICState extra_state) { // TODO(ishell): remove extra_ic_state return KeyedLoadICStub(isolate).GetCode(); } Handle KeyedStoreIC::initialize_stub_in_optimized_code( Isolate* isolate, LanguageMode language_mode) { StoreICState state = StoreICState(language_mode); return VectorKeyedStoreICStub(isolate, state).GetCode(); } Handle KeyedStoreIC::ChooseMegamorphicStub(Isolate* isolate, ExtraICState extra_state) { LanguageMode mode = StoreICState::GetLanguageMode(extra_state); return is_strict(mode) ? isolate->builtins()->KeyedStoreIC_Megamorphic_Strict() : isolate->builtins()->KeyedStoreIC_Megamorphic(); } Handle LoadIC::SimpleFieldLoad(FieldIndex index) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadFieldStub); LoadFieldStub stub(isolate(), index); return stub.GetCode(); } bool IsCompatibleReceiver(LookupIterator* lookup, Handle receiver_map) { DCHECK(lookup->state() == LookupIterator::ACCESSOR); Isolate* isolate = lookup->isolate(); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (info->getter() != NULL && !AccessorInfo::IsCompatibleReceiverMap(isolate, info, receiver_map)) { return false; } } else if (accessors->IsAccessorPair()) { Handle getter(Handle::cast(accessors)->getter(), isolate); if (!getter->IsJSFunction() && !getter->IsFunctionTemplateInfo()) { return false; } Handle holder = lookup->GetHolder(); Handle receiver = lookup->GetReceiver(); if (holder->HasFastProperties()) { if (getter->IsJSFunction()) { Handle function = Handle::cast(getter); if (!receiver->IsJSObject() && !function->shared()->IsBuiltin() && is_sloppy(function->shared()->language_mode())) { // Calling sloppy non-builtins with a value as the receiver // requires boxing. return false; } } CallOptimization call_optimization(getter); if (call_optimization.is_simple_api_call() && !call_optimization.IsCompatibleReceiverMap(receiver_map, holder)) { return false; } } } return true; } void LoadIC::UpdateCaches(LookupIterator* lookup) { if (state() == UNINITIALIZED && kind() != Code::LOAD_GLOBAL_IC) { // This is the first time we execute this inline cache. Set the target to // the pre monomorphic stub to delay setting the monomorphic state. ConfigureVectorState(PREMONOMORPHIC, Handle()); TRACE_IC("LoadIC", lookup->name()); return; } Handle code; if (lookup->state() == LookupIterator::JSPROXY || lookup->state() == LookupIterator::ACCESS_CHECK) { code = slow_stub(); } else if (!lookup->IsFound()) { if (kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC) { code = NamedLoadHandlerCompiler::ComputeLoadNonexistent(lookup->name(), receiver_map()); // TODO(jkummerow/verwaest): Introduce a builtin that handles this case. if (code.is_null()) code = slow_stub(); } else { code = slow_stub(); } } else { if (kind() == Code::LOAD_GLOBAL_IC && lookup->state() == LookupIterator::DATA && lookup->GetHolder()->IsJSGlobalObject()) { #if DEBUG Handle holder = lookup->GetHolder(); Handle receiver = lookup->GetReceiver(); DCHECK_EQ(*receiver, *holder); #endif // Now update the cell in the feedback vector. LoadGlobalICNexus* nexus = casted_nexus(); nexus->ConfigurePropertyCellMode(lookup->GetPropertyCell()); TRACE_IC("LoadGlobalIC", lookup->name()); return; } else if (lookup->state() == LookupIterator::ACCESSOR) { if (!IsCompatibleReceiver(lookup, receiver_map())) { TRACE_GENERIC_IC(isolate(), "LoadIC", "incompatible receiver type"); code = slow_stub(); } } else if (lookup->state() == LookupIterator::INTERCEPTOR) { if (kind() == Code::LOAD_GLOBAL_IC) { // The interceptor handler requires name but it is not passed explicitly // to LoadGlobalIC and the LoadGlobalIC dispatcher also does not load // it so we will just use slow stub. code = slow_stub(); } else { // Perform a lookup behind the interceptor. Copy the LookupIterator // since the original iterator will be used to fetch the value. LookupIterator it = *lookup; it.Next(); LookupForRead(&it); if (it.state() == LookupIterator::ACCESSOR && !IsCompatibleReceiver(&it, receiver_map())) { TRACE_GENERIC_IC(isolate(), "LoadIC", "incompatible receiver type"); code = slow_stub(); } } } if (code.is_null()) code = ComputeHandler(lookup); } PatchCache(lookup->name(), code); TRACE_IC("LoadIC", lookup->name()); } void IC::UpdateMegamorphicCache(Map* map, Name* name, Code* code) { isolate()->stub_cache()->Set(name, map, code); } Handle IC::ComputeHandler(LookupIterator* lookup, Handle value) { // Try to find a globally shared handler stub. Handle code = GetMapIndependentHandler(lookup); if (!code.is_null()) return code; // Otherwise check the map's handler cache for a map-specific handler, and // compile one if the cache comes up empty. bool receiver_is_holder = lookup->GetReceiver().is_identical_to(lookup->GetHolder()); CacheHolderFlag flag; Handle stub_holder_map; if (kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC || kind() == Code::KEYED_LOAD_IC) { stub_holder_map = IC::GetHandlerCacheHolder( receiver_map(), receiver_is_holder, isolate(), &flag); } else { DCHECK(kind() == Code::STORE_IC || kind() == Code::KEYED_STORE_IC); // Store handlers cannot be cached on prototypes. flag = kCacheOnReceiver; stub_holder_map = receiver_map(); } code = PropertyHandlerCompiler::Find(lookup->name(), stub_holder_map, kind(), flag); // Use the cached value if it exists, and if it is different from the // handler that just missed. if (!code.is_null()) { Handle handler; if (maybe_handler_.ToHandle(&handler)) { if (!handler.is_identical_to(code)) { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } else { // maybe_handler_ is only populated for MONOMORPHIC and POLYMORPHIC ICs. // In MEGAMORPHIC case, check if the handler in the megamorphic stub // cache (which just missed) is different from the cached handler. if (state() == MEGAMORPHIC && lookup->GetReceiver()->IsHeapObject()) { Map* map = Handle::cast(lookup->GetReceiver())->map(); Code* megamorphic_cached_code = isolate()->stub_cache()->Get(*lookup->name(), map, code->flags()); if (megamorphic_cached_code != *code) { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } else { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } } code = CompileHandler(lookup, value, flag); DCHECK(code->is_handler()); DCHECK(Code::ExtractCacheHolderFromFlags(code->flags()) == flag); Map::UpdateCodeCache(stub_holder_map, lookup->name(), code); return code; } Handle LoadIC::GetMapIndependentHandler(LookupIterator* lookup) { Handle receiver = lookup->GetReceiver(); if (receiver->IsString() && Name::Equals(isolate()->factory()->length_string(), lookup->name())) { FieldIndex index = FieldIndex::ForInObjectOffset(String::kLengthOffset); return SimpleFieldLoad(index); } if (receiver->IsStringWrapper() && Name::Equals(isolate()->factory()->length_string(), lookup->name())) { TRACE_HANDLER_STATS(isolate(), LoadIC_StringLengthStub); StringLengthStub string_length_stub(isolate()); return string_length_stub.GetCode(); } // Use specialized code for getting prototype of functions. if (receiver->IsJSFunction() && Name::Equals(isolate()->factory()->prototype_string(), lookup->name()) && receiver->IsConstructor() && !Handle::cast(receiver) ->map() ->has_non_instance_prototype()) { Handle stub; TRACE_HANDLER_STATS(isolate(), LoadIC_FunctionPrototypeStub); FunctionPrototypeStub function_prototype_stub(isolate()); return function_prototype_stub.GetCode(); } Handle map = receiver_map(); Handle holder = lookup->GetHolder(); bool receiver_is_holder = receiver.is_identical_to(holder); switch (lookup->state()) { case LookupIterator::INTERCEPTOR: break; // Custom-compiled handler. case LookupIterator::ACCESSOR: { // Use simple field loads for some well-known callback properties. // The method will only return true for absolute truths based on the // receiver maps. int object_offset; if (Accessors::IsJSObjectFieldAccessor(map, lookup->name(), &object_offset)) { FieldIndex index = FieldIndex::ForInObjectOffset(object_offset, *map); return SimpleFieldLoad(index); } if (IsCompatibleReceiver(lookup, map)) { Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorPair()) { if (!holder->HasFastProperties()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } // When debugging we need to go the slow path to flood the accessor. if (GetSharedFunctionInfo()->HasDebugInfo()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->getter()) == nullptr) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } // Ruled out by IsCompatibleReceiver() above. DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, map)); if (!holder->HasFastProperties()) return slow_stub(); if (receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadApiGetterStub); int index = lookup->GetAccessorIndex(); LoadApiGetterStub stub(isolate(), true, index); return stub.GetCode(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } } TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (kind() != Code::LOAD_IC && kind() != Code::LOAD_GLOBAL_IC) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } // There is only one shared stub for loading normalized // properties. It does not traverse the prototype chain, so the // property must be found in the object for the stub to be // applicable. if (!receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } TRACE_HANDLER_STATS(isolate(), LoadIC_LoadNormal); return isolate()->builtins()->LoadIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { FieldIndex field = lookup->GetFieldIndex(); if (receiver_is_holder) { return SimpleFieldLoad(field); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); if (receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadConstantStub); LoadConstantStub stub(isolate(), lookup->GetConstantIndex()); return stub.GetCode(); } break; // Custom-compiled handler. } case LookupIterator::INTEGER_INDEXED_EXOTIC: TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); } return Handle::null(); } Handle LoadIC::CompileHandler(LookupIterator* lookup, Handle unused, CacheHolderFlag cache_holder) { Handle holder = lookup->GetHolder(); #ifdef DEBUG // Only used by DCHECKs below. Handle receiver = lookup->GetReceiver(); bool receiver_is_holder = receiver.is_identical_to(holder); #endif // Non-map-specific handler stubs have already been selected. DCHECK(!receiver->IsString() || !Name::Equals(isolate()->factory()->length_string(), lookup->name())); DCHECK(!receiver->IsStringWrapper() || !Name::Equals(isolate()->factory()->length_string(), lookup->name())); DCHECK(!( receiver->IsJSFunction() && Name::Equals(isolate()->factory()->prototype_string(), lookup->name()) && receiver->IsConstructor() && !Handle::cast(receiver) ->map() ->has_non_instance_prototype())); Handle map = receiver_map(); switch (lookup->state()) { case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->getter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadInterceptor); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); // Perform a lookup behind the interceptor. Copy the LookupIterator since // the original iterator will be used to fetch the value. LookupIterator it = *lookup; it.Next(); LookupForRead(&it); return compiler.CompileLoadInterceptor(&it); } case LookupIterator::ACCESSOR: { #ifdef DEBUG int object_offset; DCHECK(!Accessors::IsJSObjectFieldAccessor(map, lookup->name(), &object_offset)); #endif DCHECK(IsCompatibleReceiver(lookup, map)); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorPair()) { DCHECK(holder->HasFastProperties()); DCHECK(!GetSharedFunctionInfo()->HasDebugInfo()); Handle getter(Handle::cast(accessors)->getter(), isolate()); CallOptimization call_optimization(getter); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); if (call_optimization.is_simple_api_call()) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadCallback); int index = lookup->GetAccessorIndex(); Handle code = compiler.CompileLoadCallback( lookup->name(), call_optimization, index); return code; } TRACE_HANDLER_STATS(isolate(), LoadIC_LoadViaGetter); int expected_arguments = Handle::cast(getter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileLoadViaGetter( lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } else { DCHECK(accessors->IsAccessorInfo()); Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->getter()) != nullptr); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, map)); DCHECK(holder->HasFastProperties()); DCHECK(!receiver_is_holder); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadCallback); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle code = compiler.CompileLoadCallback(lookup->name(), info); return code; } UNREACHABLE(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC); DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadGlobal); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle cell = lookup->GetPropertyCell(); Handle code = compiler.CompileLoadGlobal( cell, lookup->name(), lookup->IsConfigurable()); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { FieldIndex field = lookup->GetFieldIndex(); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadField); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadField(lookup->name(), field); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadConstant); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadConstant(lookup->name(), lookup->GetConstantIndex()); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } static Handle TryConvertKey(Handle key, Isolate* isolate) { // This helper implements a few common fast cases for converting // non-smi keys of keyed loads/stores to a smi or a string. if (key->IsHeapNumber()) { double value = Handle::cast(key)->value(); if (std::isnan(value)) { key = isolate->factory()->nan_string(); } else { int int_value = FastD2I(value); if (value == int_value && Smi::IsValid(int_value)) { key = handle(Smi::FromInt(int_value), isolate); } } } else if (key->IsUndefined(isolate)) { key = isolate->factory()->undefined_string(); } return key; } void KeyedLoadIC::UpdateLoadElement(Handle receiver) { Handle receiver_map(receiver->map(), isolate()); DCHECK(receiver_map->instance_type() != JS_VALUE_TYPE && receiver_map->instance_type() != JS_PROXY_TYPE); // Checked by caller. MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { Handle map = target_receiver_maps.at(i); if (map.is_null()) continue; if (map->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSValue"); return; } if (map->instance_type() == JS_PROXY_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSProxy"); return; } } // The first time a receiver is seen that is a transitioned version of the // previous monomorphic receiver type, assume the new ElementsKind is the // monomorphic type. This benefits global arrays that only transition // once, and all call sites accessing them are faster if they remain // monomorphic. If this optimistic assumption is not true, the IC will // miss again and it will become polymorphic and support both the // untransitioned and transitioned maps. if (state() == MONOMORPHIC && !receiver->IsString() && IsMoreGeneralElementsKindTransition( target_receiver_maps.at(0)->elements_kind(), Handle::cast(receiver)->GetElementsKind())) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } DCHECK(state() != GENERIC); // Determine the list of receiver maps that this call site has seen, // adding the map that was just encountered. if (!AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map)) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the generic stub. TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the generic // version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "max polymorph exceeded"); return; } CodeHandleList handlers(target_receiver_maps.length()); TRACE_HANDLER_STATS(isolate(), KeyedLoadIC_PolymorphicElement); ElementHandlerCompiler compiler(isolate()); compiler.CompileElementHandlers(&target_receiver_maps, &handlers); ConfigureVectorState(Handle(), &target_receiver_maps, &handlers); } MaybeHandle KeyedLoadIC::Load(Handle object, Handle key) { if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } Handle load_handle; // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION(isolate(), load_handle, LoadIC::Load(object, Handle::cast(key)), Object); } else if (FLAG_use_ic && !object->IsAccessCheckNeeded() && !object->IsJSValue()) { if (object->IsJSObject() || (object->IsString() && key->IsNumber())) { Handle receiver = Handle::cast(object); if (object->IsString() || key->IsSmi()) UpdateLoadElement(receiver); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "set generic"); } TRACE_IC("LoadIC", key); if (!load_handle.is_null()) return load_handle; Handle result; ASSIGN_RETURN_ON_EXCEPTION(isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } bool StoreIC::LookupForWrite(LookupIterator* it, Handle value, JSReceiver::StoreFromKeyed store_mode) { // Disable ICs for non-JSObjects for now. Handle object = it->GetReceiver(); if (!object->IsJSObject()) return false; Handle receiver = Handle::cast(object); DCHECK(!receiver->map()->is_deprecated()); for (; it->IsFound(); it->Next()) { switch (it->state()) { case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); case LookupIterator::JSPROXY: return false; case LookupIterator::INTERCEPTOR: { Handle holder = it->GetHolder(); InterceptorInfo* info = holder->GetNamedInterceptor(); if (it->HolderIsReceiverOrHiddenPrototype()) { return !info->non_masking() && receiver.is_identical_to(holder) && !info->setter()->IsUndefined(it->isolate()); } else if (!info->getter()->IsUndefined(it->isolate()) || !info->query()->IsUndefined(it->isolate())) { return false; } break; } case LookupIterator::ACCESS_CHECK: if (it->GetHolder()->IsAccessCheckNeeded()) return false; break; case LookupIterator::ACCESSOR: return !it->IsReadOnly(); case LookupIterator::INTEGER_INDEXED_EXOTIC: return false; case LookupIterator::DATA: { if (it->IsReadOnly()) return false; Handle holder = it->GetHolder(); if (receiver.is_identical_to(holder)) { it->PrepareForDataProperty(value); // The previous receiver map might just have been deprecated, // so reload it. update_receiver_map(receiver); return true; } // Receiver != holder. if (receiver->IsJSGlobalProxy()) { PrototypeIterator iter(it->isolate(), receiver); return it->GetHolder().is_identical_to( PrototypeIterator::GetCurrent(iter)); } if (it->HolderIsReceiverOrHiddenPrototype()) return false; if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } } } receiver = it->GetStoreTarget(); if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } MaybeHandle StoreIC::Store(Handle object, Handle name, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (object->IsJSGlobalObject() && name->IsString()) { // Look up in script context table. Handle str_name = Handle::cast(name); Handle global = Handle::cast(object); Handle script_contexts( global->native_context()->script_context_table()); ScriptContextTable::LookupResult lookup_result; if (ScriptContextTable::Lookup(script_contexts, str_name, &lookup_result)) { Handle script_context = ScriptContextTable::GetContext( script_contexts, lookup_result.context_index); if (lookup_result.mode == CONST) { return TypeError(MessageTemplate::kConstAssign, object, name); } Handle previous_value = FixedArray::get(*script_context, lookup_result.slot_index, isolate()); if (previous_value->IsTheHole(isolate())) { // Do not install stubs and stay pre-monomorphic for // uninitialized accesses. return ReferenceError(name); } if (FLAG_use_ic && StoreScriptContextFieldStub::Accepted(&lookup_result)) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreScriptContextFieldStub); StoreScriptContextFieldStub stub(isolate(), &lookup_result); PatchCache(name, stub.GetCode()); } script_context->set(lookup_result.slot_index, *value); return value; } } // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object) || object->IsJSProxy()) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Object::SetProperty(object, name, value, language_mode()), Object); return result; } // If the object is undefined or null it's illegal to try to set any // properties on it; throw a TypeError in that case. if (object->IsUndefined(isolate()) || object->IsNull(isolate())) { return TypeError(MessageTemplate::kNonObjectPropertyStore, object, name); } if (state() != UNINITIALIZED) { JSObject::MakePrototypesFast(object, kStartAtPrototype, isolate()); } LookupIterator it(object, name); if (FLAG_use_ic) UpdateCaches(&it, value, store_mode); MAYBE_RETURN_NULL( Object::SetProperty(&it, value, language_mode(), store_mode)); return value; } Handle CallIC::initialize_stub_in_optimized_code( Isolate* isolate, int argc, ConvertReceiverMode mode, TailCallMode tail_call_mode) { CallICStub stub(isolate, CallICState(argc, mode, tail_call_mode)); Handle code = stub.GetCode(); return code; } Handle StoreIC::initialize_stub_in_optimized_code( Isolate* isolate, LanguageMode language_mode) { VectorStoreICStub stub(isolate, StoreICState(language_mode)); return stub.GetCode(); } void StoreIC::UpdateCaches(LookupIterator* lookup, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (state() == UNINITIALIZED) { // This is the first time we execute this inline cache. Set the target to // the pre monomorphic stub to delay setting the monomorphic state. ConfigureVectorState(PREMONOMORPHIC, Handle()); TRACE_IC("StoreIC", lookup->name()); return; } bool use_ic = LookupForWrite(lookup, value, store_mode); if (!use_ic) { TRACE_GENERIC_IC(isolate(), "StoreIC", "LookupForWrite said 'false'"); } Handle code = use_ic ? ComputeHandler(lookup, value) : slow_stub(); PatchCache(lookup->name(), code); TRACE_IC("StoreIC", lookup->name()); } static Handle PropertyCellStoreHandler( Isolate* isolate, Handle receiver, Handle holder, Handle name, Handle cell, PropertyCellType type) { auto constant_type = Nothing(); if (type == PropertyCellType::kConstantType) { constant_type = Just(cell->GetConstantType()); } StoreGlobalStub stub(isolate, type, constant_type, receiver->IsJSGlobalProxy()); auto code = stub.GetCodeCopyFromTemplate(holder, cell); // TODO(verwaest): Move caching of these NORMAL stubs outside as well. HeapObject::UpdateMapCodeCache(receiver, name, code); return code; } Handle StoreIC::GetMapIndependentHandler(LookupIterator* lookup) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { break; // Custom-compiled handler. } // Currently not handled by CompileStoreTransition. if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "transition from slow"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } DCHECK(lookup->IsCacheableTransition()); break; // Custom-compiled handler. } case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->setter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreInterceptorStub); StoreInterceptorStub stub(isolate()); return stub.GetCode(); } case LookupIterator::ACCESSOR: { if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "accessor on slow map"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->setter()) == nullptr) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter == nullptr"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (AccessorInfo::cast(*accessors)->is_special_data_property() && !lookup->HolderIsReceiverOrHiddenPrototype()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "special data property in prototype chain"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (!AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())) { TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver type"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorPair()) { Handle setter(Handle::cast(accessors)->setter(), isolate()); if (!setter->IsJSFunction() && !setter->IsFunctionTemplateInfo()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter not a function"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } CallOptimization call_optimization(setter); if (call_optimization.is_simple_api_call()) { if (call_optimization.IsCompatibleReceiver(receiver, holder)) { break; // Custom-compiled handler. } TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreNormal); DCHECK(holder.is_identical_to(receiver)); return isolate()->builtins()->StoreIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } if (use_stub) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreFieldStub); StoreFieldStub stub(isolate(), lookup->GetFieldIndex(), lookup->representation()); return stub.GetCode(); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); TRACE_GENERIC_IC(isolate(), "StoreIC", "constant property"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } return Handle::null(); } Handle StoreIC::CompileHandler(LookupIterator* lookup, Handle value, CacheHolderFlag cache_holder) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { // TODO(dcarney): this currently just deopts. Use the transition cell. TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobalTransition); auto cell = isolate()->factory()->NewPropertyCell(); cell->set_value(*value); auto code = PropertyCellStoreHandler( isolate(), store_target, Handle::cast(store_target), lookup->name(), cell, PropertyCellType::kConstant); cell->set_value(isolate()->heap()->the_hole_value()); return code; } Handle transition = lookup->transition_map(); // Currently not handled by CompileStoreTransition. DCHECK(holder->HasFastProperties()); DCHECK(lookup->IsCacheableTransition()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreTransition); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreTransition(transition, lookup->name()); } case LookupIterator::INTERCEPTOR: UNREACHABLE(); case LookupIterator::ACCESSOR: { DCHECK(holder->HasFastProperties()); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->setter()) != 0); DCHECK(!AccessorInfo::cast(*accessors)->is_special_data_property() || lookup->HolderIsReceiverOrHiddenPrototype()); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), info, language_mode()); return code; } else { DCHECK(accessors->IsAccessorPair()); Handle setter(Handle::cast(accessors)->setter(), isolate()); DCHECK(setter->IsJSFunction() || setter->IsFunctionTemplateInfo()); CallOptimization call_optimization(setter); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); if (call_optimization.is_simple_api_call()) { DCHECK(call_optimization.IsCompatibleReceiver(receiver, holder)); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), call_optimization, lookup->GetAccessorIndex()); return code; } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreViaSetter); int expected_arguments = JSFunction::cast(*setter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileStoreViaSetter(receiver, lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobal); DCHECK(holder.is_identical_to(receiver) || receiver->map()->prototype() == *holder); auto cell = lookup->GetPropertyCell(); auto updated_type = PropertyCell::UpdatedType(cell, value, lookup->property_details()); auto code = PropertyCellStoreHandler( isolate(), receiver, Handle::cast(holder), lookup->name(), cell, updated_type); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { #ifdef DEBUG bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } DCHECK(!use_stub); #endif TRACE_HANDLER_STATS(isolate(), StoreIC_StoreField); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreField(lookup); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); UNREACHABLE(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } void KeyedStoreIC::UpdateStoreElement(Handle receiver_map, KeyedAccessStoreMode store_mode) { MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle monomorphic_map = ComputeTransitionedMap(receiver_map, store_mode); store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(monomorphic_map, store_mode); return ConfigureVectorState(Handle(), monomorphic_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { if (!target_receiver_maps.at(i).is_null() && target_receiver_maps.at(i)->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "JSValue"); return; } } // There are several special cases where an IC that is MONOMORPHIC can still // transition to a different GetNonTransitioningStoreMode IC that handles a // superset of the original IC. Handle those here if the receiver map hasn't // changed or it has transitioned to a more general kind. KeyedAccessStoreMode old_store_mode = GetKeyedAccessStoreMode(); Handle previous_receiver_map = target_receiver_maps.at(0); if (state() == MONOMORPHIC) { Handle transitioned_receiver_map = receiver_map; if (IsTransitionStoreMode(store_mode)) { transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); } if ((receiver_map.is_identical_to(previous_receiver_map) && IsTransitionStoreMode(store_mode)) || IsTransitionOfMonomorphicTarget(*previous_receiver_map, *transitioned_receiver_map)) { // If the "old" and "new" maps are in the same elements map family, or // if they at least come from the same origin for a transitioning store, // stay MONOMORPHIC and use the map for the most generic ElementsKind. store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler( transitioned_receiver_map, store_mode); ConfigureVectorState(Handle(), transitioned_receiver_map, handler); return; } if (receiver_map.is_identical_to(previous_receiver_map) && old_store_mode == STANDARD_STORE && (store_mode == STORE_AND_GROW_NO_TRANSITION || store_mode == STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS || store_mode == STORE_NO_TRANSITION_HANDLE_COW)) { // A "normal" IC that handles stores can switch to a version that can // grow at the end of the array, handle OOB accesses or copy COW arrays // and still stay MONOMORPHIC. Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(receiver_map, store_mode); return ConfigureVectorState(Handle(), receiver_map, handler); } } DCHECK(state() != GENERIC); bool map_added = AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map); if (IsTransitionStoreMode(store_mode)) { Handle transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); map_added |= AddOneReceiverMapIfMissing(&target_receiver_maps, transitioned_receiver_map); } if (!map_added) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the megamorphic stub which can handle everything. TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the // megamorphic version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) return; // Make sure all polymorphic handlers have the same store mode, otherwise the // megamorphic stub must be used. store_mode = GetNonTransitioningStoreMode(store_mode); if (old_store_mode != STANDARD_STORE) { if (store_mode == STANDARD_STORE) { store_mode = old_store_mode; } else if (store_mode != old_store_mode) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "store mode mismatch"); return; } } // If the store mode isn't the standard mode, make sure that all polymorphic // receivers are either external arrays, or all "normal" arrays. Otherwise, // use the megamorphic stub. if (store_mode != STANDARD_STORE) { int external_arrays = 0; for (int i = 0; i < target_receiver_maps.length(); ++i) { if (target_receiver_maps[i]->has_fixed_typed_array_elements()) { external_arrays++; } } if (external_arrays != 0 && external_arrays != target_receiver_maps.length()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unsupported combination of external and normal arrays"); return; } } TRACE_HANDLER_STATS(isolate(), KeyedStoreIC_Polymorphic); MapHandleList transitioned_maps(target_receiver_maps.length()); CodeHandleList handlers(target_receiver_maps.length()); PropertyICCompiler::ComputeKeyedStorePolymorphicHandlers( &target_receiver_maps, &transitioned_maps, &handlers, store_mode); ConfigureVectorState(&target_receiver_maps, &transitioned_maps, &handlers); } Handle KeyedStoreIC::ComputeTransitionedMap( Handle map, KeyedAccessStoreMode store_mode) { switch (store_mode) { case STORE_TRANSITION_TO_OBJECT: case STORE_AND_GROW_TRANSITION_TO_OBJECT: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_ELEMENTS : FAST_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_TRANSITION_TO_DOUBLE: case STORE_AND_GROW_TRANSITION_TO_DOUBLE: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_DOUBLE_ELEMENTS : FAST_DOUBLE_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS: DCHECK(map->has_fixed_typed_array_elements()); // Fall through case STORE_NO_TRANSITION_HANDLE_COW: case STANDARD_STORE: case STORE_AND_GROW_NO_TRANSITION: return map; } UNREACHABLE(); return MaybeHandle().ToHandleChecked(); } bool IsOutOfBoundsAccess(Handle receiver, uint32_t index) { uint32_t length = 0; if (receiver->IsJSArray()) { JSArray::cast(*receiver)->length()->ToArrayLength(&length); } else { length = static_cast(receiver->elements()->length()); } return index >= length; } static KeyedAccessStoreMode GetStoreMode(Handle receiver, uint32_t index, Handle value) { bool oob_access = IsOutOfBoundsAccess(receiver, index); // Don't consider this a growing store if the store would send the receiver to // dictionary mode. bool allow_growth = receiver->IsJSArray() && oob_access && !receiver->WouldConvertToSlowElements(index); if (allow_growth) { // Handle growing array in stub if necessary. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_DOUBLE; } if (value->IsHeapObject()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } return STORE_AND_GROW_NO_TRANSITION; } else { // Handle only in-bounds elements accesses. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_TRANSITION_TO_DOUBLE; } else if (value->IsHeapObject()) { return STORE_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_TRANSITION_TO_OBJECT; } } if (!FLAG_trace_external_array_abuse && receiver->map()->has_fixed_typed_array_elements() && oob_access) { return STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS; } Heap* heap = receiver->GetHeap(); if (receiver->elements()->map() == heap->fixed_cow_array_map()) { return STORE_NO_TRANSITION_HANDLE_COW; } else { return STANDARD_STORE; } } } MaybeHandle KeyedStoreIC::Store(Handle object, Handle key, Handle value) { // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); return result; } // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); Handle store_handle; uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION( isolate(), store_handle, StoreIC::Store(object, Handle::cast(key), value, JSReceiver::MAY_BE_STORE_FROM_KEYED), Object); if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unhandled internalized string key"); TRACE_IC("StoreIC", key); } return store_handle; } bool use_ic = FLAG_use_ic && !object->IsStringWrapper() && !object->IsAccessCheckNeeded() && !object->IsJSGlobalProxy(); if (use_ic && !object->IsSmi()) { // Don't use ICs for maps of the objects in Array's prototype chain. We // expect to be able to trap element sets to objects with those maps in // the runtime to enable optimization of element hole access. Handle heap_object = Handle::cast(object); if (heap_object->map()->IsMapInArrayPrototypeChain()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "map in array prototype"); use_ic = false; } } Handle old_receiver_map; bool sloppy_arguments_elements = false; bool key_is_valid_index = false; KeyedAccessStoreMode store_mode = STANDARD_STORE; if (use_ic && object->IsJSObject()) { Handle receiver = Handle::cast(object); old_receiver_map = handle(receiver->map(), isolate()); sloppy_arguments_elements = !is_sloppy(language_mode()) && receiver->elements()->map() == isolate()->heap()->sloppy_arguments_elements_map(); if (!sloppy_arguments_elements) { key_is_valid_index = key->IsSmi() && Smi::cast(*key)->value() >= 0; if (key_is_valid_index) { uint32_t index = static_cast(Smi::cast(*key)->value()); store_mode = GetStoreMode(receiver, index, value); } } } DCHECK(store_handle.is_null()); ASSIGN_RETURN_ON_EXCEPTION(isolate(), store_handle, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); if (use_ic) { if (!old_receiver_map.is_null()) { if (sloppy_arguments_elements) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "arguments receiver"); } else if (key_is_valid_index) { // We should go generic if receiver isn't a dictionary, but our // prototype chain does have dictionary elements. This ensures that // other non-dictionary receivers in the polymorphic case benefit // from fast path keyed stores. if (!old_receiver_map->DictionaryElementsInPrototypeChainOnly()) { UpdateStoreElement(old_receiver_map, store_mode); } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "dictionary or proxy prototype"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-smi-like key"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-JSObject receiver"); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "set generic"); } TRACE_IC("StoreIC", key); return store_handle; } void CallIC::HandleMiss(Handle function) { Handle name = isolate()->factory()->empty_string(); CallICNexus* nexus = casted_nexus(); Object* feedback = nexus->GetFeedback(); // Hand-coded MISS handling is easier if CallIC slots don't contain smis. DCHECK(!feedback->IsSmi()); if (feedback->IsWeakCell() || !function->IsJSFunction() || feedback->IsAllocationSite()) { // We are going generic. nexus->ConfigureMegamorphic(); } else { DCHECK(feedback == *TypeFeedbackVector::UninitializedSentinel(isolate())); Handle js_function = Handle::cast(function); Handle array_function = Handle(isolate()->native_context()->array_function()); if (array_function.is_identical_to(js_function)) { // Alter the slot. nexus->ConfigureMonomorphicArray(); } else if (js_function->context()->native_context() != *isolate()->native_context()) { // Don't collect cross-native context feedback for the CallIC. // TODO(bmeurer): We should collect the SharedFunctionInfo as // feedback in this case instead. nexus->ConfigureMegamorphic(); } else { nexus->ConfigureMonomorphic(js_function); } } if (function->IsJSFunction()) { Handle
code) { switch (state()) { case UNINITIALIZED: case PREMONOMORPHIC: UpdateMonomorphicIC(code, name); break; case RECOMPUTE_HANDLER: case MONOMORPHIC: if (kind() == Code::LOAD_GLOBAL_IC) { UpdateMonomorphicIC(code, name); break; } // Fall through. case POLYMORPHIC: if (!is_keyed() || state() == RECOMPUTE_HANDLER) { if (UpdatePolymorphicIC(name, code)) break; // For keyed stubs, we can't know whether old handlers were for the // same key. CopyICToMegamorphicCache(name); } DCHECK(UseVector()); ConfigureVectorState(MEGAMORPHIC, name); // Fall through. case MEGAMORPHIC: UpdateMegamorphicCache(*receiver_map(), *name, *code); // Indicate that we've handled this case. DCHECK(UseVector()); vector_set_ = true; break; case GENERIC: UNREACHABLE(); break; } } Handle LoadIC::initialize_stub_in_optimized_code(Isolate* isolate) { if (FLAG_tf_load_ic_stub) { return LoadICTFStub(isolate).GetCode(); } return LoadICStub(isolate).GetCode(); } Handle LoadGlobalIC::initialize_stub_in_optimized_code( Isolate* isolate, ExtraICState extra_state) { return LoadGlobalICStub(isolate, LoadGlobalICState(extra_state)).GetCode(); } Handle KeyedLoadIC::initialize_stub_in_optimized_code( Isolate* isolate, ExtraICState extra_state) { // TODO(ishell): remove extra_ic_state return KeyedLoadICStub(isolate).GetCode(); } Handle KeyedStoreIC::initialize_stub_in_optimized_code( Isolate* isolate, LanguageMode language_mode) { StoreICState state = StoreICState(language_mode); return VectorKeyedStoreICStub(isolate, state).GetCode(); } Handle KeyedStoreIC::ChooseMegamorphicStub(Isolate* isolate, ExtraICState extra_state) { LanguageMode mode = StoreICState::GetLanguageMode(extra_state); return is_strict(mode) ? isolate->builtins()->KeyedStoreIC_Megamorphic_Strict() : isolate->builtins()->KeyedStoreIC_Megamorphic(); } Handle LoadIC::SimpleFieldLoad(FieldIndex index) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadFieldStub); LoadFieldStub stub(isolate(), index); return stub.GetCode(); } bool IsCompatibleReceiver(LookupIterator* lookup, Handle receiver_map) { DCHECK(lookup->state() == LookupIterator::ACCESSOR); Isolate* isolate = lookup->isolate(); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (info->getter() != NULL && !AccessorInfo::IsCompatibleReceiverMap(isolate, info, receiver_map)) { return false; } } else if (accessors->IsAccessorPair()) { Handle getter(Handle::cast(accessors)->getter(), isolate); if (!getter->IsJSFunction() && !getter->IsFunctionTemplateInfo()) { return false; } Handle holder = lookup->GetHolder(); Handle receiver = lookup->GetReceiver(); if (holder->HasFastProperties()) { if (getter->IsJSFunction()) { Handle function = Handle::cast(getter); if (!receiver->IsJSObject() && !function->shared()->IsBuiltin() && is_sloppy(function->shared()->language_mode())) { // Calling sloppy non-builtins with a value as the receiver // requires boxing. return false; } } CallOptimization call_optimization(getter); if (call_optimization.is_simple_api_call() && !call_optimization.IsCompatibleReceiverMap(receiver_map, holder)) { return false; } } } return true; } void LoadIC::UpdateCaches(LookupIterator* lookup) { if (state() == UNINITIALIZED && kind() != Code::LOAD_GLOBAL_IC) { // This is the first time we execute this inline cache. Set the target to // the pre monomorphic stub to delay setting the monomorphic state. ConfigureVectorState(PREMONOMORPHIC, Handle()); TRACE_IC("LoadIC", lookup->name()); return; } Handle code; if (lookup->state() == LookupIterator::JSPROXY || lookup->state() == LookupIterator::ACCESS_CHECK) { code = slow_stub(); } else if (!lookup->IsFound()) { if (kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC) { code = NamedLoadHandlerCompiler::ComputeLoadNonexistent(lookup->name(), receiver_map()); // TODO(jkummerow/verwaest): Introduce a builtin that handles this case. if (code.is_null()) code = slow_stub(); } else { code = slow_stub(); } } else { if (kind() == Code::LOAD_GLOBAL_IC && lookup->state() == LookupIterator::DATA && lookup->GetHolder()->IsJSGlobalObject()) { #if DEBUG Handle holder = lookup->GetHolder(); Handle receiver = lookup->GetReceiver(); DCHECK_EQ(*receiver, *holder); #endif // Now update the cell in the feedback vector. LoadGlobalICNexus* nexus = casted_nexus(); nexus->ConfigurePropertyCellMode(lookup->GetPropertyCell()); TRACE_IC("LoadGlobalIC", lookup->name()); return; } else if (lookup->state() == LookupIterator::ACCESSOR) { if (!IsCompatibleReceiver(lookup, receiver_map())) { TRACE_GENERIC_IC(isolate(), "LoadIC", "incompatible receiver type"); code = slow_stub(); } } else if (lookup->state() == LookupIterator::INTERCEPTOR) { if (kind() == Code::LOAD_GLOBAL_IC) { // The interceptor handler requires name but it is not passed explicitly // to LoadGlobalIC and the LoadGlobalIC dispatcher also does not load // it so we will just use slow stub. code = slow_stub(); } else { // Perform a lookup behind the interceptor. Copy the LookupIterator // since the original iterator will be used to fetch the value. LookupIterator it = *lookup; it.Next(); LookupForRead(&it); if (it.state() == LookupIterator::ACCESSOR && !IsCompatibleReceiver(&it, receiver_map())) { TRACE_GENERIC_IC(isolate(), "LoadIC", "incompatible receiver type"); code = slow_stub(); } } } if (code.is_null()) code = ComputeHandler(lookup); } PatchCache(lookup->name(), code); TRACE_IC("LoadIC", lookup->name()); } void IC::UpdateMegamorphicCache(Map* map, Name* name, Code* code) { isolate()->stub_cache()->Set(name, map, code); } Handle IC::ComputeHandler(LookupIterator* lookup, Handle value) { // Try to find a globally shared handler stub. Handle code = GetMapIndependentHandler(lookup); if (!code.is_null()) return code; // Otherwise check the map's handler cache for a map-specific handler, and // compile one if the cache comes up empty. bool receiver_is_holder = lookup->GetReceiver().is_identical_to(lookup->GetHolder()); CacheHolderFlag flag; Handle stub_holder_map; if (kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC || kind() == Code::KEYED_LOAD_IC) { stub_holder_map = IC::GetHandlerCacheHolder( receiver_map(), receiver_is_holder, isolate(), &flag); } else { DCHECK(kind() == Code::STORE_IC || kind() == Code::KEYED_STORE_IC); // Store handlers cannot be cached on prototypes. flag = kCacheOnReceiver; stub_holder_map = receiver_map(); } code = PropertyHandlerCompiler::Find(lookup->name(), stub_holder_map, kind(), flag); // Use the cached value if it exists, and if it is different from the // handler that just missed. if (!code.is_null()) { Handle handler; if (maybe_handler_.ToHandle(&handler)) { if (!handler.is_identical_to(code)) { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } else { // maybe_handler_ is only populated for MONOMORPHIC and POLYMORPHIC ICs. // In MEGAMORPHIC case, check if the handler in the megamorphic stub // cache (which just missed) is different from the cached handler. if (state() == MEGAMORPHIC && lookup->GetReceiver()->IsHeapObject()) { Map* map = Handle::cast(lookup->GetReceiver())->map(); Code* megamorphic_cached_code = isolate()->stub_cache()->Get(*lookup->name(), map, code->flags()); if (megamorphic_cached_code != *code) { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } else { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } } code = CompileHandler(lookup, value, flag); DCHECK(code->is_handler()); DCHECK(Code::ExtractCacheHolderFromFlags(code->flags()) == flag); Map::UpdateCodeCache(stub_holder_map, lookup->name(), code); return code; } Handle LoadIC::GetMapIndependentHandler(LookupIterator* lookup) { Handle receiver = lookup->GetReceiver(); if (receiver->IsString() && Name::Equals(isolate()->factory()->length_string(), lookup->name())) { FieldIndex index = FieldIndex::ForInObjectOffset(String::kLengthOffset); return SimpleFieldLoad(index); } if (receiver->IsStringWrapper() && Name::Equals(isolate()->factory()->length_string(), lookup->name())) { TRACE_HANDLER_STATS(isolate(), LoadIC_StringLengthStub); StringLengthStub string_length_stub(isolate()); return string_length_stub.GetCode(); } // Use specialized code for getting prototype of functions. if (receiver->IsJSFunction() && Name::Equals(isolate()->factory()->prototype_string(), lookup->name()) && receiver->IsConstructor() && !Handle::cast(receiver) ->map() ->has_non_instance_prototype()) { Handle stub; TRACE_HANDLER_STATS(isolate(), LoadIC_FunctionPrototypeStub); FunctionPrototypeStub function_prototype_stub(isolate()); return function_prototype_stub.GetCode(); } Handle map = receiver_map(); Handle holder = lookup->GetHolder(); bool receiver_is_holder = receiver.is_identical_to(holder); switch (lookup->state()) { case LookupIterator::INTERCEPTOR: break; // Custom-compiled handler. case LookupIterator::ACCESSOR: { // Use simple field loads for some well-known callback properties. // The method will only return true for absolute truths based on the // receiver maps. int object_offset; if (Accessors::IsJSObjectFieldAccessor(map, lookup->name(), &object_offset)) { FieldIndex index = FieldIndex::ForInObjectOffset(object_offset, *map); return SimpleFieldLoad(index); } if (IsCompatibleReceiver(lookup, map)) { Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorPair()) { if (!holder->HasFastProperties()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } // When debugging we need to go the slow path to flood the accessor. if (GetSharedFunctionInfo()->HasDebugInfo()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->getter()) == nullptr) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } // Ruled out by IsCompatibleReceiver() above. DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, map)); if (!holder->HasFastProperties()) return slow_stub(); if (receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadApiGetterStub); int index = lookup->GetAccessorIndex(); LoadApiGetterStub stub(isolate(), true, index); return stub.GetCode(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } } TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (kind() != Code::LOAD_IC && kind() != Code::LOAD_GLOBAL_IC) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } // There is only one shared stub for loading normalized // properties. It does not traverse the prototype chain, so the // property must be found in the object for the stub to be // applicable. if (!receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } TRACE_HANDLER_STATS(isolate(), LoadIC_LoadNormal); return isolate()->builtins()->LoadIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { FieldIndex field = lookup->GetFieldIndex(); if (receiver_is_holder) { return SimpleFieldLoad(field); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); if (receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadConstantStub); LoadConstantStub stub(isolate(), lookup->GetConstantIndex()); return stub.GetCode(); } break; // Custom-compiled handler. } case LookupIterator::INTEGER_INDEXED_EXOTIC: TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); } return Handle::null(); } Handle LoadIC::CompileHandler(LookupIterator* lookup, Handle unused, CacheHolderFlag cache_holder) { Handle holder = lookup->GetHolder(); #ifdef DEBUG // Only used by DCHECKs below. Handle receiver = lookup->GetReceiver(); bool receiver_is_holder = receiver.is_identical_to(holder); #endif // Non-map-specific handler stubs have already been selected. DCHECK(!receiver->IsString() || !Name::Equals(isolate()->factory()->length_string(), lookup->name())); DCHECK(!receiver->IsStringWrapper() || !Name::Equals(isolate()->factory()->length_string(), lookup->name())); DCHECK(!( receiver->IsJSFunction() && Name::Equals(isolate()->factory()->prototype_string(), lookup->name()) && receiver->IsConstructor() && !Handle::cast(receiver) ->map() ->has_non_instance_prototype())); Handle map = receiver_map(); switch (lookup->state()) { case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->getter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadInterceptor); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); // Perform a lookup behind the interceptor. Copy the LookupIterator since // the original iterator will be used to fetch the value. LookupIterator it = *lookup; it.Next(); LookupForRead(&it); return compiler.CompileLoadInterceptor(&it); } case LookupIterator::ACCESSOR: { #ifdef DEBUG int object_offset; DCHECK(!Accessors::IsJSObjectFieldAccessor(map, lookup->name(), &object_offset)); #endif DCHECK(IsCompatibleReceiver(lookup, map)); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorPair()) { DCHECK(holder->HasFastProperties()); DCHECK(!GetSharedFunctionInfo()->HasDebugInfo()); Handle getter(Handle::cast(accessors)->getter(), isolate()); CallOptimization call_optimization(getter); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); if (call_optimization.is_simple_api_call()) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadCallback); int index = lookup->GetAccessorIndex(); Handle code = compiler.CompileLoadCallback( lookup->name(), call_optimization, index); return code; } TRACE_HANDLER_STATS(isolate(), LoadIC_LoadViaGetter); int expected_arguments = Handle::cast(getter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileLoadViaGetter( lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } else { DCHECK(accessors->IsAccessorInfo()); Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->getter()) != nullptr); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, map)); DCHECK(holder->HasFastProperties()); DCHECK(!receiver_is_holder); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadCallback); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle code = compiler.CompileLoadCallback(lookup->name(), info); return code; } UNREACHABLE(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC); DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadGlobal); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle cell = lookup->GetPropertyCell(); Handle code = compiler.CompileLoadGlobal( cell, lookup->name(), lookup->IsConfigurable()); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { FieldIndex field = lookup->GetFieldIndex(); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadField); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadField(lookup->name(), field); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadConstant); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadConstant(lookup->name(), lookup->GetConstantIndex()); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } static Handle TryConvertKey(Handle key, Isolate* isolate) { // This helper implements a few common fast cases for converting // non-smi keys of keyed loads/stores to a smi or a string. if (key->IsHeapNumber()) { double value = Handle::cast(key)->value(); if (std::isnan(value)) { key = isolate->factory()->nan_string(); } else { int int_value = FastD2I(value); if (value == int_value && Smi::IsValid(int_value)) { key = handle(Smi::FromInt(int_value), isolate); } } } else if (key->IsUndefined(isolate)) { key = isolate->factory()->undefined_string(); } return key; } void KeyedLoadIC::UpdateLoadElement(Handle receiver) { Handle receiver_map(receiver->map(), isolate()); DCHECK(receiver_map->instance_type() != JS_VALUE_TYPE && receiver_map->instance_type() != JS_PROXY_TYPE); // Checked by caller. MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { Handle map = target_receiver_maps.at(i); if (map.is_null()) continue; if (map->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSValue"); return; } if (map->instance_type() == JS_PROXY_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSProxy"); return; } } // The first time a receiver is seen that is a transitioned version of the // previous monomorphic receiver type, assume the new ElementsKind is the // monomorphic type. This benefits global arrays that only transition // once, and all call sites accessing them are faster if they remain // monomorphic. If this optimistic assumption is not true, the IC will // miss again and it will become polymorphic and support both the // untransitioned and transitioned maps. if (state() == MONOMORPHIC && !receiver->IsString() && IsMoreGeneralElementsKindTransition( target_receiver_maps.at(0)->elements_kind(), Handle::cast(receiver)->GetElementsKind())) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } DCHECK(state() != GENERIC); // Determine the list of receiver maps that this call site has seen, // adding the map that was just encountered. if (!AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map)) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the generic stub. TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the generic // version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "max polymorph exceeded"); return; } CodeHandleList handlers(target_receiver_maps.length()); TRACE_HANDLER_STATS(isolate(), KeyedLoadIC_PolymorphicElement); ElementHandlerCompiler compiler(isolate()); compiler.CompileElementHandlers(&target_receiver_maps, &handlers); ConfigureVectorState(Handle(), &target_receiver_maps, &handlers); } MaybeHandle KeyedLoadIC::Load(Handle object, Handle key) { if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } Handle load_handle; // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION(isolate(), load_handle, LoadIC::Load(object, Handle::cast(key)), Object); } else if (FLAG_use_ic && !object->IsAccessCheckNeeded() && !object->IsJSValue()) { if (object->IsJSObject() || (object->IsString() && key->IsNumber())) { Handle receiver = Handle::cast(object); if (object->IsString() || key->IsSmi()) UpdateLoadElement(receiver); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "set generic"); } TRACE_IC("LoadIC", key); if (!load_handle.is_null()) return load_handle; Handle result; ASSIGN_RETURN_ON_EXCEPTION(isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } bool StoreIC::LookupForWrite(LookupIterator* it, Handle value, JSReceiver::StoreFromKeyed store_mode) { // Disable ICs for non-JSObjects for now. Handle object = it->GetReceiver(); if (!object->IsJSObject()) return false; Handle receiver = Handle::cast(object); DCHECK(!receiver->map()->is_deprecated()); for (; it->IsFound(); it->Next()) { switch (it->state()) { case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); case LookupIterator::JSPROXY: return false; case LookupIterator::INTERCEPTOR: { Handle holder = it->GetHolder(); InterceptorInfo* info = holder->GetNamedInterceptor(); if (it->HolderIsReceiverOrHiddenPrototype()) { return !info->non_masking() && receiver.is_identical_to(holder) && !info->setter()->IsUndefined(it->isolate()); } else if (!info->getter()->IsUndefined(it->isolate()) || !info->query()->IsUndefined(it->isolate())) { return false; } break; } case LookupIterator::ACCESS_CHECK: if (it->GetHolder()->IsAccessCheckNeeded()) return false; break; case LookupIterator::ACCESSOR: return !it->IsReadOnly(); case LookupIterator::INTEGER_INDEXED_EXOTIC: return false; case LookupIterator::DATA: { if (it->IsReadOnly()) return false; Handle holder = it->GetHolder(); if (receiver.is_identical_to(holder)) { it->PrepareForDataProperty(value); // The previous receiver map might just have been deprecated, // so reload it. update_receiver_map(receiver); return true; } // Receiver != holder. if (receiver->IsJSGlobalProxy()) { PrototypeIterator iter(it->isolate(), receiver); return it->GetHolder().is_identical_to( PrototypeIterator::GetCurrent(iter)); } if (it->HolderIsReceiverOrHiddenPrototype()) return false; if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } } } receiver = it->GetStoreTarget(); if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } MaybeHandle StoreIC::Store(Handle object, Handle name, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (object->IsJSGlobalObject() && name->IsString()) { // Look up in script context table. Handle str_name = Handle::cast(name); Handle global = Handle::cast(object); Handle script_contexts( global->native_context()->script_context_table()); ScriptContextTable::LookupResult lookup_result; if (ScriptContextTable::Lookup(script_contexts, str_name, &lookup_result)) { Handle script_context = ScriptContextTable::GetContext( script_contexts, lookup_result.context_index); if (lookup_result.mode == CONST) { return TypeError(MessageTemplate::kConstAssign, object, name); } Handle previous_value = FixedArray::get(*script_context, lookup_result.slot_index, isolate()); if (previous_value->IsTheHole(isolate())) { // Do not install stubs and stay pre-monomorphic for // uninitialized accesses. return ReferenceError(name); } if (FLAG_use_ic && StoreScriptContextFieldStub::Accepted(&lookup_result)) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreScriptContextFieldStub); StoreScriptContextFieldStub stub(isolate(), &lookup_result); PatchCache(name, stub.GetCode()); } script_context->set(lookup_result.slot_index, *value); return value; } } // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object) || object->IsJSProxy()) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Object::SetProperty(object, name, value, language_mode()), Object); return result; } // If the object is undefined or null it's illegal to try to set any // properties on it; throw a TypeError in that case. if (object->IsUndefined(isolate()) || object->IsNull(isolate())) { return TypeError(MessageTemplate::kNonObjectPropertyStore, object, name); } if (state() != UNINITIALIZED) { JSObject::MakePrototypesFast(object, kStartAtPrototype, isolate()); } LookupIterator it(object, name); if (FLAG_use_ic) UpdateCaches(&it, value, store_mode); MAYBE_RETURN_NULL( Object::SetProperty(&it, value, language_mode(), store_mode)); return value; } Handle CallIC::initialize_stub_in_optimized_code( Isolate* isolate, int argc, ConvertReceiverMode mode, TailCallMode tail_call_mode) { CallICStub stub(isolate, CallICState(argc, mode, tail_call_mode)); Handle code = stub.GetCode(); return code; } Handle StoreIC::initialize_stub_in_optimized_code( Isolate* isolate, LanguageMode language_mode) { VectorStoreICStub stub(isolate, StoreICState(language_mode)); return stub.GetCode(); } void StoreIC::UpdateCaches(LookupIterator* lookup, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (state() == UNINITIALIZED) { // This is the first time we execute this inline cache. Set the target to // the pre monomorphic stub to delay setting the monomorphic state. ConfigureVectorState(PREMONOMORPHIC, Handle()); TRACE_IC("StoreIC", lookup->name()); return; } bool use_ic = LookupForWrite(lookup, value, store_mode); if (!use_ic) { TRACE_GENERIC_IC(isolate(), "StoreIC", "LookupForWrite said 'false'"); } Handle code = use_ic ? ComputeHandler(lookup, value) : slow_stub(); PatchCache(lookup->name(), code); TRACE_IC("StoreIC", lookup->name()); } static Handle PropertyCellStoreHandler( Isolate* isolate, Handle receiver, Handle holder, Handle name, Handle cell, PropertyCellType type) { auto constant_type = Nothing(); if (type == PropertyCellType::kConstantType) { constant_type = Just(cell->GetConstantType()); } StoreGlobalStub stub(isolate, type, constant_type, receiver->IsJSGlobalProxy()); auto code = stub.GetCodeCopyFromTemplate(holder, cell); // TODO(verwaest): Move caching of these NORMAL stubs outside as well. HeapObject::UpdateMapCodeCache(receiver, name, code); return code; } Handle StoreIC::GetMapIndependentHandler(LookupIterator* lookup) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { break; // Custom-compiled handler. } // Currently not handled by CompileStoreTransition. if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "transition from slow"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } DCHECK(lookup->IsCacheableTransition()); break; // Custom-compiled handler. } case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->setter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreInterceptorStub); StoreInterceptorStub stub(isolate()); return stub.GetCode(); } case LookupIterator::ACCESSOR: { if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "accessor on slow map"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->setter()) == nullptr) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter == nullptr"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (AccessorInfo::cast(*accessors)->is_special_data_property() && !lookup->HolderIsReceiverOrHiddenPrototype()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "special data property in prototype chain"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (!AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())) { TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver type"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorPair()) { Handle setter(Handle::cast(accessors)->setter(), isolate()); if (!setter->IsJSFunction() && !setter->IsFunctionTemplateInfo()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter not a function"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } CallOptimization call_optimization(setter); if (call_optimization.is_simple_api_call()) { if (call_optimization.IsCompatibleReceiver(receiver, holder)) { break; // Custom-compiled handler. } TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreNormal); DCHECK(holder.is_identical_to(receiver)); return isolate()->builtins()->StoreIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } if (use_stub) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreFieldStub); StoreFieldStub stub(isolate(), lookup->GetFieldIndex(), lookup->representation()); return stub.GetCode(); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); TRACE_GENERIC_IC(isolate(), "StoreIC", "constant property"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } return Handle::null(); } Handle StoreIC::CompileHandler(LookupIterator* lookup, Handle value, CacheHolderFlag cache_holder) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { // TODO(dcarney): this currently just deopts. Use the transition cell. TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobalTransition); auto cell = isolate()->factory()->NewPropertyCell(); cell->set_value(*value); auto code = PropertyCellStoreHandler( isolate(), store_target, Handle::cast(store_target), lookup->name(), cell, PropertyCellType::kConstant); cell->set_value(isolate()->heap()->the_hole_value()); return code; } Handle transition = lookup->transition_map(); // Currently not handled by CompileStoreTransition. DCHECK(holder->HasFastProperties()); DCHECK(lookup->IsCacheableTransition()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreTransition); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreTransition(transition, lookup->name()); } case LookupIterator::INTERCEPTOR: UNREACHABLE(); case LookupIterator::ACCESSOR: { DCHECK(holder->HasFastProperties()); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->setter()) != 0); DCHECK(!AccessorInfo::cast(*accessors)->is_special_data_property() || lookup->HolderIsReceiverOrHiddenPrototype()); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), info, language_mode()); return code; } else { DCHECK(accessors->IsAccessorPair()); Handle setter(Handle::cast(accessors)->setter(), isolate()); DCHECK(setter->IsJSFunction() || setter->IsFunctionTemplateInfo()); CallOptimization call_optimization(setter); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); if (call_optimization.is_simple_api_call()) { DCHECK(call_optimization.IsCompatibleReceiver(receiver, holder)); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), call_optimization, lookup->GetAccessorIndex()); return code; } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreViaSetter); int expected_arguments = JSFunction::cast(*setter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileStoreViaSetter(receiver, lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobal); DCHECK(holder.is_identical_to(receiver) || receiver->map()->prototype() == *holder); auto cell = lookup->GetPropertyCell(); auto updated_type = PropertyCell::UpdatedType(cell, value, lookup->property_details()); auto code = PropertyCellStoreHandler( isolate(), receiver, Handle::cast(holder), lookup->name(), cell, updated_type); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { #ifdef DEBUG bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } DCHECK(!use_stub); #endif TRACE_HANDLER_STATS(isolate(), StoreIC_StoreField); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreField(lookup); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); UNREACHABLE(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } void KeyedStoreIC::UpdateStoreElement(Handle receiver_map, KeyedAccessStoreMode store_mode) { MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle monomorphic_map = ComputeTransitionedMap(receiver_map, store_mode); store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(monomorphic_map, store_mode); return ConfigureVectorState(Handle(), monomorphic_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { if (!target_receiver_maps.at(i).is_null() && target_receiver_maps.at(i)->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "JSValue"); return; } } // There are several special cases where an IC that is MONOMORPHIC can still // transition to a different GetNonTransitioningStoreMode IC that handles a // superset of the original IC. Handle those here if the receiver map hasn't // changed or it has transitioned to a more general kind. KeyedAccessStoreMode old_store_mode = GetKeyedAccessStoreMode(); Handle previous_receiver_map = target_receiver_maps.at(0); if (state() == MONOMORPHIC) { Handle transitioned_receiver_map = receiver_map; if (IsTransitionStoreMode(store_mode)) { transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); } if ((receiver_map.is_identical_to(previous_receiver_map) && IsTransitionStoreMode(store_mode)) || IsTransitionOfMonomorphicTarget(*previous_receiver_map, *transitioned_receiver_map)) { // If the "old" and "new" maps are in the same elements map family, or // if they at least come from the same origin for a transitioning store, // stay MONOMORPHIC and use the map for the most generic ElementsKind. store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler( transitioned_receiver_map, store_mode); ConfigureVectorState(Handle(), transitioned_receiver_map, handler); return; } if (receiver_map.is_identical_to(previous_receiver_map) && old_store_mode == STANDARD_STORE && (store_mode == STORE_AND_GROW_NO_TRANSITION || store_mode == STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS || store_mode == STORE_NO_TRANSITION_HANDLE_COW)) { // A "normal" IC that handles stores can switch to a version that can // grow at the end of the array, handle OOB accesses or copy COW arrays // and still stay MONOMORPHIC. Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(receiver_map, store_mode); return ConfigureVectorState(Handle(), receiver_map, handler); } } DCHECK(state() != GENERIC); bool map_added = AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map); if (IsTransitionStoreMode(store_mode)) { Handle transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); map_added |= AddOneReceiverMapIfMissing(&target_receiver_maps, transitioned_receiver_map); } if (!map_added) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the megamorphic stub which can handle everything. TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the // megamorphic version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) return; // Make sure all polymorphic handlers have the same store mode, otherwise the // megamorphic stub must be used. store_mode = GetNonTransitioningStoreMode(store_mode); if (old_store_mode != STANDARD_STORE) { if (store_mode == STANDARD_STORE) { store_mode = old_store_mode; } else if (store_mode != old_store_mode) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "store mode mismatch"); return; } } // If the store mode isn't the standard mode, make sure that all polymorphic // receivers are either external arrays, or all "normal" arrays. Otherwise, // use the megamorphic stub. if (store_mode != STANDARD_STORE) { int external_arrays = 0; for (int i = 0; i < target_receiver_maps.length(); ++i) { if (target_receiver_maps[i]->has_fixed_typed_array_elements()) { external_arrays++; } } if (external_arrays != 0 && external_arrays != target_receiver_maps.length()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unsupported combination of external and normal arrays"); return; } } TRACE_HANDLER_STATS(isolate(), KeyedStoreIC_Polymorphic); MapHandleList transitioned_maps(target_receiver_maps.length()); CodeHandleList handlers(target_receiver_maps.length()); PropertyICCompiler::ComputeKeyedStorePolymorphicHandlers( &target_receiver_maps, &transitioned_maps, &handlers, store_mode); ConfigureVectorState(&target_receiver_maps, &transitioned_maps, &handlers); } Handle KeyedStoreIC::ComputeTransitionedMap( Handle map, KeyedAccessStoreMode store_mode) { switch (store_mode) { case STORE_TRANSITION_TO_OBJECT: case STORE_AND_GROW_TRANSITION_TO_OBJECT: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_ELEMENTS : FAST_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_TRANSITION_TO_DOUBLE: case STORE_AND_GROW_TRANSITION_TO_DOUBLE: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_DOUBLE_ELEMENTS : FAST_DOUBLE_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS: DCHECK(map->has_fixed_typed_array_elements()); // Fall through case STORE_NO_TRANSITION_HANDLE_COW: case STANDARD_STORE: case STORE_AND_GROW_NO_TRANSITION: return map; } UNREACHABLE(); return MaybeHandle().ToHandleChecked(); } bool IsOutOfBoundsAccess(Handle receiver, uint32_t index) { uint32_t length = 0; if (receiver->IsJSArray()) { JSArray::cast(*receiver)->length()->ToArrayLength(&length); } else { length = static_cast(receiver->elements()->length()); } return index >= length; } static KeyedAccessStoreMode GetStoreMode(Handle receiver, uint32_t index, Handle value) { bool oob_access = IsOutOfBoundsAccess(receiver, index); // Don't consider this a growing store if the store would send the receiver to // dictionary mode. bool allow_growth = receiver->IsJSArray() && oob_access && !receiver->WouldConvertToSlowElements(index); if (allow_growth) { // Handle growing array in stub if necessary. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_DOUBLE; } if (value->IsHeapObject()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } return STORE_AND_GROW_NO_TRANSITION; } else { // Handle only in-bounds elements accesses. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_TRANSITION_TO_DOUBLE; } else if (value->IsHeapObject()) { return STORE_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_TRANSITION_TO_OBJECT; } } if (!FLAG_trace_external_array_abuse && receiver->map()->has_fixed_typed_array_elements() && oob_access) { return STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS; } Heap* heap = receiver->GetHeap(); if (receiver->elements()->map() == heap->fixed_cow_array_map()) { return STORE_NO_TRANSITION_HANDLE_COW; } else { return STANDARD_STORE; } } } MaybeHandle KeyedStoreIC::Store(Handle object, Handle key, Handle value) { // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); return result; } // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); Handle store_handle; uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION( isolate(), store_handle, StoreIC::Store(object, Handle::cast(key), value, JSReceiver::MAY_BE_STORE_FROM_KEYED), Object); if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unhandled internalized string key"); TRACE_IC("StoreIC", key); } return store_handle; } bool use_ic = FLAG_use_ic && !object->IsStringWrapper() && !object->IsAccessCheckNeeded() && !object->IsJSGlobalProxy(); if (use_ic && !object->IsSmi()) { // Don't use ICs for maps of the objects in Array's prototype chain. We // expect to be able to trap element sets to objects with those maps in // the runtime to enable optimization of element hole access. Handle heap_object = Handle::cast(object); if (heap_object->map()->IsMapInArrayPrototypeChain()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "map in array prototype"); use_ic = false; } } Handle old_receiver_map; bool sloppy_arguments_elements = false; bool key_is_valid_index = false; KeyedAccessStoreMode store_mode = STANDARD_STORE; if (use_ic && object->IsJSObject()) { Handle receiver = Handle::cast(object); old_receiver_map = handle(receiver->map(), isolate()); sloppy_arguments_elements = !is_sloppy(language_mode()) && receiver->elements()->map() == isolate()->heap()->sloppy_arguments_elements_map(); if (!sloppy_arguments_elements) { key_is_valid_index = key->IsSmi() && Smi::cast(*key)->value() >= 0; if (key_is_valid_index) { uint32_t index = static_cast(Smi::cast(*key)->value()); store_mode = GetStoreMode(receiver, index, value); } } } DCHECK(store_handle.is_null()); ASSIGN_RETURN_ON_EXCEPTION(isolate(), store_handle, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); if (use_ic) { if (!old_receiver_map.is_null()) { if (sloppy_arguments_elements) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "arguments receiver"); } else if (key_is_valid_index) { // We should go generic if receiver isn't a dictionary, but our // prototype chain does have dictionary elements. This ensures that // other non-dictionary receivers in the polymorphic case benefit // from fast path keyed stores. if (!old_receiver_map->DictionaryElementsInPrototypeChainOnly()) { UpdateStoreElement(old_receiver_map, store_mode); } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "dictionary or proxy prototype"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-smi-like key"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-JSObject receiver"); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "set generic"); } TRACE_IC("StoreIC", key); return store_handle; } void CallIC::HandleMiss(Handle function) { Handle name = isolate()->factory()->empty_string(); CallICNexus* nexus = casted_nexus(); Object* feedback = nexus->GetFeedback(); // Hand-coded MISS handling is easier if CallIC slots don't contain smis. DCHECK(!feedback->IsSmi()); if (feedback->IsWeakCell() || !function->IsJSFunction() || feedback->IsAllocationSite()) { // We are going generic. nexus->ConfigureMegamorphic(); } else { DCHECK(feedback == *TypeFeedbackVector::UninitializedSentinel(isolate())); Handle js_function = Handle::cast(function); Handle array_function = Handle(isolate()->native_context()->array_function()); if (array_function.is_identical_to(js_function)) { // Alter the slot. nexus->ConfigureMonomorphicArray(); } else if (js_function->context()->native_context() != *isolate()->native_context()) { // Don't collect cross-native context feedback for the CallIC. // TODO(bmeurer): We should collect the SharedFunctionInfo as // feedback in this case instead. nexus->ConfigureMegamorphic(); } else { nexus->ConfigureMonomorphic(js_function); } } if (function->IsJSFunction()) { Handle
LoadIC::initialize_stub_in_optimized_code(Isolate* isolate) { if (FLAG_tf_load_ic_stub) { return LoadICTFStub(isolate).GetCode(); } return LoadICStub(isolate).GetCode(); } Handle LoadGlobalIC::initialize_stub_in_optimized_code( Isolate* isolate, ExtraICState extra_state) { return LoadGlobalICStub(isolate, LoadGlobalICState(extra_state)).GetCode(); } Handle KeyedLoadIC::initialize_stub_in_optimized_code( Isolate* isolate, ExtraICState extra_state) { // TODO(ishell): remove extra_ic_state return KeyedLoadICStub(isolate).GetCode(); } Handle KeyedStoreIC::initialize_stub_in_optimized_code( Isolate* isolate, LanguageMode language_mode) { StoreICState state = StoreICState(language_mode); return VectorKeyedStoreICStub(isolate, state).GetCode(); } Handle KeyedStoreIC::ChooseMegamorphicStub(Isolate* isolate, ExtraICState extra_state) { LanguageMode mode = StoreICState::GetLanguageMode(extra_state); return is_strict(mode) ? isolate->builtins()->KeyedStoreIC_Megamorphic_Strict() : isolate->builtins()->KeyedStoreIC_Megamorphic(); } Handle LoadIC::SimpleFieldLoad(FieldIndex index) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadFieldStub); LoadFieldStub stub(isolate(), index); return stub.GetCode(); } bool IsCompatibleReceiver(LookupIterator* lookup, Handle receiver_map) { DCHECK(lookup->state() == LookupIterator::ACCESSOR); Isolate* isolate = lookup->isolate(); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (info->getter() != NULL && !AccessorInfo::IsCompatibleReceiverMap(isolate, info, receiver_map)) { return false; } } else if (accessors->IsAccessorPair()) { Handle getter(Handle::cast(accessors)->getter(), isolate); if (!getter->IsJSFunction() && !getter->IsFunctionTemplateInfo()) { return false; } Handle holder = lookup->GetHolder(); Handle receiver = lookup->GetReceiver(); if (holder->HasFastProperties()) { if (getter->IsJSFunction()) { Handle function = Handle::cast(getter); if (!receiver->IsJSObject() && !function->shared()->IsBuiltin() && is_sloppy(function->shared()->language_mode())) { // Calling sloppy non-builtins with a value as the receiver // requires boxing. return false; } } CallOptimization call_optimization(getter); if (call_optimization.is_simple_api_call() && !call_optimization.IsCompatibleReceiverMap(receiver_map, holder)) { return false; } } } return true; } void LoadIC::UpdateCaches(LookupIterator* lookup) { if (state() == UNINITIALIZED && kind() != Code::LOAD_GLOBAL_IC) { // This is the first time we execute this inline cache. Set the target to // the pre monomorphic stub to delay setting the monomorphic state. ConfigureVectorState(PREMONOMORPHIC, Handle()); TRACE_IC("LoadIC", lookup->name()); return; } Handle code; if (lookup->state() == LookupIterator::JSPROXY || lookup->state() == LookupIterator::ACCESS_CHECK) { code = slow_stub(); } else if (!lookup->IsFound()) { if (kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC) { code = NamedLoadHandlerCompiler::ComputeLoadNonexistent(lookup->name(), receiver_map()); // TODO(jkummerow/verwaest): Introduce a builtin that handles this case. if (code.is_null()) code = slow_stub(); } else { code = slow_stub(); } } else { if (kind() == Code::LOAD_GLOBAL_IC && lookup->state() == LookupIterator::DATA && lookup->GetHolder()->IsJSGlobalObject()) { #if DEBUG Handle holder = lookup->GetHolder(); Handle receiver = lookup->GetReceiver(); DCHECK_EQ(*receiver, *holder); #endif // Now update the cell in the feedback vector. LoadGlobalICNexus* nexus = casted_nexus(); nexus->ConfigurePropertyCellMode(lookup->GetPropertyCell()); TRACE_IC("LoadGlobalIC", lookup->name()); return; } else if (lookup->state() == LookupIterator::ACCESSOR) { if (!IsCompatibleReceiver(lookup, receiver_map())) { TRACE_GENERIC_IC(isolate(), "LoadIC", "incompatible receiver type"); code = slow_stub(); } } else if (lookup->state() == LookupIterator::INTERCEPTOR) { if (kind() == Code::LOAD_GLOBAL_IC) { // The interceptor handler requires name but it is not passed explicitly // to LoadGlobalIC and the LoadGlobalIC dispatcher also does not load // it so we will just use slow stub. code = slow_stub(); } else { // Perform a lookup behind the interceptor. Copy the LookupIterator // since the original iterator will be used to fetch the value. LookupIterator it = *lookup; it.Next(); LookupForRead(&it); if (it.state() == LookupIterator::ACCESSOR && !IsCompatibleReceiver(&it, receiver_map())) { TRACE_GENERIC_IC(isolate(), "LoadIC", "incompatible receiver type"); code = slow_stub(); } } } if (code.is_null()) code = ComputeHandler(lookup); } PatchCache(lookup->name(), code); TRACE_IC("LoadIC", lookup->name()); } void IC::UpdateMegamorphicCache(Map* map, Name* name, Code* code) { isolate()->stub_cache()->Set(name, map, code); } Handle IC::ComputeHandler(LookupIterator* lookup, Handle value) { // Try to find a globally shared handler stub. Handle code = GetMapIndependentHandler(lookup); if (!code.is_null()) return code; // Otherwise check the map's handler cache for a map-specific handler, and // compile one if the cache comes up empty. bool receiver_is_holder = lookup->GetReceiver().is_identical_to(lookup->GetHolder()); CacheHolderFlag flag; Handle stub_holder_map; if (kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC || kind() == Code::KEYED_LOAD_IC) { stub_holder_map = IC::GetHandlerCacheHolder( receiver_map(), receiver_is_holder, isolate(), &flag); } else { DCHECK(kind() == Code::STORE_IC || kind() == Code::KEYED_STORE_IC); // Store handlers cannot be cached on prototypes. flag = kCacheOnReceiver; stub_holder_map = receiver_map(); } code = PropertyHandlerCompiler::Find(lookup->name(), stub_holder_map, kind(), flag); // Use the cached value if it exists, and if it is different from the // handler that just missed. if (!code.is_null()) { Handle handler; if (maybe_handler_.ToHandle(&handler)) { if (!handler.is_identical_to(code)) { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } else { // maybe_handler_ is only populated for MONOMORPHIC and POLYMORPHIC ICs. // In MEGAMORPHIC case, check if the handler in the megamorphic stub // cache (which just missed) is different from the cached handler. if (state() == MEGAMORPHIC && lookup->GetReceiver()->IsHeapObject()) { Map* map = Handle::cast(lookup->GetReceiver())->map(); Code* megamorphic_cached_code = isolate()->stub_cache()->Get(*lookup->name(), map, code->flags()); if (megamorphic_cached_code != *code) { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } else { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } } code = CompileHandler(lookup, value, flag); DCHECK(code->is_handler()); DCHECK(Code::ExtractCacheHolderFromFlags(code->flags()) == flag); Map::UpdateCodeCache(stub_holder_map, lookup->name(), code); return code; } Handle LoadIC::GetMapIndependentHandler(LookupIterator* lookup) { Handle receiver = lookup->GetReceiver(); if (receiver->IsString() && Name::Equals(isolate()->factory()->length_string(), lookup->name())) { FieldIndex index = FieldIndex::ForInObjectOffset(String::kLengthOffset); return SimpleFieldLoad(index); } if (receiver->IsStringWrapper() && Name::Equals(isolate()->factory()->length_string(), lookup->name())) { TRACE_HANDLER_STATS(isolate(), LoadIC_StringLengthStub); StringLengthStub string_length_stub(isolate()); return string_length_stub.GetCode(); } // Use specialized code for getting prototype of functions. if (receiver->IsJSFunction() && Name::Equals(isolate()->factory()->prototype_string(), lookup->name()) && receiver->IsConstructor() && !Handle::cast(receiver) ->map() ->has_non_instance_prototype()) { Handle stub; TRACE_HANDLER_STATS(isolate(), LoadIC_FunctionPrototypeStub); FunctionPrototypeStub function_prototype_stub(isolate()); return function_prototype_stub.GetCode(); } Handle map = receiver_map(); Handle holder = lookup->GetHolder(); bool receiver_is_holder = receiver.is_identical_to(holder); switch (lookup->state()) { case LookupIterator::INTERCEPTOR: break; // Custom-compiled handler. case LookupIterator::ACCESSOR: { // Use simple field loads for some well-known callback properties. // The method will only return true for absolute truths based on the // receiver maps. int object_offset; if (Accessors::IsJSObjectFieldAccessor(map, lookup->name(), &object_offset)) { FieldIndex index = FieldIndex::ForInObjectOffset(object_offset, *map); return SimpleFieldLoad(index); } if (IsCompatibleReceiver(lookup, map)) { Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorPair()) { if (!holder->HasFastProperties()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } // When debugging we need to go the slow path to flood the accessor. if (GetSharedFunctionInfo()->HasDebugInfo()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->getter()) == nullptr) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } // Ruled out by IsCompatibleReceiver() above. DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, map)); if (!holder->HasFastProperties()) return slow_stub(); if (receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadApiGetterStub); int index = lookup->GetAccessorIndex(); LoadApiGetterStub stub(isolate(), true, index); return stub.GetCode(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } } TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (kind() != Code::LOAD_IC && kind() != Code::LOAD_GLOBAL_IC) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } // There is only one shared stub for loading normalized // properties. It does not traverse the prototype chain, so the // property must be found in the object for the stub to be // applicable. if (!receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } TRACE_HANDLER_STATS(isolate(), LoadIC_LoadNormal); return isolate()->builtins()->LoadIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { FieldIndex field = lookup->GetFieldIndex(); if (receiver_is_holder) { return SimpleFieldLoad(field); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); if (receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadConstantStub); LoadConstantStub stub(isolate(), lookup->GetConstantIndex()); return stub.GetCode(); } break; // Custom-compiled handler. } case LookupIterator::INTEGER_INDEXED_EXOTIC: TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); } return Handle::null(); } Handle LoadIC::CompileHandler(LookupIterator* lookup, Handle unused, CacheHolderFlag cache_holder) { Handle holder = lookup->GetHolder(); #ifdef DEBUG // Only used by DCHECKs below. Handle receiver = lookup->GetReceiver(); bool receiver_is_holder = receiver.is_identical_to(holder); #endif // Non-map-specific handler stubs have already been selected. DCHECK(!receiver->IsString() || !Name::Equals(isolate()->factory()->length_string(), lookup->name())); DCHECK(!receiver->IsStringWrapper() || !Name::Equals(isolate()->factory()->length_string(), lookup->name())); DCHECK(!( receiver->IsJSFunction() && Name::Equals(isolate()->factory()->prototype_string(), lookup->name()) && receiver->IsConstructor() && !Handle::cast(receiver) ->map() ->has_non_instance_prototype())); Handle map = receiver_map(); switch (lookup->state()) { case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->getter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadInterceptor); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); // Perform a lookup behind the interceptor. Copy the LookupIterator since // the original iterator will be used to fetch the value. LookupIterator it = *lookup; it.Next(); LookupForRead(&it); return compiler.CompileLoadInterceptor(&it); } case LookupIterator::ACCESSOR: { #ifdef DEBUG int object_offset; DCHECK(!Accessors::IsJSObjectFieldAccessor(map, lookup->name(), &object_offset)); #endif DCHECK(IsCompatibleReceiver(lookup, map)); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorPair()) { DCHECK(holder->HasFastProperties()); DCHECK(!GetSharedFunctionInfo()->HasDebugInfo()); Handle getter(Handle::cast(accessors)->getter(), isolate()); CallOptimization call_optimization(getter); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); if (call_optimization.is_simple_api_call()) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadCallback); int index = lookup->GetAccessorIndex(); Handle code = compiler.CompileLoadCallback( lookup->name(), call_optimization, index); return code; } TRACE_HANDLER_STATS(isolate(), LoadIC_LoadViaGetter); int expected_arguments = Handle::cast(getter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileLoadViaGetter( lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } else { DCHECK(accessors->IsAccessorInfo()); Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->getter()) != nullptr); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, map)); DCHECK(holder->HasFastProperties()); DCHECK(!receiver_is_holder); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadCallback); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle code = compiler.CompileLoadCallback(lookup->name(), info); return code; } UNREACHABLE(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC); DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadGlobal); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle cell = lookup->GetPropertyCell(); Handle code = compiler.CompileLoadGlobal( cell, lookup->name(), lookup->IsConfigurable()); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { FieldIndex field = lookup->GetFieldIndex(); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadField); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadField(lookup->name(), field); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadConstant); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadConstant(lookup->name(), lookup->GetConstantIndex()); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } static Handle TryConvertKey(Handle key, Isolate* isolate) { // This helper implements a few common fast cases for converting // non-smi keys of keyed loads/stores to a smi or a string. if (key->IsHeapNumber()) { double value = Handle::cast(key)->value(); if (std::isnan(value)) { key = isolate->factory()->nan_string(); } else { int int_value = FastD2I(value); if (value == int_value && Smi::IsValid(int_value)) { key = handle(Smi::FromInt(int_value), isolate); } } } else if (key->IsUndefined(isolate)) { key = isolate->factory()->undefined_string(); } return key; } void KeyedLoadIC::UpdateLoadElement(Handle receiver) { Handle receiver_map(receiver->map(), isolate()); DCHECK(receiver_map->instance_type() != JS_VALUE_TYPE && receiver_map->instance_type() != JS_PROXY_TYPE); // Checked by caller. MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { Handle map = target_receiver_maps.at(i); if (map.is_null()) continue; if (map->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSValue"); return; } if (map->instance_type() == JS_PROXY_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSProxy"); return; } } // The first time a receiver is seen that is a transitioned version of the // previous monomorphic receiver type, assume the new ElementsKind is the // monomorphic type. This benefits global arrays that only transition // once, and all call sites accessing them are faster if they remain // monomorphic. If this optimistic assumption is not true, the IC will // miss again and it will become polymorphic and support both the // untransitioned and transitioned maps. if (state() == MONOMORPHIC && !receiver->IsString() && IsMoreGeneralElementsKindTransition( target_receiver_maps.at(0)->elements_kind(), Handle::cast(receiver)->GetElementsKind())) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } DCHECK(state() != GENERIC); // Determine the list of receiver maps that this call site has seen, // adding the map that was just encountered. if (!AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map)) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the generic stub. TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the generic // version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "max polymorph exceeded"); return; } CodeHandleList handlers(target_receiver_maps.length()); TRACE_HANDLER_STATS(isolate(), KeyedLoadIC_PolymorphicElement); ElementHandlerCompiler compiler(isolate()); compiler.CompileElementHandlers(&target_receiver_maps, &handlers); ConfigureVectorState(Handle(), &target_receiver_maps, &handlers); } MaybeHandle KeyedLoadIC::Load(Handle object, Handle key) { if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } Handle load_handle; // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION(isolate(), load_handle, LoadIC::Load(object, Handle::cast(key)), Object); } else if (FLAG_use_ic && !object->IsAccessCheckNeeded() && !object->IsJSValue()) { if (object->IsJSObject() || (object->IsString() && key->IsNumber())) { Handle receiver = Handle::cast(object); if (object->IsString() || key->IsSmi()) UpdateLoadElement(receiver); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "set generic"); } TRACE_IC("LoadIC", key); if (!load_handle.is_null()) return load_handle; Handle result; ASSIGN_RETURN_ON_EXCEPTION(isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } bool StoreIC::LookupForWrite(LookupIterator* it, Handle value, JSReceiver::StoreFromKeyed store_mode) { // Disable ICs for non-JSObjects for now. Handle object = it->GetReceiver(); if (!object->IsJSObject()) return false; Handle receiver = Handle::cast(object); DCHECK(!receiver->map()->is_deprecated()); for (; it->IsFound(); it->Next()) { switch (it->state()) { case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); case LookupIterator::JSPROXY: return false; case LookupIterator::INTERCEPTOR: { Handle holder = it->GetHolder(); InterceptorInfo* info = holder->GetNamedInterceptor(); if (it->HolderIsReceiverOrHiddenPrototype()) { return !info->non_masking() && receiver.is_identical_to(holder) && !info->setter()->IsUndefined(it->isolate()); } else if (!info->getter()->IsUndefined(it->isolate()) || !info->query()->IsUndefined(it->isolate())) { return false; } break; } case LookupIterator::ACCESS_CHECK: if (it->GetHolder()->IsAccessCheckNeeded()) return false; break; case LookupIterator::ACCESSOR: return !it->IsReadOnly(); case LookupIterator::INTEGER_INDEXED_EXOTIC: return false; case LookupIterator::DATA: { if (it->IsReadOnly()) return false; Handle holder = it->GetHolder(); if (receiver.is_identical_to(holder)) { it->PrepareForDataProperty(value); // The previous receiver map might just have been deprecated, // so reload it. update_receiver_map(receiver); return true; } // Receiver != holder. if (receiver->IsJSGlobalProxy()) { PrototypeIterator iter(it->isolate(), receiver); return it->GetHolder().is_identical_to( PrototypeIterator::GetCurrent(iter)); } if (it->HolderIsReceiverOrHiddenPrototype()) return false; if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } } } receiver = it->GetStoreTarget(); if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } MaybeHandle StoreIC::Store(Handle object, Handle name, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (object->IsJSGlobalObject() && name->IsString()) { // Look up in script context table. Handle str_name = Handle::cast(name); Handle global = Handle::cast(object); Handle script_contexts( global->native_context()->script_context_table()); ScriptContextTable::LookupResult lookup_result; if (ScriptContextTable::Lookup(script_contexts, str_name, &lookup_result)) { Handle script_context = ScriptContextTable::GetContext( script_contexts, lookup_result.context_index); if (lookup_result.mode == CONST) { return TypeError(MessageTemplate::kConstAssign, object, name); } Handle previous_value = FixedArray::get(*script_context, lookup_result.slot_index, isolate()); if (previous_value->IsTheHole(isolate())) { // Do not install stubs and stay pre-monomorphic for // uninitialized accesses. return ReferenceError(name); } if (FLAG_use_ic && StoreScriptContextFieldStub::Accepted(&lookup_result)) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreScriptContextFieldStub); StoreScriptContextFieldStub stub(isolate(), &lookup_result); PatchCache(name, stub.GetCode()); } script_context->set(lookup_result.slot_index, *value); return value; } } // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object) || object->IsJSProxy()) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Object::SetProperty(object, name, value, language_mode()), Object); return result; } // If the object is undefined or null it's illegal to try to set any // properties on it; throw a TypeError in that case. if (object->IsUndefined(isolate()) || object->IsNull(isolate())) { return TypeError(MessageTemplate::kNonObjectPropertyStore, object, name); } if (state() != UNINITIALIZED) { JSObject::MakePrototypesFast(object, kStartAtPrototype, isolate()); } LookupIterator it(object, name); if (FLAG_use_ic) UpdateCaches(&it, value, store_mode); MAYBE_RETURN_NULL( Object::SetProperty(&it, value, language_mode(), store_mode)); return value; } Handle CallIC::initialize_stub_in_optimized_code( Isolate* isolate, int argc, ConvertReceiverMode mode, TailCallMode tail_call_mode) { CallICStub stub(isolate, CallICState(argc, mode, tail_call_mode)); Handle code = stub.GetCode(); return code; } Handle StoreIC::initialize_stub_in_optimized_code( Isolate* isolate, LanguageMode language_mode) { VectorStoreICStub stub(isolate, StoreICState(language_mode)); return stub.GetCode(); } void StoreIC::UpdateCaches(LookupIterator* lookup, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (state() == UNINITIALIZED) { // This is the first time we execute this inline cache. Set the target to // the pre monomorphic stub to delay setting the monomorphic state. ConfigureVectorState(PREMONOMORPHIC, Handle()); TRACE_IC("StoreIC", lookup->name()); return; } bool use_ic = LookupForWrite(lookup, value, store_mode); if (!use_ic) { TRACE_GENERIC_IC(isolate(), "StoreIC", "LookupForWrite said 'false'"); } Handle code = use_ic ? ComputeHandler(lookup, value) : slow_stub(); PatchCache(lookup->name(), code); TRACE_IC("StoreIC", lookup->name()); } static Handle PropertyCellStoreHandler( Isolate* isolate, Handle receiver, Handle holder, Handle name, Handle cell, PropertyCellType type) { auto constant_type = Nothing(); if (type == PropertyCellType::kConstantType) { constant_type = Just(cell->GetConstantType()); } StoreGlobalStub stub(isolate, type, constant_type, receiver->IsJSGlobalProxy()); auto code = stub.GetCodeCopyFromTemplate(holder, cell); // TODO(verwaest): Move caching of these NORMAL stubs outside as well. HeapObject::UpdateMapCodeCache(receiver, name, code); return code; } Handle StoreIC::GetMapIndependentHandler(LookupIterator* lookup) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { break; // Custom-compiled handler. } // Currently not handled by CompileStoreTransition. if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "transition from slow"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } DCHECK(lookup->IsCacheableTransition()); break; // Custom-compiled handler. } case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->setter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreInterceptorStub); StoreInterceptorStub stub(isolate()); return stub.GetCode(); } case LookupIterator::ACCESSOR: { if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "accessor on slow map"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->setter()) == nullptr) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter == nullptr"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (AccessorInfo::cast(*accessors)->is_special_data_property() && !lookup->HolderIsReceiverOrHiddenPrototype()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "special data property in prototype chain"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (!AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())) { TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver type"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorPair()) { Handle setter(Handle::cast(accessors)->setter(), isolate()); if (!setter->IsJSFunction() && !setter->IsFunctionTemplateInfo()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter not a function"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } CallOptimization call_optimization(setter); if (call_optimization.is_simple_api_call()) { if (call_optimization.IsCompatibleReceiver(receiver, holder)) { break; // Custom-compiled handler. } TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreNormal); DCHECK(holder.is_identical_to(receiver)); return isolate()->builtins()->StoreIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } if (use_stub) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreFieldStub); StoreFieldStub stub(isolate(), lookup->GetFieldIndex(), lookup->representation()); return stub.GetCode(); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); TRACE_GENERIC_IC(isolate(), "StoreIC", "constant property"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } return Handle::null(); } Handle StoreIC::CompileHandler(LookupIterator* lookup, Handle value, CacheHolderFlag cache_holder) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { // TODO(dcarney): this currently just deopts. Use the transition cell. TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobalTransition); auto cell = isolate()->factory()->NewPropertyCell(); cell->set_value(*value); auto code = PropertyCellStoreHandler( isolate(), store_target, Handle::cast(store_target), lookup->name(), cell, PropertyCellType::kConstant); cell->set_value(isolate()->heap()->the_hole_value()); return code; } Handle transition = lookup->transition_map(); // Currently not handled by CompileStoreTransition. DCHECK(holder->HasFastProperties()); DCHECK(lookup->IsCacheableTransition()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreTransition); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreTransition(transition, lookup->name()); } case LookupIterator::INTERCEPTOR: UNREACHABLE(); case LookupIterator::ACCESSOR: { DCHECK(holder->HasFastProperties()); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->setter()) != 0); DCHECK(!AccessorInfo::cast(*accessors)->is_special_data_property() || lookup->HolderIsReceiverOrHiddenPrototype()); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), info, language_mode()); return code; } else { DCHECK(accessors->IsAccessorPair()); Handle setter(Handle::cast(accessors)->setter(), isolate()); DCHECK(setter->IsJSFunction() || setter->IsFunctionTemplateInfo()); CallOptimization call_optimization(setter); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); if (call_optimization.is_simple_api_call()) { DCHECK(call_optimization.IsCompatibleReceiver(receiver, holder)); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), call_optimization, lookup->GetAccessorIndex()); return code; } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreViaSetter); int expected_arguments = JSFunction::cast(*setter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileStoreViaSetter(receiver, lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobal); DCHECK(holder.is_identical_to(receiver) || receiver->map()->prototype() == *holder); auto cell = lookup->GetPropertyCell(); auto updated_type = PropertyCell::UpdatedType(cell, value, lookup->property_details()); auto code = PropertyCellStoreHandler( isolate(), receiver, Handle::cast(holder), lookup->name(), cell, updated_type); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { #ifdef DEBUG bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } DCHECK(!use_stub); #endif TRACE_HANDLER_STATS(isolate(), StoreIC_StoreField); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreField(lookup); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); UNREACHABLE(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } void KeyedStoreIC::UpdateStoreElement(Handle receiver_map, KeyedAccessStoreMode store_mode) { MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle monomorphic_map = ComputeTransitionedMap(receiver_map, store_mode); store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(monomorphic_map, store_mode); return ConfigureVectorState(Handle(), monomorphic_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { if (!target_receiver_maps.at(i).is_null() && target_receiver_maps.at(i)->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "JSValue"); return; } } // There are several special cases where an IC that is MONOMORPHIC can still // transition to a different GetNonTransitioningStoreMode IC that handles a // superset of the original IC. Handle those here if the receiver map hasn't // changed or it has transitioned to a more general kind. KeyedAccessStoreMode old_store_mode = GetKeyedAccessStoreMode(); Handle previous_receiver_map = target_receiver_maps.at(0); if (state() == MONOMORPHIC) { Handle transitioned_receiver_map = receiver_map; if (IsTransitionStoreMode(store_mode)) { transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); } if ((receiver_map.is_identical_to(previous_receiver_map) && IsTransitionStoreMode(store_mode)) || IsTransitionOfMonomorphicTarget(*previous_receiver_map, *transitioned_receiver_map)) { // If the "old" and "new" maps are in the same elements map family, or // if they at least come from the same origin for a transitioning store, // stay MONOMORPHIC and use the map for the most generic ElementsKind. store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler( transitioned_receiver_map, store_mode); ConfigureVectorState(Handle(), transitioned_receiver_map, handler); return; } if (receiver_map.is_identical_to(previous_receiver_map) && old_store_mode == STANDARD_STORE && (store_mode == STORE_AND_GROW_NO_TRANSITION || store_mode == STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS || store_mode == STORE_NO_TRANSITION_HANDLE_COW)) { // A "normal" IC that handles stores can switch to a version that can // grow at the end of the array, handle OOB accesses or copy COW arrays // and still stay MONOMORPHIC. Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(receiver_map, store_mode); return ConfigureVectorState(Handle(), receiver_map, handler); } } DCHECK(state() != GENERIC); bool map_added = AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map); if (IsTransitionStoreMode(store_mode)) { Handle transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); map_added |= AddOneReceiverMapIfMissing(&target_receiver_maps, transitioned_receiver_map); } if (!map_added) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the megamorphic stub which can handle everything. TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the // megamorphic version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) return; // Make sure all polymorphic handlers have the same store mode, otherwise the // megamorphic stub must be used. store_mode = GetNonTransitioningStoreMode(store_mode); if (old_store_mode != STANDARD_STORE) { if (store_mode == STANDARD_STORE) { store_mode = old_store_mode; } else if (store_mode != old_store_mode) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "store mode mismatch"); return; } } // If the store mode isn't the standard mode, make sure that all polymorphic // receivers are either external arrays, or all "normal" arrays. Otherwise, // use the megamorphic stub. if (store_mode != STANDARD_STORE) { int external_arrays = 0; for (int i = 0; i < target_receiver_maps.length(); ++i) { if (target_receiver_maps[i]->has_fixed_typed_array_elements()) { external_arrays++; } } if (external_arrays != 0 && external_arrays != target_receiver_maps.length()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unsupported combination of external and normal arrays"); return; } } TRACE_HANDLER_STATS(isolate(), KeyedStoreIC_Polymorphic); MapHandleList transitioned_maps(target_receiver_maps.length()); CodeHandleList handlers(target_receiver_maps.length()); PropertyICCompiler::ComputeKeyedStorePolymorphicHandlers( &target_receiver_maps, &transitioned_maps, &handlers, store_mode); ConfigureVectorState(&target_receiver_maps, &transitioned_maps, &handlers); } Handle KeyedStoreIC::ComputeTransitionedMap( Handle map, KeyedAccessStoreMode store_mode) { switch (store_mode) { case STORE_TRANSITION_TO_OBJECT: case STORE_AND_GROW_TRANSITION_TO_OBJECT: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_ELEMENTS : FAST_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_TRANSITION_TO_DOUBLE: case STORE_AND_GROW_TRANSITION_TO_DOUBLE: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_DOUBLE_ELEMENTS : FAST_DOUBLE_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS: DCHECK(map->has_fixed_typed_array_elements()); // Fall through case STORE_NO_TRANSITION_HANDLE_COW: case STANDARD_STORE: case STORE_AND_GROW_NO_TRANSITION: return map; } UNREACHABLE(); return MaybeHandle().ToHandleChecked(); } bool IsOutOfBoundsAccess(Handle receiver, uint32_t index) { uint32_t length = 0; if (receiver->IsJSArray()) { JSArray::cast(*receiver)->length()->ToArrayLength(&length); } else { length = static_cast(receiver->elements()->length()); } return index >= length; } static KeyedAccessStoreMode GetStoreMode(Handle receiver, uint32_t index, Handle value) { bool oob_access = IsOutOfBoundsAccess(receiver, index); // Don't consider this a growing store if the store would send the receiver to // dictionary mode. bool allow_growth = receiver->IsJSArray() && oob_access && !receiver->WouldConvertToSlowElements(index); if (allow_growth) { // Handle growing array in stub if necessary. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_DOUBLE; } if (value->IsHeapObject()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } return STORE_AND_GROW_NO_TRANSITION; } else { // Handle only in-bounds elements accesses. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_TRANSITION_TO_DOUBLE; } else if (value->IsHeapObject()) { return STORE_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_TRANSITION_TO_OBJECT; } } if (!FLAG_trace_external_array_abuse && receiver->map()->has_fixed_typed_array_elements() && oob_access) { return STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS; } Heap* heap = receiver->GetHeap(); if (receiver->elements()->map() == heap->fixed_cow_array_map()) { return STORE_NO_TRANSITION_HANDLE_COW; } else { return STANDARD_STORE; } } } MaybeHandle KeyedStoreIC::Store(Handle object, Handle key, Handle value) { // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); return result; } // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); Handle store_handle; uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION( isolate(), store_handle, StoreIC::Store(object, Handle::cast(key), value, JSReceiver::MAY_BE_STORE_FROM_KEYED), Object); if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unhandled internalized string key"); TRACE_IC("StoreIC", key); } return store_handle; } bool use_ic = FLAG_use_ic && !object->IsStringWrapper() && !object->IsAccessCheckNeeded() && !object->IsJSGlobalProxy(); if (use_ic && !object->IsSmi()) { // Don't use ICs for maps of the objects in Array's prototype chain. We // expect to be able to trap element sets to objects with those maps in // the runtime to enable optimization of element hole access. Handle heap_object = Handle::cast(object); if (heap_object->map()->IsMapInArrayPrototypeChain()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "map in array prototype"); use_ic = false; } } Handle old_receiver_map; bool sloppy_arguments_elements = false; bool key_is_valid_index = false; KeyedAccessStoreMode store_mode = STANDARD_STORE; if (use_ic && object->IsJSObject()) { Handle receiver = Handle::cast(object); old_receiver_map = handle(receiver->map(), isolate()); sloppy_arguments_elements = !is_sloppy(language_mode()) && receiver->elements()->map() == isolate()->heap()->sloppy_arguments_elements_map(); if (!sloppy_arguments_elements) { key_is_valid_index = key->IsSmi() && Smi::cast(*key)->value() >= 0; if (key_is_valid_index) { uint32_t index = static_cast(Smi::cast(*key)->value()); store_mode = GetStoreMode(receiver, index, value); } } } DCHECK(store_handle.is_null()); ASSIGN_RETURN_ON_EXCEPTION(isolate(), store_handle, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); if (use_ic) { if (!old_receiver_map.is_null()) { if (sloppy_arguments_elements) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "arguments receiver"); } else if (key_is_valid_index) { // We should go generic if receiver isn't a dictionary, but our // prototype chain does have dictionary elements. This ensures that // other non-dictionary receivers in the polymorphic case benefit // from fast path keyed stores. if (!old_receiver_map->DictionaryElementsInPrototypeChainOnly()) { UpdateStoreElement(old_receiver_map, store_mode); } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "dictionary or proxy prototype"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-smi-like key"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-JSObject receiver"); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "set generic"); } TRACE_IC("StoreIC", key); return store_handle; } void CallIC::HandleMiss(Handle function) { Handle name = isolate()->factory()->empty_string(); CallICNexus* nexus = casted_nexus(); Object* feedback = nexus->GetFeedback(); // Hand-coded MISS handling is easier if CallIC slots don't contain smis. DCHECK(!feedback->IsSmi()); if (feedback->IsWeakCell() || !function->IsJSFunction() || feedback->IsAllocationSite()) { // We are going generic. nexus->ConfigureMegamorphic(); } else { DCHECK(feedback == *TypeFeedbackVector::UninitializedSentinel(isolate())); Handle js_function = Handle::cast(function); Handle array_function = Handle(isolate()->native_context()->array_function()); if (array_function.is_identical_to(js_function)) { // Alter the slot. nexus->ConfigureMonomorphicArray(); } else if (js_function->context()->native_context() != *isolate()->native_context()) { // Don't collect cross-native context feedback for the CallIC. // TODO(bmeurer): We should collect the SharedFunctionInfo as // feedback in this case instead. nexus->ConfigureMegamorphic(); } else { nexus->ConfigureMonomorphic(js_function); } } if (function->IsJSFunction()) { Handle
LoadGlobalIC::initialize_stub_in_optimized_code( Isolate* isolate, ExtraICState extra_state) { return LoadGlobalICStub(isolate, LoadGlobalICState(extra_state)).GetCode(); } Handle KeyedLoadIC::initialize_stub_in_optimized_code( Isolate* isolate, ExtraICState extra_state) { // TODO(ishell): remove extra_ic_state return KeyedLoadICStub(isolate).GetCode(); } Handle KeyedStoreIC::initialize_stub_in_optimized_code( Isolate* isolate, LanguageMode language_mode) { StoreICState state = StoreICState(language_mode); return VectorKeyedStoreICStub(isolate, state).GetCode(); } Handle KeyedStoreIC::ChooseMegamorphicStub(Isolate* isolate, ExtraICState extra_state) { LanguageMode mode = StoreICState::GetLanguageMode(extra_state); return is_strict(mode) ? isolate->builtins()->KeyedStoreIC_Megamorphic_Strict() : isolate->builtins()->KeyedStoreIC_Megamorphic(); } Handle LoadIC::SimpleFieldLoad(FieldIndex index) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadFieldStub); LoadFieldStub stub(isolate(), index); return stub.GetCode(); } bool IsCompatibleReceiver(LookupIterator* lookup, Handle receiver_map) { DCHECK(lookup->state() == LookupIterator::ACCESSOR); Isolate* isolate = lookup->isolate(); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (info->getter() != NULL && !AccessorInfo::IsCompatibleReceiverMap(isolate, info, receiver_map)) { return false; } } else if (accessors->IsAccessorPair()) { Handle getter(Handle::cast(accessors)->getter(), isolate); if (!getter->IsJSFunction() && !getter->IsFunctionTemplateInfo()) { return false; } Handle holder = lookup->GetHolder(); Handle receiver = lookup->GetReceiver(); if (holder->HasFastProperties()) { if (getter->IsJSFunction()) { Handle function = Handle::cast(getter); if (!receiver->IsJSObject() && !function->shared()->IsBuiltin() && is_sloppy(function->shared()->language_mode())) { // Calling sloppy non-builtins with a value as the receiver // requires boxing. return false; } } CallOptimization call_optimization(getter); if (call_optimization.is_simple_api_call() && !call_optimization.IsCompatibleReceiverMap(receiver_map, holder)) { return false; } } } return true; } void LoadIC::UpdateCaches(LookupIterator* lookup) { if (state() == UNINITIALIZED && kind() != Code::LOAD_GLOBAL_IC) { // This is the first time we execute this inline cache. Set the target to // the pre monomorphic stub to delay setting the monomorphic state. ConfigureVectorState(PREMONOMORPHIC, Handle()); TRACE_IC("LoadIC", lookup->name()); return; } Handle code; if (lookup->state() == LookupIterator::JSPROXY || lookup->state() == LookupIterator::ACCESS_CHECK) { code = slow_stub(); } else if (!lookup->IsFound()) { if (kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC) { code = NamedLoadHandlerCompiler::ComputeLoadNonexistent(lookup->name(), receiver_map()); // TODO(jkummerow/verwaest): Introduce a builtin that handles this case. if (code.is_null()) code = slow_stub(); } else { code = slow_stub(); } } else { if (kind() == Code::LOAD_GLOBAL_IC && lookup->state() == LookupIterator::DATA && lookup->GetHolder()->IsJSGlobalObject()) { #if DEBUG Handle holder = lookup->GetHolder(); Handle receiver = lookup->GetReceiver(); DCHECK_EQ(*receiver, *holder); #endif // Now update the cell in the feedback vector. LoadGlobalICNexus* nexus = casted_nexus(); nexus->ConfigurePropertyCellMode(lookup->GetPropertyCell()); TRACE_IC("LoadGlobalIC", lookup->name()); return; } else if (lookup->state() == LookupIterator::ACCESSOR) { if (!IsCompatibleReceiver(lookup, receiver_map())) { TRACE_GENERIC_IC(isolate(), "LoadIC", "incompatible receiver type"); code = slow_stub(); } } else if (lookup->state() == LookupIterator::INTERCEPTOR) { if (kind() == Code::LOAD_GLOBAL_IC) { // The interceptor handler requires name but it is not passed explicitly // to LoadGlobalIC and the LoadGlobalIC dispatcher also does not load // it so we will just use slow stub. code = slow_stub(); } else { // Perform a lookup behind the interceptor. Copy the LookupIterator // since the original iterator will be used to fetch the value. LookupIterator it = *lookup; it.Next(); LookupForRead(&it); if (it.state() == LookupIterator::ACCESSOR && !IsCompatibleReceiver(&it, receiver_map())) { TRACE_GENERIC_IC(isolate(), "LoadIC", "incompatible receiver type"); code = slow_stub(); } } } if (code.is_null()) code = ComputeHandler(lookup); } PatchCache(lookup->name(), code); TRACE_IC("LoadIC", lookup->name()); } void IC::UpdateMegamorphicCache(Map* map, Name* name, Code* code) { isolate()->stub_cache()->Set(name, map, code); } Handle IC::ComputeHandler(LookupIterator* lookup, Handle value) { // Try to find a globally shared handler stub. Handle code = GetMapIndependentHandler(lookup); if (!code.is_null()) return code; // Otherwise check the map's handler cache for a map-specific handler, and // compile one if the cache comes up empty. bool receiver_is_holder = lookup->GetReceiver().is_identical_to(lookup->GetHolder()); CacheHolderFlag flag; Handle stub_holder_map; if (kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC || kind() == Code::KEYED_LOAD_IC) { stub_holder_map = IC::GetHandlerCacheHolder( receiver_map(), receiver_is_holder, isolate(), &flag); } else { DCHECK(kind() == Code::STORE_IC || kind() == Code::KEYED_STORE_IC); // Store handlers cannot be cached on prototypes. flag = kCacheOnReceiver; stub_holder_map = receiver_map(); } code = PropertyHandlerCompiler::Find(lookup->name(), stub_holder_map, kind(), flag); // Use the cached value if it exists, and if it is different from the // handler that just missed. if (!code.is_null()) { Handle handler; if (maybe_handler_.ToHandle(&handler)) { if (!handler.is_identical_to(code)) { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } else { // maybe_handler_ is only populated for MONOMORPHIC and POLYMORPHIC ICs. // In MEGAMORPHIC case, check if the handler in the megamorphic stub // cache (which just missed) is different from the cached handler. if (state() == MEGAMORPHIC && lookup->GetReceiver()->IsHeapObject()) { Map* map = Handle::cast(lookup->GetReceiver())->map(); Code* megamorphic_cached_code = isolate()->stub_cache()->Get(*lookup->name(), map, code->flags()); if (megamorphic_cached_code != *code) { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } else { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } } code = CompileHandler(lookup, value, flag); DCHECK(code->is_handler()); DCHECK(Code::ExtractCacheHolderFromFlags(code->flags()) == flag); Map::UpdateCodeCache(stub_holder_map, lookup->name(), code); return code; } Handle LoadIC::GetMapIndependentHandler(LookupIterator* lookup) { Handle receiver = lookup->GetReceiver(); if (receiver->IsString() && Name::Equals(isolate()->factory()->length_string(), lookup->name())) { FieldIndex index = FieldIndex::ForInObjectOffset(String::kLengthOffset); return SimpleFieldLoad(index); } if (receiver->IsStringWrapper() && Name::Equals(isolate()->factory()->length_string(), lookup->name())) { TRACE_HANDLER_STATS(isolate(), LoadIC_StringLengthStub); StringLengthStub string_length_stub(isolate()); return string_length_stub.GetCode(); } // Use specialized code for getting prototype of functions. if (receiver->IsJSFunction() && Name::Equals(isolate()->factory()->prototype_string(), lookup->name()) && receiver->IsConstructor() && !Handle::cast(receiver) ->map() ->has_non_instance_prototype()) { Handle stub; TRACE_HANDLER_STATS(isolate(), LoadIC_FunctionPrototypeStub); FunctionPrototypeStub function_prototype_stub(isolate()); return function_prototype_stub.GetCode(); } Handle map = receiver_map(); Handle holder = lookup->GetHolder(); bool receiver_is_holder = receiver.is_identical_to(holder); switch (lookup->state()) { case LookupIterator::INTERCEPTOR: break; // Custom-compiled handler. case LookupIterator::ACCESSOR: { // Use simple field loads for some well-known callback properties. // The method will only return true for absolute truths based on the // receiver maps. int object_offset; if (Accessors::IsJSObjectFieldAccessor(map, lookup->name(), &object_offset)) { FieldIndex index = FieldIndex::ForInObjectOffset(object_offset, *map); return SimpleFieldLoad(index); } if (IsCompatibleReceiver(lookup, map)) { Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorPair()) { if (!holder->HasFastProperties()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } // When debugging we need to go the slow path to flood the accessor. if (GetSharedFunctionInfo()->HasDebugInfo()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->getter()) == nullptr) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } // Ruled out by IsCompatibleReceiver() above. DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, map)); if (!holder->HasFastProperties()) return slow_stub(); if (receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadApiGetterStub); int index = lookup->GetAccessorIndex(); LoadApiGetterStub stub(isolate(), true, index); return stub.GetCode(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } } TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (kind() != Code::LOAD_IC && kind() != Code::LOAD_GLOBAL_IC) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } // There is only one shared stub for loading normalized // properties. It does not traverse the prototype chain, so the // property must be found in the object for the stub to be // applicable. if (!receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } TRACE_HANDLER_STATS(isolate(), LoadIC_LoadNormal); return isolate()->builtins()->LoadIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { FieldIndex field = lookup->GetFieldIndex(); if (receiver_is_holder) { return SimpleFieldLoad(field); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); if (receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadConstantStub); LoadConstantStub stub(isolate(), lookup->GetConstantIndex()); return stub.GetCode(); } break; // Custom-compiled handler. } case LookupIterator::INTEGER_INDEXED_EXOTIC: TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); } return Handle::null(); } Handle LoadIC::CompileHandler(LookupIterator* lookup, Handle unused, CacheHolderFlag cache_holder) { Handle holder = lookup->GetHolder(); #ifdef DEBUG // Only used by DCHECKs below. Handle receiver = lookup->GetReceiver(); bool receiver_is_holder = receiver.is_identical_to(holder); #endif // Non-map-specific handler stubs have already been selected. DCHECK(!receiver->IsString() || !Name::Equals(isolate()->factory()->length_string(), lookup->name())); DCHECK(!receiver->IsStringWrapper() || !Name::Equals(isolate()->factory()->length_string(), lookup->name())); DCHECK(!( receiver->IsJSFunction() && Name::Equals(isolate()->factory()->prototype_string(), lookup->name()) && receiver->IsConstructor() && !Handle::cast(receiver) ->map() ->has_non_instance_prototype())); Handle map = receiver_map(); switch (lookup->state()) { case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->getter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadInterceptor); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); // Perform a lookup behind the interceptor. Copy the LookupIterator since // the original iterator will be used to fetch the value. LookupIterator it = *lookup; it.Next(); LookupForRead(&it); return compiler.CompileLoadInterceptor(&it); } case LookupIterator::ACCESSOR: { #ifdef DEBUG int object_offset; DCHECK(!Accessors::IsJSObjectFieldAccessor(map, lookup->name(), &object_offset)); #endif DCHECK(IsCompatibleReceiver(lookup, map)); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorPair()) { DCHECK(holder->HasFastProperties()); DCHECK(!GetSharedFunctionInfo()->HasDebugInfo()); Handle getter(Handle::cast(accessors)->getter(), isolate()); CallOptimization call_optimization(getter); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); if (call_optimization.is_simple_api_call()) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadCallback); int index = lookup->GetAccessorIndex(); Handle code = compiler.CompileLoadCallback( lookup->name(), call_optimization, index); return code; } TRACE_HANDLER_STATS(isolate(), LoadIC_LoadViaGetter); int expected_arguments = Handle::cast(getter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileLoadViaGetter( lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } else { DCHECK(accessors->IsAccessorInfo()); Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->getter()) != nullptr); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, map)); DCHECK(holder->HasFastProperties()); DCHECK(!receiver_is_holder); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadCallback); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle code = compiler.CompileLoadCallback(lookup->name(), info); return code; } UNREACHABLE(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC); DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadGlobal); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle cell = lookup->GetPropertyCell(); Handle code = compiler.CompileLoadGlobal( cell, lookup->name(), lookup->IsConfigurable()); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { FieldIndex field = lookup->GetFieldIndex(); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadField); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadField(lookup->name(), field); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadConstant); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadConstant(lookup->name(), lookup->GetConstantIndex()); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } static Handle TryConvertKey(Handle key, Isolate* isolate) { // This helper implements a few common fast cases for converting // non-smi keys of keyed loads/stores to a smi or a string. if (key->IsHeapNumber()) { double value = Handle::cast(key)->value(); if (std::isnan(value)) { key = isolate->factory()->nan_string(); } else { int int_value = FastD2I(value); if (value == int_value && Smi::IsValid(int_value)) { key = handle(Smi::FromInt(int_value), isolate); } } } else if (key->IsUndefined(isolate)) { key = isolate->factory()->undefined_string(); } return key; } void KeyedLoadIC::UpdateLoadElement(Handle receiver) { Handle receiver_map(receiver->map(), isolate()); DCHECK(receiver_map->instance_type() != JS_VALUE_TYPE && receiver_map->instance_type() != JS_PROXY_TYPE); // Checked by caller. MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { Handle map = target_receiver_maps.at(i); if (map.is_null()) continue; if (map->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSValue"); return; } if (map->instance_type() == JS_PROXY_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSProxy"); return; } } // The first time a receiver is seen that is a transitioned version of the // previous monomorphic receiver type, assume the new ElementsKind is the // monomorphic type. This benefits global arrays that only transition // once, and all call sites accessing them are faster if they remain // monomorphic. If this optimistic assumption is not true, the IC will // miss again and it will become polymorphic and support both the // untransitioned and transitioned maps. if (state() == MONOMORPHIC && !receiver->IsString() && IsMoreGeneralElementsKindTransition( target_receiver_maps.at(0)->elements_kind(), Handle::cast(receiver)->GetElementsKind())) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } DCHECK(state() != GENERIC); // Determine the list of receiver maps that this call site has seen, // adding the map that was just encountered. if (!AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map)) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the generic stub. TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the generic // version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "max polymorph exceeded"); return; } CodeHandleList handlers(target_receiver_maps.length()); TRACE_HANDLER_STATS(isolate(), KeyedLoadIC_PolymorphicElement); ElementHandlerCompiler compiler(isolate()); compiler.CompileElementHandlers(&target_receiver_maps, &handlers); ConfigureVectorState(Handle(), &target_receiver_maps, &handlers); } MaybeHandle KeyedLoadIC::Load(Handle object, Handle key) { if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } Handle load_handle; // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION(isolate(), load_handle, LoadIC::Load(object, Handle::cast(key)), Object); } else if (FLAG_use_ic && !object->IsAccessCheckNeeded() && !object->IsJSValue()) { if (object->IsJSObject() || (object->IsString() && key->IsNumber())) { Handle receiver = Handle::cast(object); if (object->IsString() || key->IsSmi()) UpdateLoadElement(receiver); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "set generic"); } TRACE_IC("LoadIC", key); if (!load_handle.is_null()) return load_handle; Handle result; ASSIGN_RETURN_ON_EXCEPTION(isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } bool StoreIC::LookupForWrite(LookupIterator* it, Handle value, JSReceiver::StoreFromKeyed store_mode) { // Disable ICs for non-JSObjects for now. Handle object = it->GetReceiver(); if (!object->IsJSObject()) return false; Handle receiver = Handle::cast(object); DCHECK(!receiver->map()->is_deprecated()); for (; it->IsFound(); it->Next()) { switch (it->state()) { case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); case LookupIterator::JSPROXY: return false; case LookupIterator::INTERCEPTOR: { Handle holder = it->GetHolder(); InterceptorInfo* info = holder->GetNamedInterceptor(); if (it->HolderIsReceiverOrHiddenPrototype()) { return !info->non_masking() && receiver.is_identical_to(holder) && !info->setter()->IsUndefined(it->isolate()); } else if (!info->getter()->IsUndefined(it->isolate()) || !info->query()->IsUndefined(it->isolate())) { return false; } break; } case LookupIterator::ACCESS_CHECK: if (it->GetHolder()->IsAccessCheckNeeded()) return false; break; case LookupIterator::ACCESSOR: return !it->IsReadOnly(); case LookupIterator::INTEGER_INDEXED_EXOTIC: return false; case LookupIterator::DATA: { if (it->IsReadOnly()) return false; Handle holder = it->GetHolder(); if (receiver.is_identical_to(holder)) { it->PrepareForDataProperty(value); // The previous receiver map might just have been deprecated, // so reload it. update_receiver_map(receiver); return true; } // Receiver != holder. if (receiver->IsJSGlobalProxy()) { PrototypeIterator iter(it->isolate(), receiver); return it->GetHolder().is_identical_to( PrototypeIterator::GetCurrent(iter)); } if (it->HolderIsReceiverOrHiddenPrototype()) return false; if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } } } receiver = it->GetStoreTarget(); if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } MaybeHandle StoreIC::Store(Handle object, Handle name, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (object->IsJSGlobalObject() && name->IsString()) { // Look up in script context table. Handle str_name = Handle::cast(name); Handle global = Handle::cast(object); Handle script_contexts( global->native_context()->script_context_table()); ScriptContextTable::LookupResult lookup_result; if (ScriptContextTable::Lookup(script_contexts, str_name, &lookup_result)) { Handle script_context = ScriptContextTable::GetContext( script_contexts, lookup_result.context_index); if (lookup_result.mode == CONST) { return TypeError(MessageTemplate::kConstAssign, object, name); } Handle previous_value = FixedArray::get(*script_context, lookup_result.slot_index, isolate()); if (previous_value->IsTheHole(isolate())) { // Do not install stubs and stay pre-monomorphic for // uninitialized accesses. return ReferenceError(name); } if (FLAG_use_ic && StoreScriptContextFieldStub::Accepted(&lookup_result)) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreScriptContextFieldStub); StoreScriptContextFieldStub stub(isolate(), &lookup_result); PatchCache(name, stub.GetCode()); } script_context->set(lookup_result.slot_index, *value); return value; } } // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object) || object->IsJSProxy()) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Object::SetProperty(object, name, value, language_mode()), Object); return result; } // If the object is undefined or null it's illegal to try to set any // properties on it; throw a TypeError in that case. if (object->IsUndefined(isolate()) || object->IsNull(isolate())) { return TypeError(MessageTemplate::kNonObjectPropertyStore, object, name); } if (state() != UNINITIALIZED) { JSObject::MakePrototypesFast(object, kStartAtPrototype, isolate()); } LookupIterator it(object, name); if (FLAG_use_ic) UpdateCaches(&it, value, store_mode); MAYBE_RETURN_NULL( Object::SetProperty(&it, value, language_mode(), store_mode)); return value; } Handle CallIC::initialize_stub_in_optimized_code( Isolate* isolate, int argc, ConvertReceiverMode mode, TailCallMode tail_call_mode) { CallICStub stub(isolate, CallICState(argc, mode, tail_call_mode)); Handle code = stub.GetCode(); return code; } Handle StoreIC::initialize_stub_in_optimized_code( Isolate* isolate, LanguageMode language_mode) { VectorStoreICStub stub(isolate, StoreICState(language_mode)); return stub.GetCode(); } void StoreIC::UpdateCaches(LookupIterator* lookup, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (state() == UNINITIALIZED) { // This is the first time we execute this inline cache. Set the target to // the pre monomorphic stub to delay setting the monomorphic state. ConfigureVectorState(PREMONOMORPHIC, Handle()); TRACE_IC("StoreIC", lookup->name()); return; } bool use_ic = LookupForWrite(lookup, value, store_mode); if (!use_ic) { TRACE_GENERIC_IC(isolate(), "StoreIC", "LookupForWrite said 'false'"); } Handle code = use_ic ? ComputeHandler(lookup, value) : slow_stub(); PatchCache(lookup->name(), code); TRACE_IC("StoreIC", lookup->name()); } static Handle PropertyCellStoreHandler( Isolate* isolate, Handle receiver, Handle holder, Handle name, Handle cell, PropertyCellType type) { auto constant_type = Nothing(); if (type == PropertyCellType::kConstantType) { constant_type = Just(cell->GetConstantType()); } StoreGlobalStub stub(isolate, type, constant_type, receiver->IsJSGlobalProxy()); auto code = stub.GetCodeCopyFromTemplate(holder, cell); // TODO(verwaest): Move caching of these NORMAL stubs outside as well. HeapObject::UpdateMapCodeCache(receiver, name, code); return code; } Handle StoreIC::GetMapIndependentHandler(LookupIterator* lookup) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { break; // Custom-compiled handler. } // Currently not handled by CompileStoreTransition. if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "transition from slow"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } DCHECK(lookup->IsCacheableTransition()); break; // Custom-compiled handler. } case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->setter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreInterceptorStub); StoreInterceptorStub stub(isolate()); return stub.GetCode(); } case LookupIterator::ACCESSOR: { if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "accessor on slow map"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->setter()) == nullptr) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter == nullptr"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (AccessorInfo::cast(*accessors)->is_special_data_property() && !lookup->HolderIsReceiverOrHiddenPrototype()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "special data property in prototype chain"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (!AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())) { TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver type"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorPair()) { Handle setter(Handle::cast(accessors)->setter(), isolate()); if (!setter->IsJSFunction() && !setter->IsFunctionTemplateInfo()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter not a function"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } CallOptimization call_optimization(setter); if (call_optimization.is_simple_api_call()) { if (call_optimization.IsCompatibleReceiver(receiver, holder)) { break; // Custom-compiled handler. } TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreNormal); DCHECK(holder.is_identical_to(receiver)); return isolate()->builtins()->StoreIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } if (use_stub) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreFieldStub); StoreFieldStub stub(isolate(), lookup->GetFieldIndex(), lookup->representation()); return stub.GetCode(); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); TRACE_GENERIC_IC(isolate(), "StoreIC", "constant property"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } return Handle::null(); } Handle StoreIC::CompileHandler(LookupIterator* lookup, Handle value, CacheHolderFlag cache_holder) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { // TODO(dcarney): this currently just deopts. Use the transition cell. TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobalTransition); auto cell = isolate()->factory()->NewPropertyCell(); cell->set_value(*value); auto code = PropertyCellStoreHandler( isolate(), store_target, Handle::cast(store_target), lookup->name(), cell, PropertyCellType::kConstant); cell->set_value(isolate()->heap()->the_hole_value()); return code; } Handle transition = lookup->transition_map(); // Currently not handled by CompileStoreTransition. DCHECK(holder->HasFastProperties()); DCHECK(lookup->IsCacheableTransition()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreTransition); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreTransition(transition, lookup->name()); } case LookupIterator::INTERCEPTOR: UNREACHABLE(); case LookupIterator::ACCESSOR: { DCHECK(holder->HasFastProperties()); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->setter()) != 0); DCHECK(!AccessorInfo::cast(*accessors)->is_special_data_property() || lookup->HolderIsReceiverOrHiddenPrototype()); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), info, language_mode()); return code; } else { DCHECK(accessors->IsAccessorPair()); Handle setter(Handle::cast(accessors)->setter(), isolate()); DCHECK(setter->IsJSFunction() || setter->IsFunctionTemplateInfo()); CallOptimization call_optimization(setter); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); if (call_optimization.is_simple_api_call()) { DCHECK(call_optimization.IsCompatibleReceiver(receiver, holder)); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), call_optimization, lookup->GetAccessorIndex()); return code; } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreViaSetter); int expected_arguments = JSFunction::cast(*setter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileStoreViaSetter(receiver, lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobal); DCHECK(holder.is_identical_to(receiver) || receiver->map()->prototype() == *holder); auto cell = lookup->GetPropertyCell(); auto updated_type = PropertyCell::UpdatedType(cell, value, lookup->property_details()); auto code = PropertyCellStoreHandler( isolate(), receiver, Handle::cast(holder), lookup->name(), cell, updated_type); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { #ifdef DEBUG bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } DCHECK(!use_stub); #endif TRACE_HANDLER_STATS(isolate(), StoreIC_StoreField); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreField(lookup); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); UNREACHABLE(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } void KeyedStoreIC::UpdateStoreElement(Handle receiver_map, KeyedAccessStoreMode store_mode) { MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle monomorphic_map = ComputeTransitionedMap(receiver_map, store_mode); store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(monomorphic_map, store_mode); return ConfigureVectorState(Handle(), monomorphic_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { if (!target_receiver_maps.at(i).is_null() && target_receiver_maps.at(i)->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "JSValue"); return; } } // There are several special cases where an IC that is MONOMORPHIC can still // transition to a different GetNonTransitioningStoreMode IC that handles a // superset of the original IC. Handle those here if the receiver map hasn't // changed or it has transitioned to a more general kind. KeyedAccessStoreMode old_store_mode = GetKeyedAccessStoreMode(); Handle previous_receiver_map = target_receiver_maps.at(0); if (state() == MONOMORPHIC) { Handle transitioned_receiver_map = receiver_map; if (IsTransitionStoreMode(store_mode)) { transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); } if ((receiver_map.is_identical_to(previous_receiver_map) && IsTransitionStoreMode(store_mode)) || IsTransitionOfMonomorphicTarget(*previous_receiver_map, *transitioned_receiver_map)) { // If the "old" and "new" maps are in the same elements map family, or // if they at least come from the same origin for a transitioning store, // stay MONOMORPHIC and use the map for the most generic ElementsKind. store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler( transitioned_receiver_map, store_mode); ConfigureVectorState(Handle(), transitioned_receiver_map, handler); return; } if (receiver_map.is_identical_to(previous_receiver_map) && old_store_mode == STANDARD_STORE && (store_mode == STORE_AND_GROW_NO_TRANSITION || store_mode == STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS || store_mode == STORE_NO_TRANSITION_HANDLE_COW)) { // A "normal" IC that handles stores can switch to a version that can // grow at the end of the array, handle OOB accesses or copy COW arrays // and still stay MONOMORPHIC. Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(receiver_map, store_mode); return ConfigureVectorState(Handle(), receiver_map, handler); } } DCHECK(state() != GENERIC); bool map_added = AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map); if (IsTransitionStoreMode(store_mode)) { Handle transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); map_added |= AddOneReceiverMapIfMissing(&target_receiver_maps, transitioned_receiver_map); } if (!map_added) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the megamorphic stub which can handle everything. TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the // megamorphic version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) return; // Make sure all polymorphic handlers have the same store mode, otherwise the // megamorphic stub must be used. store_mode = GetNonTransitioningStoreMode(store_mode); if (old_store_mode != STANDARD_STORE) { if (store_mode == STANDARD_STORE) { store_mode = old_store_mode; } else if (store_mode != old_store_mode) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "store mode mismatch"); return; } } // If the store mode isn't the standard mode, make sure that all polymorphic // receivers are either external arrays, or all "normal" arrays. Otherwise, // use the megamorphic stub. if (store_mode != STANDARD_STORE) { int external_arrays = 0; for (int i = 0; i < target_receiver_maps.length(); ++i) { if (target_receiver_maps[i]->has_fixed_typed_array_elements()) { external_arrays++; } } if (external_arrays != 0 && external_arrays != target_receiver_maps.length()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unsupported combination of external and normal arrays"); return; } } TRACE_HANDLER_STATS(isolate(), KeyedStoreIC_Polymorphic); MapHandleList transitioned_maps(target_receiver_maps.length()); CodeHandleList handlers(target_receiver_maps.length()); PropertyICCompiler::ComputeKeyedStorePolymorphicHandlers( &target_receiver_maps, &transitioned_maps, &handlers, store_mode); ConfigureVectorState(&target_receiver_maps, &transitioned_maps, &handlers); } Handle KeyedStoreIC::ComputeTransitionedMap( Handle map, KeyedAccessStoreMode store_mode) { switch (store_mode) { case STORE_TRANSITION_TO_OBJECT: case STORE_AND_GROW_TRANSITION_TO_OBJECT: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_ELEMENTS : FAST_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_TRANSITION_TO_DOUBLE: case STORE_AND_GROW_TRANSITION_TO_DOUBLE: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_DOUBLE_ELEMENTS : FAST_DOUBLE_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS: DCHECK(map->has_fixed_typed_array_elements()); // Fall through case STORE_NO_TRANSITION_HANDLE_COW: case STANDARD_STORE: case STORE_AND_GROW_NO_TRANSITION: return map; } UNREACHABLE(); return MaybeHandle().ToHandleChecked(); } bool IsOutOfBoundsAccess(Handle receiver, uint32_t index) { uint32_t length = 0; if (receiver->IsJSArray()) { JSArray::cast(*receiver)->length()->ToArrayLength(&length); } else { length = static_cast(receiver->elements()->length()); } return index >= length; } static KeyedAccessStoreMode GetStoreMode(Handle receiver, uint32_t index, Handle value) { bool oob_access = IsOutOfBoundsAccess(receiver, index); // Don't consider this a growing store if the store would send the receiver to // dictionary mode. bool allow_growth = receiver->IsJSArray() && oob_access && !receiver->WouldConvertToSlowElements(index); if (allow_growth) { // Handle growing array in stub if necessary. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_DOUBLE; } if (value->IsHeapObject()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } return STORE_AND_GROW_NO_TRANSITION; } else { // Handle only in-bounds elements accesses. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_TRANSITION_TO_DOUBLE; } else if (value->IsHeapObject()) { return STORE_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_TRANSITION_TO_OBJECT; } } if (!FLAG_trace_external_array_abuse && receiver->map()->has_fixed_typed_array_elements() && oob_access) { return STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS; } Heap* heap = receiver->GetHeap(); if (receiver->elements()->map() == heap->fixed_cow_array_map()) { return STORE_NO_TRANSITION_HANDLE_COW; } else { return STANDARD_STORE; } } } MaybeHandle KeyedStoreIC::Store(Handle object, Handle key, Handle value) { // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); return result; } // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); Handle store_handle; uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION( isolate(), store_handle, StoreIC::Store(object, Handle::cast(key), value, JSReceiver::MAY_BE_STORE_FROM_KEYED), Object); if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unhandled internalized string key"); TRACE_IC("StoreIC", key); } return store_handle; } bool use_ic = FLAG_use_ic && !object->IsStringWrapper() && !object->IsAccessCheckNeeded() && !object->IsJSGlobalProxy(); if (use_ic && !object->IsSmi()) { // Don't use ICs for maps of the objects in Array's prototype chain. We // expect to be able to trap element sets to objects with those maps in // the runtime to enable optimization of element hole access. Handle heap_object = Handle::cast(object); if (heap_object->map()->IsMapInArrayPrototypeChain()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "map in array prototype"); use_ic = false; } } Handle old_receiver_map; bool sloppy_arguments_elements = false; bool key_is_valid_index = false; KeyedAccessStoreMode store_mode = STANDARD_STORE; if (use_ic && object->IsJSObject()) { Handle receiver = Handle::cast(object); old_receiver_map = handle(receiver->map(), isolate()); sloppy_arguments_elements = !is_sloppy(language_mode()) && receiver->elements()->map() == isolate()->heap()->sloppy_arguments_elements_map(); if (!sloppy_arguments_elements) { key_is_valid_index = key->IsSmi() && Smi::cast(*key)->value() >= 0; if (key_is_valid_index) { uint32_t index = static_cast(Smi::cast(*key)->value()); store_mode = GetStoreMode(receiver, index, value); } } } DCHECK(store_handle.is_null()); ASSIGN_RETURN_ON_EXCEPTION(isolate(), store_handle, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); if (use_ic) { if (!old_receiver_map.is_null()) { if (sloppy_arguments_elements) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "arguments receiver"); } else if (key_is_valid_index) { // We should go generic if receiver isn't a dictionary, but our // prototype chain does have dictionary elements. This ensures that // other non-dictionary receivers in the polymorphic case benefit // from fast path keyed stores. if (!old_receiver_map->DictionaryElementsInPrototypeChainOnly()) { UpdateStoreElement(old_receiver_map, store_mode); } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "dictionary or proxy prototype"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-smi-like key"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-JSObject receiver"); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "set generic"); } TRACE_IC("StoreIC", key); return store_handle; } void CallIC::HandleMiss(Handle function) { Handle name = isolate()->factory()->empty_string(); CallICNexus* nexus = casted_nexus(); Object* feedback = nexus->GetFeedback(); // Hand-coded MISS handling is easier if CallIC slots don't contain smis. DCHECK(!feedback->IsSmi()); if (feedback->IsWeakCell() || !function->IsJSFunction() || feedback->IsAllocationSite()) { // We are going generic. nexus->ConfigureMegamorphic(); } else { DCHECK(feedback == *TypeFeedbackVector::UninitializedSentinel(isolate())); Handle js_function = Handle::cast(function); Handle array_function = Handle(isolate()->native_context()->array_function()); if (array_function.is_identical_to(js_function)) { // Alter the slot. nexus->ConfigureMonomorphicArray(); } else if (js_function->context()->native_context() != *isolate()->native_context()) { // Don't collect cross-native context feedback for the CallIC. // TODO(bmeurer): We should collect the SharedFunctionInfo as // feedback in this case instead. nexus->ConfigureMegamorphic(); } else { nexus->ConfigureMonomorphic(js_function); } } if (function->IsJSFunction()) { Handle
KeyedLoadIC::initialize_stub_in_optimized_code( Isolate* isolate, ExtraICState extra_state) { // TODO(ishell): remove extra_ic_state return KeyedLoadICStub(isolate).GetCode(); } Handle KeyedStoreIC::initialize_stub_in_optimized_code( Isolate* isolate, LanguageMode language_mode) { StoreICState state = StoreICState(language_mode); return VectorKeyedStoreICStub(isolate, state).GetCode(); } Handle KeyedStoreIC::ChooseMegamorphicStub(Isolate* isolate, ExtraICState extra_state) { LanguageMode mode = StoreICState::GetLanguageMode(extra_state); return is_strict(mode) ? isolate->builtins()->KeyedStoreIC_Megamorphic_Strict() : isolate->builtins()->KeyedStoreIC_Megamorphic(); } Handle LoadIC::SimpleFieldLoad(FieldIndex index) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadFieldStub); LoadFieldStub stub(isolate(), index); return stub.GetCode(); } bool IsCompatibleReceiver(LookupIterator* lookup, Handle receiver_map) { DCHECK(lookup->state() == LookupIterator::ACCESSOR); Isolate* isolate = lookup->isolate(); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (info->getter() != NULL && !AccessorInfo::IsCompatibleReceiverMap(isolate, info, receiver_map)) { return false; } } else if (accessors->IsAccessorPair()) { Handle getter(Handle::cast(accessors)->getter(), isolate); if (!getter->IsJSFunction() && !getter->IsFunctionTemplateInfo()) { return false; } Handle holder = lookup->GetHolder(); Handle receiver = lookup->GetReceiver(); if (holder->HasFastProperties()) { if (getter->IsJSFunction()) { Handle function = Handle::cast(getter); if (!receiver->IsJSObject() && !function->shared()->IsBuiltin() && is_sloppy(function->shared()->language_mode())) { // Calling sloppy non-builtins with a value as the receiver // requires boxing. return false; } } CallOptimization call_optimization(getter); if (call_optimization.is_simple_api_call() && !call_optimization.IsCompatibleReceiverMap(receiver_map, holder)) { return false; } } } return true; } void LoadIC::UpdateCaches(LookupIterator* lookup) { if (state() == UNINITIALIZED && kind() != Code::LOAD_GLOBAL_IC) { // This is the first time we execute this inline cache. Set the target to // the pre monomorphic stub to delay setting the monomorphic state. ConfigureVectorState(PREMONOMORPHIC, Handle()); TRACE_IC("LoadIC", lookup->name()); return; } Handle code; if (lookup->state() == LookupIterator::JSPROXY || lookup->state() == LookupIterator::ACCESS_CHECK) { code = slow_stub(); } else if (!lookup->IsFound()) { if (kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC) { code = NamedLoadHandlerCompiler::ComputeLoadNonexistent(lookup->name(), receiver_map()); // TODO(jkummerow/verwaest): Introduce a builtin that handles this case. if (code.is_null()) code = slow_stub(); } else { code = slow_stub(); } } else { if (kind() == Code::LOAD_GLOBAL_IC && lookup->state() == LookupIterator::DATA && lookup->GetHolder()->IsJSGlobalObject()) { #if DEBUG Handle holder = lookup->GetHolder(); Handle receiver = lookup->GetReceiver(); DCHECK_EQ(*receiver, *holder); #endif // Now update the cell in the feedback vector. LoadGlobalICNexus* nexus = casted_nexus(); nexus->ConfigurePropertyCellMode(lookup->GetPropertyCell()); TRACE_IC("LoadGlobalIC", lookup->name()); return; } else if (lookup->state() == LookupIterator::ACCESSOR) { if (!IsCompatibleReceiver(lookup, receiver_map())) { TRACE_GENERIC_IC(isolate(), "LoadIC", "incompatible receiver type"); code = slow_stub(); } } else if (lookup->state() == LookupIterator::INTERCEPTOR) { if (kind() == Code::LOAD_GLOBAL_IC) { // The interceptor handler requires name but it is not passed explicitly // to LoadGlobalIC and the LoadGlobalIC dispatcher also does not load // it so we will just use slow stub. code = slow_stub(); } else { // Perform a lookup behind the interceptor. Copy the LookupIterator // since the original iterator will be used to fetch the value. LookupIterator it = *lookup; it.Next(); LookupForRead(&it); if (it.state() == LookupIterator::ACCESSOR && !IsCompatibleReceiver(&it, receiver_map())) { TRACE_GENERIC_IC(isolate(), "LoadIC", "incompatible receiver type"); code = slow_stub(); } } } if (code.is_null()) code = ComputeHandler(lookup); } PatchCache(lookup->name(), code); TRACE_IC("LoadIC", lookup->name()); } void IC::UpdateMegamorphicCache(Map* map, Name* name, Code* code) { isolate()->stub_cache()->Set(name, map, code); } Handle IC::ComputeHandler(LookupIterator* lookup, Handle value) { // Try to find a globally shared handler stub. Handle code = GetMapIndependentHandler(lookup); if (!code.is_null()) return code; // Otherwise check the map's handler cache for a map-specific handler, and // compile one if the cache comes up empty. bool receiver_is_holder = lookup->GetReceiver().is_identical_to(lookup->GetHolder()); CacheHolderFlag flag; Handle stub_holder_map; if (kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC || kind() == Code::KEYED_LOAD_IC) { stub_holder_map = IC::GetHandlerCacheHolder( receiver_map(), receiver_is_holder, isolate(), &flag); } else { DCHECK(kind() == Code::STORE_IC || kind() == Code::KEYED_STORE_IC); // Store handlers cannot be cached on prototypes. flag = kCacheOnReceiver; stub_holder_map = receiver_map(); } code = PropertyHandlerCompiler::Find(lookup->name(), stub_holder_map, kind(), flag); // Use the cached value if it exists, and if it is different from the // handler that just missed. if (!code.is_null()) { Handle handler; if (maybe_handler_.ToHandle(&handler)) { if (!handler.is_identical_to(code)) { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } else { // maybe_handler_ is only populated for MONOMORPHIC and POLYMORPHIC ICs. // In MEGAMORPHIC case, check if the handler in the megamorphic stub // cache (which just missed) is different from the cached handler. if (state() == MEGAMORPHIC && lookup->GetReceiver()->IsHeapObject()) { Map* map = Handle::cast(lookup->GetReceiver())->map(); Code* megamorphic_cached_code = isolate()->stub_cache()->Get(*lookup->name(), map, code->flags()); if (megamorphic_cached_code != *code) { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } else { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } } code = CompileHandler(lookup, value, flag); DCHECK(code->is_handler()); DCHECK(Code::ExtractCacheHolderFromFlags(code->flags()) == flag); Map::UpdateCodeCache(stub_holder_map, lookup->name(), code); return code; } Handle LoadIC::GetMapIndependentHandler(LookupIterator* lookup) { Handle receiver = lookup->GetReceiver(); if (receiver->IsString() && Name::Equals(isolate()->factory()->length_string(), lookup->name())) { FieldIndex index = FieldIndex::ForInObjectOffset(String::kLengthOffset); return SimpleFieldLoad(index); } if (receiver->IsStringWrapper() && Name::Equals(isolate()->factory()->length_string(), lookup->name())) { TRACE_HANDLER_STATS(isolate(), LoadIC_StringLengthStub); StringLengthStub string_length_stub(isolate()); return string_length_stub.GetCode(); } // Use specialized code for getting prototype of functions. if (receiver->IsJSFunction() && Name::Equals(isolate()->factory()->prototype_string(), lookup->name()) && receiver->IsConstructor() && !Handle::cast(receiver) ->map() ->has_non_instance_prototype()) { Handle stub; TRACE_HANDLER_STATS(isolate(), LoadIC_FunctionPrototypeStub); FunctionPrototypeStub function_prototype_stub(isolate()); return function_prototype_stub.GetCode(); } Handle map = receiver_map(); Handle holder = lookup->GetHolder(); bool receiver_is_holder = receiver.is_identical_to(holder); switch (lookup->state()) { case LookupIterator::INTERCEPTOR: break; // Custom-compiled handler. case LookupIterator::ACCESSOR: { // Use simple field loads for some well-known callback properties. // The method will only return true for absolute truths based on the // receiver maps. int object_offset; if (Accessors::IsJSObjectFieldAccessor(map, lookup->name(), &object_offset)) { FieldIndex index = FieldIndex::ForInObjectOffset(object_offset, *map); return SimpleFieldLoad(index); } if (IsCompatibleReceiver(lookup, map)) { Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorPair()) { if (!holder->HasFastProperties()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } // When debugging we need to go the slow path to flood the accessor. if (GetSharedFunctionInfo()->HasDebugInfo()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->getter()) == nullptr) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } // Ruled out by IsCompatibleReceiver() above. DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, map)); if (!holder->HasFastProperties()) return slow_stub(); if (receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadApiGetterStub); int index = lookup->GetAccessorIndex(); LoadApiGetterStub stub(isolate(), true, index); return stub.GetCode(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } } TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (kind() != Code::LOAD_IC && kind() != Code::LOAD_GLOBAL_IC) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } // There is only one shared stub for loading normalized // properties. It does not traverse the prototype chain, so the // property must be found in the object for the stub to be // applicable. if (!receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } TRACE_HANDLER_STATS(isolate(), LoadIC_LoadNormal); return isolate()->builtins()->LoadIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { FieldIndex field = lookup->GetFieldIndex(); if (receiver_is_holder) { return SimpleFieldLoad(field); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); if (receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadConstantStub); LoadConstantStub stub(isolate(), lookup->GetConstantIndex()); return stub.GetCode(); } break; // Custom-compiled handler. } case LookupIterator::INTEGER_INDEXED_EXOTIC: TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); } return Handle::null(); } Handle LoadIC::CompileHandler(LookupIterator* lookup, Handle unused, CacheHolderFlag cache_holder) { Handle holder = lookup->GetHolder(); #ifdef DEBUG // Only used by DCHECKs below. Handle receiver = lookup->GetReceiver(); bool receiver_is_holder = receiver.is_identical_to(holder); #endif // Non-map-specific handler stubs have already been selected. DCHECK(!receiver->IsString() || !Name::Equals(isolate()->factory()->length_string(), lookup->name())); DCHECK(!receiver->IsStringWrapper() || !Name::Equals(isolate()->factory()->length_string(), lookup->name())); DCHECK(!( receiver->IsJSFunction() && Name::Equals(isolate()->factory()->prototype_string(), lookup->name()) && receiver->IsConstructor() && !Handle::cast(receiver) ->map() ->has_non_instance_prototype())); Handle map = receiver_map(); switch (lookup->state()) { case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->getter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadInterceptor); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); // Perform a lookup behind the interceptor. Copy the LookupIterator since // the original iterator will be used to fetch the value. LookupIterator it = *lookup; it.Next(); LookupForRead(&it); return compiler.CompileLoadInterceptor(&it); } case LookupIterator::ACCESSOR: { #ifdef DEBUG int object_offset; DCHECK(!Accessors::IsJSObjectFieldAccessor(map, lookup->name(), &object_offset)); #endif DCHECK(IsCompatibleReceiver(lookup, map)); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorPair()) { DCHECK(holder->HasFastProperties()); DCHECK(!GetSharedFunctionInfo()->HasDebugInfo()); Handle getter(Handle::cast(accessors)->getter(), isolate()); CallOptimization call_optimization(getter); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); if (call_optimization.is_simple_api_call()) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadCallback); int index = lookup->GetAccessorIndex(); Handle code = compiler.CompileLoadCallback( lookup->name(), call_optimization, index); return code; } TRACE_HANDLER_STATS(isolate(), LoadIC_LoadViaGetter); int expected_arguments = Handle::cast(getter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileLoadViaGetter( lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } else { DCHECK(accessors->IsAccessorInfo()); Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->getter()) != nullptr); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, map)); DCHECK(holder->HasFastProperties()); DCHECK(!receiver_is_holder); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadCallback); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle code = compiler.CompileLoadCallback(lookup->name(), info); return code; } UNREACHABLE(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC); DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadGlobal); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle cell = lookup->GetPropertyCell(); Handle code = compiler.CompileLoadGlobal( cell, lookup->name(), lookup->IsConfigurable()); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { FieldIndex field = lookup->GetFieldIndex(); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadField); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadField(lookup->name(), field); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadConstant); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadConstant(lookup->name(), lookup->GetConstantIndex()); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } static Handle TryConvertKey(Handle key, Isolate* isolate) { // This helper implements a few common fast cases for converting // non-smi keys of keyed loads/stores to a smi or a string. if (key->IsHeapNumber()) { double value = Handle::cast(key)->value(); if (std::isnan(value)) { key = isolate->factory()->nan_string(); } else { int int_value = FastD2I(value); if (value == int_value && Smi::IsValid(int_value)) { key = handle(Smi::FromInt(int_value), isolate); } } } else if (key->IsUndefined(isolate)) { key = isolate->factory()->undefined_string(); } return key; } void KeyedLoadIC::UpdateLoadElement(Handle receiver) { Handle receiver_map(receiver->map(), isolate()); DCHECK(receiver_map->instance_type() != JS_VALUE_TYPE && receiver_map->instance_type() != JS_PROXY_TYPE); // Checked by caller. MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { Handle map = target_receiver_maps.at(i); if (map.is_null()) continue; if (map->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSValue"); return; } if (map->instance_type() == JS_PROXY_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSProxy"); return; } } // The first time a receiver is seen that is a transitioned version of the // previous monomorphic receiver type, assume the new ElementsKind is the // monomorphic type. This benefits global arrays that only transition // once, and all call sites accessing them are faster if they remain // monomorphic. If this optimistic assumption is not true, the IC will // miss again and it will become polymorphic and support both the // untransitioned and transitioned maps. if (state() == MONOMORPHIC && !receiver->IsString() && IsMoreGeneralElementsKindTransition( target_receiver_maps.at(0)->elements_kind(), Handle::cast(receiver)->GetElementsKind())) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } DCHECK(state() != GENERIC); // Determine the list of receiver maps that this call site has seen, // adding the map that was just encountered. if (!AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map)) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the generic stub. TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the generic // version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "max polymorph exceeded"); return; } CodeHandleList handlers(target_receiver_maps.length()); TRACE_HANDLER_STATS(isolate(), KeyedLoadIC_PolymorphicElement); ElementHandlerCompiler compiler(isolate()); compiler.CompileElementHandlers(&target_receiver_maps, &handlers); ConfigureVectorState(Handle(), &target_receiver_maps, &handlers); } MaybeHandle KeyedLoadIC::Load(Handle object, Handle key) { if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } Handle load_handle; // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION(isolate(), load_handle, LoadIC::Load(object, Handle::cast(key)), Object); } else if (FLAG_use_ic && !object->IsAccessCheckNeeded() && !object->IsJSValue()) { if (object->IsJSObject() || (object->IsString() && key->IsNumber())) { Handle receiver = Handle::cast(object); if (object->IsString() || key->IsSmi()) UpdateLoadElement(receiver); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "set generic"); } TRACE_IC("LoadIC", key); if (!load_handle.is_null()) return load_handle; Handle result; ASSIGN_RETURN_ON_EXCEPTION(isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } bool StoreIC::LookupForWrite(LookupIterator* it, Handle value, JSReceiver::StoreFromKeyed store_mode) { // Disable ICs for non-JSObjects for now. Handle object = it->GetReceiver(); if (!object->IsJSObject()) return false; Handle receiver = Handle::cast(object); DCHECK(!receiver->map()->is_deprecated()); for (; it->IsFound(); it->Next()) { switch (it->state()) { case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); case LookupIterator::JSPROXY: return false; case LookupIterator::INTERCEPTOR: { Handle holder = it->GetHolder(); InterceptorInfo* info = holder->GetNamedInterceptor(); if (it->HolderIsReceiverOrHiddenPrototype()) { return !info->non_masking() && receiver.is_identical_to(holder) && !info->setter()->IsUndefined(it->isolate()); } else if (!info->getter()->IsUndefined(it->isolate()) || !info->query()->IsUndefined(it->isolate())) { return false; } break; } case LookupIterator::ACCESS_CHECK: if (it->GetHolder()->IsAccessCheckNeeded()) return false; break; case LookupIterator::ACCESSOR: return !it->IsReadOnly(); case LookupIterator::INTEGER_INDEXED_EXOTIC: return false; case LookupIterator::DATA: { if (it->IsReadOnly()) return false; Handle holder = it->GetHolder(); if (receiver.is_identical_to(holder)) { it->PrepareForDataProperty(value); // The previous receiver map might just have been deprecated, // so reload it. update_receiver_map(receiver); return true; } // Receiver != holder. if (receiver->IsJSGlobalProxy()) { PrototypeIterator iter(it->isolate(), receiver); return it->GetHolder().is_identical_to( PrototypeIterator::GetCurrent(iter)); } if (it->HolderIsReceiverOrHiddenPrototype()) return false; if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } } } receiver = it->GetStoreTarget(); if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } MaybeHandle StoreIC::Store(Handle object, Handle name, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (object->IsJSGlobalObject() && name->IsString()) { // Look up in script context table. Handle str_name = Handle::cast(name); Handle global = Handle::cast(object); Handle script_contexts( global->native_context()->script_context_table()); ScriptContextTable::LookupResult lookup_result; if (ScriptContextTable::Lookup(script_contexts, str_name, &lookup_result)) { Handle script_context = ScriptContextTable::GetContext( script_contexts, lookup_result.context_index); if (lookup_result.mode == CONST) { return TypeError(MessageTemplate::kConstAssign, object, name); } Handle previous_value = FixedArray::get(*script_context, lookup_result.slot_index, isolate()); if (previous_value->IsTheHole(isolate())) { // Do not install stubs and stay pre-monomorphic for // uninitialized accesses. return ReferenceError(name); } if (FLAG_use_ic && StoreScriptContextFieldStub::Accepted(&lookup_result)) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreScriptContextFieldStub); StoreScriptContextFieldStub stub(isolate(), &lookup_result); PatchCache(name, stub.GetCode()); } script_context->set(lookup_result.slot_index, *value); return value; } } // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object) || object->IsJSProxy()) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Object::SetProperty(object, name, value, language_mode()), Object); return result; } // If the object is undefined or null it's illegal to try to set any // properties on it; throw a TypeError in that case. if (object->IsUndefined(isolate()) || object->IsNull(isolate())) { return TypeError(MessageTemplate::kNonObjectPropertyStore, object, name); } if (state() != UNINITIALIZED) { JSObject::MakePrototypesFast(object, kStartAtPrototype, isolate()); } LookupIterator it(object, name); if (FLAG_use_ic) UpdateCaches(&it, value, store_mode); MAYBE_RETURN_NULL( Object::SetProperty(&it, value, language_mode(), store_mode)); return value; } Handle CallIC::initialize_stub_in_optimized_code( Isolate* isolate, int argc, ConvertReceiverMode mode, TailCallMode tail_call_mode) { CallICStub stub(isolate, CallICState(argc, mode, tail_call_mode)); Handle code = stub.GetCode(); return code; } Handle StoreIC::initialize_stub_in_optimized_code( Isolate* isolate, LanguageMode language_mode) { VectorStoreICStub stub(isolate, StoreICState(language_mode)); return stub.GetCode(); } void StoreIC::UpdateCaches(LookupIterator* lookup, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (state() == UNINITIALIZED) { // This is the first time we execute this inline cache. Set the target to // the pre monomorphic stub to delay setting the monomorphic state. ConfigureVectorState(PREMONOMORPHIC, Handle()); TRACE_IC("StoreIC", lookup->name()); return; } bool use_ic = LookupForWrite(lookup, value, store_mode); if (!use_ic) { TRACE_GENERIC_IC(isolate(), "StoreIC", "LookupForWrite said 'false'"); } Handle code = use_ic ? ComputeHandler(lookup, value) : slow_stub(); PatchCache(lookup->name(), code); TRACE_IC("StoreIC", lookup->name()); } static Handle PropertyCellStoreHandler( Isolate* isolate, Handle receiver, Handle holder, Handle name, Handle cell, PropertyCellType type) { auto constant_type = Nothing(); if (type == PropertyCellType::kConstantType) { constant_type = Just(cell->GetConstantType()); } StoreGlobalStub stub(isolate, type, constant_type, receiver->IsJSGlobalProxy()); auto code = stub.GetCodeCopyFromTemplate(holder, cell); // TODO(verwaest): Move caching of these NORMAL stubs outside as well. HeapObject::UpdateMapCodeCache(receiver, name, code); return code; } Handle StoreIC::GetMapIndependentHandler(LookupIterator* lookup) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { break; // Custom-compiled handler. } // Currently not handled by CompileStoreTransition. if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "transition from slow"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } DCHECK(lookup->IsCacheableTransition()); break; // Custom-compiled handler. } case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->setter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreInterceptorStub); StoreInterceptorStub stub(isolate()); return stub.GetCode(); } case LookupIterator::ACCESSOR: { if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "accessor on slow map"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->setter()) == nullptr) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter == nullptr"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (AccessorInfo::cast(*accessors)->is_special_data_property() && !lookup->HolderIsReceiverOrHiddenPrototype()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "special data property in prototype chain"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (!AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())) { TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver type"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorPair()) { Handle setter(Handle::cast(accessors)->setter(), isolate()); if (!setter->IsJSFunction() && !setter->IsFunctionTemplateInfo()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter not a function"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } CallOptimization call_optimization(setter); if (call_optimization.is_simple_api_call()) { if (call_optimization.IsCompatibleReceiver(receiver, holder)) { break; // Custom-compiled handler. } TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreNormal); DCHECK(holder.is_identical_to(receiver)); return isolate()->builtins()->StoreIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } if (use_stub) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreFieldStub); StoreFieldStub stub(isolate(), lookup->GetFieldIndex(), lookup->representation()); return stub.GetCode(); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); TRACE_GENERIC_IC(isolate(), "StoreIC", "constant property"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } return Handle::null(); } Handle StoreIC::CompileHandler(LookupIterator* lookup, Handle value, CacheHolderFlag cache_holder) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { // TODO(dcarney): this currently just deopts. Use the transition cell. TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobalTransition); auto cell = isolate()->factory()->NewPropertyCell(); cell->set_value(*value); auto code = PropertyCellStoreHandler( isolate(), store_target, Handle::cast(store_target), lookup->name(), cell, PropertyCellType::kConstant); cell->set_value(isolate()->heap()->the_hole_value()); return code; } Handle transition = lookup->transition_map(); // Currently not handled by CompileStoreTransition. DCHECK(holder->HasFastProperties()); DCHECK(lookup->IsCacheableTransition()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreTransition); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreTransition(transition, lookup->name()); } case LookupIterator::INTERCEPTOR: UNREACHABLE(); case LookupIterator::ACCESSOR: { DCHECK(holder->HasFastProperties()); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->setter()) != 0); DCHECK(!AccessorInfo::cast(*accessors)->is_special_data_property() || lookup->HolderIsReceiverOrHiddenPrototype()); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), info, language_mode()); return code; } else { DCHECK(accessors->IsAccessorPair()); Handle setter(Handle::cast(accessors)->setter(), isolate()); DCHECK(setter->IsJSFunction() || setter->IsFunctionTemplateInfo()); CallOptimization call_optimization(setter); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); if (call_optimization.is_simple_api_call()) { DCHECK(call_optimization.IsCompatibleReceiver(receiver, holder)); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), call_optimization, lookup->GetAccessorIndex()); return code; } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreViaSetter); int expected_arguments = JSFunction::cast(*setter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileStoreViaSetter(receiver, lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobal); DCHECK(holder.is_identical_to(receiver) || receiver->map()->prototype() == *holder); auto cell = lookup->GetPropertyCell(); auto updated_type = PropertyCell::UpdatedType(cell, value, lookup->property_details()); auto code = PropertyCellStoreHandler( isolate(), receiver, Handle::cast(holder), lookup->name(), cell, updated_type); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { #ifdef DEBUG bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } DCHECK(!use_stub); #endif TRACE_HANDLER_STATS(isolate(), StoreIC_StoreField); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreField(lookup); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); UNREACHABLE(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } void KeyedStoreIC::UpdateStoreElement(Handle receiver_map, KeyedAccessStoreMode store_mode) { MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle monomorphic_map = ComputeTransitionedMap(receiver_map, store_mode); store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(monomorphic_map, store_mode); return ConfigureVectorState(Handle(), monomorphic_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { if (!target_receiver_maps.at(i).is_null() && target_receiver_maps.at(i)->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "JSValue"); return; } } // There are several special cases where an IC that is MONOMORPHIC can still // transition to a different GetNonTransitioningStoreMode IC that handles a // superset of the original IC. Handle those here if the receiver map hasn't // changed or it has transitioned to a more general kind. KeyedAccessStoreMode old_store_mode = GetKeyedAccessStoreMode(); Handle previous_receiver_map = target_receiver_maps.at(0); if (state() == MONOMORPHIC) { Handle transitioned_receiver_map = receiver_map; if (IsTransitionStoreMode(store_mode)) { transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); } if ((receiver_map.is_identical_to(previous_receiver_map) && IsTransitionStoreMode(store_mode)) || IsTransitionOfMonomorphicTarget(*previous_receiver_map, *transitioned_receiver_map)) { // If the "old" and "new" maps are in the same elements map family, or // if they at least come from the same origin for a transitioning store, // stay MONOMORPHIC and use the map for the most generic ElementsKind. store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler( transitioned_receiver_map, store_mode); ConfigureVectorState(Handle(), transitioned_receiver_map, handler); return; } if (receiver_map.is_identical_to(previous_receiver_map) && old_store_mode == STANDARD_STORE && (store_mode == STORE_AND_GROW_NO_TRANSITION || store_mode == STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS || store_mode == STORE_NO_TRANSITION_HANDLE_COW)) { // A "normal" IC that handles stores can switch to a version that can // grow at the end of the array, handle OOB accesses or copy COW arrays // and still stay MONOMORPHIC. Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(receiver_map, store_mode); return ConfigureVectorState(Handle(), receiver_map, handler); } } DCHECK(state() != GENERIC); bool map_added = AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map); if (IsTransitionStoreMode(store_mode)) { Handle transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); map_added |= AddOneReceiverMapIfMissing(&target_receiver_maps, transitioned_receiver_map); } if (!map_added) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the megamorphic stub which can handle everything. TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the // megamorphic version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) return; // Make sure all polymorphic handlers have the same store mode, otherwise the // megamorphic stub must be used. store_mode = GetNonTransitioningStoreMode(store_mode); if (old_store_mode != STANDARD_STORE) { if (store_mode == STANDARD_STORE) { store_mode = old_store_mode; } else if (store_mode != old_store_mode) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "store mode mismatch"); return; } } // If the store mode isn't the standard mode, make sure that all polymorphic // receivers are either external arrays, or all "normal" arrays. Otherwise, // use the megamorphic stub. if (store_mode != STANDARD_STORE) { int external_arrays = 0; for (int i = 0; i < target_receiver_maps.length(); ++i) { if (target_receiver_maps[i]->has_fixed_typed_array_elements()) { external_arrays++; } } if (external_arrays != 0 && external_arrays != target_receiver_maps.length()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unsupported combination of external and normal arrays"); return; } } TRACE_HANDLER_STATS(isolate(), KeyedStoreIC_Polymorphic); MapHandleList transitioned_maps(target_receiver_maps.length()); CodeHandleList handlers(target_receiver_maps.length()); PropertyICCompiler::ComputeKeyedStorePolymorphicHandlers( &target_receiver_maps, &transitioned_maps, &handlers, store_mode); ConfigureVectorState(&target_receiver_maps, &transitioned_maps, &handlers); } Handle KeyedStoreIC::ComputeTransitionedMap( Handle map, KeyedAccessStoreMode store_mode) { switch (store_mode) { case STORE_TRANSITION_TO_OBJECT: case STORE_AND_GROW_TRANSITION_TO_OBJECT: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_ELEMENTS : FAST_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_TRANSITION_TO_DOUBLE: case STORE_AND_GROW_TRANSITION_TO_DOUBLE: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_DOUBLE_ELEMENTS : FAST_DOUBLE_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS: DCHECK(map->has_fixed_typed_array_elements()); // Fall through case STORE_NO_TRANSITION_HANDLE_COW: case STANDARD_STORE: case STORE_AND_GROW_NO_TRANSITION: return map; } UNREACHABLE(); return MaybeHandle().ToHandleChecked(); } bool IsOutOfBoundsAccess(Handle receiver, uint32_t index) { uint32_t length = 0; if (receiver->IsJSArray()) { JSArray::cast(*receiver)->length()->ToArrayLength(&length); } else { length = static_cast(receiver->elements()->length()); } return index >= length; } static KeyedAccessStoreMode GetStoreMode(Handle receiver, uint32_t index, Handle value) { bool oob_access = IsOutOfBoundsAccess(receiver, index); // Don't consider this a growing store if the store would send the receiver to // dictionary mode. bool allow_growth = receiver->IsJSArray() && oob_access && !receiver->WouldConvertToSlowElements(index); if (allow_growth) { // Handle growing array in stub if necessary. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_DOUBLE; } if (value->IsHeapObject()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } return STORE_AND_GROW_NO_TRANSITION; } else { // Handle only in-bounds elements accesses. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_TRANSITION_TO_DOUBLE; } else if (value->IsHeapObject()) { return STORE_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_TRANSITION_TO_OBJECT; } } if (!FLAG_trace_external_array_abuse && receiver->map()->has_fixed_typed_array_elements() && oob_access) { return STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS; } Heap* heap = receiver->GetHeap(); if (receiver->elements()->map() == heap->fixed_cow_array_map()) { return STORE_NO_TRANSITION_HANDLE_COW; } else { return STANDARD_STORE; } } } MaybeHandle KeyedStoreIC::Store(Handle object, Handle key, Handle value) { // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); return result; } // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); Handle store_handle; uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION( isolate(), store_handle, StoreIC::Store(object, Handle::cast(key), value, JSReceiver::MAY_BE_STORE_FROM_KEYED), Object); if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unhandled internalized string key"); TRACE_IC("StoreIC", key); } return store_handle; } bool use_ic = FLAG_use_ic && !object->IsStringWrapper() && !object->IsAccessCheckNeeded() && !object->IsJSGlobalProxy(); if (use_ic && !object->IsSmi()) { // Don't use ICs for maps of the objects in Array's prototype chain. We // expect to be able to trap element sets to objects with those maps in // the runtime to enable optimization of element hole access. Handle heap_object = Handle::cast(object); if (heap_object->map()->IsMapInArrayPrototypeChain()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "map in array prototype"); use_ic = false; } } Handle old_receiver_map; bool sloppy_arguments_elements = false; bool key_is_valid_index = false; KeyedAccessStoreMode store_mode = STANDARD_STORE; if (use_ic && object->IsJSObject()) { Handle receiver = Handle::cast(object); old_receiver_map = handle(receiver->map(), isolate()); sloppy_arguments_elements = !is_sloppy(language_mode()) && receiver->elements()->map() == isolate()->heap()->sloppy_arguments_elements_map(); if (!sloppy_arguments_elements) { key_is_valid_index = key->IsSmi() && Smi::cast(*key)->value() >= 0; if (key_is_valid_index) { uint32_t index = static_cast(Smi::cast(*key)->value()); store_mode = GetStoreMode(receiver, index, value); } } } DCHECK(store_handle.is_null()); ASSIGN_RETURN_ON_EXCEPTION(isolate(), store_handle, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); if (use_ic) { if (!old_receiver_map.is_null()) { if (sloppy_arguments_elements) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "arguments receiver"); } else if (key_is_valid_index) { // We should go generic if receiver isn't a dictionary, but our // prototype chain does have dictionary elements. This ensures that // other non-dictionary receivers in the polymorphic case benefit // from fast path keyed stores. if (!old_receiver_map->DictionaryElementsInPrototypeChainOnly()) { UpdateStoreElement(old_receiver_map, store_mode); } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "dictionary or proxy prototype"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-smi-like key"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-JSObject receiver"); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "set generic"); } TRACE_IC("StoreIC", key); return store_handle; } void CallIC::HandleMiss(Handle function) { Handle name = isolate()->factory()->empty_string(); CallICNexus* nexus = casted_nexus(); Object* feedback = nexus->GetFeedback(); // Hand-coded MISS handling is easier if CallIC slots don't contain smis. DCHECK(!feedback->IsSmi()); if (feedback->IsWeakCell() || !function->IsJSFunction() || feedback->IsAllocationSite()) { // We are going generic. nexus->ConfigureMegamorphic(); } else { DCHECK(feedback == *TypeFeedbackVector::UninitializedSentinel(isolate())); Handle js_function = Handle::cast(function); Handle array_function = Handle(isolate()->native_context()->array_function()); if (array_function.is_identical_to(js_function)) { // Alter the slot. nexus->ConfigureMonomorphicArray(); } else if (js_function->context()->native_context() != *isolate()->native_context()) { // Don't collect cross-native context feedback for the CallIC. // TODO(bmeurer): We should collect the SharedFunctionInfo as // feedback in this case instead. nexus->ConfigureMegamorphic(); } else { nexus->ConfigureMonomorphic(js_function); } } if (function->IsJSFunction()) { Handle
KeyedStoreIC::initialize_stub_in_optimized_code( Isolate* isolate, LanguageMode language_mode) { StoreICState state = StoreICState(language_mode); return VectorKeyedStoreICStub(isolate, state).GetCode(); } Handle KeyedStoreIC::ChooseMegamorphicStub(Isolate* isolate, ExtraICState extra_state) { LanguageMode mode = StoreICState::GetLanguageMode(extra_state); return is_strict(mode) ? isolate->builtins()->KeyedStoreIC_Megamorphic_Strict() : isolate->builtins()->KeyedStoreIC_Megamorphic(); } Handle LoadIC::SimpleFieldLoad(FieldIndex index) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadFieldStub); LoadFieldStub stub(isolate(), index); return stub.GetCode(); } bool IsCompatibleReceiver(LookupIterator* lookup, Handle receiver_map) { DCHECK(lookup->state() == LookupIterator::ACCESSOR); Isolate* isolate = lookup->isolate(); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (info->getter() != NULL && !AccessorInfo::IsCompatibleReceiverMap(isolate, info, receiver_map)) { return false; } } else if (accessors->IsAccessorPair()) { Handle getter(Handle::cast(accessors)->getter(), isolate); if (!getter->IsJSFunction() && !getter->IsFunctionTemplateInfo()) { return false; } Handle holder = lookup->GetHolder(); Handle receiver = lookup->GetReceiver(); if (holder->HasFastProperties()) { if (getter->IsJSFunction()) { Handle function = Handle::cast(getter); if (!receiver->IsJSObject() && !function->shared()->IsBuiltin() && is_sloppy(function->shared()->language_mode())) { // Calling sloppy non-builtins with a value as the receiver // requires boxing. return false; } } CallOptimization call_optimization(getter); if (call_optimization.is_simple_api_call() && !call_optimization.IsCompatibleReceiverMap(receiver_map, holder)) { return false; } } } return true; } void LoadIC::UpdateCaches(LookupIterator* lookup) { if (state() == UNINITIALIZED && kind() != Code::LOAD_GLOBAL_IC) { // This is the first time we execute this inline cache. Set the target to // the pre monomorphic stub to delay setting the monomorphic state. ConfigureVectorState(PREMONOMORPHIC, Handle()); TRACE_IC("LoadIC", lookup->name()); return; } Handle code; if (lookup->state() == LookupIterator::JSPROXY || lookup->state() == LookupIterator::ACCESS_CHECK) { code = slow_stub(); } else if (!lookup->IsFound()) { if (kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC) { code = NamedLoadHandlerCompiler::ComputeLoadNonexistent(lookup->name(), receiver_map()); // TODO(jkummerow/verwaest): Introduce a builtin that handles this case. if (code.is_null()) code = slow_stub(); } else { code = slow_stub(); } } else { if (kind() == Code::LOAD_GLOBAL_IC && lookup->state() == LookupIterator::DATA && lookup->GetHolder()->IsJSGlobalObject()) { #if DEBUG Handle holder = lookup->GetHolder(); Handle receiver = lookup->GetReceiver(); DCHECK_EQ(*receiver, *holder); #endif // Now update the cell in the feedback vector. LoadGlobalICNexus* nexus = casted_nexus(); nexus->ConfigurePropertyCellMode(lookup->GetPropertyCell()); TRACE_IC("LoadGlobalIC", lookup->name()); return; } else if (lookup->state() == LookupIterator::ACCESSOR) { if (!IsCompatibleReceiver(lookup, receiver_map())) { TRACE_GENERIC_IC(isolate(), "LoadIC", "incompatible receiver type"); code = slow_stub(); } } else if (lookup->state() == LookupIterator::INTERCEPTOR) { if (kind() == Code::LOAD_GLOBAL_IC) { // The interceptor handler requires name but it is not passed explicitly // to LoadGlobalIC and the LoadGlobalIC dispatcher also does not load // it so we will just use slow stub. code = slow_stub(); } else { // Perform a lookup behind the interceptor. Copy the LookupIterator // since the original iterator will be used to fetch the value. LookupIterator it = *lookup; it.Next(); LookupForRead(&it); if (it.state() == LookupIterator::ACCESSOR && !IsCompatibleReceiver(&it, receiver_map())) { TRACE_GENERIC_IC(isolate(), "LoadIC", "incompatible receiver type"); code = slow_stub(); } } } if (code.is_null()) code = ComputeHandler(lookup); } PatchCache(lookup->name(), code); TRACE_IC("LoadIC", lookup->name()); } void IC::UpdateMegamorphicCache(Map* map, Name* name, Code* code) { isolate()->stub_cache()->Set(name, map, code); } Handle IC::ComputeHandler(LookupIterator* lookup, Handle value) { // Try to find a globally shared handler stub. Handle code = GetMapIndependentHandler(lookup); if (!code.is_null()) return code; // Otherwise check the map's handler cache for a map-specific handler, and // compile one if the cache comes up empty. bool receiver_is_holder = lookup->GetReceiver().is_identical_to(lookup->GetHolder()); CacheHolderFlag flag; Handle stub_holder_map; if (kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC || kind() == Code::KEYED_LOAD_IC) { stub_holder_map = IC::GetHandlerCacheHolder( receiver_map(), receiver_is_holder, isolate(), &flag); } else { DCHECK(kind() == Code::STORE_IC || kind() == Code::KEYED_STORE_IC); // Store handlers cannot be cached on prototypes. flag = kCacheOnReceiver; stub_holder_map = receiver_map(); } code = PropertyHandlerCompiler::Find(lookup->name(), stub_holder_map, kind(), flag); // Use the cached value if it exists, and if it is different from the // handler that just missed. if (!code.is_null()) { Handle handler; if (maybe_handler_.ToHandle(&handler)) { if (!handler.is_identical_to(code)) { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } else { // maybe_handler_ is only populated for MONOMORPHIC and POLYMORPHIC ICs. // In MEGAMORPHIC case, check if the handler in the megamorphic stub // cache (which just missed) is different from the cached handler. if (state() == MEGAMORPHIC && lookup->GetReceiver()->IsHeapObject()) { Map* map = Handle::cast(lookup->GetReceiver())->map(); Code* megamorphic_cached_code = isolate()->stub_cache()->Get(*lookup->name(), map, code->flags()); if (megamorphic_cached_code != *code) { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } else { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } } code = CompileHandler(lookup, value, flag); DCHECK(code->is_handler()); DCHECK(Code::ExtractCacheHolderFromFlags(code->flags()) == flag); Map::UpdateCodeCache(stub_holder_map, lookup->name(), code); return code; } Handle LoadIC::GetMapIndependentHandler(LookupIterator* lookup) { Handle receiver = lookup->GetReceiver(); if (receiver->IsString() && Name::Equals(isolate()->factory()->length_string(), lookup->name())) { FieldIndex index = FieldIndex::ForInObjectOffset(String::kLengthOffset); return SimpleFieldLoad(index); } if (receiver->IsStringWrapper() && Name::Equals(isolate()->factory()->length_string(), lookup->name())) { TRACE_HANDLER_STATS(isolate(), LoadIC_StringLengthStub); StringLengthStub string_length_stub(isolate()); return string_length_stub.GetCode(); } // Use specialized code for getting prototype of functions. if (receiver->IsJSFunction() && Name::Equals(isolate()->factory()->prototype_string(), lookup->name()) && receiver->IsConstructor() && !Handle::cast(receiver) ->map() ->has_non_instance_prototype()) { Handle stub; TRACE_HANDLER_STATS(isolate(), LoadIC_FunctionPrototypeStub); FunctionPrototypeStub function_prototype_stub(isolate()); return function_prototype_stub.GetCode(); } Handle map = receiver_map(); Handle holder = lookup->GetHolder(); bool receiver_is_holder = receiver.is_identical_to(holder); switch (lookup->state()) { case LookupIterator::INTERCEPTOR: break; // Custom-compiled handler. case LookupIterator::ACCESSOR: { // Use simple field loads for some well-known callback properties. // The method will only return true for absolute truths based on the // receiver maps. int object_offset; if (Accessors::IsJSObjectFieldAccessor(map, lookup->name(), &object_offset)) { FieldIndex index = FieldIndex::ForInObjectOffset(object_offset, *map); return SimpleFieldLoad(index); } if (IsCompatibleReceiver(lookup, map)) { Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorPair()) { if (!holder->HasFastProperties()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } // When debugging we need to go the slow path to flood the accessor. if (GetSharedFunctionInfo()->HasDebugInfo()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->getter()) == nullptr) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } // Ruled out by IsCompatibleReceiver() above. DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, map)); if (!holder->HasFastProperties()) return slow_stub(); if (receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadApiGetterStub); int index = lookup->GetAccessorIndex(); LoadApiGetterStub stub(isolate(), true, index); return stub.GetCode(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } } TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (kind() != Code::LOAD_IC && kind() != Code::LOAD_GLOBAL_IC) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } // There is only one shared stub for loading normalized // properties. It does not traverse the prototype chain, so the // property must be found in the object for the stub to be // applicable. if (!receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } TRACE_HANDLER_STATS(isolate(), LoadIC_LoadNormal); return isolate()->builtins()->LoadIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { FieldIndex field = lookup->GetFieldIndex(); if (receiver_is_holder) { return SimpleFieldLoad(field); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); if (receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadConstantStub); LoadConstantStub stub(isolate(), lookup->GetConstantIndex()); return stub.GetCode(); } break; // Custom-compiled handler. } case LookupIterator::INTEGER_INDEXED_EXOTIC: TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); } return Handle::null(); } Handle LoadIC::CompileHandler(LookupIterator* lookup, Handle unused, CacheHolderFlag cache_holder) { Handle holder = lookup->GetHolder(); #ifdef DEBUG // Only used by DCHECKs below. Handle receiver = lookup->GetReceiver(); bool receiver_is_holder = receiver.is_identical_to(holder); #endif // Non-map-specific handler stubs have already been selected. DCHECK(!receiver->IsString() || !Name::Equals(isolate()->factory()->length_string(), lookup->name())); DCHECK(!receiver->IsStringWrapper() || !Name::Equals(isolate()->factory()->length_string(), lookup->name())); DCHECK(!( receiver->IsJSFunction() && Name::Equals(isolate()->factory()->prototype_string(), lookup->name()) && receiver->IsConstructor() && !Handle::cast(receiver) ->map() ->has_non_instance_prototype())); Handle map = receiver_map(); switch (lookup->state()) { case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->getter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadInterceptor); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); // Perform a lookup behind the interceptor. Copy the LookupIterator since // the original iterator will be used to fetch the value. LookupIterator it = *lookup; it.Next(); LookupForRead(&it); return compiler.CompileLoadInterceptor(&it); } case LookupIterator::ACCESSOR: { #ifdef DEBUG int object_offset; DCHECK(!Accessors::IsJSObjectFieldAccessor(map, lookup->name(), &object_offset)); #endif DCHECK(IsCompatibleReceiver(lookup, map)); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorPair()) { DCHECK(holder->HasFastProperties()); DCHECK(!GetSharedFunctionInfo()->HasDebugInfo()); Handle getter(Handle::cast(accessors)->getter(), isolate()); CallOptimization call_optimization(getter); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); if (call_optimization.is_simple_api_call()) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadCallback); int index = lookup->GetAccessorIndex(); Handle code = compiler.CompileLoadCallback( lookup->name(), call_optimization, index); return code; } TRACE_HANDLER_STATS(isolate(), LoadIC_LoadViaGetter); int expected_arguments = Handle::cast(getter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileLoadViaGetter( lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } else { DCHECK(accessors->IsAccessorInfo()); Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->getter()) != nullptr); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, map)); DCHECK(holder->HasFastProperties()); DCHECK(!receiver_is_holder); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadCallback); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle code = compiler.CompileLoadCallback(lookup->name(), info); return code; } UNREACHABLE(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC); DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadGlobal); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle cell = lookup->GetPropertyCell(); Handle code = compiler.CompileLoadGlobal( cell, lookup->name(), lookup->IsConfigurable()); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { FieldIndex field = lookup->GetFieldIndex(); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadField); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadField(lookup->name(), field); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadConstant); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadConstant(lookup->name(), lookup->GetConstantIndex()); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } static Handle TryConvertKey(Handle key, Isolate* isolate) { // This helper implements a few common fast cases for converting // non-smi keys of keyed loads/stores to a smi or a string. if (key->IsHeapNumber()) { double value = Handle::cast(key)->value(); if (std::isnan(value)) { key = isolate->factory()->nan_string(); } else { int int_value = FastD2I(value); if (value == int_value && Smi::IsValid(int_value)) { key = handle(Smi::FromInt(int_value), isolate); } } } else if (key->IsUndefined(isolate)) { key = isolate->factory()->undefined_string(); } return key; } void KeyedLoadIC::UpdateLoadElement(Handle receiver) { Handle receiver_map(receiver->map(), isolate()); DCHECK(receiver_map->instance_type() != JS_VALUE_TYPE && receiver_map->instance_type() != JS_PROXY_TYPE); // Checked by caller. MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { Handle map = target_receiver_maps.at(i); if (map.is_null()) continue; if (map->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSValue"); return; } if (map->instance_type() == JS_PROXY_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSProxy"); return; } } // The first time a receiver is seen that is a transitioned version of the // previous monomorphic receiver type, assume the new ElementsKind is the // monomorphic type. This benefits global arrays that only transition // once, and all call sites accessing them are faster if they remain // monomorphic. If this optimistic assumption is not true, the IC will // miss again and it will become polymorphic and support both the // untransitioned and transitioned maps. if (state() == MONOMORPHIC && !receiver->IsString() && IsMoreGeneralElementsKindTransition( target_receiver_maps.at(0)->elements_kind(), Handle::cast(receiver)->GetElementsKind())) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } DCHECK(state() != GENERIC); // Determine the list of receiver maps that this call site has seen, // adding the map that was just encountered. if (!AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map)) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the generic stub. TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the generic // version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "max polymorph exceeded"); return; } CodeHandleList handlers(target_receiver_maps.length()); TRACE_HANDLER_STATS(isolate(), KeyedLoadIC_PolymorphicElement); ElementHandlerCompiler compiler(isolate()); compiler.CompileElementHandlers(&target_receiver_maps, &handlers); ConfigureVectorState(Handle(), &target_receiver_maps, &handlers); } MaybeHandle KeyedLoadIC::Load(Handle object, Handle key) { if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } Handle load_handle; // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION(isolate(), load_handle, LoadIC::Load(object, Handle::cast(key)), Object); } else if (FLAG_use_ic && !object->IsAccessCheckNeeded() && !object->IsJSValue()) { if (object->IsJSObject() || (object->IsString() && key->IsNumber())) { Handle receiver = Handle::cast(object); if (object->IsString() || key->IsSmi()) UpdateLoadElement(receiver); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "set generic"); } TRACE_IC("LoadIC", key); if (!load_handle.is_null()) return load_handle; Handle result; ASSIGN_RETURN_ON_EXCEPTION(isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } bool StoreIC::LookupForWrite(LookupIterator* it, Handle value, JSReceiver::StoreFromKeyed store_mode) { // Disable ICs for non-JSObjects for now. Handle object = it->GetReceiver(); if (!object->IsJSObject()) return false; Handle receiver = Handle::cast(object); DCHECK(!receiver->map()->is_deprecated()); for (; it->IsFound(); it->Next()) { switch (it->state()) { case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); case LookupIterator::JSPROXY: return false; case LookupIterator::INTERCEPTOR: { Handle holder = it->GetHolder(); InterceptorInfo* info = holder->GetNamedInterceptor(); if (it->HolderIsReceiverOrHiddenPrototype()) { return !info->non_masking() && receiver.is_identical_to(holder) && !info->setter()->IsUndefined(it->isolate()); } else if (!info->getter()->IsUndefined(it->isolate()) || !info->query()->IsUndefined(it->isolate())) { return false; } break; } case LookupIterator::ACCESS_CHECK: if (it->GetHolder()->IsAccessCheckNeeded()) return false; break; case LookupIterator::ACCESSOR: return !it->IsReadOnly(); case LookupIterator::INTEGER_INDEXED_EXOTIC: return false; case LookupIterator::DATA: { if (it->IsReadOnly()) return false; Handle holder = it->GetHolder(); if (receiver.is_identical_to(holder)) { it->PrepareForDataProperty(value); // The previous receiver map might just have been deprecated, // so reload it. update_receiver_map(receiver); return true; } // Receiver != holder. if (receiver->IsJSGlobalProxy()) { PrototypeIterator iter(it->isolate(), receiver); return it->GetHolder().is_identical_to( PrototypeIterator::GetCurrent(iter)); } if (it->HolderIsReceiverOrHiddenPrototype()) return false; if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } } } receiver = it->GetStoreTarget(); if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } MaybeHandle StoreIC::Store(Handle object, Handle name, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (object->IsJSGlobalObject() && name->IsString()) { // Look up in script context table. Handle str_name = Handle::cast(name); Handle global = Handle::cast(object); Handle script_contexts( global->native_context()->script_context_table()); ScriptContextTable::LookupResult lookup_result; if (ScriptContextTable::Lookup(script_contexts, str_name, &lookup_result)) { Handle script_context = ScriptContextTable::GetContext( script_contexts, lookup_result.context_index); if (lookup_result.mode == CONST) { return TypeError(MessageTemplate::kConstAssign, object, name); } Handle previous_value = FixedArray::get(*script_context, lookup_result.slot_index, isolate()); if (previous_value->IsTheHole(isolate())) { // Do not install stubs and stay pre-monomorphic for // uninitialized accesses. return ReferenceError(name); } if (FLAG_use_ic && StoreScriptContextFieldStub::Accepted(&lookup_result)) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreScriptContextFieldStub); StoreScriptContextFieldStub stub(isolate(), &lookup_result); PatchCache(name, stub.GetCode()); } script_context->set(lookup_result.slot_index, *value); return value; } } // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object) || object->IsJSProxy()) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Object::SetProperty(object, name, value, language_mode()), Object); return result; } // If the object is undefined or null it's illegal to try to set any // properties on it; throw a TypeError in that case. if (object->IsUndefined(isolate()) || object->IsNull(isolate())) { return TypeError(MessageTemplate::kNonObjectPropertyStore, object, name); } if (state() != UNINITIALIZED) { JSObject::MakePrototypesFast(object, kStartAtPrototype, isolate()); } LookupIterator it(object, name); if (FLAG_use_ic) UpdateCaches(&it, value, store_mode); MAYBE_RETURN_NULL( Object::SetProperty(&it, value, language_mode(), store_mode)); return value; } Handle CallIC::initialize_stub_in_optimized_code( Isolate* isolate, int argc, ConvertReceiverMode mode, TailCallMode tail_call_mode) { CallICStub stub(isolate, CallICState(argc, mode, tail_call_mode)); Handle code = stub.GetCode(); return code; } Handle StoreIC::initialize_stub_in_optimized_code( Isolate* isolate, LanguageMode language_mode) { VectorStoreICStub stub(isolate, StoreICState(language_mode)); return stub.GetCode(); } void StoreIC::UpdateCaches(LookupIterator* lookup, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (state() == UNINITIALIZED) { // This is the first time we execute this inline cache. Set the target to // the pre monomorphic stub to delay setting the monomorphic state. ConfigureVectorState(PREMONOMORPHIC, Handle()); TRACE_IC("StoreIC", lookup->name()); return; } bool use_ic = LookupForWrite(lookup, value, store_mode); if (!use_ic) { TRACE_GENERIC_IC(isolate(), "StoreIC", "LookupForWrite said 'false'"); } Handle code = use_ic ? ComputeHandler(lookup, value) : slow_stub(); PatchCache(lookup->name(), code); TRACE_IC("StoreIC", lookup->name()); } static Handle PropertyCellStoreHandler( Isolate* isolate, Handle receiver, Handle holder, Handle name, Handle cell, PropertyCellType type) { auto constant_type = Nothing(); if (type == PropertyCellType::kConstantType) { constant_type = Just(cell->GetConstantType()); } StoreGlobalStub stub(isolate, type, constant_type, receiver->IsJSGlobalProxy()); auto code = stub.GetCodeCopyFromTemplate(holder, cell); // TODO(verwaest): Move caching of these NORMAL stubs outside as well. HeapObject::UpdateMapCodeCache(receiver, name, code); return code; } Handle StoreIC::GetMapIndependentHandler(LookupIterator* lookup) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { break; // Custom-compiled handler. } // Currently not handled by CompileStoreTransition. if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "transition from slow"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } DCHECK(lookup->IsCacheableTransition()); break; // Custom-compiled handler. } case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->setter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreInterceptorStub); StoreInterceptorStub stub(isolate()); return stub.GetCode(); } case LookupIterator::ACCESSOR: { if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "accessor on slow map"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->setter()) == nullptr) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter == nullptr"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (AccessorInfo::cast(*accessors)->is_special_data_property() && !lookup->HolderIsReceiverOrHiddenPrototype()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "special data property in prototype chain"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (!AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())) { TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver type"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorPair()) { Handle setter(Handle::cast(accessors)->setter(), isolate()); if (!setter->IsJSFunction() && !setter->IsFunctionTemplateInfo()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter not a function"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } CallOptimization call_optimization(setter); if (call_optimization.is_simple_api_call()) { if (call_optimization.IsCompatibleReceiver(receiver, holder)) { break; // Custom-compiled handler. } TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreNormal); DCHECK(holder.is_identical_to(receiver)); return isolate()->builtins()->StoreIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } if (use_stub) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreFieldStub); StoreFieldStub stub(isolate(), lookup->GetFieldIndex(), lookup->representation()); return stub.GetCode(); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); TRACE_GENERIC_IC(isolate(), "StoreIC", "constant property"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } return Handle::null(); } Handle StoreIC::CompileHandler(LookupIterator* lookup, Handle value, CacheHolderFlag cache_holder) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { // TODO(dcarney): this currently just deopts. Use the transition cell. TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobalTransition); auto cell = isolate()->factory()->NewPropertyCell(); cell->set_value(*value); auto code = PropertyCellStoreHandler( isolate(), store_target, Handle::cast(store_target), lookup->name(), cell, PropertyCellType::kConstant); cell->set_value(isolate()->heap()->the_hole_value()); return code; } Handle transition = lookup->transition_map(); // Currently not handled by CompileStoreTransition. DCHECK(holder->HasFastProperties()); DCHECK(lookup->IsCacheableTransition()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreTransition); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreTransition(transition, lookup->name()); } case LookupIterator::INTERCEPTOR: UNREACHABLE(); case LookupIterator::ACCESSOR: { DCHECK(holder->HasFastProperties()); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->setter()) != 0); DCHECK(!AccessorInfo::cast(*accessors)->is_special_data_property() || lookup->HolderIsReceiverOrHiddenPrototype()); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), info, language_mode()); return code; } else { DCHECK(accessors->IsAccessorPair()); Handle setter(Handle::cast(accessors)->setter(), isolate()); DCHECK(setter->IsJSFunction() || setter->IsFunctionTemplateInfo()); CallOptimization call_optimization(setter); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); if (call_optimization.is_simple_api_call()) { DCHECK(call_optimization.IsCompatibleReceiver(receiver, holder)); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), call_optimization, lookup->GetAccessorIndex()); return code; } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreViaSetter); int expected_arguments = JSFunction::cast(*setter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileStoreViaSetter(receiver, lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobal); DCHECK(holder.is_identical_to(receiver) || receiver->map()->prototype() == *holder); auto cell = lookup->GetPropertyCell(); auto updated_type = PropertyCell::UpdatedType(cell, value, lookup->property_details()); auto code = PropertyCellStoreHandler( isolate(), receiver, Handle::cast(holder), lookup->name(), cell, updated_type); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { #ifdef DEBUG bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } DCHECK(!use_stub); #endif TRACE_HANDLER_STATS(isolate(), StoreIC_StoreField); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreField(lookup); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); UNREACHABLE(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } void KeyedStoreIC::UpdateStoreElement(Handle receiver_map, KeyedAccessStoreMode store_mode) { MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle monomorphic_map = ComputeTransitionedMap(receiver_map, store_mode); store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(monomorphic_map, store_mode); return ConfigureVectorState(Handle(), monomorphic_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { if (!target_receiver_maps.at(i).is_null() && target_receiver_maps.at(i)->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "JSValue"); return; } } // There are several special cases where an IC that is MONOMORPHIC can still // transition to a different GetNonTransitioningStoreMode IC that handles a // superset of the original IC. Handle those here if the receiver map hasn't // changed or it has transitioned to a more general kind. KeyedAccessStoreMode old_store_mode = GetKeyedAccessStoreMode(); Handle previous_receiver_map = target_receiver_maps.at(0); if (state() == MONOMORPHIC) { Handle transitioned_receiver_map = receiver_map; if (IsTransitionStoreMode(store_mode)) { transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); } if ((receiver_map.is_identical_to(previous_receiver_map) && IsTransitionStoreMode(store_mode)) || IsTransitionOfMonomorphicTarget(*previous_receiver_map, *transitioned_receiver_map)) { // If the "old" and "new" maps are in the same elements map family, or // if they at least come from the same origin for a transitioning store, // stay MONOMORPHIC and use the map for the most generic ElementsKind. store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler( transitioned_receiver_map, store_mode); ConfigureVectorState(Handle(), transitioned_receiver_map, handler); return; } if (receiver_map.is_identical_to(previous_receiver_map) && old_store_mode == STANDARD_STORE && (store_mode == STORE_AND_GROW_NO_TRANSITION || store_mode == STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS || store_mode == STORE_NO_TRANSITION_HANDLE_COW)) { // A "normal" IC that handles stores can switch to a version that can // grow at the end of the array, handle OOB accesses or copy COW arrays // and still stay MONOMORPHIC. Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(receiver_map, store_mode); return ConfigureVectorState(Handle(), receiver_map, handler); } } DCHECK(state() != GENERIC); bool map_added = AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map); if (IsTransitionStoreMode(store_mode)) { Handle transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); map_added |= AddOneReceiverMapIfMissing(&target_receiver_maps, transitioned_receiver_map); } if (!map_added) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the megamorphic stub which can handle everything. TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the // megamorphic version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) return; // Make sure all polymorphic handlers have the same store mode, otherwise the // megamorphic stub must be used. store_mode = GetNonTransitioningStoreMode(store_mode); if (old_store_mode != STANDARD_STORE) { if (store_mode == STANDARD_STORE) { store_mode = old_store_mode; } else if (store_mode != old_store_mode) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "store mode mismatch"); return; } } // If the store mode isn't the standard mode, make sure that all polymorphic // receivers are either external arrays, or all "normal" arrays. Otherwise, // use the megamorphic stub. if (store_mode != STANDARD_STORE) { int external_arrays = 0; for (int i = 0; i < target_receiver_maps.length(); ++i) { if (target_receiver_maps[i]->has_fixed_typed_array_elements()) { external_arrays++; } } if (external_arrays != 0 && external_arrays != target_receiver_maps.length()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unsupported combination of external and normal arrays"); return; } } TRACE_HANDLER_STATS(isolate(), KeyedStoreIC_Polymorphic); MapHandleList transitioned_maps(target_receiver_maps.length()); CodeHandleList handlers(target_receiver_maps.length()); PropertyICCompiler::ComputeKeyedStorePolymorphicHandlers( &target_receiver_maps, &transitioned_maps, &handlers, store_mode); ConfigureVectorState(&target_receiver_maps, &transitioned_maps, &handlers); } Handle KeyedStoreIC::ComputeTransitionedMap( Handle map, KeyedAccessStoreMode store_mode) { switch (store_mode) { case STORE_TRANSITION_TO_OBJECT: case STORE_AND_GROW_TRANSITION_TO_OBJECT: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_ELEMENTS : FAST_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_TRANSITION_TO_DOUBLE: case STORE_AND_GROW_TRANSITION_TO_DOUBLE: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_DOUBLE_ELEMENTS : FAST_DOUBLE_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS: DCHECK(map->has_fixed_typed_array_elements()); // Fall through case STORE_NO_TRANSITION_HANDLE_COW: case STANDARD_STORE: case STORE_AND_GROW_NO_TRANSITION: return map; } UNREACHABLE(); return MaybeHandle().ToHandleChecked(); } bool IsOutOfBoundsAccess(Handle receiver, uint32_t index) { uint32_t length = 0; if (receiver->IsJSArray()) { JSArray::cast(*receiver)->length()->ToArrayLength(&length); } else { length = static_cast(receiver->elements()->length()); } return index >= length; } static KeyedAccessStoreMode GetStoreMode(Handle receiver, uint32_t index, Handle value) { bool oob_access = IsOutOfBoundsAccess(receiver, index); // Don't consider this a growing store if the store would send the receiver to // dictionary mode. bool allow_growth = receiver->IsJSArray() && oob_access && !receiver->WouldConvertToSlowElements(index); if (allow_growth) { // Handle growing array in stub if necessary. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_DOUBLE; } if (value->IsHeapObject()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } return STORE_AND_GROW_NO_TRANSITION; } else { // Handle only in-bounds elements accesses. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_TRANSITION_TO_DOUBLE; } else if (value->IsHeapObject()) { return STORE_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_TRANSITION_TO_OBJECT; } } if (!FLAG_trace_external_array_abuse && receiver->map()->has_fixed_typed_array_elements() && oob_access) { return STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS; } Heap* heap = receiver->GetHeap(); if (receiver->elements()->map() == heap->fixed_cow_array_map()) { return STORE_NO_TRANSITION_HANDLE_COW; } else { return STANDARD_STORE; } } } MaybeHandle KeyedStoreIC::Store(Handle object, Handle key, Handle value) { // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); return result; } // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); Handle store_handle; uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION( isolate(), store_handle, StoreIC::Store(object, Handle::cast(key), value, JSReceiver::MAY_BE_STORE_FROM_KEYED), Object); if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unhandled internalized string key"); TRACE_IC("StoreIC", key); } return store_handle; } bool use_ic = FLAG_use_ic && !object->IsStringWrapper() && !object->IsAccessCheckNeeded() && !object->IsJSGlobalProxy(); if (use_ic && !object->IsSmi()) { // Don't use ICs for maps of the objects in Array's prototype chain. We // expect to be able to trap element sets to objects with those maps in // the runtime to enable optimization of element hole access. Handle heap_object = Handle::cast(object); if (heap_object->map()->IsMapInArrayPrototypeChain()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "map in array prototype"); use_ic = false; } } Handle old_receiver_map; bool sloppy_arguments_elements = false; bool key_is_valid_index = false; KeyedAccessStoreMode store_mode = STANDARD_STORE; if (use_ic && object->IsJSObject()) { Handle receiver = Handle::cast(object); old_receiver_map = handle(receiver->map(), isolate()); sloppy_arguments_elements = !is_sloppy(language_mode()) && receiver->elements()->map() == isolate()->heap()->sloppy_arguments_elements_map(); if (!sloppy_arguments_elements) { key_is_valid_index = key->IsSmi() && Smi::cast(*key)->value() >= 0; if (key_is_valid_index) { uint32_t index = static_cast(Smi::cast(*key)->value()); store_mode = GetStoreMode(receiver, index, value); } } } DCHECK(store_handle.is_null()); ASSIGN_RETURN_ON_EXCEPTION(isolate(), store_handle, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); if (use_ic) { if (!old_receiver_map.is_null()) { if (sloppy_arguments_elements) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "arguments receiver"); } else if (key_is_valid_index) { // We should go generic if receiver isn't a dictionary, but our // prototype chain does have dictionary elements. This ensures that // other non-dictionary receivers in the polymorphic case benefit // from fast path keyed stores. if (!old_receiver_map->DictionaryElementsInPrototypeChainOnly()) { UpdateStoreElement(old_receiver_map, store_mode); } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "dictionary or proxy prototype"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-smi-like key"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-JSObject receiver"); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "set generic"); } TRACE_IC("StoreIC", key); return store_handle; } void CallIC::HandleMiss(Handle function) { Handle name = isolate()->factory()->empty_string(); CallICNexus* nexus = casted_nexus(); Object* feedback = nexus->GetFeedback(); // Hand-coded MISS handling is easier if CallIC slots don't contain smis. DCHECK(!feedback->IsSmi()); if (feedback->IsWeakCell() || !function->IsJSFunction() || feedback->IsAllocationSite()) { // We are going generic. nexus->ConfigureMegamorphic(); } else { DCHECK(feedback == *TypeFeedbackVector::UninitializedSentinel(isolate())); Handle js_function = Handle::cast(function); Handle array_function = Handle(isolate()->native_context()->array_function()); if (array_function.is_identical_to(js_function)) { // Alter the slot. nexus->ConfigureMonomorphicArray(); } else if (js_function->context()->native_context() != *isolate()->native_context()) { // Don't collect cross-native context feedback for the CallIC. // TODO(bmeurer): We should collect the SharedFunctionInfo as // feedback in this case instead. nexus->ConfigureMegamorphic(); } else { nexus->ConfigureMonomorphic(js_function); } } if (function->IsJSFunction()) { Handle
KeyedStoreIC::ChooseMegamorphicStub(Isolate* isolate, ExtraICState extra_state) { LanguageMode mode = StoreICState::GetLanguageMode(extra_state); return is_strict(mode) ? isolate->builtins()->KeyedStoreIC_Megamorphic_Strict() : isolate->builtins()->KeyedStoreIC_Megamorphic(); } Handle LoadIC::SimpleFieldLoad(FieldIndex index) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadFieldStub); LoadFieldStub stub(isolate(), index); return stub.GetCode(); } bool IsCompatibleReceiver(LookupIterator* lookup, Handle receiver_map) { DCHECK(lookup->state() == LookupIterator::ACCESSOR); Isolate* isolate = lookup->isolate(); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (info->getter() != NULL && !AccessorInfo::IsCompatibleReceiverMap(isolate, info, receiver_map)) { return false; } } else if (accessors->IsAccessorPair()) { Handle getter(Handle::cast(accessors)->getter(), isolate); if (!getter->IsJSFunction() && !getter->IsFunctionTemplateInfo()) { return false; } Handle holder = lookup->GetHolder(); Handle receiver = lookup->GetReceiver(); if (holder->HasFastProperties()) { if (getter->IsJSFunction()) { Handle function = Handle::cast(getter); if (!receiver->IsJSObject() && !function->shared()->IsBuiltin() && is_sloppy(function->shared()->language_mode())) { // Calling sloppy non-builtins with a value as the receiver // requires boxing. return false; } } CallOptimization call_optimization(getter); if (call_optimization.is_simple_api_call() && !call_optimization.IsCompatibleReceiverMap(receiver_map, holder)) { return false; } } } return true; } void LoadIC::UpdateCaches(LookupIterator* lookup) { if (state() == UNINITIALIZED && kind() != Code::LOAD_GLOBAL_IC) { // This is the first time we execute this inline cache. Set the target to // the pre monomorphic stub to delay setting the monomorphic state. ConfigureVectorState(PREMONOMORPHIC, Handle()); TRACE_IC("LoadIC", lookup->name()); return; } Handle code; if (lookup->state() == LookupIterator::JSPROXY || lookup->state() == LookupIterator::ACCESS_CHECK) { code = slow_stub(); } else if (!lookup->IsFound()) { if (kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC) { code = NamedLoadHandlerCompiler::ComputeLoadNonexistent(lookup->name(), receiver_map()); // TODO(jkummerow/verwaest): Introduce a builtin that handles this case. if (code.is_null()) code = slow_stub(); } else { code = slow_stub(); } } else { if (kind() == Code::LOAD_GLOBAL_IC && lookup->state() == LookupIterator::DATA && lookup->GetHolder()->IsJSGlobalObject()) { #if DEBUG Handle holder = lookup->GetHolder(); Handle receiver = lookup->GetReceiver(); DCHECK_EQ(*receiver, *holder); #endif // Now update the cell in the feedback vector. LoadGlobalICNexus* nexus = casted_nexus(); nexus->ConfigurePropertyCellMode(lookup->GetPropertyCell()); TRACE_IC("LoadGlobalIC", lookup->name()); return; } else if (lookup->state() == LookupIterator::ACCESSOR) { if (!IsCompatibleReceiver(lookup, receiver_map())) { TRACE_GENERIC_IC(isolate(), "LoadIC", "incompatible receiver type"); code = slow_stub(); } } else if (lookup->state() == LookupIterator::INTERCEPTOR) { if (kind() == Code::LOAD_GLOBAL_IC) { // The interceptor handler requires name but it is not passed explicitly // to LoadGlobalIC and the LoadGlobalIC dispatcher also does not load // it so we will just use slow stub. code = slow_stub(); } else { // Perform a lookup behind the interceptor. Copy the LookupIterator // since the original iterator will be used to fetch the value. LookupIterator it = *lookup; it.Next(); LookupForRead(&it); if (it.state() == LookupIterator::ACCESSOR && !IsCompatibleReceiver(&it, receiver_map())) { TRACE_GENERIC_IC(isolate(), "LoadIC", "incompatible receiver type"); code = slow_stub(); } } } if (code.is_null()) code = ComputeHandler(lookup); } PatchCache(lookup->name(), code); TRACE_IC("LoadIC", lookup->name()); } void IC::UpdateMegamorphicCache(Map* map, Name* name, Code* code) { isolate()->stub_cache()->Set(name, map, code); } Handle IC::ComputeHandler(LookupIterator* lookup, Handle value) { // Try to find a globally shared handler stub. Handle code = GetMapIndependentHandler(lookup); if (!code.is_null()) return code; // Otherwise check the map's handler cache for a map-specific handler, and // compile one if the cache comes up empty. bool receiver_is_holder = lookup->GetReceiver().is_identical_to(lookup->GetHolder()); CacheHolderFlag flag; Handle stub_holder_map; if (kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC || kind() == Code::KEYED_LOAD_IC) { stub_holder_map = IC::GetHandlerCacheHolder( receiver_map(), receiver_is_holder, isolate(), &flag); } else { DCHECK(kind() == Code::STORE_IC || kind() == Code::KEYED_STORE_IC); // Store handlers cannot be cached on prototypes. flag = kCacheOnReceiver; stub_holder_map = receiver_map(); } code = PropertyHandlerCompiler::Find(lookup->name(), stub_holder_map, kind(), flag); // Use the cached value if it exists, and if it is different from the // handler that just missed. if (!code.is_null()) { Handle handler; if (maybe_handler_.ToHandle(&handler)) { if (!handler.is_identical_to(code)) { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } else { // maybe_handler_ is only populated for MONOMORPHIC and POLYMORPHIC ICs. // In MEGAMORPHIC case, check if the handler in the megamorphic stub // cache (which just missed) is different from the cached handler. if (state() == MEGAMORPHIC && lookup->GetReceiver()->IsHeapObject()) { Map* map = Handle::cast(lookup->GetReceiver())->map(); Code* megamorphic_cached_code = isolate()->stub_cache()->Get(*lookup->name(), map, code->flags()); if (megamorphic_cached_code != *code) { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } else { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } } code = CompileHandler(lookup, value, flag); DCHECK(code->is_handler()); DCHECK(Code::ExtractCacheHolderFromFlags(code->flags()) == flag); Map::UpdateCodeCache(stub_holder_map, lookup->name(), code); return code; } Handle LoadIC::GetMapIndependentHandler(LookupIterator* lookup) { Handle receiver = lookup->GetReceiver(); if (receiver->IsString() && Name::Equals(isolate()->factory()->length_string(), lookup->name())) { FieldIndex index = FieldIndex::ForInObjectOffset(String::kLengthOffset); return SimpleFieldLoad(index); } if (receiver->IsStringWrapper() && Name::Equals(isolate()->factory()->length_string(), lookup->name())) { TRACE_HANDLER_STATS(isolate(), LoadIC_StringLengthStub); StringLengthStub string_length_stub(isolate()); return string_length_stub.GetCode(); } // Use specialized code for getting prototype of functions. if (receiver->IsJSFunction() && Name::Equals(isolate()->factory()->prototype_string(), lookup->name()) && receiver->IsConstructor() && !Handle::cast(receiver) ->map() ->has_non_instance_prototype()) { Handle stub; TRACE_HANDLER_STATS(isolate(), LoadIC_FunctionPrototypeStub); FunctionPrototypeStub function_prototype_stub(isolate()); return function_prototype_stub.GetCode(); } Handle map = receiver_map(); Handle holder = lookup->GetHolder(); bool receiver_is_holder = receiver.is_identical_to(holder); switch (lookup->state()) { case LookupIterator::INTERCEPTOR: break; // Custom-compiled handler. case LookupIterator::ACCESSOR: { // Use simple field loads for some well-known callback properties. // The method will only return true for absolute truths based on the // receiver maps. int object_offset; if (Accessors::IsJSObjectFieldAccessor(map, lookup->name(), &object_offset)) { FieldIndex index = FieldIndex::ForInObjectOffset(object_offset, *map); return SimpleFieldLoad(index); } if (IsCompatibleReceiver(lookup, map)) { Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorPair()) { if (!holder->HasFastProperties()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } // When debugging we need to go the slow path to flood the accessor. if (GetSharedFunctionInfo()->HasDebugInfo()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->getter()) == nullptr) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } // Ruled out by IsCompatibleReceiver() above. DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, map)); if (!holder->HasFastProperties()) return slow_stub(); if (receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadApiGetterStub); int index = lookup->GetAccessorIndex(); LoadApiGetterStub stub(isolate(), true, index); return stub.GetCode(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } } TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (kind() != Code::LOAD_IC && kind() != Code::LOAD_GLOBAL_IC) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } // There is only one shared stub for loading normalized // properties. It does not traverse the prototype chain, so the // property must be found in the object for the stub to be // applicable. if (!receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } TRACE_HANDLER_STATS(isolate(), LoadIC_LoadNormal); return isolate()->builtins()->LoadIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { FieldIndex field = lookup->GetFieldIndex(); if (receiver_is_holder) { return SimpleFieldLoad(field); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); if (receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadConstantStub); LoadConstantStub stub(isolate(), lookup->GetConstantIndex()); return stub.GetCode(); } break; // Custom-compiled handler. } case LookupIterator::INTEGER_INDEXED_EXOTIC: TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); } return Handle::null(); } Handle LoadIC::CompileHandler(LookupIterator* lookup, Handle unused, CacheHolderFlag cache_holder) { Handle holder = lookup->GetHolder(); #ifdef DEBUG // Only used by DCHECKs below. Handle receiver = lookup->GetReceiver(); bool receiver_is_holder = receiver.is_identical_to(holder); #endif // Non-map-specific handler stubs have already been selected. DCHECK(!receiver->IsString() || !Name::Equals(isolate()->factory()->length_string(), lookup->name())); DCHECK(!receiver->IsStringWrapper() || !Name::Equals(isolate()->factory()->length_string(), lookup->name())); DCHECK(!( receiver->IsJSFunction() && Name::Equals(isolate()->factory()->prototype_string(), lookup->name()) && receiver->IsConstructor() && !Handle::cast(receiver) ->map() ->has_non_instance_prototype())); Handle map = receiver_map(); switch (lookup->state()) { case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->getter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadInterceptor); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); // Perform a lookup behind the interceptor. Copy the LookupIterator since // the original iterator will be used to fetch the value. LookupIterator it = *lookup; it.Next(); LookupForRead(&it); return compiler.CompileLoadInterceptor(&it); } case LookupIterator::ACCESSOR: { #ifdef DEBUG int object_offset; DCHECK(!Accessors::IsJSObjectFieldAccessor(map, lookup->name(), &object_offset)); #endif DCHECK(IsCompatibleReceiver(lookup, map)); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorPair()) { DCHECK(holder->HasFastProperties()); DCHECK(!GetSharedFunctionInfo()->HasDebugInfo()); Handle getter(Handle::cast(accessors)->getter(), isolate()); CallOptimization call_optimization(getter); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); if (call_optimization.is_simple_api_call()) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadCallback); int index = lookup->GetAccessorIndex(); Handle code = compiler.CompileLoadCallback( lookup->name(), call_optimization, index); return code; } TRACE_HANDLER_STATS(isolate(), LoadIC_LoadViaGetter); int expected_arguments = Handle::cast(getter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileLoadViaGetter( lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } else { DCHECK(accessors->IsAccessorInfo()); Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->getter()) != nullptr); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, map)); DCHECK(holder->HasFastProperties()); DCHECK(!receiver_is_holder); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadCallback); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle code = compiler.CompileLoadCallback(lookup->name(), info); return code; } UNREACHABLE(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC); DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadGlobal); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle cell = lookup->GetPropertyCell(); Handle code = compiler.CompileLoadGlobal( cell, lookup->name(), lookup->IsConfigurable()); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { FieldIndex field = lookup->GetFieldIndex(); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadField); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadField(lookup->name(), field); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadConstant); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadConstant(lookup->name(), lookup->GetConstantIndex()); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } static Handle TryConvertKey(Handle key, Isolate* isolate) { // This helper implements a few common fast cases for converting // non-smi keys of keyed loads/stores to a smi or a string. if (key->IsHeapNumber()) { double value = Handle::cast(key)->value(); if (std::isnan(value)) { key = isolate->factory()->nan_string(); } else { int int_value = FastD2I(value); if (value == int_value && Smi::IsValid(int_value)) { key = handle(Smi::FromInt(int_value), isolate); } } } else if (key->IsUndefined(isolate)) { key = isolate->factory()->undefined_string(); } return key; } void KeyedLoadIC::UpdateLoadElement(Handle receiver) { Handle receiver_map(receiver->map(), isolate()); DCHECK(receiver_map->instance_type() != JS_VALUE_TYPE && receiver_map->instance_type() != JS_PROXY_TYPE); // Checked by caller. MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { Handle map = target_receiver_maps.at(i); if (map.is_null()) continue; if (map->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSValue"); return; } if (map->instance_type() == JS_PROXY_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSProxy"); return; } } // The first time a receiver is seen that is a transitioned version of the // previous monomorphic receiver type, assume the new ElementsKind is the // monomorphic type. This benefits global arrays that only transition // once, and all call sites accessing them are faster if they remain // monomorphic. If this optimistic assumption is not true, the IC will // miss again and it will become polymorphic and support both the // untransitioned and transitioned maps. if (state() == MONOMORPHIC && !receiver->IsString() && IsMoreGeneralElementsKindTransition( target_receiver_maps.at(0)->elements_kind(), Handle::cast(receiver)->GetElementsKind())) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } DCHECK(state() != GENERIC); // Determine the list of receiver maps that this call site has seen, // adding the map that was just encountered. if (!AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map)) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the generic stub. TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the generic // version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "max polymorph exceeded"); return; } CodeHandleList handlers(target_receiver_maps.length()); TRACE_HANDLER_STATS(isolate(), KeyedLoadIC_PolymorphicElement); ElementHandlerCompiler compiler(isolate()); compiler.CompileElementHandlers(&target_receiver_maps, &handlers); ConfigureVectorState(Handle(), &target_receiver_maps, &handlers); } MaybeHandle KeyedLoadIC::Load(Handle object, Handle key) { if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } Handle load_handle; // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION(isolate(), load_handle, LoadIC::Load(object, Handle::cast(key)), Object); } else if (FLAG_use_ic && !object->IsAccessCheckNeeded() && !object->IsJSValue()) { if (object->IsJSObject() || (object->IsString() && key->IsNumber())) { Handle receiver = Handle::cast(object); if (object->IsString() || key->IsSmi()) UpdateLoadElement(receiver); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "set generic"); } TRACE_IC("LoadIC", key); if (!load_handle.is_null()) return load_handle; Handle result; ASSIGN_RETURN_ON_EXCEPTION(isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } bool StoreIC::LookupForWrite(LookupIterator* it, Handle value, JSReceiver::StoreFromKeyed store_mode) { // Disable ICs for non-JSObjects for now. Handle object = it->GetReceiver(); if (!object->IsJSObject()) return false; Handle receiver = Handle::cast(object); DCHECK(!receiver->map()->is_deprecated()); for (; it->IsFound(); it->Next()) { switch (it->state()) { case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); case LookupIterator::JSPROXY: return false; case LookupIterator::INTERCEPTOR: { Handle holder = it->GetHolder(); InterceptorInfo* info = holder->GetNamedInterceptor(); if (it->HolderIsReceiverOrHiddenPrototype()) { return !info->non_masking() && receiver.is_identical_to(holder) && !info->setter()->IsUndefined(it->isolate()); } else if (!info->getter()->IsUndefined(it->isolate()) || !info->query()->IsUndefined(it->isolate())) { return false; } break; } case LookupIterator::ACCESS_CHECK: if (it->GetHolder()->IsAccessCheckNeeded()) return false; break; case LookupIterator::ACCESSOR: return !it->IsReadOnly(); case LookupIterator::INTEGER_INDEXED_EXOTIC: return false; case LookupIterator::DATA: { if (it->IsReadOnly()) return false; Handle holder = it->GetHolder(); if (receiver.is_identical_to(holder)) { it->PrepareForDataProperty(value); // The previous receiver map might just have been deprecated, // so reload it. update_receiver_map(receiver); return true; } // Receiver != holder. if (receiver->IsJSGlobalProxy()) { PrototypeIterator iter(it->isolate(), receiver); return it->GetHolder().is_identical_to( PrototypeIterator::GetCurrent(iter)); } if (it->HolderIsReceiverOrHiddenPrototype()) return false; if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } } } receiver = it->GetStoreTarget(); if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } MaybeHandle StoreIC::Store(Handle object, Handle name, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (object->IsJSGlobalObject() && name->IsString()) { // Look up in script context table. Handle str_name = Handle::cast(name); Handle global = Handle::cast(object); Handle script_contexts( global->native_context()->script_context_table()); ScriptContextTable::LookupResult lookup_result; if (ScriptContextTable::Lookup(script_contexts, str_name, &lookup_result)) { Handle script_context = ScriptContextTable::GetContext( script_contexts, lookup_result.context_index); if (lookup_result.mode == CONST) { return TypeError(MessageTemplate::kConstAssign, object, name); } Handle previous_value = FixedArray::get(*script_context, lookup_result.slot_index, isolate()); if (previous_value->IsTheHole(isolate())) { // Do not install stubs and stay pre-monomorphic for // uninitialized accesses. return ReferenceError(name); } if (FLAG_use_ic && StoreScriptContextFieldStub::Accepted(&lookup_result)) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreScriptContextFieldStub); StoreScriptContextFieldStub stub(isolate(), &lookup_result); PatchCache(name, stub.GetCode()); } script_context->set(lookup_result.slot_index, *value); return value; } } // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object) || object->IsJSProxy()) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Object::SetProperty(object, name, value, language_mode()), Object); return result; } // If the object is undefined or null it's illegal to try to set any // properties on it; throw a TypeError in that case. if (object->IsUndefined(isolate()) || object->IsNull(isolate())) { return TypeError(MessageTemplate::kNonObjectPropertyStore, object, name); } if (state() != UNINITIALIZED) { JSObject::MakePrototypesFast(object, kStartAtPrototype, isolate()); } LookupIterator it(object, name); if (FLAG_use_ic) UpdateCaches(&it, value, store_mode); MAYBE_RETURN_NULL( Object::SetProperty(&it, value, language_mode(), store_mode)); return value; } Handle CallIC::initialize_stub_in_optimized_code( Isolate* isolate, int argc, ConvertReceiverMode mode, TailCallMode tail_call_mode) { CallICStub stub(isolate, CallICState(argc, mode, tail_call_mode)); Handle code = stub.GetCode(); return code; } Handle StoreIC::initialize_stub_in_optimized_code( Isolate* isolate, LanguageMode language_mode) { VectorStoreICStub stub(isolate, StoreICState(language_mode)); return stub.GetCode(); } void StoreIC::UpdateCaches(LookupIterator* lookup, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (state() == UNINITIALIZED) { // This is the first time we execute this inline cache. Set the target to // the pre monomorphic stub to delay setting the monomorphic state. ConfigureVectorState(PREMONOMORPHIC, Handle()); TRACE_IC("StoreIC", lookup->name()); return; } bool use_ic = LookupForWrite(lookup, value, store_mode); if (!use_ic) { TRACE_GENERIC_IC(isolate(), "StoreIC", "LookupForWrite said 'false'"); } Handle code = use_ic ? ComputeHandler(lookup, value) : slow_stub(); PatchCache(lookup->name(), code); TRACE_IC("StoreIC", lookup->name()); } static Handle PropertyCellStoreHandler( Isolate* isolate, Handle receiver, Handle holder, Handle name, Handle cell, PropertyCellType type) { auto constant_type = Nothing(); if (type == PropertyCellType::kConstantType) { constant_type = Just(cell->GetConstantType()); } StoreGlobalStub stub(isolate, type, constant_type, receiver->IsJSGlobalProxy()); auto code = stub.GetCodeCopyFromTemplate(holder, cell); // TODO(verwaest): Move caching of these NORMAL stubs outside as well. HeapObject::UpdateMapCodeCache(receiver, name, code); return code; } Handle StoreIC::GetMapIndependentHandler(LookupIterator* lookup) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { break; // Custom-compiled handler. } // Currently not handled by CompileStoreTransition. if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "transition from slow"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } DCHECK(lookup->IsCacheableTransition()); break; // Custom-compiled handler. } case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->setter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreInterceptorStub); StoreInterceptorStub stub(isolate()); return stub.GetCode(); } case LookupIterator::ACCESSOR: { if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "accessor on slow map"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->setter()) == nullptr) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter == nullptr"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (AccessorInfo::cast(*accessors)->is_special_data_property() && !lookup->HolderIsReceiverOrHiddenPrototype()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "special data property in prototype chain"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (!AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())) { TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver type"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorPair()) { Handle setter(Handle::cast(accessors)->setter(), isolate()); if (!setter->IsJSFunction() && !setter->IsFunctionTemplateInfo()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter not a function"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } CallOptimization call_optimization(setter); if (call_optimization.is_simple_api_call()) { if (call_optimization.IsCompatibleReceiver(receiver, holder)) { break; // Custom-compiled handler. } TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreNormal); DCHECK(holder.is_identical_to(receiver)); return isolate()->builtins()->StoreIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } if (use_stub) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreFieldStub); StoreFieldStub stub(isolate(), lookup->GetFieldIndex(), lookup->representation()); return stub.GetCode(); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); TRACE_GENERIC_IC(isolate(), "StoreIC", "constant property"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } return Handle::null(); } Handle StoreIC::CompileHandler(LookupIterator* lookup, Handle value, CacheHolderFlag cache_holder) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { // TODO(dcarney): this currently just deopts. Use the transition cell. TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobalTransition); auto cell = isolate()->factory()->NewPropertyCell(); cell->set_value(*value); auto code = PropertyCellStoreHandler( isolate(), store_target, Handle::cast(store_target), lookup->name(), cell, PropertyCellType::kConstant); cell->set_value(isolate()->heap()->the_hole_value()); return code; } Handle transition = lookup->transition_map(); // Currently not handled by CompileStoreTransition. DCHECK(holder->HasFastProperties()); DCHECK(lookup->IsCacheableTransition()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreTransition); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreTransition(transition, lookup->name()); } case LookupIterator::INTERCEPTOR: UNREACHABLE(); case LookupIterator::ACCESSOR: { DCHECK(holder->HasFastProperties()); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->setter()) != 0); DCHECK(!AccessorInfo::cast(*accessors)->is_special_data_property() || lookup->HolderIsReceiverOrHiddenPrototype()); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), info, language_mode()); return code; } else { DCHECK(accessors->IsAccessorPair()); Handle setter(Handle::cast(accessors)->setter(), isolate()); DCHECK(setter->IsJSFunction() || setter->IsFunctionTemplateInfo()); CallOptimization call_optimization(setter); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); if (call_optimization.is_simple_api_call()) { DCHECK(call_optimization.IsCompatibleReceiver(receiver, holder)); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), call_optimization, lookup->GetAccessorIndex()); return code; } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreViaSetter); int expected_arguments = JSFunction::cast(*setter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileStoreViaSetter(receiver, lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobal); DCHECK(holder.is_identical_to(receiver) || receiver->map()->prototype() == *holder); auto cell = lookup->GetPropertyCell(); auto updated_type = PropertyCell::UpdatedType(cell, value, lookup->property_details()); auto code = PropertyCellStoreHandler( isolate(), receiver, Handle::cast(holder), lookup->name(), cell, updated_type); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { #ifdef DEBUG bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } DCHECK(!use_stub); #endif TRACE_HANDLER_STATS(isolate(), StoreIC_StoreField); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreField(lookup); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); UNREACHABLE(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } void KeyedStoreIC::UpdateStoreElement(Handle receiver_map, KeyedAccessStoreMode store_mode) { MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle monomorphic_map = ComputeTransitionedMap(receiver_map, store_mode); store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(monomorphic_map, store_mode); return ConfigureVectorState(Handle(), monomorphic_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { if (!target_receiver_maps.at(i).is_null() && target_receiver_maps.at(i)->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "JSValue"); return; } } // There are several special cases where an IC that is MONOMORPHIC can still // transition to a different GetNonTransitioningStoreMode IC that handles a // superset of the original IC. Handle those here if the receiver map hasn't // changed or it has transitioned to a more general kind. KeyedAccessStoreMode old_store_mode = GetKeyedAccessStoreMode(); Handle previous_receiver_map = target_receiver_maps.at(0); if (state() == MONOMORPHIC) { Handle transitioned_receiver_map = receiver_map; if (IsTransitionStoreMode(store_mode)) { transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); } if ((receiver_map.is_identical_to(previous_receiver_map) && IsTransitionStoreMode(store_mode)) || IsTransitionOfMonomorphicTarget(*previous_receiver_map, *transitioned_receiver_map)) { // If the "old" and "new" maps are in the same elements map family, or // if they at least come from the same origin for a transitioning store, // stay MONOMORPHIC and use the map for the most generic ElementsKind. store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler( transitioned_receiver_map, store_mode); ConfigureVectorState(Handle(), transitioned_receiver_map, handler); return; } if (receiver_map.is_identical_to(previous_receiver_map) && old_store_mode == STANDARD_STORE && (store_mode == STORE_AND_GROW_NO_TRANSITION || store_mode == STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS || store_mode == STORE_NO_TRANSITION_HANDLE_COW)) { // A "normal" IC that handles stores can switch to a version that can // grow at the end of the array, handle OOB accesses or copy COW arrays // and still stay MONOMORPHIC. Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(receiver_map, store_mode); return ConfigureVectorState(Handle(), receiver_map, handler); } } DCHECK(state() != GENERIC); bool map_added = AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map); if (IsTransitionStoreMode(store_mode)) { Handle transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); map_added |= AddOneReceiverMapIfMissing(&target_receiver_maps, transitioned_receiver_map); } if (!map_added) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the megamorphic stub which can handle everything. TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the // megamorphic version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) return; // Make sure all polymorphic handlers have the same store mode, otherwise the // megamorphic stub must be used. store_mode = GetNonTransitioningStoreMode(store_mode); if (old_store_mode != STANDARD_STORE) { if (store_mode == STANDARD_STORE) { store_mode = old_store_mode; } else if (store_mode != old_store_mode) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "store mode mismatch"); return; } } // If the store mode isn't the standard mode, make sure that all polymorphic // receivers are either external arrays, or all "normal" arrays. Otherwise, // use the megamorphic stub. if (store_mode != STANDARD_STORE) { int external_arrays = 0; for (int i = 0; i < target_receiver_maps.length(); ++i) { if (target_receiver_maps[i]->has_fixed_typed_array_elements()) { external_arrays++; } } if (external_arrays != 0 && external_arrays != target_receiver_maps.length()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unsupported combination of external and normal arrays"); return; } } TRACE_HANDLER_STATS(isolate(), KeyedStoreIC_Polymorphic); MapHandleList transitioned_maps(target_receiver_maps.length()); CodeHandleList handlers(target_receiver_maps.length()); PropertyICCompiler::ComputeKeyedStorePolymorphicHandlers( &target_receiver_maps, &transitioned_maps, &handlers, store_mode); ConfigureVectorState(&target_receiver_maps, &transitioned_maps, &handlers); } Handle KeyedStoreIC::ComputeTransitionedMap( Handle map, KeyedAccessStoreMode store_mode) { switch (store_mode) { case STORE_TRANSITION_TO_OBJECT: case STORE_AND_GROW_TRANSITION_TO_OBJECT: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_ELEMENTS : FAST_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_TRANSITION_TO_DOUBLE: case STORE_AND_GROW_TRANSITION_TO_DOUBLE: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_DOUBLE_ELEMENTS : FAST_DOUBLE_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS: DCHECK(map->has_fixed_typed_array_elements()); // Fall through case STORE_NO_TRANSITION_HANDLE_COW: case STANDARD_STORE: case STORE_AND_GROW_NO_TRANSITION: return map; } UNREACHABLE(); return MaybeHandle().ToHandleChecked(); } bool IsOutOfBoundsAccess(Handle receiver, uint32_t index) { uint32_t length = 0; if (receiver->IsJSArray()) { JSArray::cast(*receiver)->length()->ToArrayLength(&length); } else { length = static_cast(receiver->elements()->length()); } return index >= length; } static KeyedAccessStoreMode GetStoreMode(Handle receiver, uint32_t index, Handle value) { bool oob_access = IsOutOfBoundsAccess(receiver, index); // Don't consider this a growing store if the store would send the receiver to // dictionary mode. bool allow_growth = receiver->IsJSArray() && oob_access && !receiver->WouldConvertToSlowElements(index); if (allow_growth) { // Handle growing array in stub if necessary. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_DOUBLE; } if (value->IsHeapObject()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } return STORE_AND_GROW_NO_TRANSITION; } else { // Handle only in-bounds elements accesses. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_TRANSITION_TO_DOUBLE; } else if (value->IsHeapObject()) { return STORE_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_TRANSITION_TO_OBJECT; } } if (!FLAG_trace_external_array_abuse && receiver->map()->has_fixed_typed_array_elements() && oob_access) { return STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS; } Heap* heap = receiver->GetHeap(); if (receiver->elements()->map() == heap->fixed_cow_array_map()) { return STORE_NO_TRANSITION_HANDLE_COW; } else { return STANDARD_STORE; } } } MaybeHandle KeyedStoreIC::Store(Handle object, Handle key, Handle value) { // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); return result; } // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); Handle store_handle; uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION( isolate(), store_handle, StoreIC::Store(object, Handle::cast(key), value, JSReceiver::MAY_BE_STORE_FROM_KEYED), Object); if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unhandled internalized string key"); TRACE_IC("StoreIC", key); } return store_handle; } bool use_ic = FLAG_use_ic && !object->IsStringWrapper() && !object->IsAccessCheckNeeded() && !object->IsJSGlobalProxy(); if (use_ic && !object->IsSmi()) { // Don't use ICs for maps of the objects in Array's prototype chain. We // expect to be able to trap element sets to objects with those maps in // the runtime to enable optimization of element hole access. Handle heap_object = Handle::cast(object); if (heap_object->map()->IsMapInArrayPrototypeChain()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "map in array prototype"); use_ic = false; } } Handle old_receiver_map; bool sloppy_arguments_elements = false; bool key_is_valid_index = false; KeyedAccessStoreMode store_mode = STANDARD_STORE; if (use_ic && object->IsJSObject()) { Handle receiver = Handle::cast(object); old_receiver_map = handle(receiver->map(), isolate()); sloppy_arguments_elements = !is_sloppy(language_mode()) && receiver->elements()->map() == isolate()->heap()->sloppy_arguments_elements_map(); if (!sloppy_arguments_elements) { key_is_valid_index = key->IsSmi() && Smi::cast(*key)->value() >= 0; if (key_is_valid_index) { uint32_t index = static_cast(Smi::cast(*key)->value()); store_mode = GetStoreMode(receiver, index, value); } } } DCHECK(store_handle.is_null()); ASSIGN_RETURN_ON_EXCEPTION(isolate(), store_handle, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); if (use_ic) { if (!old_receiver_map.is_null()) { if (sloppy_arguments_elements) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "arguments receiver"); } else if (key_is_valid_index) { // We should go generic if receiver isn't a dictionary, but our // prototype chain does have dictionary elements. This ensures that // other non-dictionary receivers in the polymorphic case benefit // from fast path keyed stores. if (!old_receiver_map->DictionaryElementsInPrototypeChainOnly()) { UpdateStoreElement(old_receiver_map, store_mode); } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "dictionary or proxy prototype"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-smi-like key"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-JSObject receiver"); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "set generic"); } TRACE_IC("StoreIC", key); return store_handle; } void CallIC::HandleMiss(Handle function) { Handle name = isolate()->factory()->empty_string(); CallICNexus* nexus = casted_nexus(); Object* feedback = nexus->GetFeedback(); // Hand-coded MISS handling is easier if CallIC slots don't contain smis. DCHECK(!feedback->IsSmi()); if (feedback->IsWeakCell() || !function->IsJSFunction() || feedback->IsAllocationSite()) { // We are going generic. nexus->ConfigureMegamorphic(); } else { DCHECK(feedback == *TypeFeedbackVector::UninitializedSentinel(isolate())); Handle js_function = Handle::cast(function); Handle array_function = Handle(isolate()->native_context()->array_function()); if (array_function.is_identical_to(js_function)) { // Alter the slot. nexus->ConfigureMonomorphicArray(); } else if (js_function->context()->native_context() != *isolate()->native_context()) { // Don't collect cross-native context feedback for the CallIC. // TODO(bmeurer): We should collect the SharedFunctionInfo as // feedback in this case instead. nexus->ConfigureMegamorphic(); } else { nexus->ConfigureMonomorphic(js_function); } } if (function->IsJSFunction()) { Handle
LoadIC::SimpleFieldLoad(FieldIndex index) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadFieldStub); LoadFieldStub stub(isolate(), index); return stub.GetCode(); } bool IsCompatibleReceiver(LookupIterator* lookup, Handle receiver_map) { DCHECK(lookup->state() == LookupIterator::ACCESSOR); Isolate* isolate = lookup->isolate(); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (info->getter() != NULL && !AccessorInfo::IsCompatibleReceiverMap(isolate, info, receiver_map)) { return false; } } else if (accessors->IsAccessorPair()) { Handle getter(Handle::cast(accessors)->getter(), isolate); if (!getter->IsJSFunction() && !getter->IsFunctionTemplateInfo()) { return false; } Handle holder = lookup->GetHolder(); Handle receiver = lookup->GetReceiver(); if (holder->HasFastProperties()) { if (getter->IsJSFunction()) { Handle function = Handle::cast(getter); if (!receiver->IsJSObject() && !function->shared()->IsBuiltin() && is_sloppy(function->shared()->language_mode())) { // Calling sloppy non-builtins with a value as the receiver // requires boxing. return false; } } CallOptimization call_optimization(getter); if (call_optimization.is_simple_api_call() && !call_optimization.IsCompatibleReceiverMap(receiver_map, holder)) { return false; } } } return true; } void LoadIC::UpdateCaches(LookupIterator* lookup) { if (state() == UNINITIALIZED && kind() != Code::LOAD_GLOBAL_IC) { // This is the first time we execute this inline cache. Set the target to // the pre monomorphic stub to delay setting the monomorphic state. ConfigureVectorState(PREMONOMORPHIC, Handle()); TRACE_IC("LoadIC", lookup->name()); return; } Handle code; if (lookup->state() == LookupIterator::JSPROXY || lookup->state() == LookupIterator::ACCESS_CHECK) { code = slow_stub(); } else if (!lookup->IsFound()) { if (kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC) { code = NamedLoadHandlerCompiler::ComputeLoadNonexistent(lookup->name(), receiver_map()); // TODO(jkummerow/verwaest): Introduce a builtin that handles this case. if (code.is_null()) code = slow_stub(); } else { code = slow_stub(); } } else { if (kind() == Code::LOAD_GLOBAL_IC && lookup->state() == LookupIterator::DATA && lookup->GetHolder()->IsJSGlobalObject()) { #if DEBUG Handle holder = lookup->GetHolder(); Handle receiver = lookup->GetReceiver(); DCHECK_EQ(*receiver, *holder); #endif // Now update the cell in the feedback vector. LoadGlobalICNexus* nexus = casted_nexus(); nexus->ConfigurePropertyCellMode(lookup->GetPropertyCell()); TRACE_IC("LoadGlobalIC", lookup->name()); return; } else if (lookup->state() == LookupIterator::ACCESSOR) { if (!IsCompatibleReceiver(lookup, receiver_map())) { TRACE_GENERIC_IC(isolate(), "LoadIC", "incompatible receiver type"); code = slow_stub(); } } else if (lookup->state() == LookupIterator::INTERCEPTOR) { if (kind() == Code::LOAD_GLOBAL_IC) { // The interceptor handler requires name but it is not passed explicitly // to LoadGlobalIC and the LoadGlobalIC dispatcher also does not load // it so we will just use slow stub. code = slow_stub(); } else { // Perform a lookup behind the interceptor. Copy the LookupIterator // since the original iterator will be used to fetch the value. LookupIterator it = *lookup; it.Next(); LookupForRead(&it); if (it.state() == LookupIterator::ACCESSOR && !IsCompatibleReceiver(&it, receiver_map())) { TRACE_GENERIC_IC(isolate(), "LoadIC", "incompatible receiver type"); code = slow_stub(); } } } if (code.is_null()) code = ComputeHandler(lookup); } PatchCache(lookup->name(), code); TRACE_IC("LoadIC", lookup->name()); } void IC::UpdateMegamorphicCache(Map* map, Name* name, Code* code) { isolate()->stub_cache()->Set(name, map, code); } Handle IC::ComputeHandler(LookupIterator* lookup, Handle value) { // Try to find a globally shared handler stub. Handle code = GetMapIndependentHandler(lookup); if (!code.is_null()) return code; // Otherwise check the map's handler cache for a map-specific handler, and // compile one if the cache comes up empty. bool receiver_is_holder = lookup->GetReceiver().is_identical_to(lookup->GetHolder()); CacheHolderFlag flag; Handle stub_holder_map; if (kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC || kind() == Code::KEYED_LOAD_IC) { stub_holder_map = IC::GetHandlerCacheHolder( receiver_map(), receiver_is_holder, isolate(), &flag); } else { DCHECK(kind() == Code::STORE_IC || kind() == Code::KEYED_STORE_IC); // Store handlers cannot be cached on prototypes. flag = kCacheOnReceiver; stub_holder_map = receiver_map(); } code = PropertyHandlerCompiler::Find(lookup->name(), stub_holder_map, kind(), flag); // Use the cached value if it exists, and if it is different from the // handler that just missed. if (!code.is_null()) { Handle handler; if (maybe_handler_.ToHandle(&handler)) { if (!handler.is_identical_to(code)) { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } else { // maybe_handler_ is only populated for MONOMORPHIC and POLYMORPHIC ICs. // In MEGAMORPHIC case, check if the handler in the megamorphic stub // cache (which just missed) is different from the cached handler. if (state() == MEGAMORPHIC && lookup->GetReceiver()->IsHeapObject()) { Map* map = Handle::cast(lookup->GetReceiver())->map(); Code* megamorphic_cached_code = isolate()->stub_cache()->Get(*lookup->name(), map, code->flags()); if (megamorphic_cached_code != *code) { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } else { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } } code = CompileHandler(lookup, value, flag); DCHECK(code->is_handler()); DCHECK(Code::ExtractCacheHolderFromFlags(code->flags()) == flag); Map::UpdateCodeCache(stub_holder_map, lookup->name(), code); return code; } Handle LoadIC::GetMapIndependentHandler(LookupIterator* lookup) { Handle receiver = lookup->GetReceiver(); if (receiver->IsString() && Name::Equals(isolate()->factory()->length_string(), lookup->name())) { FieldIndex index = FieldIndex::ForInObjectOffset(String::kLengthOffset); return SimpleFieldLoad(index); } if (receiver->IsStringWrapper() && Name::Equals(isolate()->factory()->length_string(), lookup->name())) { TRACE_HANDLER_STATS(isolate(), LoadIC_StringLengthStub); StringLengthStub string_length_stub(isolate()); return string_length_stub.GetCode(); } // Use specialized code for getting prototype of functions. if (receiver->IsJSFunction() && Name::Equals(isolate()->factory()->prototype_string(), lookup->name()) && receiver->IsConstructor() && !Handle::cast(receiver) ->map() ->has_non_instance_prototype()) { Handle stub; TRACE_HANDLER_STATS(isolate(), LoadIC_FunctionPrototypeStub); FunctionPrototypeStub function_prototype_stub(isolate()); return function_prototype_stub.GetCode(); } Handle map = receiver_map(); Handle holder = lookup->GetHolder(); bool receiver_is_holder = receiver.is_identical_to(holder); switch (lookup->state()) { case LookupIterator::INTERCEPTOR: break; // Custom-compiled handler. case LookupIterator::ACCESSOR: { // Use simple field loads for some well-known callback properties. // The method will only return true for absolute truths based on the // receiver maps. int object_offset; if (Accessors::IsJSObjectFieldAccessor(map, lookup->name(), &object_offset)) { FieldIndex index = FieldIndex::ForInObjectOffset(object_offset, *map); return SimpleFieldLoad(index); } if (IsCompatibleReceiver(lookup, map)) { Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorPair()) { if (!holder->HasFastProperties()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } // When debugging we need to go the slow path to flood the accessor. if (GetSharedFunctionInfo()->HasDebugInfo()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->getter()) == nullptr) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } // Ruled out by IsCompatibleReceiver() above. DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, map)); if (!holder->HasFastProperties()) return slow_stub(); if (receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadApiGetterStub); int index = lookup->GetAccessorIndex(); LoadApiGetterStub stub(isolate(), true, index); return stub.GetCode(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } } TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (kind() != Code::LOAD_IC && kind() != Code::LOAD_GLOBAL_IC) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } // There is only one shared stub for loading normalized // properties. It does not traverse the prototype chain, so the // property must be found in the object for the stub to be // applicable. if (!receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } TRACE_HANDLER_STATS(isolate(), LoadIC_LoadNormal); return isolate()->builtins()->LoadIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { FieldIndex field = lookup->GetFieldIndex(); if (receiver_is_holder) { return SimpleFieldLoad(field); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); if (receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadConstantStub); LoadConstantStub stub(isolate(), lookup->GetConstantIndex()); return stub.GetCode(); } break; // Custom-compiled handler. } case LookupIterator::INTEGER_INDEXED_EXOTIC: TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); } return Handle::null(); } Handle LoadIC::CompileHandler(LookupIterator* lookup, Handle unused, CacheHolderFlag cache_holder) { Handle holder = lookup->GetHolder(); #ifdef DEBUG // Only used by DCHECKs below. Handle receiver = lookup->GetReceiver(); bool receiver_is_holder = receiver.is_identical_to(holder); #endif // Non-map-specific handler stubs have already been selected. DCHECK(!receiver->IsString() || !Name::Equals(isolate()->factory()->length_string(), lookup->name())); DCHECK(!receiver->IsStringWrapper() || !Name::Equals(isolate()->factory()->length_string(), lookup->name())); DCHECK(!( receiver->IsJSFunction() && Name::Equals(isolate()->factory()->prototype_string(), lookup->name()) && receiver->IsConstructor() && !Handle::cast(receiver) ->map() ->has_non_instance_prototype())); Handle map = receiver_map(); switch (lookup->state()) { case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->getter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadInterceptor); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); // Perform a lookup behind the interceptor. Copy the LookupIterator since // the original iterator will be used to fetch the value. LookupIterator it = *lookup; it.Next(); LookupForRead(&it); return compiler.CompileLoadInterceptor(&it); } case LookupIterator::ACCESSOR: { #ifdef DEBUG int object_offset; DCHECK(!Accessors::IsJSObjectFieldAccessor(map, lookup->name(), &object_offset)); #endif DCHECK(IsCompatibleReceiver(lookup, map)); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorPair()) { DCHECK(holder->HasFastProperties()); DCHECK(!GetSharedFunctionInfo()->HasDebugInfo()); Handle getter(Handle::cast(accessors)->getter(), isolate()); CallOptimization call_optimization(getter); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); if (call_optimization.is_simple_api_call()) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadCallback); int index = lookup->GetAccessorIndex(); Handle code = compiler.CompileLoadCallback( lookup->name(), call_optimization, index); return code; } TRACE_HANDLER_STATS(isolate(), LoadIC_LoadViaGetter); int expected_arguments = Handle::cast(getter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileLoadViaGetter( lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } else { DCHECK(accessors->IsAccessorInfo()); Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->getter()) != nullptr); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, map)); DCHECK(holder->HasFastProperties()); DCHECK(!receiver_is_holder); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadCallback); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle code = compiler.CompileLoadCallback(lookup->name(), info); return code; } UNREACHABLE(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC); DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadGlobal); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle cell = lookup->GetPropertyCell(); Handle code = compiler.CompileLoadGlobal( cell, lookup->name(), lookup->IsConfigurable()); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { FieldIndex field = lookup->GetFieldIndex(); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadField); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadField(lookup->name(), field); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadConstant); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadConstant(lookup->name(), lookup->GetConstantIndex()); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } static Handle TryConvertKey(Handle key, Isolate* isolate) { // This helper implements a few common fast cases for converting // non-smi keys of keyed loads/stores to a smi or a string. if (key->IsHeapNumber()) { double value = Handle::cast(key)->value(); if (std::isnan(value)) { key = isolate->factory()->nan_string(); } else { int int_value = FastD2I(value); if (value == int_value && Smi::IsValid(int_value)) { key = handle(Smi::FromInt(int_value), isolate); } } } else if (key->IsUndefined(isolate)) { key = isolate->factory()->undefined_string(); } return key; } void KeyedLoadIC::UpdateLoadElement(Handle receiver) { Handle receiver_map(receiver->map(), isolate()); DCHECK(receiver_map->instance_type() != JS_VALUE_TYPE && receiver_map->instance_type() != JS_PROXY_TYPE); // Checked by caller. MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { Handle map = target_receiver_maps.at(i); if (map.is_null()) continue; if (map->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSValue"); return; } if (map->instance_type() == JS_PROXY_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSProxy"); return; } } // The first time a receiver is seen that is a transitioned version of the // previous monomorphic receiver type, assume the new ElementsKind is the // monomorphic type. This benefits global arrays that only transition // once, and all call sites accessing them are faster if they remain // monomorphic. If this optimistic assumption is not true, the IC will // miss again and it will become polymorphic and support both the // untransitioned and transitioned maps. if (state() == MONOMORPHIC && !receiver->IsString() && IsMoreGeneralElementsKindTransition( target_receiver_maps.at(0)->elements_kind(), Handle::cast(receiver)->GetElementsKind())) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } DCHECK(state() != GENERIC); // Determine the list of receiver maps that this call site has seen, // adding the map that was just encountered. if (!AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map)) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the generic stub. TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the generic // version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "max polymorph exceeded"); return; } CodeHandleList handlers(target_receiver_maps.length()); TRACE_HANDLER_STATS(isolate(), KeyedLoadIC_PolymorphicElement); ElementHandlerCompiler compiler(isolate()); compiler.CompileElementHandlers(&target_receiver_maps, &handlers); ConfigureVectorState(Handle(), &target_receiver_maps, &handlers); } MaybeHandle KeyedLoadIC::Load(Handle object, Handle key) { if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } Handle load_handle; // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION(isolate(), load_handle, LoadIC::Load(object, Handle::cast(key)), Object); } else if (FLAG_use_ic && !object->IsAccessCheckNeeded() && !object->IsJSValue()) { if (object->IsJSObject() || (object->IsString() && key->IsNumber())) { Handle receiver = Handle::cast(object); if (object->IsString() || key->IsSmi()) UpdateLoadElement(receiver); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "set generic"); } TRACE_IC("LoadIC", key); if (!load_handle.is_null()) return load_handle; Handle result; ASSIGN_RETURN_ON_EXCEPTION(isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } bool StoreIC::LookupForWrite(LookupIterator* it, Handle value, JSReceiver::StoreFromKeyed store_mode) { // Disable ICs for non-JSObjects for now. Handle object = it->GetReceiver(); if (!object->IsJSObject()) return false; Handle receiver = Handle::cast(object); DCHECK(!receiver->map()->is_deprecated()); for (; it->IsFound(); it->Next()) { switch (it->state()) { case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); case LookupIterator::JSPROXY: return false; case LookupIterator::INTERCEPTOR: { Handle holder = it->GetHolder(); InterceptorInfo* info = holder->GetNamedInterceptor(); if (it->HolderIsReceiverOrHiddenPrototype()) { return !info->non_masking() && receiver.is_identical_to(holder) && !info->setter()->IsUndefined(it->isolate()); } else if (!info->getter()->IsUndefined(it->isolate()) || !info->query()->IsUndefined(it->isolate())) { return false; } break; } case LookupIterator::ACCESS_CHECK: if (it->GetHolder()->IsAccessCheckNeeded()) return false; break; case LookupIterator::ACCESSOR: return !it->IsReadOnly(); case LookupIterator::INTEGER_INDEXED_EXOTIC: return false; case LookupIterator::DATA: { if (it->IsReadOnly()) return false; Handle holder = it->GetHolder(); if (receiver.is_identical_to(holder)) { it->PrepareForDataProperty(value); // The previous receiver map might just have been deprecated, // so reload it. update_receiver_map(receiver); return true; } // Receiver != holder. if (receiver->IsJSGlobalProxy()) { PrototypeIterator iter(it->isolate(), receiver); return it->GetHolder().is_identical_to( PrototypeIterator::GetCurrent(iter)); } if (it->HolderIsReceiverOrHiddenPrototype()) return false; if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } } } receiver = it->GetStoreTarget(); if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } MaybeHandle StoreIC::Store(Handle object, Handle name, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (object->IsJSGlobalObject() && name->IsString()) { // Look up in script context table. Handle str_name = Handle::cast(name); Handle global = Handle::cast(object); Handle script_contexts( global->native_context()->script_context_table()); ScriptContextTable::LookupResult lookup_result; if (ScriptContextTable::Lookup(script_contexts, str_name, &lookup_result)) { Handle script_context = ScriptContextTable::GetContext( script_contexts, lookup_result.context_index); if (lookup_result.mode == CONST) { return TypeError(MessageTemplate::kConstAssign, object, name); } Handle previous_value = FixedArray::get(*script_context, lookup_result.slot_index, isolate()); if (previous_value->IsTheHole(isolate())) { // Do not install stubs and stay pre-monomorphic for // uninitialized accesses. return ReferenceError(name); } if (FLAG_use_ic && StoreScriptContextFieldStub::Accepted(&lookup_result)) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreScriptContextFieldStub); StoreScriptContextFieldStub stub(isolate(), &lookup_result); PatchCache(name, stub.GetCode()); } script_context->set(lookup_result.slot_index, *value); return value; } } // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object) || object->IsJSProxy()) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Object::SetProperty(object, name, value, language_mode()), Object); return result; } // If the object is undefined or null it's illegal to try to set any // properties on it; throw a TypeError in that case. if (object->IsUndefined(isolate()) || object->IsNull(isolate())) { return TypeError(MessageTemplate::kNonObjectPropertyStore, object, name); } if (state() != UNINITIALIZED) { JSObject::MakePrototypesFast(object, kStartAtPrototype, isolate()); } LookupIterator it(object, name); if (FLAG_use_ic) UpdateCaches(&it, value, store_mode); MAYBE_RETURN_NULL( Object::SetProperty(&it, value, language_mode(), store_mode)); return value; } Handle CallIC::initialize_stub_in_optimized_code( Isolate* isolate, int argc, ConvertReceiverMode mode, TailCallMode tail_call_mode) { CallICStub stub(isolate, CallICState(argc, mode, tail_call_mode)); Handle code = stub.GetCode(); return code; } Handle StoreIC::initialize_stub_in_optimized_code( Isolate* isolate, LanguageMode language_mode) { VectorStoreICStub stub(isolate, StoreICState(language_mode)); return stub.GetCode(); } void StoreIC::UpdateCaches(LookupIterator* lookup, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (state() == UNINITIALIZED) { // This is the first time we execute this inline cache. Set the target to // the pre monomorphic stub to delay setting the monomorphic state. ConfigureVectorState(PREMONOMORPHIC, Handle()); TRACE_IC("StoreIC", lookup->name()); return; } bool use_ic = LookupForWrite(lookup, value, store_mode); if (!use_ic) { TRACE_GENERIC_IC(isolate(), "StoreIC", "LookupForWrite said 'false'"); } Handle code = use_ic ? ComputeHandler(lookup, value) : slow_stub(); PatchCache(lookup->name(), code); TRACE_IC("StoreIC", lookup->name()); } static Handle PropertyCellStoreHandler( Isolate* isolate, Handle receiver, Handle holder, Handle name, Handle cell, PropertyCellType type) { auto constant_type = Nothing(); if (type == PropertyCellType::kConstantType) { constant_type = Just(cell->GetConstantType()); } StoreGlobalStub stub(isolate, type, constant_type, receiver->IsJSGlobalProxy()); auto code = stub.GetCodeCopyFromTemplate(holder, cell); // TODO(verwaest): Move caching of these NORMAL stubs outside as well. HeapObject::UpdateMapCodeCache(receiver, name, code); return code; } Handle StoreIC::GetMapIndependentHandler(LookupIterator* lookup) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { break; // Custom-compiled handler. } // Currently not handled by CompileStoreTransition. if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "transition from slow"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } DCHECK(lookup->IsCacheableTransition()); break; // Custom-compiled handler. } case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->setter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreInterceptorStub); StoreInterceptorStub stub(isolate()); return stub.GetCode(); } case LookupIterator::ACCESSOR: { if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "accessor on slow map"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->setter()) == nullptr) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter == nullptr"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (AccessorInfo::cast(*accessors)->is_special_data_property() && !lookup->HolderIsReceiverOrHiddenPrototype()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "special data property in prototype chain"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (!AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())) { TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver type"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorPair()) { Handle setter(Handle::cast(accessors)->setter(), isolate()); if (!setter->IsJSFunction() && !setter->IsFunctionTemplateInfo()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter not a function"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } CallOptimization call_optimization(setter); if (call_optimization.is_simple_api_call()) { if (call_optimization.IsCompatibleReceiver(receiver, holder)) { break; // Custom-compiled handler. } TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreNormal); DCHECK(holder.is_identical_to(receiver)); return isolate()->builtins()->StoreIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } if (use_stub) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreFieldStub); StoreFieldStub stub(isolate(), lookup->GetFieldIndex(), lookup->representation()); return stub.GetCode(); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); TRACE_GENERIC_IC(isolate(), "StoreIC", "constant property"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } return Handle::null(); } Handle StoreIC::CompileHandler(LookupIterator* lookup, Handle value, CacheHolderFlag cache_holder) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { // TODO(dcarney): this currently just deopts. Use the transition cell. TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobalTransition); auto cell = isolate()->factory()->NewPropertyCell(); cell->set_value(*value); auto code = PropertyCellStoreHandler( isolate(), store_target, Handle::cast(store_target), lookup->name(), cell, PropertyCellType::kConstant); cell->set_value(isolate()->heap()->the_hole_value()); return code; } Handle transition = lookup->transition_map(); // Currently not handled by CompileStoreTransition. DCHECK(holder->HasFastProperties()); DCHECK(lookup->IsCacheableTransition()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreTransition); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreTransition(transition, lookup->name()); } case LookupIterator::INTERCEPTOR: UNREACHABLE(); case LookupIterator::ACCESSOR: { DCHECK(holder->HasFastProperties()); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->setter()) != 0); DCHECK(!AccessorInfo::cast(*accessors)->is_special_data_property() || lookup->HolderIsReceiverOrHiddenPrototype()); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), info, language_mode()); return code; } else { DCHECK(accessors->IsAccessorPair()); Handle setter(Handle::cast(accessors)->setter(), isolate()); DCHECK(setter->IsJSFunction() || setter->IsFunctionTemplateInfo()); CallOptimization call_optimization(setter); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); if (call_optimization.is_simple_api_call()) { DCHECK(call_optimization.IsCompatibleReceiver(receiver, holder)); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), call_optimization, lookup->GetAccessorIndex()); return code; } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreViaSetter); int expected_arguments = JSFunction::cast(*setter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileStoreViaSetter(receiver, lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobal); DCHECK(holder.is_identical_to(receiver) || receiver->map()->prototype() == *holder); auto cell = lookup->GetPropertyCell(); auto updated_type = PropertyCell::UpdatedType(cell, value, lookup->property_details()); auto code = PropertyCellStoreHandler( isolate(), receiver, Handle::cast(holder), lookup->name(), cell, updated_type); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { #ifdef DEBUG bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } DCHECK(!use_stub); #endif TRACE_HANDLER_STATS(isolate(), StoreIC_StoreField); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreField(lookup); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); UNREACHABLE(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } void KeyedStoreIC::UpdateStoreElement(Handle receiver_map, KeyedAccessStoreMode store_mode) { MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle monomorphic_map = ComputeTransitionedMap(receiver_map, store_mode); store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(monomorphic_map, store_mode); return ConfigureVectorState(Handle(), monomorphic_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { if (!target_receiver_maps.at(i).is_null() && target_receiver_maps.at(i)->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "JSValue"); return; } } // There are several special cases where an IC that is MONOMORPHIC can still // transition to a different GetNonTransitioningStoreMode IC that handles a // superset of the original IC. Handle those here if the receiver map hasn't // changed or it has transitioned to a more general kind. KeyedAccessStoreMode old_store_mode = GetKeyedAccessStoreMode(); Handle previous_receiver_map = target_receiver_maps.at(0); if (state() == MONOMORPHIC) { Handle transitioned_receiver_map = receiver_map; if (IsTransitionStoreMode(store_mode)) { transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); } if ((receiver_map.is_identical_to(previous_receiver_map) && IsTransitionStoreMode(store_mode)) || IsTransitionOfMonomorphicTarget(*previous_receiver_map, *transitioned_receiver_map)) { // If the "old" and "new" maps are in the same elements map family, or // if they at least come from the same origin for a transitioning store, // stay MONOMORPHIC and use the map for the most generic ElementsKind. store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler( transitioned_receiver_map, store_mode); ConfigureVectorState(Handle(), transitioned_receiver_map, handler); return; } if (receiver_map.is_identical_to(previous_receiver_map) && old_store_mode == STANDARD_STORE && (store_mode == STORE_AND_GROW_NO_TRANSITION || store_mode == STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS || store_mode == STORE_NO_TRANSITION_HANDLE_COW)) { // A "normal" IC that handles stores can switch to a version that can // grow at the end of the array, handle OOB accesses or copy COW arrays // and still stay MONOMORPHIC. Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(receiver_map, store_mode); return ConfigureVectorState(Handle(), receiver_map, handler); } } DCHECK(state() != GENERIC); bool map_added = AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map); if (IsTransitionStoreMode(store_mode)) { Handle transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); map_added |= AddOneReceiverMapIfMissing(&target_receiver_maps, transitioned_receiver_map); } if (!map_added) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the megamorphic stub which can handle everything. TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the // megamorphic version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) return; // Make sure all polymorphic handlers have the same store mode, otherwise the // megamorphic stub must be used. store_mode = GetNonTransitioningStoreMode(store_mode); if (old_store_mode != STANDARD_STORE) { if (store_mode == STANDARD_STORE) { store_mode = old_store_mode; } else if (store_mode != old_store_mode) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "store mode mismatch"); return; } } // If the store mode isn't the standard mode, make sure that all polymorphic // receivers are either external arrays, or all "normal" arrays. Otherwise, // use the megamorphic stub. if (store_mode != STANDARD_STORE) { int external_arrays = 0; for (int i = 0; i < target_receiver_maps.length(); ++i) { if (target_receiver_maps[i]->has_fixed_typed_array_elements()) { external_arrays++; } } if (external_arrays != 0 && external_arrays != target_receiver_maps.length()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unsupported combination of external and normal arrays"); return; } } TRACE_HANDLER_STATS(isolate(), KeyedStoreIC_Polymorphic); MapHandleList transitioned_maps(target_receiver_maps.length()); CodeHandleList handlers(target_receiver_maps.length()); PropertyICCompiler::ComputeKeyedStorePolymorphicHandlers( &target_receiver_maps, &transitioned_maps, &handlers, store_mode); ConfigureVectorState(&target_receiver_maps, &transitioned_maps, &handlers); } Handle KeyedStoreIC::ComputeTransitionedMap( Handle map, KeyedAccessStoreMode store_mode) { switch (store_mode) { case STORE_TRANSITION_TO_OBJECT: case STORE_AND_GROW_TRANSITION_TO_OBJECT: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_ELEMENTS : FAST_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_TRANSITION_TO_DOUBLE: case STORE_AND_GROW_TRANSITION_TO_DOUBLE: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_DOUBLE_ELEMENTS : FAST_DOUBLE_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS: DCHECK(map->has_fixed_typed_array_elements()); // Fall through case STORE_NO_TRANSITION_HANDLE_COW: case STANDARD_STORE: case STORE_AND_GROW_NO_TRANSITION: return map; } UNREACHABLE(); return MaybeHandle().ToHandleChecked(); } bool IsOutOfBoundsAccess(Handle receiver, uint32_t index) { uint32_t length = 0; if (receiver->IsJSArray()) { JSArray::cast(*receiver)->length()->ToArrayLength(&length); } else { length = static_cast(receiver->elements()->length()); } return index >= length; } static KeyedAccessStoreMode GetStoreMode(Handle receiver, uint32_t index, Handle value) { bool oob_access = IsOutOfBoundsAccess(receiver, index); // Don't consider this a growing store if the store would send the receiver to // dictionary mode. bool allow_growth = receiver->IsJSArray() && oob_access && !receiver->WouldConvertToSlowElements(index); if (allow_growth) { // Handle growing array in stub if necessary. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_DOUBLE; } if (value->IsHeapObject()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } return STORE_AND_GROW_NO_TRANSITION; } else { // Handle only in-bounds elements accesses. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_TRANSITION_TO_DOUBLE; } else if (value->IsHeapObject()) { return STORE_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_TRANSITION_TO_OBJECT; } } if (!FLAG_trace_external_array_abuse && receiver->map()->has_fixed_typed_array_elements() && oob_access) { return STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS; } Heap* heap = receiver->GetHeap(); if (receiver->elements()->map() == heap->fixed_cow_array_map()) { return STORE_NO_TRANSITION_HANDLE_COW; } else { return STANDARD_STORE; } } } MaybeHandle KeyedStoreIC::Store(Handle object, Handle key, Handle value) { // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); return result; } // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); Handle store_handle; uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION( isolate(), store_handle, StoreIC::Store(object, Handle::cast(key), value, JSReceiver::MAY_BE_STORE_FROM_KEYED), Object); if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unhandled internalized string key"); TRACE_IC("StoreIC", key); } return store_handle; } bool use_ic = FLAG_use_ic && !object->IsStringWrapper() && !object->IsAccessCheckNeeded() && !object->IsJSGlobalProxy(); if (use_ic && !object->IsSmi()) { // Don't use ICs for maps of the objects in Array's prototype chain. We // expect to be able to trap element sets to objects with those maps in // the runtime to enable optimization of element hole access. Handle heap_object = Handle::cast(object); if (heap_object->map()->IsMapInArrayPrototypeChain()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "map in array prototype"); use_ic = false; } } Handle old_receiver_map; bool sloppy_arguments_elements = false; bool key_is_valid_index = false; KeyedAccessStoreMode store_mode = STANDARD_STORE; if (use_ic && object->IsJSObject()) { Handle receiver = Handle::cast(object); old_receiver_map = handle(receiver->map(), isolate()); sloppy_arguments_elements = !is_sloppy(language_mode()) && receiver->elements()->map() == isolate()->heap()->sloppy_arguments_elements_map(); if (!sloppy_arguments_elements) { key_is_valid_index = key->IsSmi() && Smi::cast(*key)->value() >= 0; if (key_is_valid_index) { uint32_t index = static_cast(Smi::cast(*key)->value()); store_mode = GetStoreMode(receiver, index, value); } } } DCHECK(store_handle.is_null()); ASSIGN_RETURN_ON_EXCEPTION(isolate(), store_handle, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); if (use_ic) { if (!old_receiver_map.is_null()) { if (sloppy_arguments_elements) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "arguments receiver"); } else if (key_is_valid_index) { // We should go generic if receiver isn't a dictionary, but our // prototype chain does have dictionary elements. This ensures that // other non-dictionary receivers in the polymorphic case benefit // from fast path keyed stores. if (!old_receiver_map->DictionaryElementsInPrototypeChainOnly()) { UpdateStoreElement(old_receiver_map, store_mode); } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "dictionary or proxy prototype"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-smi-like key"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-JSObject receiver"); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "set generic"); } TRACE_IC("StoreIC", key); return store_handle; } void CallIC::HandleMiss(Handle function) { Handle name = isolate()->factory()->empty_string(); CallICNexus* nexus = casted_nexus(); Object* feedback = nexus->GetFeedback(); // Hand-coded MISS handling is easier if CallIC slots don't contain smis. DCHECK(!feedback->IsSmi()); if (feedback->IsWeakCell() || !function->IsJSFunction() || feedback->IsAllocationSite()) { // We are going generic. nexus->ConfigureMegamorphic(); } else { DCHECK(feedback == *TypeFeedbackVector::UninitializedSentinel(isolate())); Handle js_function = Handle::cast(function); Handle array_function = Handle(isolate()->native_context()->array_function()); if (array_function.is_identical_to(js_function)) { // Alter the slot. nexus->ConfigureMonomorphicArray(); } else if (js_function->context()->native_context() != *isolate()->native_context()) { // Don't collect cross-native context feedback for the CallIC. // TODO(bmeurer): We should collect the SharedFunctionInfo as // feedback in this case instead. nexus->ConfigureMegamorphic(); } else { nexus->ConfigureMonomorphic(js_function); } } if (function->IsJSFunction()) { Handle
code; if (lookup->state() == LookupIterator::JSPROXY || lookup->state() == LookupIterator::ACCESS_CHECK) { code = slow_stub(); } else if (!lookup->IsFound()) { if (kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC) { code = NamedLoadHandlerCompiler::ComputeLoadNonexistent(lookup->name(), receiver_map()); // TODO(jkummerow/verwaest): Introduce a builtin that handles this case. if (code.is_null()) code = slow_stub(); } else { code = slow_stub(); } } else { if (kind() == Code::LOAD_GLOBAL_IC && lookup->state() == LookupIterator::DATA && lookup->GetHolder()->IsJSGlobalObject()) { #if DEBUG Handle holder = lookup->GetHolder(); Handle receiver = lookup->GetReceiver(); DCHECK_EQ(*receiver, *holder); #endif // Now update the cell in the feedback vector. LoadGlobalICNexus* nexus = casted_nexus(); nexus->ConfigurePropertyCellMode(lookup->GetPropertyCell()); TRACE_IC("LoadGlobalIC", lookup->name()); return; } else if (lookup->state() == LookupIterator::ACCESSOR) { if (!IsCompatibleReceiver(lookup, receiver_map())) { TRACE_GENERIC_IC(isolate(), "LoadIC", "incompatible receiver type"); code = slow_stub(); } } else if (lookup->state() == LookupIterator::INTERCEPTOR) { if (kind() == Code::LOAD_GLOBAL_IC) { // The interceptor handler requires name but it is not passed explicitly // to LoadGlobalIC and the LoadGlobalIC dispatcher also does not load // it so we will just use slow stub. code = slow_stub(); } else { // Perform a lookup behind the interceptor. Copy the LookupIterator // since the original iterator will be used to fetch the value. LookupIterator it = *lookup; it.Next(); LookupForRead(&it); if (it.state() == LookupIterator::ACCESSOR && !IsCompatibleReceiver(&it, receiver_map())) { TRACE_GENERIC_IC(isolate(), "LoadIC", "incompatible receiver type"); code = slow_stub(); } } } if (code.is_null()) code = ComputeHandler(lookup); } PatchCache(lookup->name(), code); TRACE_IC("LoadIC", lookup->name()); } void IC::UpdateMegamorphicCache(Map* map, Name* name, Code* code) { isolate()->stub_cache()->Set(name, map, code); } Handle IC::ComputeHandler(LookupIterator* lookup, Handle value) { // Try to find a globally shared handler stub. Handle code = GetMapIndependentHandler(lookup); if (!code.is_null()) return code; // Otherwise check the map's handler cache for a map-specific handler, and // compile one if the cache comes up empty. bool receiver_is_holder = lookup->GetReceiver().is_identical_to(lookup->GetHolder()); CacheHolderFlag flag; Handle stub_holder_map; if (kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC || kind() == Code::KEYED_LOAD_IC) { stub_holder_map = IC::GetHandlerCacheHolder( receiver_map(), receiver_is_holder, isolate(), &flag); } else { DCHECK(kind() == Code::STORE_IC || kind() == Code::KEYED_STORE_IC); // Store handlers cannot be cached on prototypes. flag = kCacheOnReceiver; stub_holder_map = receiver_map(); } code = PropertyHandlerCompiler::Find(lookup->name(), stub_holder_map, kind(), flag); // Use the cached value if it exists, and if it is different from the // handler that just missed. if (!code.is_null()) { Handle handler; if (maybe_handler_.ToHandle(&handler)) { if (!handler.is_identical_to(code)) { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } else { // maybe_handler_ is only populated for MONOMORPHIC and POLYMORPHIC ICs. // In MEGAMORPHIC case, check if the handler in the megamorphic stub // cache (which just missed) is different from the cached handler. if (state() == MEGAMORPHIC && lookup->GetReceiver()->IsHeapObject()) { Map* map = Handle::cast(lookup->GetReceiver())->map(); Code* megamorphic_cached_code = isolate()->stub_cache()->Get(*lookup->name(), map, code->flags()); if (megamorphic_cached_code != *code) { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } else { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } } code = CompileHandler(lookup, value, flag); DCHECK(code->is_handler()); DCHECK(Code::ExtractCacheHolderFromFlags(code->flags()) == flag); Map::UpdateCodeCache(stub_holder_map, lookup->name(), code); return code; } Handle LoadIC::GetMapIndependentHandler(LookupIterator* lookup) { Handle receiver = lookup->GetReceiver(); if (receiver->IsString() && Name::Equals(isolate()->factory()->length_string(), lookup->name())) { FieldIndex index = FieldIndex::ForInObjectOffset(String::kLengthOffset); return SimpleFieldLoad(index); } if (receiver->IsStringWrapper() && Name::Equals(isolate()->factory()->length_string(), lookup->name())) { TRACE_HANDLER_STATS(isolate(), LoadIC_StringLengthStub); StringLengthStub string_length_stub(isolate()); return string_length_stub.GetCode(); } // Use specialized code for getting prototype of functions. if (receiver->IsJSFunction() && Name::Equals(isolate()->factory()->prototype_string(), lookup->name()) && receiver->IsConstructor() && !Handle::cast(receiver) ->map() ->has_non_instance_prototype()) { Handle stub; TRACE_HANDLER_STATS(isolate(), LoadIC_FunctionPrototypeStub); FunctionPrototypeStub function_prototype_stub(isolate()); return function_prototype_stub.GetCode(); } Handle map = receiver_map(); Handle holder = lookup->GetHolder(); bool receiver_is_holder = receiver.is_identical_to(holder); switch (lookup->state()) { case LookupIterator::INTERCEPTOR: break; // Custom-compiled handler. case LookupIterator::ACCESSOR: { // Use simple field loads for some well-known callback properties. // The method will only return true for absolute truths based on the // receiver maps. int object_offset; if (Accessors::IsJSObjectFieldAccessor(map, lookup->name(), &object_offset)) { FieldIndex index = FieldIndex::ForInObjectOffset(object_offset, *map); return SimpleFieldLoad(index); } if (IsCompatibleReceiver(lookup, map)) { Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorPair()) { if (!holder->HasFastProperties()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } // When debugging we need to go the slow path to flood the accessor. if (GetSharedFunctionInfo()->HasDebugInfo()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->getter()) == nullptr) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } // Ruled out by IsCompatibleReceiver() above. DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, map)); if (!holder->HasFastProperties()) return slow_stub(); if (receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadApiGetterStub); int index = lookup->GetAccessorIndex(); LoadApiGetterStub stub(isolate(), true, index); return stub.GetCode(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } } TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (kind() != Code::LOAD_IC && kind() != Code::LOAD_GLOBAL_IC) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } // There is only one shared stub for loading normalized // properties. It does not traverse the prototype chain, so the // property must be found in the object for the stub to be // applicable. if (!receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } TRACE_HANDLER_STATS(isolate(), LoadIC_LoadNormal); return isolate()->builtins()->LoadIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { FieldIndex field = lookup->GetFieldIndex(); if (receiver_is_holder) { return SimpleFieldLoad(field); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); if (receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadConstantStub); LoadConstantStub stub(isolate(), lookup->GetConstantIndex()); return stub.GetCode(); } break; // Custom-compiled handler. } case LookupIterator::INTEGER_INDEXED_EXOTIC: TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); } return Handle::null(); } Handle LoadIC::CompileHandler(LookupIterator* lookup, Handle unused, CacheHolderFlag cache_holder) { Handle holder = lookup->GetHolder(); #ifdef DEBUG // Only used by DCHECKs below. Handle receiver = lookup->GetReceiver(); bool receiver_is_holder = receiver.is_identical_to(holder); #endif // Non-map-specific handler stubs have already been selected. DCHECK(!receiver->IsString() || !Name::Equals(isolate()->factory()->length_string(), lookup->name())); DCHECK(!receiver->IsStringWrapper() || !Name::Equals(isolate()->factory()->length_string(), lookup->name())); DCHECK(!( receiver->IsJSFunction() && Name::Equals(isolate()->factory()->prototype_string(), lookup->name()) && receiver->IsConstructor() && !Handle::cast(receiver) ->map() ->has_non_instance_prototype())); Handle map = receiver_map(); switch (lookup->state()) { case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->getter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadInterceptor); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); // Perform a lookup behind the interceptor. Copy the LookupIterator since // the original iterator will be used to fetch the value. LookupIterator it = *lookup; it.Next(); LookupForRead(&it); return compiler.CompileLoadInterceptor(&it); } case LookupIterator::ACCESSOR: { #ifdef DEBUG int object_offset; DCHECK(!Accessors::IsJSObjectFieldAccessor(map, lookup->name(), &object_offset)); #endif DCHECK(IsCompatibleReceiver(lookup, map)); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorPair()) { DCHECK(holder->HasFastProperties()); DCHECK(!GetSharedFunctionInfo()->HasDebugInfo()); Handle getter(Handle::cast(accessors)->getter(), isolate()); CallOptimization call_optimization(getter); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); if (call_optimization.is_simple_api_call()) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadCallback); int index = lookup->GetAccessorIndex(); Handle code = compiler.CompileLoadCallback( lookup->name(), call_optimization, index); return code; } TRACE_HANDLER_STATS(isolate(), LoadIC_LoadViaGetter); int expected_arguments = Handle::cast(getter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileLoadViaGetter( lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } else { DCHECK(accessors->IsAccessorInfo()); Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->getter()) != nullptr); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, map)); DCHECK(holder->HasFastProperties()); DCHECK(!receiver_is_holder); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadCallback); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle code = compiler.CompileLoadCallback(lookup->name(), info); return code; } UNREACHABLE(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC); DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadGlobal); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle cell = lookup->GetPropertyCell(); Handle code = compiler.CompileLoadGlobal( cell, lookup->name(), lookup->IsConfigurable()); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { FieldIndex field = lookup->GetFieldIndex(); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadField); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadField(lookup->name(), field); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadConstant); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadConstant(lookup->name(), lookup->GetConstantIndex()); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } static Handle TryConvertKey(Handle key, Isolate* isolate) { // This helper implements a few common fast cases for converting // non-smi keys of keyed loads/stores to a smi or a string. if (key->IsHeapNumber()) { double value = Handle::cast(key)->value(); if (std::isnan(value)) { key = isolate->factory()->nan_string(); } else { int int_value = FastD2I(value); if (value == int_value && Smi::IsValid(int_value)) { key = handle(Smi::FromInt(int_value), isolate); } } } else if (key->IsUndefined(isolate)) { key = isolate->factory()->undefined_string(); } return key; } void KeyedLoadIC::UpdateLoadElement(Handle receiver) { Handle receiver_map(receiver->map(), isolate()); DCHECK(receiver_map->instance_type() != JS_VALUE_TYPE && receiver_map->instance_type() != JS_PROXY_TYPE); // Checked by caller. MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { Handle map = target_receiver_maps.at(i); if (map.is_null()) continue; if (map->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSValue"); return; } if (map->instance_type() == JS_PROXY_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSProxy"); return; } } // The first time a receiver is seen that is a transitioned version of the // previous monomorphic receiver type, assume the new ElementsKind is the // monomorphic type. This benefits global arrays that only transition // once, and all call sites accessing them are faster if they remain // monomorphic. If this optimistic assumption is not true, the IC will // miss again and it will become polymorphic and support both the // untransitioned and transitioned maps. if (state() == MONOMORPHIC && !receiver->IsString() && IsMoreGeneralElementsKindTransition( target_receiver_maps.at(0)->elements_kind(), Handle::cast(receiver)->GetElementsKind())) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } DCHECK(state() != GENERIC); // Determine the list of receiver maps that this call site has seen, // adding the map that was just encountered. if (!AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map)) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the generic stub. TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the generic // version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "max polymorph exceeded"); return; } CodeHandleList handlers(target_receiver_maps.length()); TRACE_HANDLER_STATS(isolate(), KeyedLoadIC_PolymorphicElement); ElementHandlerCompiler compiler(isolate()); compiler.CompileElementHandlers(&target_receiver_maps, &handlers); ConfigureVectorState(Handle(), &target_receiver_maps, &handlers); } MaybeHandle KeyedLoadIC::Load(Handle object, Handle key) { if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } Handle load_handle; // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION(isolate(), load_handle, LoadIC::Load(object, Handle::cast(key)), Object); } else if (FLAG_use_ic && !object->IsAccessCheckNeeded() && !object->IsJSValue()) { if (object->IsJSObject() || (object->IsString() && key->IsNumber())) { Handle receiver = Handle::cast(object); if (object->IsString() || key->IsSmi()) UpdateLoadElement(receiver); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "set generic"); } TRACE_IC("LoadIC", key); if (!load_handle.is_null()) return load_handle; Handle result; ASSIGN_RETURN_ON_EXCEPTION(isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } bool StoreIC::LookupForWrite(LookupIterator* it, Handle value, JSReceiver::StoreFromKeyed store_mode) { // Disable ICs for non-JSObjects for now. Handle object = it->GetReceiver(); if (!object->IsJSObject()) return false; Handle receiver = Handle::cast(object); DCHECK(!receiver->map()->is_deprecated()); for (; it->IsFound(); it->Next()) { switch (it->state()) { case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); case LookupIterator::JSPROXY: return false; case LookupIterator::INTERCEPTOR: { Handle holder = it->GetHolder(); InterceptorInfo* info = holder->GetNamedInterceptor(); if (it->HolderIsReceiverOrHiddenPrototype()) { return !info->non_masking() && receiver.is_identical_to(holder) && !info->setter()->IsUndefined(it->isolate()); } else if (!info->getter()->IsUndefined(it->isolate()) || !info->query()->IsUndefined(it->isolate())) { return false; } break; } case LookupIterator::ACCESS_CHECK: if (it->GetHolder()->IsAccessCheckNeeded()) return false; break; case LookupIterator::ACCESSOR: return !it->IsReadOnly(); case LookupIterator::INTEGER_INDEXED_EXOTIC: return false; case LookupIterator::DATA: { if (it->IsReadOnly()) return false; Handle holder = it->GetHolder(); if (receiver.is_identical_to(holder)) { it->PrepareForDataProperty(value); // The previous receiver map might just have been deprecated, // so reload it. update_receiver_map(receiver); return true; } // Receiver != holder. if (receiver->IsJSGlobalProxy()) { PrototypeIterator iter(it->isolate(), receiver); return it->GetHolder().is_identical_to( PrototypeIterator::GetCurrent(iter)); } if (it->HolderIsReceiverOrHiddenPrototype()) return false; if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } } } receiver = it->GetStoreTarget(); if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } MaybeHandle StoreIC::Store(Handle object, Handle name, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (object->IsJSGlobalObject() && name->IsString()) { // Look up in script context table. Handle str_name = Handle::cast(name); Handle global = Handle::cast(object); Handle script_contexts( global->native_context()->script_context_table()); ScriptContextTable::LookupResult lookup_result; if (ScriptContextTable::Lookup(script_contexts, str_name, &lookup_result)) { Handle script_context = ScriptContextTable::GetContext( script_contexts, lookup_result.context_index); if (lookup_result.mode == CONST) { return TypeError(MessageTemplate::kConstAssign, object, name); } Handle previous_value = FixedArray::get(*script_context, lookup_result.slot_index, isolate()); if (previous_value->IsTheHole(isolate())) { // Do not install stubs and stay pre-monomorphic for // uninitialized accesses. return ReferenceError(name); } if (FLAG_use_ic && StoreScriptContextFieldStub::Accepted(&lookup_result)) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreScriptContextFieldStub); StoreScriptContextFieldStub stub(isolate(), &lookup_result); PatchCache(name, stub.GetCode()); } script_context->set(lookup_result.slot_index, *value); return value; } } // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object) || object->IsJSProxy()) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Object::SetProperty(object, name, value, language_mode()), Object); return result; } // If the object is undefined or null it's illegal to try to set any // properties on it; throw a TypeError in that case. if (object->IsUndefined(isolate()) || object->IsNull(isolate())) { return TypeError(MessageTemplate::kNonObjectPropertyStore, object, name); } if (state() != UNINITIALIZED) { JSObject::MakePrototypesFast(object, kStartAtPrototype, isolate()); } LookupIterator it(object, name); if (FLAG_use_ic) UpdateCaches(&it, value, store_mode); MAYBE_RETURN_NULL( Object::SetProperty(&it, value, language_mode(), store_mode)); return value; } Handle CallIC::initialize_stub_in_optimized_code( Isolate* isolate, int argc, ConvertReceiverMode mode, TailCallMode tail_call_mode) { CallICStub stub(isolate, CallICState(argc, mode, tail_call_mode)); Handle code = stub.GetCode(); return code; } Handle StoreIC::initialize_stub_in_optimized_code( Isolate* isolate, LanguageMode language_mode) { VectorStoreICStub stub(isolate, StoreICState(language_mode)); return stub.GetCode(); } void StoreIC::UpdateCaches(LookupIterator* lookup, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (state() == UNINITIALIZED) { // This is the first time we execute this inline cache. Set the target to // the pre monomorphic stub to delay setting the monomorphic state. ConfigureVectorState(PREMONOMORPHIC, Handle()); TRACE_IC("StoreIC", lookup->name()); return; } bool use_ic = LookupForWrite(lookup, value, store_mode); if (!use_ic) { TRACE_GENERIC_IC(isolate(), "StoreIC", "LookupForWrite said 'false'"); } Handle code = use_ic ? ComputeHandler(lookup, value) : slow_stub(); PatchCache(lookup->name(), code); TRACE_IC("StoreIC", lookup->name()); } static Handle PropertyCellStoreHandler( Isolate* isolate, Handle receiver, Handle holder, Handle name, Handle cell, PropertyCellType type) { auto constant_type = Nothing(); if (type == PropertyCellType::kConstantType) { constant_type = Just(cell->GetConstantType()); } StoreGlobalStub stub(isolate, type, constant_type, receiver->IsJSGlobalProxy()); auto code = stub.GetCodeCopyFromTemplate(holder, cell); // TODO(verwaest): Move caching of these NORMAL stubs outside as well. HeapObject::UpdateMapCodeCache(receiver, name, code); return code; } Handle StoreIC::GetMapIndependentHandler(LookupIterator* lookup) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { break; // Custom-compiled handler. } // Currently not handled by CompileStoreTransition. if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "transition from slow"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } DCHECK(lookup->IsCacheableTransition()); break; // Custom-compiled handler. } case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->setter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreInterceptorStub); StoreInterceptorStub stub(isolate()); return stub.GetCode(); } case LookupIterator::ACCESSOR: { if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "accessor on slow map"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->setter()) == nullptr) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter == nullptr"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (AccessorInfo::cast(*accessors)->is_special_data_property() && !lookup->HolderIsReceiverOrHiddenPrototype()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "special data property in prototype chain"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (!AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())) { TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver type"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorPair()) { Handle setter(Handle::cast(accessors)->setter(), isolate()); if (!setter->IsJSFunction() && !setter->IsFunctionTemplateInfo()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter not a function"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } CallOptimization call_optimization(setter); if (call_optimization.is_simple_api_call()) { if (call_optimization.IsCompatibleReceiver(receiver, holder)) { break; // Custom-compiled handler. } TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreNormal); DCHECK(holder.is_identical_to(receiver)); return isolate()->builtins()->StoreIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } if (use_stub) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreFieldStub); StoreFieldStub stub(isolate(), lookup->GetFieldIndex(), lookup->representation()); return stub.GetCode(); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); TRACE_GENERIC_IC(isolate(), "StoreIC", "constant property"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } return Handle::null(); } Handle StoreIC::CompileHandler(LookupIterator* lookup, Handle value, CacheHolderFlag cache_holder) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { // TODO(dcarney): this currently just deopts. Use the transition cell. TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobalTransition); auto cell = isolate()->factory()->NewPropertyCell(); cell->set_value(*value); auto code = PropertyCellStoreHandler( isolate(), store_target, Handle::cast(store_target), lookup->name(), cell, PropertyCellType::kConstant); cell->set_value(isolate()->heap()->the_hole_value()); return code; } Handle transition = lookup->transition_map(); // Currently not handled by CompileStoreTransition. DCHECK(holder->HasFastProperties()); DCHECK(lookup->IsCacheableTransition()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreTransition); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreTransition(transition, lookup->name()); } case LookupIterator::INTERCEPTOR: UNREACHABLE(); case LookupIterator::ACCESSOR: { DCHECK(holder->HasFastProperties()); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->setter()) != 0); DCHECK(!AccessorInfo::cast(*accessors)->is_special_data_property() || lookup->HolderIsReceiverOrHiddenPrototype()); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), info, language_mode()); return code; } else { DCHECK(accessors->IsAccessorPair()); Handle setter(Handle::cast(accessors)->setter(), isolate()); DCHECK(setter->IsJSFunction() || setter->IsFunctionTemplateInfo()); CallOptimization call_optimization(setter); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); if (call_optimization.is_simple_api_call()) { DCHECK(call_optimization.IsCompatibleReceiver(receiver, holder)); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), call_optimization, lookup->GetAccessorIndex()); return code; } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreViaSetter); int expected_arguments = JSFunction::cast(*setter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileStoreViaSetter(receiver, lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobal); DCHECK(holder.is_identical_to(receiver) || receiver->map()->prototype() == *holder); auto cell = lookup->GetPropertyCell(); auto updated_type = PropertyCell::UpdatedType(cell, value, lookup->property_details()); auto code = PropertyCellStoreHandler( isolate(), receiver, Handle::cast(holder), lookup->name(), cell, updated_type); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { #ifdef DEBUG bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } DCHECK(!use_stub); #endif TRACE_HANDLER_STATS(isolate(), StoreIC_StoreField); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreField(lookup); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); UNREACHABLE(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } void KeyedStoreIC::UpdateStoreElement(Handle receiver_map, KeyedAccessStoreMode store_mode) { MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle monomorphic_map = ComputeTransitionedMap(receiver_map, store_mode); store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(monomorphic_map, store_mode); return ConfigureVectorState(Handle(), monomorphic_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { if (!target_receiver_maps.at(i).is_null() && target_receiver_maps.at(i)->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "JSValue"); return; } } // There are several special cases where an IC that is MONOMORPHIC can still // transition to a different GetNonTransitioningStoreMode IC that handles a // superset of the original IC. Handle those here if the receiver map hasn't // changed or it has transitioned to a more general kind. KeyedAccessStoreMode old_store_mode = GetKeyedAccessStoreMode(); Handle previous_receiver_map = target_receiver_maps.at(0); if (state() == MONOMORPHIC) { Handle transitioned_receiver_map = receiver_map; if (IsTransitionStoreMode(store_mode)) { transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); } if ((receiver_map.is_identical_to(previous_receiver_map) && IsTransitionStoreMode(store_mode)) || IsTransitionOfMonomorphicTarget(*previous_receiver_map, *transitioned_receiver_map)) { // If the "old" and "new" maps are in the same elements map family, or // if they at least come from the same origin for a transitioning store, // stay MONOMORPHIC and use the map for the most generic ElementsKind. store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler( transitioned_receiver_map, store_mode); ConfigureVectorState(Handle(), transitioned_receiver_map, handler); return; } if (receiver_map.is_identical_to(previous_receiver_map) && old_store_mode == STANDARD_STORE && (store_mode == STORE_AND_GROW_NO_TRANSITION || store_mode == STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS || store_mode == STORE_NO_TRANSITION_HANDLE_COW)) { // A "normal" IC that handles stores can switch to a version that can // grow at the end of the array, handle OOB accesses or copy COW arrays // and still stay MONOMORPHIC. Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(receiver_map, store_mode); return ConfigureVectorState(Handle(), receiver_map, handler); } } DCHECK(state() != GENERIC); bool map_added = AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map); if (IsTransitionStoreMode(store_mode)) { Handle transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); map_added |= AddOneReceiverMapIfMissing(&target_receiver_maps, transitioned_receiver_map); } if (!map_added) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the megamorphic stub which can handle everything. TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the // megamorphic version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) return; // Make sure all polymorphic handlers have the same store mode, otherwise the // megamorphic stub must be used. store_mode = GetNonTransitioningStoreMode(store_mode); if (old_store_mode != STANDARD_STORE) { if (store_mode == STANDARD_STORE) { store_mode = old_store_mode; } else if (store_mode != old_store_mode) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "store mode mismatch"); return; } } // If the store mode isn't the standard mode, make sure that all polymorphic // receivers are either external arrays, or all "normal" arrays. Otherwise, // use the megamorphic stub. if (store_mode != STANDARD_STORE) { int external_arrays = 0; for (int i = 0; i < target_receiver_maps.length(); ++i) { if (target_receiver_maps[i]->has_fixed_typed_array_elements()) { external_arrays++; } } if (external_arrays != 0 && external_arrays != target_receiver_maps.length()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unsupported combination of external and normal arrays"); return; } } TRACE_HANDLER_STATS(isolate(), KeyedStoreIC_Polymorphic); MapHandleList transitioned_maps(target_receiver_maps.length()); CodeHandleList handlers(target_receiver_maps.length()); PropertyICCompiler::ComputeKeyedStorePolymorphicHandlers( &target_receiver_maps, &transitioned_maps, &handlers, store_mode); ConfigureVectorState(&target_receiver_maps, &transitioned_maps, &handlers); } Handle KeyedStoreIC::ComputeTransitionedMap( Handle map, KeyedAccessStoreMode store_mode) { switch (store_mode) { case STORE_TRANSITION_TO_OBJECT: case STORE_AND_GROW_TRANSITION_TO_OBJECT: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_ELEMENTS : FAST_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_TRANSITION_TO_DOUBLE: case STORE_AND_GROW_TRANSITION_TO_DOUBLE: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_DOUBLE_ELEMENTS : FAST_DOUBLE_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS: DCHECK(map->has_fixed_typed_array_elements()); // Fall through case STORE_NO_TRANSITION_HANDLE_COW: case STANDARD_STORE: case STORE_AND_GROW_NO_TRANSITION: return map; } UNREACHABLE(); return MaybeHandle().ToHandleChecked(); } bool IsOutOfBoundsAccess(Handle receiver, uint32_t index) { uint32_t length = 0; if (receiver->IsJSArray()) { JSArray::cast(*receiver)->length()->ToArrayLength(&length); } else { length = static_cast(receiver->elements()->length()); } return index >= length; } static KeyedAccessStoreMode GetStoreMode(Handle receiver, uint32_t index, Handle value) { bool oob_access = IsOutOfBoundsAccess(receiver, index); // Don't consider this a growing store if the store would send the receiver to // dictionary mode. bool allow_growth = receiver->IsJSArray() && oob_access && !receiver->WouldConvertToSlowElements(index); if (allow_growth) { // Handle growing array in stub if necessary. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_DOUBLE; } if (value->IsHeapObject()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } return STORE_AND_GROW_NO_TRANSITION; } else { // Handle only in-bounds elements accesses. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_TRANSITION_TO_DOUBLE; } else if (value->IsHeapObject()) { return STORE_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_TRANSITION_TO_OBJECT; } } if (!FLAG_trace_external_array_abuse && receiver->map()->has_fixed_typed_array_elements() && oob_access) { return STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS; } Heap* heap = receiver->GetHeap(); if (receiver->elements()->map() == heap->fixed_cow_array_map()) { return STORE_NO_TRANSITION_HANDLE_COW; } else { return STANDARD_STORE; } } } MaybeHandle KeyedStoreIC::Store(Handle object, Handle key, Handle value) { // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); return result; } // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); Handle store_handle; uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION( isolate(), store_handle, StoreIC::Store(object, Handle::cast(key), value, JSReceiver::MAY_BE_STORE_FROM_KEYED), Object); if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unhandled internalized string key"); TRACE_IC("StoreIC", key); } return store_handle; } bool use_ic = FLAG_use_ic && !object->IsStringWrapper() && !object->IsAccessCheckNeeded() && !object->IsJSGlobalProxy(); if (use_ic && !object->IsSmi()) { // Don't use ICs for maps of the objects in Array's prototype chain. We // expect to be able to trap element sets to objects with those maps in // the runtime to enable optimization of element hole access. Handle heap_object = Handle::cast(object); if (heap_object->map()->IsMapInArrayPrototypeChain()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "map in array prototype"); use_ic = false; } } Handle old_receiver_map; bool sloppy_arguments_elements = false; bool key_is_valid_index = false; KeyedAccessStoreMode store_mode = STANDARD_STORE; if (use_ic && object->IsJSObject()) { Handle receiver = Handle::cast(object); old_receiver_map = handle(receiver->map(), isolate()); sloppy_arguments_elements = !is_sloppy(language_mode()) && receiver->elements()->map() == isolate()->heap()->sloppy_arguments_elements_map(); if (!sloppy_arguments_elements) { key_is_valid_index = key->IsSmi() && Smi::cast(*key)->value() >= 0; if (key_is_valid_index) { uint32_t index = static_cast(Smi::cast(*key)->value()); store_mode = GetStoreMode(receiver, index, value); } } } DCHECK(store_handle.is_null()); ASSIGN_RETURN_ON_EXCEPTION(isolate(), store_handle, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); if (use_ic) { if (!old_receiver_map.is_null()) { if (sloppy_arguments_elements) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "arguments receiver"); } else if (key_is_valid_index) { // We should go generic if receiver isn't a dictionary, but our // prototype chain does have dictionary elements. This ensures that // other non-dictionary receivers in the polymorphic case benefit // from fast path keyed stores. if (!old_receiver_map->DictionaryElementsInPrototypeChainOnly()) { UpdateStoreElement(old_receiver_map, store_mode); } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "dictionary or proxy prototype"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-smi-like key"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-JSObject receiver"); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "set generic"); } TRACE_IC("StoreIC", key); return store_handle; } void CallIC::HandleMiss(Handle function) { Handle name = isolate()->factory()->empty_string(); CallICNexus* nexus = casted_nexus(); Object* feedback = nexus->GetFeedback(); // Hand-coded MISS handling is easier if CallIC slots don't contain smis. DCHECK(!feedback->IsSmi()); if (feedback->IsWeakCell() || !function->IsJSFunction() || feedback->IsAllocationSite()) { // We are going generic. nexus->ConfigureMegamorphic(); } else { DCHECK(feedback == *TypeFeedbackVector::UninitializedSentinel(isolate())); Handle js_function = Handle::cast(function); Handle array_function = Handle(isolate()->native_context()->array_function()); if (array_function.is_identical_to(js_function)) { // Alter the slot. nexus->ConfigureMonomorphicArray(); } else if (js_function->context()->native_context() != *isolate()->native_context()) { // Don't collect cross-native context feedback for the CallIC. // TODO(bmeurer): We should collect the SharedFunctionInfo as // feedback in this case instead. nexus->ConfigureMegamorphic(); } else { nexus->ConfigureMonomorphic(js_function); } } if (function->IsJSFunction()) { Handle
IC::ComputeHandler(LookupIterator* lookup, Handle value) { // Try to find a globally shared handler stub. Handle code = GetMapIndependentHandler(lookup); if (!code.is_null()) return code; // Otherwise check the map's handler cache for a map-specific handler, and // compile one if the cache comes up empty. bool receiver_is_holder = lookup->GetReceiver().is_identical_to(lookup->GetHolder()); CacheHolderFlag flag; Handle stub_holder_map; if (kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC || kind() == Code::KEYED_LOAD_IC) { stub_holder_map = IC::GetHandlerCacheHolder( receiver_map(), receiver_is_holder, isolate(), &flag); } else { DCHECK(kind() == Code::STORE_IC || kind() == Code::KEYED_STORE_IC); // Store handlers cannot be cached on prototypes. flag = kCacheOnReceiver; stub_holder_map = receiver_map(); } code = PropertyHandlerCompiler::Find(lookup->name(), stub_holder_map, kind(), flag); // Use the cached value if it exists, and if it is different from the // handler that just missed. if (!code.is_null()) { Handle handler; if (maybe_handler_.ToHandle(&handler)) { if (!handler.is_identical_to(code)) { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } else { // maybe_handler_ is only populated for MONOMORPHIC and POLYMORPHIC ICs. // In MEGAMORPHIC case, check if the handler in the megamorphic stub // cache (which just missed) is different from the cached handler. if (state() == MEGAMORPHIC && lookup->GetReceiver()->IsHeapObject()) { Map* map = Handle::cast(lookup->GetReceiver())->map(); Code* megamorphic_cached_code = isolate()->stub_cache()->Get(*lookup->name(), map, code->flags()); if (megamorphic_cached_code != *code) { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } else { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } } code = CompileHandler(lookup, value, flag); DCHECK(code->is_handler()); DCHECK(Code::ExtractCacheHolderFromFlags(code->flags()) == flag); Map::UpdateCodeCache(stub_holder_map, lookup->name(), code); return code; } Handle LoadIC::GetMapIndependentHandler(LookupIterator* lookup) { Handle receiver = lookup->GetReceiver(); if (receiver->IsString() && Name::Equals(isolate()->factory()->length_string(), lookup->name())) { FieldIndex index = FieldIndex::ForInObjectOffset(String::kLengthOffset); return SimpleFieldLoad(index); } if (receiver->IsStringWrapper() && Name::Equals(isolate()->factory()->length_string(), lookup->name())) { TRACE_HANDLER_STATS(isolate(), LoadIC_StringLengthStub); StringLengthStub string_length_stub(isolate()); return string_length_stub.GetCode(); } // Use specialized code for getting prototype of functions. if (receiver->IsJSFunction() && Name::Equals(isolate()->factory()->prototype_string(), lookup->name()) && receiver->IsConstructor() && !Handle::cast(receiver) ->map() ->has_non_instance_prototype()) { Handle stub; TRACE_HANDLER_STATS(isolate(), LoadIC_FunctionPrototypeStub); FunctionPrototypeStub function_prototype_stub(isolate()); return function_prototype_stub.GetCode(); } Handle map = receiver_map(); Handle holder = lookup->GetHolder(); bool receiver_is_holder = receiver.is_identical_to(holder); switch (lookup->state()) { case LookupIterator::INTERCEPTOR: break; // Custom-compiled handler. case LookupIterator::ACCESSOR: { // Use simple field loads for some well-known callback properties. // The method will only return true for absolute truths based on the // receiver maps. int object_offset; if (Accessors::IsJSObjectFieldAccessor(map, lookup->name(), &object_offset)) { FieldIndex index = FieldIndex::ForInObjectOffset(object_offset, *map); return SimpleFieldLoad(index); } if (IsCompatibleReceiver(lookup, map)) { Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorPair()) { if (!holder->HasFastProperties()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } // When debugging we need to go the slow path to flood the accessor. if (GetSharedFunctionInfo()->HasDebugInfo()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->getter()) == nullptr) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } // Ruled out by IsCompatibleReceiver() above. DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, map)); if (!holder->HasFastProperties()) return slow_stub(); if (receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadApiGetterStub); int index = lookup->GetAccessorIndex(); LoadApiGetterStub stub(isolate(), true, index); return stub.GetCode(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } } TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (kind() != Code::LOAD_IC && kind() != Code::LOAD_GLOBAL_IC) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } // There is only one shared stub for loading normalized // properties. It does not traverse the prototype chain, so the // property must be found in the object for the stub to be // applicable. if (!receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } TRACE_HANDLER_STATS(isolate(), LoadIC_LoadNormal); return isolate()->builtins()->LoadIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { FieldIndex field = lookup->GetFieldIndex(); if (receiver_is_holder) { return SimpleFieldLoad(field); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); if (receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadConstantStub); LoadConstantStub stub(isolate(), lookup->GetConstantIndex()); return stub.GetCode(); } break; // Custom-compiled handler. } case LookupIterator::INTEGER_INDEXED_EXOTIC: TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); } return Handle::null(); } Handle LoadIC::CompileHandler(LookupIterator* lookup, Handle unused, CacheHolderFlag cache_holder) { Handle holder = lookup->GetHolder(); #ifdef DEBUG // Only used by DCHECKs below. Handle receiver = lookup->GetReceiver(); bool receiver_is_holder = receiver.is_identical_to(holder); #endif // Non-map-specific handler stubs have already been selected. DCHECK(!receiver->IsString() || !Name::Equals(isolate()->factory()->length_string(), lookup->name())); DCHECK(!receiver->IsStringWrapper() || !Name::Equals(isolate()->factory()->length_string(), lookup->name())); DCHECK(!( receiver->IsJSFunction() && Name::Equals(isolate()->factory()->prototype_string(), lookup->name()) && receiver->IsConstructor() && !Handle::cast(receiver) ->map() ->has_non_instance_prototype())); Handle map = receiver_map(); switch (lookup->state()) { case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->getter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadInterceptor); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); // Perform a lookup behind the interceptor. Copy the LookupIterator since // the original iterator will be used to fetch the value. LookupIterator it = *lookup; it.Next(); LookupForRead(&it); return compiler.CompileLoadInterceptor(&it); } case LookupIterator::ACCESSOR: { #ifdef DEBUG int object_offset; DCHECK(!Accessors::IsJSObjectFieldAccessor(map, lookup->name(), &object_offset)); #endif DCHECK(IsCompatibleReceiver(lookup, map)); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorPair()) { DCHECK(holder->HasFastProperties()); DCHECK(!GetSharedFunctionInfo()->HasDebugInfo()); Handle getter(Handle::cast(accessors)->getter(), isolate()); CallOptimization call_optimization(getter); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); if (call_optimization.is_simple_api_call()) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadCallback); int index = lookup->GetAccessorIndex(); Handle code = compiler.CompileLoadCallback( lookup->name(), call_optimization, index); return code; } TRACE_HANDLER_STATS(isolate(), LoadIC_LoadViaGetter); int expected_arguments = Handle::cast(getter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileLoadViaGetter( lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } else { DCHECK(accessors->IsAccessorInfo()); Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->getter()) != nullptr); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, map)); DCHECK(holder->HasFastProperties()); DCHECK(!receiver_is_holder); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadCallback); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle code = compiler.CompileLoadCallback(lookup->name(), info); return code; } UNREACHABLE(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC); DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadGlobal); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle cell = lookup->GetPropertyCell(); Handle code = compiler.CompileLoadGlobal( cell, lookup->name(), lookup->IsConfigurable()); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { FieldIndex field = lookup->GetFieldIndex(); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadField); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadField(lookup->name(), field); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadConstant); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadConstant(lookup->name(), lookup->GetConstantIndex()); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } static Handle TryConvertKey(Handle key, Isolate* isolate) { // This helper implements a few common fast cases for converting // non-smi keys of keyed loads/stores to a smi or a string. if (key->IsHeapNumber()) { double value = Handle::cast(key)->value(); if (std::isnan(value)) { key = isolate->factory()->nan_string(); } else { int int_value = FastD2I(value); if (value == int_value && Smi::IsValid(int_value)) { key = handle(Smi::FromInt(int_value), isolate); } } } else if (key->IsUndefined(isolate)) { key = isolate->factory()->undefined_string(); } return key; } void KeyedLoadIC::UpdateLoadElement(Handle receiver) { Handle receiver_map(receiver->map(), isolate()); DCHECK(receiver_map->instance_type() != JS_VALUE_TYPE && receiver_map->instance_type() != JS_PROXY_TYPE); // Checked by caller. MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { Handle map = target_receiver_maps.at(i); if (map.is_null()) continue; if (map->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSValue"); return; } if (map->instance_type() == JS_PROXY_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSProxy"); return; } } // The first time a receiver is seen that is a transitioned version of the // previous monomorphic receiver type, assume the new ElementsKind is the // monomorphic type. This benefits global arrays that only transition // once, and all call sites accessing them are faster if they remain // monomorphic. If this optimistic assumption is not true, the IC will // miss again and it will become polymorphic and support both the // untransitioned and transitioned maps. if (state() == MONOMORPHIC && !receiver->IsString() && IsMoreGeneralElementsKindTransition( target_receiver_maps.at(0)->elements_kind(), Handle::cast(receiver)->GetElementsKind())) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } DCHECK(state() != GENERIC); // Determine the list of receiver maps that this call site has seen, // adding the map that was just encountered. if (!AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map)) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the generic stub. TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the generic // version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "max polymorph exceeded"); return; } CodeHandleList handlers(target_receiver_maps.length()); TRACE_HANDLER_STATS(isolate(), KeyedLoadIC_PolymorphicElement); ElementHandlerCompiler compiler(isolate()); compiler.CompileElementHandlers(&target_receiver_maps, &handlers); ConfigureVectorState(Handle(), &target_receiver_maps, &handlers); } MaybeHandle KeyedLoadIC::Load(Handle object, Handle key) { if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } Handle load_handle; // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION(isolate(), load_handle, LoadIC::Load(object, Handle::cast(key)), Object); } else if (FLAG_use_ic && !object->IsAccessCheckNeeded() && !object->IsJSValue()) { if (object->IsJSObject() || (object->IsString() && key->IsNumber())) { Handle receiver = Handle::cast(object); if (object->IsString() || key->IsSmi()) UpdateLoadElement(receiver); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "set generic"); } TRACE_IC("LoadIC", key); if (!load_handle.is_null()) return load_handle; Handle result; ASSIGN_RETURN_ON_EXCEPTION(isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } bool StoreIC::LookupForWrite(LookupIterator* it, Handle value, JSReceiver::StoreFromKeyed store_mode) { // Disable ICs for non-JSObjects for now. Handle object = it->GetReceiver(); if (!object->IsJSObject()) return false; Handle receiver = Handle::cast(object); DCHECK(!receiver->map()->is_deprecated()); for (; it->IsFound(); it->Next()) { switch (it->state()) { case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); case LookupIterator::JSPROXY: return false; case LookupIterator::INTERCEPTOR: { Handle holder = it->GetHolder(); InterceptorInfo* info = holder->GetNamedInterceptor(); if (it->HolderIsReceiverOrHiddenPrototype()) { return !info->non_masking() && receiver.is_identical_to(holder) && !info->setter()->IsUndefined(it->isolate()); } else if (!info->getter()->IsUndefined(it->isolate()) || !info->query()->IsUndefined(it->isolate())) { return false; } break; } case LookupIterator::ACCESS_CHECK: if (it->GetHolder()->IsAccessCheckNeeded()) return false; break; case LookupIterator::ACCESSOR: return !it->IsReadOnly(); case LookupIterator::INTEGER_INDEXED_EXOTIC: return false; case LookupIterator::DATA: { if (it->IsReadOnly()) return false; Handle holder = it->GetHolder(); if (receiver.is_identical_to(holder)) { it->PrepareForDataProperty(value); // The previous receiver map might just have been deprecated, // so reload it. update_receiver_map(receiver); return true; } // Receiver != holder. if (receiver->IsJSGlobalProxy()) { PrototypeIterator iter(it->isolate(), receiver); return it->GetHolder().is_identical_to( PrototypeIterator::GetCurrent(iter)); } if (it->HolderIsReceiverOrHiddenPrototype()) return false; if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } } } receiver = it->GetStoreTarget(); if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } MaybeHandle StoreIC::Store(Handle object, Handle name, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (object->IsJSGlobalObject() && name->IsString()) { // Look up in script context table. Handle str_name = Handle::cast(name); Handle global = Handle::cast(object); Handle script_contexts( global->native_context()->script_context_table()); ScriptContextTable::LookupResult lookup_result; if (ScriptContextTable::Lookup(script_contexts, str_name, &lookup_result)) { Handle script_context = ScriptContextTable::GetContext( script_contexts, lookup_result.context_index); if (lookup_result.mode == CONST) { return TypeError(MessageTemplate::kConstAssign, object, name); } Handle previous_value = FixedArray::get(*script_context, lookup_result.slot_index, isolate()); if (previous_value->IsTheHole(isolate())) { // Do not install stubs and stay pre-monomorphic for // uninitialized accesses. return ReferenceError(name); } if (FLAG_use_ic && StoreScriptContextFieldStub::Accepted(&lookup_result)) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreScriptContextFieldStub); StoreScriptContextFieldStub stub(isolate(), &lookup_result); PatchCache(name, stub.GetCode()); } script_context->set(lookup_result.slot_index, *value); return value; } } // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object) || object->IsJSProxy()) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Object::SetProperty(object, name, value, language_mode()), Object); return result; } // If the object is undefined or null it's illegal to try to set any // properties on it; throw a TypeError in that case. if (object->IsUndefined(isolate()) || object->IsNull(isolate())) { return TypeError(MessageTemplate::kNonObjectPropertyStore, object, name); } if (state() != UNINITIALIZED) { JSObject::MakePrototypesFast(object, kStartAtPrototype, isolate()); } LookupIterator it(object, name); if (FLAG_use_ic) UpdateCaches(&it, value, store_mode); MAYBE_RETURN_NULL( Object::SetProperty(&it, value, language_mode(), store_mode)); return value; } Handle CallIC::initialize_stub_in_optimized_code( Isolate* isolate, int argc, ConvertReceiverMode mode, TailCallMode tail_call_mode) { CallICStub stub(isolate, CallICState(argc, mode, tail_call_mode)); Handle code = stub.GetCode(); return code; } Handle StoreIC::initialize_stub_in_optimized_code( Isolate* isolate, LanguageMode language_mode) { VectorStoreICStub stub(isolate, StoreICState(language_mode)); return stub.GetCode(); } void StoreIC::UpdateCaches(LookupIterator* lookup, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (state() == UNINITIALIZED) { // This is the first time we execute this inline cache. Set the target to // the pre monomorphic stub to delay setting the monomorphic state. ConfigureVectorState(PREMONOMORPHIC, Handle()); TRACE_IC("StoreIC", lookup->name()); return; } bool use_ic = LookupForWrite(lookup, value, store_mode); if (!use_ic) { TRACE_GENERIC_IC(isolate(), "StoreIC", "LookupForWrite said 'false'"); } Handle code = use_ic ? ComputeHandler(lookup, value) : slow_stub(); PatchCache(lookup->name(), code); TRACE_IC("StoreIC", lookup->name()); } static Handle PropertyCellStoreHandler( Isolate* isolate, Handle receiver, Handle holder, Handle name, Handle cell, PropertyCellType type) { auto constant_type = Nothing(); if (type == PropertyCellType::kConstantType) { constant_type = Just(cell->GetConstantType()); } StoreGlobalStub stub(isolate, type, constant_type, receiver->IsJSGlobalProxy()); auto code = stub.GetCodeCopyFromTemplate(holder, cell); // TODO(verwaest): Move caching of these NORMAL stubs outside as well. HeapObject::UpdateMapCodeCache(receiver, name, code); return code; } Handle StoreIC::GetMapIndependentHandler(LookupIterator* lookup) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { break; // Custom-compiled handler. } // Currently not handled by CompileStoreTransition. if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "transition from slow"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } DCHECK(lookup->IsCacheableTransition()); break; // Custom-compiled handler. } case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->setter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreInterceptorStub); StoreInterceptorStub stub(isolate()); return stub.GetCode(); } case LookupIterator::ACCESSOR: { if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "accessor on slow map"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->setter()) == nullptr) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter == nullptr"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (AccessorInfo::cast(*accessors)->is_special_data_property() && !lookup->HolderIsReceiverOrHiddenPrototype()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "special data property in prototype chain"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (!AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())) { TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver type"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorPair()) { Handle setter(Handle::cast(accessors)->setter(), isolate()); if (!setter->IsJSFunction() && !setter->IsFunctionTemplateInfo()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter not a function"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } CallOptimization call_optimization(setter); if (call_optimization.is_simple_api_call()) { if (call_optimization.IsCompatibleReceiver(receiver, holder)) { break; // Custom-compiled handler. } TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreNormal); DCHECK(holder.is_identical_to(receiver)); return isolate()->builtins()->StoreIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } if (use_stub) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreFieldStub); StoreFieldStub stub(isolate(), lookup->GetFieldIndex(), lookup->representation()); return stub.GetCode(); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); TRACE_GENERIC_IC(isolate(), "StoreIC", "constant property"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } return Handle::null(); } Handle StoreIC::CompileHandler(LookupIterator* lookup, Handle value, CacheHolderFlag cache_holder) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { // TODO(dcarney): this currently just deopts. Use the transition cell. TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobalTransition); auto cell = isolate()->factory()->NewPropertyCell(); cell->set_value(*value); auto code = PropertyCellStoreHandler( isolate(), store_target, Handle::cast(store_target), lookup->name(), cell, PropertyCellType::kConstant); cell->set_value(isolate()->heap()->the_hole_value()); return code; } Handle transition = lookup->transition_map(); // Currently not handled by CompileStoreTransition. DCHECK(holder->HasFastProperties()); DCHECK(lookup->IsCacheableTransition()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreTransition); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreTransition(transition, lookup->name()); } case LookupIterator::INTERCEPTOR: UNREACHABLE(); case LookupIterator::ACCESSOR: { DCHECK(holder->HasFastProperties()); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->setter()) != 0); DCHECK(!AccessorInfo::cast(*accessors)->is_special_data_property() || lookup->HolderIsReceiverOrHiddenPrototype()); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), info, language_mode()); return code; } else { DCHECK(accessors->IsAccessorPair()); Handle setter(Handle::cast(accessors)->setter(), isolate()); DCHECK(setter->IsJSFunction() || setter->IsFunctionTemplateInfo()); CallOptimization call_optimization(setter); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); if (call_optimization.is_simple_api_call()) { DCHECK(call_optimization.IsCompatibleReceiver(receiver, holder)); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), call_optimization, lookup->GetAccessorIndex()); return code; } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreViaSetter); int expected_arguments = JSFunction::cast(*setter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileStoreViaSetter(receiver, lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobal); DCHECK(holder.is_identical_to(receiver) || receiver->map()->prototype() == *holder); auto cell = lookup->GetPropertyCell(); auto updated_type = PropertyCell::UpdatedType(cell, value, lookup->property_details()); auto code = PropertyCellStoreHandler( isolate(), receiver, Handle::cast(holder), lookup->name(), cell, updated_type); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { #ifdef DEBUG bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } DCHECK(!use_stub); #endif TRACE_HANDLER_STATS(isolate(), StoreIC_StoreField); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreField(lookup); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); UNREACHABLE(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } void KeyedStoreIC::UpdateStoreElement(Handle receiver_map, KeyedAccessStoreMode store_mode) { MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle monomorphic_map = ComputeTransitionedMap(receiver_map, store_mode); store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(monomorphic_map, store_mode); return ConfigureVectorState(Handle(), monomorphic_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { if (!target_receiver_maps.at(i).is_null() && target_receiver_maps.at(i)->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "JSValue"); return; } } // There are several special cases where an IC that is MONOMORPHIC can still // transition to a different GetNonTransitioningStoreMode IC that handles a // superset of the original IC. Handle those here if the receiver map hasn't // changed or it has transitioned to a more general kind. KeyedAccessStoreMode old_store_mode = GetKeyedAccessStoreMode(); Handle previous_receiver_map = target_receiver_maps.at(0); if (state() == MONOMORPHIC) { Handle transitioned_receiver_map = receiver_map; if (IsTransitionStoreMode(store_mode)) { transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); } if ((receiver_map.is_identical_to(previous_receiver_map) && IsTransitionStoreMode(store_mode)) || IsTransitionOfMonomorphicTarget(*previous_receiver_map, *transitioned_receiver_map)) { // If the "old" and "new" maps are in the same elements map family, or // if they at least come from the same origin for a transitioning store, // stay MONOMORPHIC and use the map for the most generic ElementsKind. store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler( transitioned_receiver_map, store_mode); ConfigureVectorState(Handle(), transitioned_receiver_map, handler); return; } if (receiver_map.is_identical_to(previous_receiver_map) && old_store_mode == STANDARD_STORE && (store_mode == STORE_AND_GROW_NO_TRANSITION || store_mode == STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS || store_mode == STORE_NO_TRANSITION_HANDLE_COW)) { // A "normal" IC that handles stores can switch to a version that can // grow at the end of the array, handle OOB accesses or copy COW arrays // and still stay MONOMORPHIC. Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(receiver_map, store_mode); return ConfigureVectorState(Handle(), receiver_map, handler); } } DCHECK(state() != GENERIC); bool map_added = AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map); if (IsTransitionStoreMode(store_mode)) { Handle transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); map_added |= AddOneReceiverMapIfMissing(&target_receiver_maps, transitioned_receiver_map); } if (!map_added) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the megamorphic stub which can handle everything. TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the // megamorphic version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) return; // Make sure all polymorphic handlers have the same store mode, otherwise the // megamorphic stub must be used. store_mode = GetNonTransitioningStoreMode(store_mode); if (old_store_mode != STANDARD_STORE) { if (store_mode == STANDARD_STORE) { store_mode = old_store_mode; } else if (store_mode != old_store_mode) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "store mode mismatch"); return; } } // If the store mode isn't the standard mode, make sure that all polymorphic // receivers are either external arrays, or all "normal" arrays. Otherwise, // use the megamorphic stub. if (store_mode != STANDARD_STORE) { int external_arrays = 0; for (int i = 0; i < target_receiver_maps.length(); ++i) { if (target_receiver_maps[i]->has_fixed_typed_array_elements()) { external_arrays++; } } if (external_arrays != 0 && external_arrays != target_receiver_maps.length()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unsupported combination of external and normal arrays"); return; } } TRACE_HANDLER_STATS(isolate(), KeyedStoreIC_Polymorphic); MapHandleList transitioned_maps(target_receiver_maps.length()); CodeHandleList handlers(target_receiver_maps.length()); PropertyICCompiler::ComputeKeyedStorePolymorphicHandlers( &target_receiver_maps, &transitioned_maps, &handlers, store_mode); ConfigureVectorState(&target_receiver_maps, &transitioned_maps, &handlers); } Handle KeyedStoreIC::ComputeTransitionedMap( Handle map, KeyedAccessStoreMode store_mode) { switch (store_mode) { case STORE_TRANSITION_TO_OBJECT: case STORE_AND_GROW_TRANSITION_TO_OBJECT: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_ELEMENTS : FAST_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_TRANSITION_TO_DOUBLE: case STORE_AND_GROW_TRANSITION_TO_DOUBLE: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_DOUBLE_ELEMENTS : FAST_DOUBLE_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS: DCHECK(map->has_fixed_typed_array_elements()); // Fall through case STORE_NO_TRANSITION_HANDLE_COW: case STANDARD_STORE: case STORE_AND_GROW_NO_TRANSITION: return map; } UNREACHABLE(); return MaybeHandle().ToHandleChecked(); } bool IsOutOfBoundsAccess(Handle receiver, uint32_t index) { uint32_t length = 0; if (receiver->IsJSArray()) { JSArray::cast(*receiver)->length()->ToArrayLength(&length); } else { length = static_cast(receiver->elements()->length()); } return index >= length; } static KeyedAccessStoreMode GetStoreMode(Handle receiver, uint32_t index, Handle value) { bool oob_access = IsOutOfBoundsAccess(receiver, index); // Don't consider this a growing store if the store would send the receiver to // dictionary mode. bool allow_growth = receiver->IsJSArray() && oob_access && !receiver->WouldConvertToSlowElements(index); if (allow_growth) { // Handle growing array in stub if necessary. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_DOUBLE; } if (value->IsHeapObject()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } return STORE_AND_GROW_NO_TRANSITION; } else { // Handle only in-bounds elements accesses. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_TRANSITION_TO_DOUBLE; } else if (value->IsHeapObject()) { return STORE_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_TRANSITION_TO_OBJECT; } } if (!FLAG_trace_external_array_abuse && receiver->map()->has_fixed_typed_array_elements() && oob_access) { return STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS; } Heap* heap = receiver->GetHeap(); if (receiver->elements()->map() == heap->fixed_cow_array_map()) { return STORE_NO_TRANSITION_HANDLE_COW; } else { return STANDARD_STORE; } } } MaybeHandle KeyedStoreIC::Store(Handle object, Handle key, Handle value) { // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); return result; } // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); Handle store_handle; uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION( isolate(), store_handle, StoreIC::Store(object, Handle::cast(key), value, JSReceiver::MAY_BE_STORE_FROM_KEYED), Object); if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unhandled internalized string key"); TRACE_IC("StoreIC", key); } return store_handle; } bool use_ic = FLAG_use_ic && !object->IsStringWrapper() && !object->IsAccessCheckNeeded() && !object->IsJSGlobalProxy(); if (use_ic && !object->IsSmi()) { // Don't use ICs for maps of the objects in Array's prototype chain. We // expect to be able to trap element sets to objects with those maps in // the runtime to enable optimization of element hole access. Handle heap_object = Handle::cast(object); if (heap_object->map()->IsMapInArrayPrototypeChain()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "map in array prototype"); use_ic = false; } } Handle old_receiver_map; bool sloppy_arguments_elements = false; bool key_is_valid_index = false; KeyedAccessStoreMode store_mode = STANDARD_STORE; if (use_ic && object->IsJSObject()) { Handle receiver = Handle::cast(object); old_receiver_map = handle(receiver->map(), isolate()); sloppy_arguments_elements = !is_sloppy(language_mode()) && receiver->elements()->map() == isolate()->heap()->sloppy_arguments_elements_map(); if (!sloppy_arguments_elements) { key_is_valid_index = key->IsSmi() && Smi::cast(*key)->value() >= 0; if (key_is_valid_index) { uint32_t index = static_cast(Smi::cast(*key)->value()); store_mode = GetStoreMode(receiver, index, value); } } } DCHECK(store_handle.is_null()); ASSIGN_RETURN_ON_EXCEPTION(isolate(), store_handle, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); if (use_ic) { if (!old_receiver_map.is_null()) { if (sloppy_arguments_elements) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "arguments receiver"); } else if (key_is_valid_index) { // We should go generic if receiver isn't a dictionary, but our // prototype chain does have dictionary elements. This ensures that // other non-dictionary receivers in the polymorphic case benefit // from fast path keyed stores. if (!old_receiver_map->DictionaryElementsInPrototypeChainOnly()) { UpdateStoreElement(old_receiver_map, store_mode); } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "dictionary or proxy prototype"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-smi-like key"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-JSObject receiver"); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "set generic"); } TRACE_IC("StoreIC", key); return store_handle; } void CallIC::HandleMiss(Handle function) { Handle name = isolate()->factory()->empty_string(); CallICNexus* nexus = casted_nexus(); Object* feedback = nexus->GetFeedback(); // Hand-coded MISS handling is easier if CallIC slots don't contain smis. DCHECK(!feedback->IsSmi()); if (feedback->IsWeakCell() || !function->IsJSFunction() || feedback->IsAllocationSite()) { // We are going generic. nexus->ConfigureMegamorphic(); } else { DCHECK(feedback == *TypeFeedbackVector::UninitializedSentinel(isolate())); Handle js_function = Handle::cast(function); Handle array_function = Handle(isolate()->native_context()->array_function()); if (array_function.is_identical_to(js_function)) { // Alter the slot. nexus->ConfigureMonomorphicArray(); } else if (js_function->context()->native_context() != *isolate()->native_context()) { // Don't collect cross-native context feedback for the CallIC. // TODO(bmeurer): We should collect the SharedFunctionInfo as // feedback in this case instead. nexus->ConfigureMegamorphic(); } else { nexus->ConfigureMonomorphic(js_function); } } if (function->IsJSFunction()) { Handle
code = GetMapIndependentHandler(lookup); if (!code.is_null()) return code; // Otherwise check the map's handler cache for a map-specific handler, and // compile one if the cache comes up empty. bool receiver_is_holder = lookup->GetReceiver().is_identical_to(lookup->GetHolder()); CacheHolderFlag flag; Handle stub_holder_map; if (kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC || kind() == Code::KEYED_LOAD_IC) { stub_holder_map = IC::GetHandlerCacheHolder( receiver_map(), receiver_is_holder, isolate(), &flag); } else { DCHECK(kind() == Code::STORE_IC || kind() == Code::KEYED_STORE_IC); // Store handlers cannot be cached on prototypes. flag = kCacheOnReceiver; stub_holder_map = receiver_map(); } code = PropertyHandlerCompiler::Find(lookup->name(), stub_holder_map, kind(), flag); // Use the cached value if it exists, and if it is different from the // handler that just missed. if (!code.is_null()) { Handle handler; if (maybe_handler_.ToHandle(&handler)) { if (!handler.is_identical_to(code)) { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } else { // maybe_handler_ is only populated for MONOMORPHIC and POLYMORPHIC ICs. // In MEGAMORPHIC case, check if the handler in the megamorphic stub // cache (which just missed) is different from the cached handler. if (state() == MEGAMORPHIC && lookup->GetReceiver()->IsHeapObject()) { Map* map = Handle::cast(lookup->GetReceiver())->map(); Code* megamorphic_cached_code = isolate()->stub_cache()->Get(*lookup->name(), map, code->flags()); if (megamorphic_cached_code != *code) { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } else { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } } code = CompileHandler(lookup, value, flag); DCHECK(code->is_handler()); DCHECK(Code::ExtractCacheHolderFromFlags(code->flags()) == flag); Map::UpdateCodeCache(stub_holder_map, lookup->name(), code); return code; } Handle LoadIC::GetMapIndependentHandler(LookupIterator* lookup) { Handle receiver = lookup->GetReceiver(); if (receiver->IsString() && Name::Equals(isolate()->factory()->length_string(), lookup->name())) { FieldIndex index = FieldIndex::ForInObjectOffset(String::kLengthOffset); return SimpleFieldLoad(index); } if (receiver->IsStringWrapper() && Name::Equals(isolate()->factory()->length_string(), lookup->name())) { TRACE_HANDLER_STATS(isolate(), LoadIC_StringLengthStub); StringLengthStub string_length_stub(isolate()); return string_length_stub.GetCode(); } // Use specialized code for getting prototype of functions. if (receiver->IsJSFunction() && Name::Equals(isolate()->factory()->prototype_string(), lookup->name()) && receiver->IsConstructor() && !Handle::cast(receiver) ->map() ->has_non_instance_prototype()) { Handle stub; TRACE_HANDLER_STATS(isolate(), LoadIC_FunctionPrototypeStub); FunctionPrototypeStub function_prototype_stub(isolate()); return function_prototype_stub.GetCode(); } Handle map = receiver_map(); Handle holder = lookup->GetHolder(); bool receiver_is_holder = receiver.is_identical_to(holder); switch (lookup->state()) { case LookupIterator::INTERCEPTOR: break; // Custom-compiled handler. case LookupIterator::ACCESSOR: { // Use simple field loads for some well-known callback properties. // The method will only return true for absolute truths based on the // receiver maps. int object_offset; if (Accessors::IsJSObjectFieldAccessor(map, lookup->name(), &object_offset)) { FieldIndex index = FieldIndex::ForInObjectOffset(object_offset, *map); return SimpleFieldLoad(index); } if (IsCompatibleReceiver(lookup, map)) { Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorPair()) { if (!holder->HasFastProperties()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } // When debugging we need to go the slow path to flood the accessor. if (GetSharedFunctionInfo()->HasDebugInfo()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->getter()) == nullptr) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } // Ruled out by IsCompatibleReceiver() above. DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, map)); if (!holder->HasFastProperties()) return slow_stub(); if (receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadApiGetterStub); int index = lookup->GetAccessorIndex(); LoadApiGetterStub stub(isolate(), true, index); return stub.GetCode(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } } TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (kind() != Code::LOAD_IC && kind() != Code::LOAD_GLOBAL_IC) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } // There is only one shared stub for loading normalized // properties. It does not traverse the prototype chain, so the // property must be found in the object for the stub to be // applicable. if (!receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } TRACE_HANDLER_STATS(isolate(), LoadIC_LoadNormal); return isolate()->builtins()->LoadIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { FieldIndex field = lookup->GetFieldIndex(); if (receiver_is_holder) { return SimpleFieldLoad(field); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); if (receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadConstantStub); LoadConstantStub stub(isolate(), lookup->GetConstantIndex()); return stub.GetCode(); } break; // Custom-compiled handler. } case LookupIterator::INTEGER_INDEXED_EXOTIC: TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); } return Handle::null(); } Handle LoadIC::CompileHandler(LookupIterator* lookup, Handle unused, CacheHolderFlag cache_holder) { Handle holder = lookup->GetHolder(); #ifdef DEBUG // Only used by DCHECKs below. Handle receiver = lookup->GetReceiver(); bool receiver_is_holder = receiver.is_identical_to(holder); #endif // Non-map-specific handler stubs have already been selected. DCHECK(!receiver->IsString() || !Name::Equals(isolate()->factory()->length_string(), lookup->name())); DCHECK(!receiver->IsStringWrapper() || !Name::Equals(isolate()->factory()->length_string(), lookup->name())); DCHECK(!( receiver->IsJSFunction() && Name::Equals(isolate()->factory()->prototype_string(), lookup->name()) && receiver->IsConstructor() && !Handle::cast(receiver) ->map() ->has_non_instance_prototype())); Handle map = receiver_map(); switch (lookup->state()) { case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->getter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadInterceptor); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); // Perform a lookup behind the interceptor. Copy the LookupIterator since // the original iterator will be used to fetch the value. LookupIterator it = *lookup; it.Next(); LookupForRead(&it); return compiler.CompileLoadInterceptor(&it); } case LookupIterator::ACCESSOR: { #ifdef DEBUG int object_offset; DCHECK(!Accessors::IsJSObjectFieldAccessor(map, lookup->name(), &object_offset)); #endif DCHECK(IsCompatibleReceiver(lookup, map)); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorPair()) { DCHECK(holder->HasFastProperties()); DCHECK(!GetSharedFunctionInfo()->HasDebugInfo()); Handle getter(Handle::cast(accessors)->getter(), isolate()); CallOptimization call_optimization(getter); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); if (call_optimization.is_simple_api_call()) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadCallback); int index = lookup->GetAccessorIndex(); Handle code = compiler.CompileLoadCallback( lookup->name(), call_optimization, index); return code; } TRACE_HANDLER_STATS(isolate(), LoadIC_LoadViaGetter); int expected_arguments = Handle::cast(getter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileLoadViaGetter( lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } else { DCHECK(accessors->IsAccessorInfo()); Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->getter()) != nullptr); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, map)); DCHECK(holder->HasFastProperties()); DCHECK(!receiver_is_holder); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadCallback); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle code = compiler.CompileLoadCallback(lookup->name(), info); return code; } UNREACHABLE(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC); DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadGlobal); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle cell = lookup->GetPropertyCell(); Handle code = compiler.CompileLoadGlobal( cell, lookup->name(), lookup->IsConfigurable()); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { FieldIndex field = lookup->GetFieldIndex(); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadField); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadField(lookup->name(), field); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadConstant); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadConstant(lookup->name(), lookup->GetConstantIndex()); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } static Handle TryConvertKey(Handle key, Isolate* isolate) { // This helper implements a few common fast cases for converting // non-smi keys of keyed loads/stores to a smi or a string. if (key->IsHeapNumber()) { double value = Handle::cast(key)->value(); if (std::isnan(value)) { key = isolate->factory()->nan_string(); } else { int int_value = FastD2I(value); if (value == int_value && Smi::IsValid(int_value)) { key = handle(Smi::FromInt(int_value), isolate); } } } else if (key->IsUndefined(isolate)) { key = isolate->factory()->undefined_string(); } return key; } void KeyedLoadIC::UpdateLoadElement(Handle receiver) { Handle receiver_map(receiver->map(), isolate()); DCHECK(receiver_map->instance_type() != JS_VALUE_TYPE && receiver_map->instance_type() != JS_PROXY_TYPE); // Checked by caller. MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { Handle map = target_receiver_maps.at(i); if (map.is_null()) continue; if (map->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSValue"); return; } if (map->instance_type() == JS_PROXY_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSProxy"); return; } } // The first time a receiver is seen that is a transitioned version of the // previous monomorphic receiver type, assume the new ElementsKind is the // monomorphic type. This benefits global arrays that only transition // once, and all call sites accessing them are faster if they remain // monomorphic. If this optimistic assumption is not true, the IC will // miss again and it will become polymorphic and support both the // untransitioned and transitioned maps. if (state() == MONOMORPHIC && !receiver->IsString() && IsMoreGeneralElementsKindTransition( target_receiver_maps.at(0)->elements_kind(), Handle::cast(receiver)->GetElementsKind())) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } DCHECK(state() != GENERIC); // Determine the list of receiver maps that this call site has seen, // adding the map that was just encountered. if (!AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map)) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the generic stub. TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the generic // version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "max polymorph exceeded"); return; } CodeHandleList handlers(target_receiver_maps.length()); TRACE_HANDLER_STATS(isolate(), KeyedLoadIC_PolymorphicElement); ElementHandlerCompiler compiler(isolate()); compiler.CompileElementHandlers(&target_receiver_maps, &handlers); ConfigureVectorState(Handle(), &target_receiver_maps, &handlers); } MaybeHandle KeyedLoadIC::Load(Handle object, Handle key) { if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } Handle load_handle; // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION(isolate(), load_handle, LoadIC::Load(object, Handle::cast(key)), Object); } else if (FLAG_use_ic && !object->IsAccessCheckNeeded() && !object->IsJSValue()) { if (object->IsJSObject() || (object->IsString() && key->IsNumber())) { Handle receiver = Handle::cast(object); if (object->IsString() || key->IsSmi()) UpdateLoadElement(receiver); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "set generic"); } TRACE_IC("LoadIC", key); if (!load_handle.is_null()) return load_handle; Handle result; ASSIGN_RETURN_ON_EXCEPTION(isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } bool StoreIC::LookupForWrite(LookupIterator* it, Handle value, JSReceiver::StoreFromKeyed store_mode) { // Disable ICs for non-JSObjects for now. Handle object = it->GetReceiver(); if (!object->IsJSObject()) return false; Handle receiver = Handle::cast(object); DCHECK(!receiver->map()->is_deprecated()); for (; it->IsFound(); it->Next()) { switch (it->state()) { case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); case LookupIterator::JSPROXY: return false; case LookupIterator::INTERCEPTOR: { Handle holder = it->GetHolder(); InterceptorInfo* info = holder->GetNamedInterceptor(); if (it->HolderIsReceiverOrHiddenPrototype()) { return !info->non_masking() && receiver.is_identical_to(holder) && !info->setter()->IsUndefined(it->isolate()); } else if (!info->getter()->IsUndefined(it->isolate()) || !info->query()->IsUndefined(it->isolate())) { return false; } break; } case LookupIterator::ACCESS_CHECK: if (it->GetHolder()->IsAccessCheckNeeded()) return false; break; case LookupIterator::ACCESSOR: return !it->IsReadOnly(); case LookupIterator::INTEGER_INDEXED_EXOTIC: return false; case LookupIterator::DATA: { if (it->IsReadOnly()) return false; Handle holder = it->GetHolder(); if (receiver.is_identical_to(holder)) { it->PrepareForDataProperty(value); // The previous receiver map might just have been deprecated, // so reload it. update_receiver_map(receiver); return true; } // Receiver != holder. if (receiver->IsJSGlobalProxy()) { PrototypeIterator iter(it->isolate(), receiver); return it->GetHolder().is_identical_to( PrototypeIterator::GetCurrent(iter)); } if (it->HolderIsReceiverOrHiddenPrototype()) return false; if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } } } receiver = it->GetStoreTarget(); if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } MaybeHandle StoreIC::Store(Handle object, Handle name, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (object->IsJSGlobalObject() && name->IsString()) { // Look up in script context table. Handle str_name = Handle::cast(name); Handle global = Handle::cast(object); Handle script_contexts( global->native_context()->script_context_table()); ScriptContextTable::LookupResult lookup_result; if (ScriptContextTable::Lookup(script_contexts, str_name, &lookup_result)) { Handle script_context = ScriptContextTable::GetContext( script_contexts, lookup_result.context_index); if (lookup_result.mode == CONST) { return TypeError(MessageTemplate::kConstAssign, object, name); } Handle previous_value = FixedArray::get(*script_context, lookup_result.slot_index, isolate()); if (previous_value->IsTheHole(isolate())) { // Do not install stubs and stay pre-monomorphic for // uninitialized accesses. return ReferenceError(name); } if (FLAG_use_ic && StoreScriptContextFieldStub::Accepted(&lookup_result)) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreScriptContextFieldStub); StoreScriptContextFieldStub stub(isolate(), &lookup_result); PatchCache(name, stub.GetCode()); } script_context->set(lookup_result.slot_index, *value); return value; } } // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object) || object->IsJSProxy()) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Object::SetProperty(object, name, value, language_mode()), Object); return result; } // If the object is undefined or null it's illegal to try to set any // properties on it; throw a TypeError in that case. if (object->IsUndefined(isolate()) || object->IsNull(isolate())) { return TypeError(MessageTemplate::kNonObjectPropertyStore, object, name); } if (state() != UNINITIALIZED) { JSObject::MakePrototypesFast(object, kStartAtPrototype, isolate()); } LookupIterator it(object, name); if (FLAG_use_ic) UpdateCaches(&it, value, store_mode); MAYBE_RETURN_NULL( Object::SetProperty(&it, value, language_mode(), store_mode)); return value; } Handle CallIC::initialize_stub_in_optimized_code( Isolate* isolate, int argc, ConvertReceiverMode mode, TailCallMode tail_call_mode) { CallICStub stub(isolate, CallICState(argc, mode, tail_call_mode)); Handle code = stub.GetCode(); return code; } Handle StoreIC::initialize_stub_in_optimized_code( Isolate* isolate, LanguageMode language_mode) { VectorStoreICStub stub(isolate, StoreICState(language_mode)); return stub.GetCode(); } void StoreIC::UpdateCaches(LookupIterator* lookup, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (state() == UNINITIALIZED) { // This is the first time we execute this inline cache. Set the target to // the pre monomorphic stub to delay setting the monomorphic state. ConfigureVectorState(PREMONOMORPHIC, Handle()); TRACE_IC("StoreIC", lookup->name()); return; } bool use_ic = LookupForWrite(lookup, value, store_mode); if (!use_ic) { TRACE_GENERIC_IC(isolate(), "StoreIC", "LookupForWrite said 'false'"); } Handle code = use_ic ? ComputeHandler(lookup, value) : slow_stub(); PatchCache(lookup->name(), code); TRACE_IC("StoreIC", lookup->name()); } static Handle PropertyCellStoreHandler( Isolate* isolate, Handle receiver, Handle holder, Handle name, Handle cell, PropertyCellType type) { auto constant_type = Nothing(); if (type == PropertyCellType::kConstantType) { constant_type = Just(cell->GetConstantType()); } StoreGlobalStub stub(isolate, type, constant_type, receiver->IsJSGlobalProxy()); auto code = stub.GetCodeCopyFromTemplate(holder, cell); // TODO(verwaest): Move caching of these NORMAL stubs outside as well. HeapObject::UpdateMapCodeCache(receiver, name, code); return code; } Handle StoreIC::GetMapIndependentHandler(LookupIterator* lookup) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { break; // Custom-compiled handler. } // Currently not handled by CompileStoreTransition. if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "transition from slow"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } DCHECK(lookup->IsCacheableTransition()); break; // Custom-compiled handler. } case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->setter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreInterceptorStub); StoreInterceptorStub stub(isolate()); return stub.GetCode(); } case LookupIterator::ACCESSOR: { if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "accessor on slow map"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->setter()) == nullptr) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter == nullptr"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (AccessorInfo::cast(*accessors)->is_special_data_property() && !lookup->HolderIsReceiverOrHiddenPrototype()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "special data property in prototype chain"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (!AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())) { TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver type"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorPair()) { Handle setter(Handle::cast(accessors)->setter(), isolate()); if (!setter->IsJSFunction() && !setter->IsFunctionTemplateInfo()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter not a function"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } CallOptimization call_optimization(setter); if (call_optimization.is_simple_api_call()) { if (call_optimization.IsCompatibleReceiver(receiver, holder)) { break; // Custom-compiled handler. } TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreNormal); DCHECK(holder.is_identical_to(receiver)); return isolate()->builtins()->StoreIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } if (use_stub) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreFieldStub); StoreFieldStub stub(isolate(), lookup->GetFieldIndex(), lookup->representation()); return stub.GetCode(); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); TRACE_GENERIC_IC(isolate(), "StoreIC", "constant property"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } return Handle::null(); } Handle StoreIC::CompileHandler(LookupIterator* lookup, Handle value, CacheHolderFlag cache_holder) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { // TODO(dcarney): this currently just deopts. Use the transition cell. TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobalTransition); auto cell = isolate()->factory()->NewPropertyCell(); cell->set_value(*value); auto code = PropertyCellStoreHandler( isolate(), store_target, Handle::cast(store_target), lookup->name(), cell, PropertyCellType::kConstant); cell->set_value(isolate()->heap()->the_hole_value()); return code; } Handle transition = lookup->transition_map(); // Currently not handled by CompileStoreTransition. DCHECK(holder->HasFastProperties()); DCHECK(lookup->IsCacheableTransition()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreTransition); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreTransition(transition, lookup->name()); } case LookupIterator::INTERCEPTOR: UNREACHABLE(); case LookupIterator::ACCESSOR: { DCHECK(holder->HasFastProperties()); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->setter()) != 0); DCHECK(!AccessorInfo::cast(*accessors)->is_special_data_property() || lookup->HolderIsReceiverOrHiddenPrototype()); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), info, language_mode()); return code; } else { DCHECK(accessors->IsAccessorPair()); Handle setter(Handle::cast(accessors)->setter(), isolate()); DCHECK(setter->IsJSFunction() || setter->IsFunctionTemplateInfo()); CallOptimization call_optimization(setter); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); if (call_optimization.is_simple_api_call()) { DCHECK(call_optimization.IsCompatibleReceiver(receiver, holder)); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), call_optimization, lookup->GetAccessorIndex()); return code; } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreViaSetter); int expected_arguments = JSFunction::cast(*setter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileStoreViaSetter(receiver, lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobal); DCHECK(holder.is_identical_to(receiver) || receiver->map()->prototype() == *holder); auto cell = lookup->GetPropertyCell(); auto updated_type = PropertyCell::UpdatedType(cell, value, lookup->property_details()); auto code = PropertyCellStoreHandler( isolate(), receiver, Handle::cast(holder), lookup->name(), cell, updated_type); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { #ifdef DEBUG bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } DCHECK(!use_stub); #endif TRACE_HANDLER_STATS(isolate(), StoreIC_StoreField); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreField(lookup); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); UNREACHABLE(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } void KeyedStoreIC::UpdateStoreElement(Handle receiver_map, KeyedAccessStoreMode store_mode) { MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle monomorphic_map = ComputeTransitionedMap(receiver_map, store_mode); store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(monomorphic_map, store_mode); return ConfigureVectorState(Handle(), monomorphic_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { if (!target_receiver_maps.at(i).is_null() && target_receiver_maps.at(i)->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "JSValue"); return; } } // There are several special cases where an IC that is MONOMORPHIC can still // transition to a different GetNonTransitioningStoreMode IC that handles a // superset of the original IC. Handle those here if the receiver map hasn't // changed or it has transitioned to a more general kind. KeyedAccessStoreMode old_store_mode = GetKeyedAccessStoreMode(); Handle previous_receiver_map = target_receiver_maps.at(0); if (state() == MONOMORPHIC) { Handle transitioned_receiver_map = receiver_map; if (IsTransitionStoreMode(store_mode)) { transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); } if ((receiver_map.is_identical_to(previous_receiver_map) && IsTransitionStoreMode(store_mode)) || IsTransitionOfMonomorphicTarget(*previous_receiver_map, *transitioned_receiver_map)) { // If the "old" and "new" maps are in the same elements map family, or // if they at least come from the same origin for a transitioning store, // stay MONOMORPHIC and use the map for the most generic ElementsKind. store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler( transitioned_receiver_map, store_mode); ConfigureVectorState(Handle(), transitioned_receiver_map, handler); return; } if (receiver_map.is_identical_to(previous_receiver_map) && old_store_mode == STANDARD_STORE && (store_mode == STORE_AND_GROW_NO_TRANSITION || store_mode == STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS || store_mode == STORE_NO_TRANSITION_HANDLE_COW)) { // A "normal" IC that handles stores can switch to a version that can // grow at the end of the array, handle OOB accesses or copy COW arrays // and still stay MONOMORPHIC. Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(receiver_map, store_mode); return ConfigureVectorState(Handle(), receiver_map, handler); } } DCHECK(state() != GENERIC); bool map_added = AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map); if (IsTransitionStoreMode(store_mode)) { Handle transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); map_added |= AddOneReceiverMapIfMissing(&target_receiver_maps, transitioned_receiver_map); } if (!map_added) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the megamorphic stub which can handle everything. TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the // megamorphic version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) return; // Make sure all polymorphic handlers have the same store mode, otherwise the // megamorphic stub must be used. store_mode = GetNonTransitioningStoreMode(store_mode); if (old_store_mode != STANDARD_STORE) { if (store_mode == STANDARD_STORE) { store_mode = old_store_mode; } else if (store_mode != old_store_mode) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "store mode mismatch"); return; } } // If the store mode isn't the standard mode, make sure that all polymorphic // receivers are either external arrays, or all "normal" arrays. Otherwise, // use the megamorphic stub. if (store_mode != STANDARD_STORE) { int external_arrays = 0; for (int i = 0; i < target_receiver_maps.length(); ++i) { if (target_receiver_maps[i]->has_fixed_typed_array_elements()) { external_arrays++; } } if (external_arrays != 0 && external_arrays != target_receiver_maps.length()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unsupported combination of external and normal arrays"); return; } } TRACE_HANDLER_STATS(isolate(), KeyedStoreIC_Polymorphic); MapHandleList transitioned_maps(target_receiver_maps.length()); CodeHandleList handlers(target_receiver_maps.length()); PropertyICCompiler::ComputeKeyedStorePolymorphicHandlers( &target_receiver_maps, &transitioned_maps, &handlers, store_mode); ConfigureVectorState(&target_receiver_maps, &transitioned_maps, &handlers); } Handle KeyedStoreIC::ComputeTransitionedMap( Handle map, KeyedAccessStoreMode store_mode) { switch (store_mode) { case STORE_TRANSITION_TO_OBJECT: case STORE_AND_GROW_TRANSITION_TO_OBJECT: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_ELEMENTS : FAST_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_TRANSITION_TO_DOUBLE: case STORE_AND_GROW_TRANSITION_TO_DOUBLE: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_DOUBLE_ELEMENTS : FAST_DOUBLE_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS: DCHECK(map->has_fixed_typed_array_elements()); // Fall through case STORE_NO_TRANSITION_HANDLE_COW: case STANDARD_STORE: case STORE_AND_GROW_NO_TRANSITION: return map; } UNREACHABLE(); return MaybeHandle().ToHandleChecked(); } bool IsOutOfBoundsAccess(Handle receiver, uint32_t index) { uint32_t length = 0; if (receiver->IsJSArray()) { JSArray::cast(*receiver)->length()->ToArrayLength(&length); } else { length = static_cast(receiver->elements()->length()); } return index >= length; } static KeyedAccessStoreMode GetStoreMode(Handle receiver, uint32_t index, Handle value) { bool oob_access = IsOutOfBoundsAccess(receiver, index); // Don't consider this a growing store if the store would send the receiver to // dictionary mode. bool allow_growth = receiver->IsJSArray() && oob_access && !receiver->WouldConvertToSlowElements(index); if (allow_growth) { // Handle growing array in stub if necessary. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_DOUBLE; } if (value->IsHeapObject()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } return STORE_AND_GROW_NO_TRANSITION; } else { // Handle only in-bounds elements accesses. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_TRANSITION_TO_DOUBLE; } else if (value->IsHeapObject()) { return STORE_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_TRANSITION_TO_OBJECT; } } if (!FLAG_trace_external_array_abuse && receiver->map()->has_fixed_typed_array_elements() && oob_access) { return STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS; } Heap* heap = receiver->GetHeap(); if (receiver->elements()->map() == heap->fixed_cow_array_map()) { return STORE_NO_TRANSITION_HANDLE_COW; } else { return STANDARD_STORE; } } } MaybeHandle KeyedStoreIC::Store(Handle object, Handle key, Handle value) { // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); return result; } // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); Handle store_handle; uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION( isolate(), store_handle, StoreIC::Store(object, Handle::cast(key), value, JSReceiver::MAY_BE_STORE_FROM_KEYED), Object); if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unhandled internalized string key"); TRACE_IC("StoreIC", key); } return store_handle; } bool use_ic = FLAG_use_ic && !object->IsStringWrapper() && !object->IsAccessCheckNeeded() && !object->IsJSGlobalProxy(); if (use_ic && !object->IsSmi()) { // Don't use ICs for maps of the objects in Array's prototype chain. We // expect to be able to trap element sets to objects with those maps in // the runtime to enable optimization of element hole access. Handle heap_object = Handle::cast(object); if (heap_object->map()->IsMapInArrayPrototypeChain()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "map in array prototype"); use_ic = false; } } Handle old_receiver_map; bool sloppy_arguments_elements = false; bool key_is_valid_index = false; KeyedAccessStoreMode store_mode = STANDARD_STORE; if (use_ic && object->IsJSObject()) { Handle receiver = Handle::cast(object); old_receiver_map = handle(receiver->map(), isolate()); sloppy_arguments_elements = !is_sloppy(language_mode()) && receiver->elements()->map() == isolate()->heap()->sloppy_arguments_elements_map(); if (!sloppy_arguments_elements) { key_is_valid_index = key->IsSmi() && Smi::cast(*key)->value() >= 0; if (key_is_valid_index) { uint32_t index = static_cast(Smi::cast(*key)->value()); store_mode = GetStoreMode(receiver, index, value); } } } DCHECK(store_handle.is_null()); ASSIGN_RETURN_ON_EXCEPTION(isolate(), store_handle, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); if (use_ic) { if (!old_receiver_map.is_null()) { if (sloppy_arguments_elements) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "arguments receiver"); } else if (key_is_valid_index) { // We should go generic if receiver isn't a dictionary, but our // prototype chain does have dictionary elements. This ensures that // other non-dictionary receivers in the polymorphic case benefit // from fast path keyed stores. if (!old_receiver_map->DictionaryElementsInPrototypeChainOnly()) { UpdateStoreElement(old_receiver_map, store_mode); } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "dictionary or proxy prototype"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-smi-like key"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-JSObject receiver"); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "set generic"); } TRACE_IC("StoreIC", key); return store_handle; } void CallIC::HandleMiss(Handle function) { Handle name = isolate()->factory()->empty_string(); CallICNexus* nexus = casted_nexus(); Object* feedback = nexus->GetFeedback(); // Hand-coded MISS handling is easier if CallIC slots don't contain smis. DCHECK(!feedback->IsSmi()); if (feedback->IsWeakCell() || !function->IsJSFunction() || feedback->IsAllocationSite()) { // We are going generic. nexus->ConfigureMegamorphic(); } else { DCHECK(feedback == *TypeFeedbackVector::UninitializedSentinel(isolate())); Handle js_function = Handle::cast(function); Handle array_function = Handle(isolate()->native_context()->array_function()); if (array_function.is_identical_to(js_function)) { // Alter the slot. nexus->ConfigureMonomorphicArray(); } else if (js_function->context()->native_context() != *isolate()->native_context()) { // Don't collect cross-native context feedback for the CallIC. // TODO(bmeurer): We should collect the SharedFunctionInfo as // feedback in this case instead. nexus->ConfigureMegamorphic(); } else { nexus->ConfigureMonomorphic(js_function); } } if (function->IsJSFunction()) { Handle
handler; if (maybe_handler_.ToHandle(&handler)) { if (!handler.is_identical_to(code)) { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } else { // maybe_handler_ is only populated for MONOMORPHIC and POLYMORPHIC ICs. // In MEGAMORPHIC case, check if the handler in the megamorphic stub // cache (which just missed) is different from the cached handler. if (state() == MEGAMORPHIC && lookup->GetReceiver()->IsHeapObject()) { Map* map = Handle::cast(lookup->GetReceiver())->map(); Code* megamorphic_cached_code = isolate()->stub_cache()->Get(*lookup->name(), map, code->flags()); if (megamorphic_cached_code != *code) { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } else { TRACE_HANDLER_STATS(isolate(), IC_HandlerCacheHit); return code; } } } code = CompileHandler(lookup, value, flag); DCHECK(code->is_handler()); DCHECK(Code::ExtractCacheHolderFromFlags(code->flags()) == flag); Map::UpdateCodeCache(stub_holder_map, lookup->name(), code); return code; } Handle LoadIC::GetMapIndependentHandler(LookupIterator* lookup) { Handle receiver = lookup->GetReceiver(); if (receiver->IsString() && Name::Equals(isolate()->factory()->length_string(), lookup->name())) { FieldIndex index = FieldIndex::ForInObjectOffset(String::kLengthOffset); return SimpleFieldLoad(index); } if (receiver->IsStringWrapper() && Name::Equals(isolate()->factory()->length_string(), lookup->name())) { TRACE_HANDLER_STATS(isolate(), LoadIC_StringLengthStub); StringLengthStub string_length_stub(isolate()); return string_length_stub.GetCode(); } // Use specialized code for getting prototype of functions. if (receiver->IsJSFunction() && Name::Equals(isolate()->factory()->prototype_string(), lookup->name()) && receiver->IsConstructor() && !Handle::cast(receiver) ->map() ->has_non_instance_prototype()) { Handle stub; TRACE_HANDLER_STATS(isolate(), LoadIC_FunctionPrototypeStub); FunctionPrototypeStub function_prototype_stub(isolate()); return function_prototype_stub.GetCode(); } Handle map = receiver_map(); Handle holder = lookup->GetHolder(); bool receiver_is_holder = receiver.is_identical_to(holder); switch (lookup->state()) { case LookupIterator::INTERCEPTOR: break; // Custom-compiled handler. case LookupIterator::ACCESSOR: { // Use simple field loads for some well-known callback properties. // The method will only return true for absolute truths based on the // receiver maps. int object_offset; if (Accessors::IsJSObjectFieldAccessor(map, lookup->name(), &object_offset)) { FieldIndex index = FieldIndex::ForInObjectOffset(object_offset, *map); return SimpleFieldLoad(index); } if (IsCompatibleReceiver(lookup, map)) { Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorPair()) { if (!holder->HasFastProperties()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } // When debugging we need to go the slow path to flood the accessor. if (GetSharedFunctionInfo()->HasDebugInfo()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->getter()) == nullptr) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } // Ruled out by IsCompatibleReceiver() above. DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, map)); if (!holder->HasFastProperties()) return slow_stub(); if (receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadApiGetterStub); int index = lookup->GetAccessorIndex(); LoadApiGetterStub stub(isolate(), true, index); return stub.GetCode(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } } TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (kind() != Code::LOAD_IC && kind() != Code::LOAD_GLOBAL_IC) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } // There is only one shared stub for loading normalized // properties. It does not traverse the prototype chain, so the // property must be found in the object for the stub to be // applicable. if (!receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } TRACE_HANDLER_STATS(isolate(), LoadIC_LoadNormal); return isolate()->builtins()->LoadIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { FieldIndex field = lookup->GetFieldIndex(); if (receiver_is_holder) { return SimpleFieldLoad(field); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); if (receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadConstantStub); LoadConstantStub stub(isolate(), lookup->GetConstantIndex()); return stub.GetCode(); } break; // Custom-compiled handler. } case LookupIterator::INTEGER_INDEXED_EXOTIC: TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); } return Handle::null(); } Handle LoadIC::CompileHandler(LookupIterator* lookup, Handle unused, CacheHolderFlag cache_holder) { Handle holder = lookup->GetHolder(); #ifdef DEBUG // Only used by DCHECKs below. Handle receiver = lookup->GetReceiver(); bool receiver_is_holder = receiver.is_identical_to(holder); #endif // Non-map-specific handler stubs have already been selected. DCHECK(!receiver->IsString() || !Name::Equals(isolate()->factory()->length_string(), lookup->name())); DCHECK(!receiver->IsStringWrapper() || !Name::Equals(isolate()->factory()->length_string(), lookup->name())); DCHECK(!( receiver->IsJSFunction() && Name::Equals(isolate()->factory()->prototype_string(), lookup->name()) && receiver->IsConstructor() && !Handle::cast(receiver) ->map() ->has_non_instance_prototype())); Handle map = receiver_map(); switch (lookup->state()) { case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->getter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadInterceptor); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); // Perform a lookup behind the interceptor. Copy the LookupIterator since // the original iterator will be used to fetch the value. LookupIterator it = *lookup; it.Next(); LookupForRead(&it); return compiler.CompileLoadInterceptor(&it); } case LookupIterator::ACCESSOR: { #ifdef DEBUG int object_offset; DCHECK(!Accessors::IsJSObjectFieldAccessor(map, lookup->name(), &object_offset)); #endif DCHECK(IsCompatibleReceiver(lookup, map)); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorPair()) { DCHECK(holder->HasFastProperties()); DCHECK(!GetSharedFunctionInfo()->HasDebugInfo()); Handle getter(Handle::cast(accessors)->getter(), isolate()); CallOptimization call_optimization(getter); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); if (call_optimization.is_simple_api_call()) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadCallback); int index = lookup->GetAccessorIndex(); Handle code = compiler.CompileLoadCallback( lookup->name(), call_optimization, index); return code; } TRACE_HANDLER_STATS(isolate(), LoadIC_LoadViaGetter); int expected_arguments = Handle::cast(getter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileLoadViaGetter( lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } else { DCHECK(accessors->IsAccessorInfo()); Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->getter()) != nullptr); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, map)); DCHECK(holder->HasFastProperties()); DCHECK(!receiver_is_holder); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadCallback); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle code = compiler.CompileLoadCallback(lookup->name(), info); return code; } UNREACHABLE(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC); DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadGlobal); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle cell = lookup->GetPropertyCell(); Handle code = compiler.CompileLoadGlobal( cell, lookup->name(), lookup->IsConfigurable()); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { FieldIndex field = lookup->GetFieldIndex(); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadField); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadField(lookup->name(), field); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadConstant); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadConstant(lookup->name(), lookup->GetConstantIndex()); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } static Handle TryConvertKey(Handle key, Isolate* isolate) { // This helper implements a few common fast cases for converting // non-smi keys of keyed loads/stores to a smi or a string. if (key->IsHeapNumber()) { double value = Handle::cast(key)->value(); if (std::isnan(value)) { key = isolate->factory()->nan_string(); } else { int int_value = FastD2I(value); if (value == int_value && Smi::IsValid(int_value)) { key = handle(Smi::FromInt(int_value), isolate); } } } else if (key->IsUndefined(isolate)) { key = isolate->factory()->undefined_string(); } return key; } void KeyedLoadIC::UpdateLoadElement(Handle receiver) { Handle receiver_map(receiver->map(), isolate()); DCHECK(receiver_map->instance_type() != JS_VALUE_TYPE && receiver_map->instance_type() != JS_PROXY_TYPE); // Checked by caller. MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { Handle map = target_receiver_maps.at(i); if (map.is_null()) continue; if (map->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSValue"); return; } if (map->instance_type() == JS_PROXY_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSProxy"); return; } } // The first time a receiver is seen that is a transitioned version of the // previous monomorphic receiver type, assume the new ElementsKind is the // monomorphic type. This benefits global arrays that only transition // once, and all call sites accessing them are faster if they remain // monomorphic. If this optimistic assumption is not true, the IC will // miss again and it will become polymorphic and support both the // untransitioned and transitioned maps. if (state() == MONOMORPHIC && !receiver->IsString() && IsMoreGeneralElementsKindTransition( target_receiver_maps.at(0)->elements_kind(), Handle::cast(receiver)->GetElementsKind())) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } DCHECK(state() != GENERIC); // Determine the list of receiver maps that this call site has seen, // adding the map that was just encountered. if (!AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map)) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the generic stub. TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the generic // version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "max polymorph exceeded"); return; } CodeHandleList handlers(target_receiver_maps.length()); TRACE_HANDLER_STATS(isolate(), KeyedLoadIC_PolymorphicElement); ElementHandlerCompiler compiler(isolate()); compiler.CompileElementHandlers(&target_receiver_maps, &handlers); ConfigureVectorState(Handle(), &target_receiver_maps, &handlers); } MaybeHandle KeyedLoadIC::Load(Handle object, Handle key) { if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } Handle load_handle; // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION(isolate(), load_handle, LoadIC::Load(object, Handle::cast(key)), Object); } else if (FLAG_use_ic && !object->IsAccessCheckNeeded() && !object->IsJSValue()) { if (object->IsJSObject() || (object->IsString() && key->IsNumber())) { Handle receiver = Handle::cast(object); if (object->IsString() || key->IsSmi()) UpdateLoadElement(receiver); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "set generic"); } TRACE_IC("LoadIC", key); if (!load_handle.is_null()) return load_handle; Handle result; ASSIGN_RETURN_ON_EXCEPTION(isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } bool StoreIC::LookupForWrite(LookupIterator* it, Handle value, JSReceiver::StoreFromKeyed store_mode) { // Disable ICs for non-JSObjects for now. Handle object = it->GetReceiver(); if (!object->IsJSObject()) return false; Handle receiver = Handle::cast(object); DCHECK(!receiver->map()->is_deprecated()); for (; it->IsFound(); it->Next()) { switch (it->state()) { case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); case LookupIterator::JSPROXY: return false; case LookupIterator::INTERCEPTOR: { Handle holder = it->GetHolder(); InterceptorInfo* info = holder->GetNamedInterceptor(); if (it->HolderIsReceiverOrHiddenPrototype()) { return !info->non_masking() && receiver.is_identical_to(holder) && !info->setter()->IsUndefined(it->isolate()); } else if (!info->getter()->IsUndefined(it->isolate()) || !info->query()->IsUndefined(it->isolate())) { return false; } break; } case LookupIterator::ACCESS_CHECK: if (it->GetHolder()->IsAccessCheckNeeded()) return false; break; case LookupIterator::ACCESSOR: return !it->IsReadOnly(); case LookupIterator::INTEGER_INDEXED_EXOTIC: return false; case LookupIterator::DATA: { if (it->IsReadOnly()) return false; Handle holder = it->GetHolder(); if (receiver.is_identical_to(holder)) { it->PrepareForDataProperty(value); // The previous receiver map might just have been deprecated, // so reload it. update_receiver_map(receiver); return true; } // Receiver != holder. if (receiver->IsJSGlobalProxy()) { PrototypeIterator iter(it->isolate(), receiver); return it->GetHolder().is_identical_to( PrototypeIterator::GetCurrent(iter)); } if (it->HolderIsReceiverOrHiddenPrototype()) return false; if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } } } receiver = it->GetStoreTarget(); if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } MaybeHandle StoreIC::Store(Handle object, Handle name, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (object->IsJSGlobalObject() && name->IsString()) { // Look up in script context table. Handle str_name = Handle::cast(name); Handle global = Handle::cast(object); Handle script_contexts( global->native_context()->script_context_table()); ScriptContextTable::LookupResult lookup_result; if (ScriptContextTable::Lookup(script_contexts, str_name, &lookup_result)) { Handle script_context = ScriptContextTable::GetContext( script_contexts, lookup_result.context_index); if (lookup_result.mode == CONST) { return TypeError(MessageTemplate::kConstAssign, object, name); } Handle previous_value = FixedArray::get(*script_context, lookup_result.slot_index, isolate()); if (previous_value->IsTheHole(isolate())) { // Do not install stubs and stay pre-monomorphic for // uninitialized accesses. return ReferenceError(name); } if (FLAG_use_ic && StoreScriptContextFieldStub::Accepted(&lookup_result)) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreScriptContextFieldStub); StoreScriptContextFieldStub stub(isolate(), &lookup_result); PatchCache(name, stub.GetCode()); } script_context->set(lookup_result.slot_index, *value); return value; } } // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object) || object->IsJSProxy()) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Object::SetProperty(object, name, value, language_mode()), Object); return result; } // If the object is undefined or null it's illegal to try to set any // properties on it; throw a TypeError in that case. if (object->IsUndefined(isolate()) || object->IsNull(isolate())) { return TypeError(MessageTemplate::kNonObjectPropertyStore, object, name); } if (state() != UNINITIALIZED) { JSObject::MakePrototypesFast(object, kStartAtPrototype, isolate()); } LookupIterator it(object, name); if (FLAG_use_ic) UpdateCaches(&it, value, store_mode); MAYBE_RETURN_NULL( Object::SetProperty(&it, value, language_mode(), store_mode)); return value; } Handle CallIC::initialize_stub_in_optimized_code( Isolate* isolate, int argc, ConvertReceiverMode mode, TailCallMode tail_call_mode) { CallICStub stub(isolate, CallICState(argc, mode, tail_call_mode)); Handle code = stub.GetCode(); return code; } Handle StoreIC::initialize_stub_in_optimized_code( Isolate* isolate, LanguageMode language_mode) { VectorStoreICStub stub(isolate, StoreICState(language_mode)); return stub.GetCode(); } void StoreIC::UpdateCaches(LookupIterator* lookup, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (state() == UNINITIALIZED) { // This is the first time we execute this inline cache. Set the target to // the pre monomorphic stub to delay setting the monomorphic state. ConfigureVectorState(PREMONOMORPHIC, Handle()); TRACE_IC("StoreIC", lookup->name()); return; } bool use_ic = LookupForWrite(lookup, value, store_mode); if (!use_ic) { TRACE_GENERIC_IC(isolate(), "StoreIC", "LookupForWrite said 'false'"); } Handle code = use_ic ? ComputeHandler(lookup, value) : slow_stub(); PatchCache(lookup->name(), code); TRACE_IC("StoreIC", lookup->name()); } static Handle PropertyCellStoreHandler( Isolate* isolate, Handle receiver, Handle holder, Handle name, Handle cell, PropertyCellType type) { auto constant_type = Nothing(); if (type == PropertyCellType::kConstantType) { constant_type = Just(cell->GetConstantType()); } StoreGlobalStub stub(isolate, type, constant_type, receiver->IsJSGlobalProxy()); auto code = stub.GetCodeCopyFromTemplate(holder, cell); // TODO(verwaest): Move caching of these NORMAL stubs outside as well. HeapObject::UpdateMapCodeCache(receiver, name, code); return code; } Handle StoreIC::GetMapIndependentHandler(LookupIterator* lookup) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { break; // Custom-compiled handler. } // Currently not handled by CompileStoreTransition. if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "transition from slow"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } DCHECK(lookup->IsCacheableTransition()); break; // Custom-compiled handler. } case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->setter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreInterceptorStub); StoreInterceptorStub stub(isolate()); return stub.GetCode(); } case LookupIterator::ACCESSOR: { if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "accessor on slow map"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->setter()) == nullptr) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter == nullptr"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (AccessorInfo::cast(*accessors)->is_special_data_property() && !lookup->HolderIsReceiverOrHiddenPrototype()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "special data property in prototype chain"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (!AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())) { TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver type"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorPair()) { Handle setter(Handle::cast(accessors)->setter(), isolate()); if (!setter->IsJSFunction() && !setter->IsFunctionTemplateInfo()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter not a function"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } CallOptimization call_optimization(setter); if (call_optimization.is_simple_api_call()) { if (call_optimization.IsCompatibleReceiver(receiver, holder)) { break; // Custom-compiled handler. } TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreNormal); DCHECK(holder.is_identical_to(receiver)); return isolate()->builtins()->StoreIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } if (use_stub) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreFieldStub); StoreFieldStub stub(isolate(), lookup->GetFieldIndex(), lookup->representation()); return stub.GetCode(); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); TRACE_GENERIC_IC(isolate(), "StoreIC", "constant property"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } return Handle::null(); } Handle StoreIC::CompileHandler(LookupIterator* lookup, Handle value, CacheHolderFlag cache_holder) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { // TODO(dcarney): this currently just deopts. Use the transition cell. TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobalTransition); auto cell = isolate()->factory()->NewPropertyCell(); cell->set_value(*value); auto code = PropertyCellStoreHandler( isolate(), store_target, Handle::cast(store_target), lookup->name(), cell, PropertyCellType::kConstant); cell->set_value(isolate()->heap()->the_hole_value()); return code; } Handle transition = lookup->transition_map(); // Currently not handled by CompileStoreTransition. DCHECK(holder->HasFastProperties()); DCHECK(lookup->IsCacheableTransition()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreTransition); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreTransition(transition, lookup->name()); } case LookupIterator::INTERCEPTOR: UNREACHABLE(); case LookupIterator::ACCESSOR: { DCHECK(holder->HasFastProperties()); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->setter()) != 0); DCHECK(!AccessorInfo::cast(*accessors)->is_special_data_property() || lookup->HolderIsReceiverOrHiddenPrototype()); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), info, language_mode()); return code; } else { DCHECK(accessors->IsAccessorPair()); Handle setter(Handle::cast(accessors)->setter(), isolate()); DCHECK(setter->IsJSFunction() || setter->IsFunctionTemplateInfo()); CallOptimization call_optimization(setter); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); if (call_optimization.is_simple_api_call()) { DCHECK(call_optimization.IsCompatibleReceiver(receiver, holder)); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), call_optimization, lookup->GetAccessorIndex()); return code; } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreViaSetter); int expected_arguments = JSFunction::cast(*setter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileStoreViaSetter(receiver, lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobal); DCHECK(holder.is_identical_to(receiver) || receiver->map()->prototype() == *holder); auto cell = lookup->GetPropertyCell(); auto updated_type = PropertyCell::UpdatedType(cell, value, lookup->property_details()); auto code = PropertyCellStoreHandler( isolate(), receiver, Handle::cast(holder), lookup->name(), cell, updated_type); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { #ifdef DEBUG bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } DCHECK(!use_stub); #endif TRACE_HANDLER_STATS(isolate(), StoreIC_StoreField); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreField(lookup); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); UNREACHABLE(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } void KeyedStoreIC::UpdateStoreElement(Handle receiver_map, KeyedAccessStoreMode store_mode) { MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle monomorphic_map = ComputeTransitionedMap(receiver_map, store_mode); store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(monomorphic_map, store_mode); return ConfigureVectorState(Handle(), monomorphic_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { if (!target_receiver_maps.at(i).is_null() && target_receiver_maps.at(i)->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "JSValue"); return; } } // There are several special cases where an IC that is MONOMORPHIC can still // transition to a different GetNonTransitioningStoreMode IC that handles a // superset of the original IC. Handle those here if the receiver map hasn't // changed or it has transitioned to a more general kind. KeyedAccessStoreMode old_store_mode = GetKeyedAccessStoreMode(); Handle previous_receiver_map = target_receiver_maps.at(0); if (state() == MONOMORPHIC) { Handle transitioned_receiver_map = receiver_map; if (IsTransitionStoreMode(store_mode)) { transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); } if ((receiver_map.is_identical_to(previous_receiver_map) && IsTransitionStoreMode(store_mode)) || IsTransitionOfMonomorphicTarget(*previous_receiver_map, *transitioned_receiver_map)) { // If the "old" and "new" maps are in the same elements map family, or // if they at least come from the same origin for a transitioning store, // stay MONOMORPHIC and use the map for the most generic ElementsKind. store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler( transitioned_receiver_map, store_mode); ConfigureVectorState(Handle(), transitioned_receiver_map, handler); return; } if (receiver_map.is_identical_to(previous_receiver_map) && old_store_mode == STANDARD_STORE && (store_mode == STORE_AND_GROW_NO_TRANSITION || store_mode == STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS || store_mode == STORE_NO_TRANSITION_HANDLE_COW)) { // A "normal" IC that handles stores can switch to a version that can // grow at the end of the array, handle OOB accesses or copy COW arrays // and still stay MONOMORPHIC. Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(receiver_map, store_mode); return ConfigureVectorState(Handle(), receiver_map, handler); } } DCHECK(state() != GENERIC); bool map_added = AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map); if (IsTransitionStoreMode(store_mode)) { Handle transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); map_added |= AddOneReceiverMapIfMissing(&target_receiver_maps, transitioned_receiver_map); } if (!map_added) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the megamorphic stub which can handle everything. TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the // megamorphic version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) return; // Make sure all polymorphic handlers have the same store mode, otherwise the // megamorphic stub must be used. store_mode = GetNonTransitioningStoreMode(store_mode); if (old_store_mode != STANDARD_STORE) { if (store_mode == STANDARD_STORE) { store_mode = old_store_mode; } else if (store_mode != old_store_mode) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "store mode mismatch"); return; } } // If the store mode isn't the standard mode, make sure that all polymorphic // receivers are either external arrays, or all "normal" arrays. Otherwise, // use the megamorphic stub. if (store_mode != STANDARD_STORE) { int external_arrays = 0; for (int i = 0; i < target_receiver_maps.length(); ++i) { if (target_receiver_maps[i]->has_fixed_typed_array_elements()) { external_arrays++; } } if (external_arrays != 0 && external_arrays != target_receiver_maps.length()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unsupported combination of external and normal arrays"); return; } } TRACE_HANDLER_STATS(isolate(), KeyedStoreIC_Polymorphic); MapHandleList transitioned_maps(target_receiver_maps.length()); CodeHandleList handlers(target_receiver_maps.length()); PropertyICCompiler::ComputeKeyedStorePolymorphicHandlers( &target_receiver_maps, &transitioned_maps, &handlers, store_mode); ConfigureVectorState(&target_receiver_maps, &transitioned_maps, &handlers); } Handle KeyedStoreIC::ComputeTransitionedMap( Handle map, KeyedAccessStoreMode store_mode) { switch (store_mode) { case STORE_TRANSITION_TO_OBJECT: case STORE_AND_GROW_TRANSITION_TO_OBJECT: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_ELEMENTS : FAST_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_TRANSITION_TO_DOUBLE: case STORE_AND_GROW_TRANSITION_TO_DOUBLE: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_DOUBLE_ELEMENTS : FAST_DOUBLE_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS: DCHECK(map->has_fixed_typed_array_elements()); // Fall through case STORE_NO_TRANSITION_HANDLE_COW: case STANDARD_STORE: case STORE_AND_GROW_NO_TRANSITION: return map; } UNREACHABLE(); return MaybeHandle().ToHandleChecked(); } bool IsOutOfBoundsAccess(Handle receiver, uint32_t index) { uint32_t length = 0; if (receiver->IsJSArray()) { JSArray::cast(*receiver)->length()->ToArrayLength(&length); } else { length = static_cast(receiver->elements()->length()); } return index >= length; } static KeyedAccessStoreMode GetStoreMode(Handle receiver, uint32_t index, Handle value) { bool oob_access = IsOutOfBoundsAccess(receiver, index); // Don't consider this a growing store if the store would send the receiver to // dictionary mode. bool allow_growth = receiver->IsJSArray() && oob_access && !receiver->WouldConvertToSlowElements(index); if (allow_growth) { // Handle growing array in stub if necessary. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_DOUBLE; } if (value->IsHeapObject()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } return STORE_AND_GROW_NO_TRANSITION; } else { // Handle only in-bounds elements accesses. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_TRANSITION_TO_DOUBLE; } else if (value->IsHeapObject()) { return STORE_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_TRANSITION_TO_OBJECT; } } if (!FLAG_trace_external_array_abuse && receiver->map()->has_fixed_typed_array_elements() && oob_access) { return STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS; } Heap* heap = receiver->GetHeap(); if (receiver->elements()->map() == heap->fixed_cow_array_map()) { return STORE_NO_TRANSITION_HANDLE_COW; } else { return STANDARD_STORE; } } } MaybeHandle KeyedStoreIC::Store(Handle object, Handle key, Handle value) { // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); return result; } // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); Handle store_handle; uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION( isolate(), store_handle, StoreIC::Store(object, Handle::cast(key), value, JSReceiver::MAY_BE_STORE_FROM_KEYED), Object); if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unhandled internalized string key"); TRACE_IC("StoreIC", key); } return store_handle; } bool use_ic = FLAG_use_ic && !object->IsStringWrapper() && !object->IsAccessCheckNeeded() && !object->IsJSGlobalProxy(); if (use_ic && !object->IsSmi()) { // Don't use ICs for maps of the objects in Array's prototype chain. We // expect to be able to trap element sets to objects with those maps in // the runtime to enable optimization of element hole access. Handle heap_object = Handle::cast(object); if (heap_object->map()->IsMapInArrayPrototypeChain()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "map in array prototype"); use_ic = false; } } Handle old_receiver_map; bool sloppy_arguments_elements = false; bool key_is_valid_index = false; KeyedAccessStoreMode store_mode = STANDARD_STORE; if (use_ic && object->IsJSObject()) { Handle receiver = Handle::cast(object); old_receiver_map = handle(receiver->map(), isolate()); sloppy_arguments_elements = !is_sloppy(language_mode()) && receiver->elements()->map() == isolate()->heap()->sloppy_arguments_elements_map(); if (!sloppy_arguments_elements) { key_is_valid_index = key->IsSmi() && Smi::cast(*key)->value() >= 0; if (key_is_valid_index) { uint32_t index = static_cast(Smi::cast(*key)->value()); store_mode = GetStoreMode(receiver, index, value); } } } DCHECK(store_handle.is_null()); ASSIGN_RETURN_ON_EXCEPTION(isolate(), store_handle, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); if (use_ic) { if (!old_receiver_map.is_null()) { if (sloppy_arguments_elements) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "arguments receiver"); } else if (key_is_valid_index) { // We should go generic if receiver isn't a dictionary, but our // prototype chain does have dictionary elements. This ensures that // other non-dictionary receivers in the polymorphic case benefit // from fast path keyed stores. if (!old_receiver_map->DictionaryElementsInPrototypeChainOnly()) { UpdateStoreElement(old_receiver_map, store_mode); } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "dictionary or proxy prototype"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-smi-like key"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-JSObject receiver"); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "set generic"); } TRACE_IC("StoreIC", key); return store_handle; } void CallIC::HandleMiss(Handle function) { Handle name = isolate()->factory()->empty_string(); CallICNexus* nexus = casted_nexus(); Object* feedback = nexus->GetFeedback(); // Hand-coded MISS handling is easier if CallIC slots don't contain smis. DCHECK(!feedback->IsSmi()); if (feedback->IsWeakCell() || !function->IsJSFunction() || feedback->IsAllocationSite()) { // We are going generic. nexus->ConfigureMegamorphic(); } else { DCHECK(feedback == *TypeFeedbackVector::UninitializedSentinel(isolate())); Handle js_function = Handle::cast(function); Handle array_function = Handle(isolate()->native_context()->array_function()); if (array_function.is_identical_to(js_function)) { // Alter the slot. nexus->ConfigureMonomorphicArray(); } else if (js_function->context()->native_context() != *isolate()->native_context()) { // Don't collect cross-native context feedback for the CallIC. // TODO(bmeurer): We should collect the SharedFunctionInfo as // feedback in this case instead. nexus->ConfigureMegamorphic(); } else { nexus->ConfigureMonomorphic(js_function); } } if (function->IsJSFunction()) { Handle
LoadIC::GetMapIndependentHandler(LookupIterator* lookup) { Handle receiver = lookup->GetReceiver(); if (receiver->IsString() && Name::Equals(isolate()->factory()->length_string(), lookup->name())) { FieldIndex index = FieldIndex::ForInObjectOffset(String::kLengthOffset); return SimpleFieldLoad(index); } if (receiver->IsStringWrapper() && Name::Equals(isolate()->factory()->length_string(), lookup->name())) { TRACE_HANDLER_STATS(isolate(), LoadIC_StringLengthStub); StringLengthStub string_length_stub(isolate()); return string_length_stub.GetCode(); } // Use specialized code for getting prototype of functions. if (receiver->IsJSFunction() && Name::Equals(isolate()->factory()->prototype_string(), lookup->name()) && receiver->IsConstructor() && !Handle::cast(receiver) ->map() ->has_non_instance_prototype()) { Handle stub; TRACE_HANDLER_STATS(isolate(), LoadIC_FunctionPrototypeStub); FunctionPrototypeStub function_prototype_stub(isolate()); return function_prototype_stub.GetCode(); } Handle map = receiver_map(); Handle holder = lookup->GetHolder(); bool receiver_is_holder = receiver.is_identical_to(holder); switch (lookup->state()) { case LookupIterator::INTERCEPTOR: break; // Custom-compiled handler. case LookupIterator::ACCESSOR: { // Use simple field loads for some well-known callback properties. // The method will only return true for absolute truths based on the // receiver maps. int object_offset; if (Accessors::IsJSObjectFieldAccessor(map, lookup->name(), &object_offset)) { FieldIndex index = FieldIndex::ForInObjectOffset(object_offset, *map); return SimpleFieldLoad(index); } if (IsCompatibleReceiver(lookup, map)) { Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorPair()) { if (!holder->HasFastProperties()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } // When debugging we need to go the slow path to flood the accessor. if (GetSharedFunctionInfo()->HasDebugInfo()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->getter()) == nullptr) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } // Ruled out by IsCompatibleReceiver() above. DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, map)); if (!holder->HasFastProperties()) return slow_stub(); if (receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadApiGetterStub); int index = lookup->GetAccessorIndex(); LoadApiGetterStub stub(isolate(), true, index); return stub.GetCode(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } } TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (kind() != Code::LOAD_IC && kind() != Code::LOAD_GLOBAL_IC) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } // There is only one shared stub for loading normalized // properties. It does not traverse the prototype chain, so the // property must be found in the object for the stub to be // applicable. if (!receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } TRACE_HANDLER_STATS(isolate(), LoadIC_LoadNormal); return isolate()->builtins()->LoadIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { FieldIndex field = lookup->GetFieldIndex(); if (receiver_is_holder) { return SimpleFieldLoad(field); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); if (receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadConstantStub); LoadConstantStub stub(isolate(), lookup->GetConstantIndex()); return stub.GetCode(); } break; // Custom-compiled handler. } case LookupIterator::INTEGER_INDEXED_EXOTIC: TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); } return Handle::null(); } Handle LoadIC::CompileHandler(LookupIterator* lookup, Handle unused, CacheHolderFlag cache_holder) { Handle holder = lookup->GetHolder(); #ifdef DEBUG // Only used by DCHECKs below. Handle receiver = lookup->GetReceiver(); bool receiver_is_holder = receiver.is_identical_to(holder); #endif // Non-map-specific handler stubs have already been selected. DCHECK(!receiver->IsString() || !Name::Equals(isolate()->factory()->length_string(), lookup->name())); DCHECK(!receiver->IsStringWrapper() || !Name::Equals(isolate()->factory()->length_string(), lookup->name())); DCHECK(!( receiver->IsJSFunction() && Name::Equals(isolate()->factory()->prototype_string(), lookup->name()) && receiver->IsConstructor() && !Handle::cast(receiver) ->map() ->has_non_instance_prototype())); Handle map = receiver_map(); switch (lookup->state()) { case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->getter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadInterceptor); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); // Perform a lookup behind the interceptor. Copy the LookupIterator since // the original iterator will be used to fetch the value. LookupIterator it = *lookup; it.Next(); LookupForRead(&it); return compiler.CompileLoadInterceptor(&it); } case LookupIterator::ACCESSOR: { #ifdef DEBUG int object_offset; DCHECK(!Accessors::IsJSObjectFieldAccessor(map, lookup->name(), &object_offset)); #endif DCHECK(IsCompatibleReceiver(lookup, map)); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorPair()) { DCHECK(holder->HasFastProperties()); DCHECK(!GetSharedFunctionInfo()->HasDebugInfo()); Handle getter(Handle::cast(accessors)->getter(), isolate()); CallOptimization call_optimization(getter); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); if (call_optimization.is_simple_api_call()) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadCallback); int index = lookup->GetAccessorIndex(); Handle code = compiler.CompileLoadCallback( lookup->name(), call_optimization, index); return code; } TRACE_HANDLER_STATS(isolate(), LoadIC_LoadViaGetter); int expected_arguments = Handle::cast(getter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileLoadViaGetter( lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } else { DCHECK(accessors->IsAccessorInfo()); Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->getter()) != nullptr); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, map)); DCHECK(holder->HasFastProperties()); DCHECK(!receiver_is_holder); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadCallback); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle code = compiler.CompileLoadCallback(lookup->name(), info); return code; } UNREACHABLE(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC); DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadGlobal); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle cell = lookup->GetPropertyCell(); Handle code = compiler.CompileLoadGlobal( cell, lookup->name(), lookup->IsConfigurable()); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { FieldIndex field = lookup->GetFieldIndex(); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadField); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadField(lookup->name(), field); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadConstant); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadConstant(lookup->name(), lookup->GetConstantIndex()); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } static Handle TryConvertKey(Handle key, Isolate* isolate) { // This helper implements a few common fast cases for converting // non-smi keys of keyed loads/stores to a smi or a string. if (key->IsHeapNumber()) { double value = Handle::cast(key)->value(); if (std::isnan(value)) { key = isolate->factory()->nan_string(); } else { int int_value = FastD2I(value); if (value == int_value && Smi::IsValid(int_value)) { key = handle(Smi::FromInt(int_value), isolate); } } } else if (key->IsUndefined(isolate)) { key = isolate->factory()->undefined_string(); } return key; } void KeyedLoadIC::UpdateLoadElement(Handle receiver) { Handle receiver_map(receiver->map(), isolate()); DCHECK(receiver_map->instance_type() != JS_VALUE_TYPE && receiver_map->instance_type() != JS_PROXY_TYPE); // Checked by caller. MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { Handle map = target_receiver_maps.at(i); if (map.is_null()) continue; if (map->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSValue"); return; } if (map->instance_type() == JS_PROXY_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSProxy"); return; } } // The first time a receiver is seen that is a transitioned version of the // previous monomorphic receiver type, assume the new ElementsKind is the // monomorphic type. This benefits global arrays that only transition // once, and all call sites accessing them are faster if they remain // monomorphic. If this optimistic assumption is not true, the IC will // miss again and it will become polymorphic and support both the // untransitioned and transitioned maps. if (state() == MONOMORPHIC && !receiver->IsString() && IsMoreGeneralElementsKindTransition( target_receiver_maps.at(0)->elements_kind(), Handle::cast(receiver)->GetElementsKind())) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } DCHECK(state() != GENERIC); // Determine the list of receiver maps that this call site has seen, // adding the map that was just encountered. if (!AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map)) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the generic stub. TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the generic // version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "max polymorph exceeded"); return; } CodeHandleList handlers(target_receiver_maps.length()); TRACE_HANDLER_STATS(isolate(), KeyedLoadIC_PolymorphicElement); ElementHandlerCompiler compiler(isolate()); compiler.CompileElementHandlers(&target_receiver_maps, &handlers); ConfigureVectorState(Handle(), &target_receiver_maps, &handlers); } MaybeHandle KeyedLoadIC::Load(Handle object, Handle key) { if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } Handle load_handle; // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION(isolate(), load_handle, LoadIC::Load(object, Handle::cast(key)), Object); } else if (FLAG_use_ic && !object->IsAccessCheckNeeded() && !object->IsJSValue()) { if (object->IsJSObject() || (object->IsString() && key->IsNumber())) { Handle receiver = Handle::cast(object); if (object->IsString() || key->IsSmi()) UpdateLoadElement(receiver); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "set generic"); } TRACE_IC("LoadIC", key); if (!load_handle.is_null()) return load_handle; Handle result; ASSIGN_RETURN_ON_EXCEPTION(isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } bool StoreIC::LookupForWrite(LookupIterator* it, Handle value, JSReceiver::StoreFromKeyed store_mode) { // Disable ICs for non-JSObjects for now. Handle object = it->GetReceiver(); if (!object->IsJSObject()) return false; Handle receiver = Handle::cast(object); DCHECK(!receiver->map()->is_deprecated()); for (; it->IsFound(); it->Next()) { switch (it->state()) { case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); case LookupIterator::JSPROXY: return false; case LookupIterator::INTERCEPTOR: { Handle holder = it->GetHolder(); InterceptorInfo* info = holder->GetNamedInterceptor(); if (it->HolderIsReceiverOrHiddenPrototype()) { return !info->non_masking() && receiver.is_identical_to(holder) && !info->setter()->IsUndefined(it->isolate()); } else if (!info->getter()->IsUndefined(it->isolate()) || !info->query()->IsUndefined(it->isolate())) { return false; } break; } case LookupIterator::ACCESS_CHECK: if (it->GetHolder()->IsAccessCheckNeeded()) return false; break; case LookupIterator::ACCESSOR: return !it->IsReadOnly(); case LookupIterator::INTEGER_INDEXED_EXOTIC: return false; case LookupIterator::DATA: { if (it->IsReadOnly()) return false; Handle holder = it->GetHolder(); if (receiver.is_identical_to(holder)) { it->PrepareForDataProperty(value); // The previous receiver map might just have been deprecated, // so reload it. update_receiver_map(receiver); return true; } // Receiver != holder. if (receiver->IsJSGlobalProxy()) { PrototypeIterator iter(it->isolate(), receiver); return it->GetHolder().is_identical_to( PrototypeIterator::GetCurrent(iter)); } if (it->HolderIsReceiverOrHiddenPrototype()) return false; if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } } } receiver = it->GetStoreTarget(); if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } MaybeHandle StoreIC::Store(Handle object, Handle name, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (object->IsJSGlobalObject() && name->IsString()) { // Look up in script context table. Handle str_name = Handle::cast(name); Handle global = Handle::cast(object); Handle script_contexts( global->native_context()->script_context_table()); ScriptContextTable::LookupResult lookup_result; if (ScriptContextTable::Lookup(script_contexts, str_name, &lookup_result)) { Handle script_context = ScriptContextTable::GetContext( script_contexts, lookup_result.context_index); if (lookup_result.mode == CONST) { return TypeError(MessageTemplate::kConstAssign, object, name); } Handle previous_value = FixedArray::get(*script_context, lookup_result.slot_index, isolate()); if (previous_value->IsTheHole(isolate())) { // Do not install stubs and stay pre-monomorphic for // uninitialized accesses. return ReferenceError(name); } if (FLAG_use_ic && StoreScriptContextFieldStub::Accepted(&lookup_result)) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreScriptContextFieldStub); StoreScriptContextFieldStub stub(isolate(), &lookup_result); PatchCache(name, stub.GetCode()); } script_context->set(lookup_result.slot_index, *value); return value; } } // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object) || object->IsJSProxy()) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Object::SetProperty(object, name, value, language_mode()), Object); return result; } // If the object is undefined or null it's illegal to try to set any // properties on it; throw a TypeError in that case. if (object->IsUndefined(isolate()) || object->IsNull(isolate())) { return TypeError(MessageTemplate::kNonObjectPropertyStore, object, name); } if (state() != UNINITIALIZED) { JSObject::MakePrototypesFast(object, kStartAtPrototype, isolate()); } LookupIterator it(object, name); if (FLAG_use_ic) UpdateCaches(&it, value, store_mode); MAYBE_RETURN_NULL( Object::SetProperty(&it, value, language_mode(), store_mode)); return value; } Handle CallIC::initialize_stub_in_optimized_code( Isolate* isolate, int argc, ConvertReceiverMode mode, TailCallMode tail_call_mode) { CallICStub stub(isolate, CallICState(argc, mode, tail_call_mode)); Handle code = stub.GetCode(); return code; } Handle StoreIC::initialize_stub_in_optimized_code( Isolate* isolate, LanguageMode language_mode) { VectorStoreICStub stub(isolate, StoreICState(language_mode)); return stub.GetCode(); } void StoreIC::UpdateCaches(LookupIterator* lookup, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (state() == UNINITIALIZED) { // This is the first time we execute this inline cache. Set the target to // the pre monomorphic stub to delay setting the monomorphic state. ConfigureVectorState(PREMONOMORPHIC, Handle()); TRACE_IC("StoreIC", lookup->name()); return; } bool use_ic = LookupForWrite(lookup, value, store_mode); if (!use_ic) { TRACE_GENERIC_IC(isolate(), "StoreIC", "LookupForWrite said 'false'"); } Handle code = use_ic ? ComputeHandler(lookup, value) : slow_stub(); PatchCache(lookup->name(), code); TRACE_IC("StoreIC", lookup->name()); } static Handle PropertyCellStoreHandler( Isolate* isolate, Handle receiver, Handle holder, Handle name, Handle cell, PropertyCellType type) { auto constant_type = Nothing(); if (type == PropertyCellType::kConstantType) { constant_type = Just(cell->GetConstantType()); } StoreGlobalStub stub(isolate, type, constant_type, receiver->IsJSGlobalProxy()); auto code = stub.GetCodeCopyFromTemplate(holder, cell); // TODO(verwaest): Move caching of these NORMAL stubs outside as well. HeapObject::UpdateMapCodeCache(receiver, name, code); return code; } Handle StoreIC::GetMapIndependentHandler(LookupIterator* lookup) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { break; // Custom-compiled handler. } // Currently not handled by CompileStoreTransition. if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "transition from slow"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } DCHECK(lookup->IsCacheableTransition()); break; // Custom-compiled handler. } case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->setter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreInterceptorStub); StoreInterceptorStub stub(isolate()); return stub.GetCode(); } case LookupIterator::ACCESSOR: { if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "accessor on slow map"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->setter()) == nullptr) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter == nullptr"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (AccessorInfo::cast(*accessors)->is_special_data_property() && !lookup->HolderIsReceiverOrHiddenPrototype()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "special data property in prototype chain"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (!AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())) { TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver type"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorPair()) { Handle setter(Handle::cast(accessors)->setter(), isolate()); if (!setter->IsJSFunction() && !setter->IsFunctionTemplateInfo()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter not a function"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } CallOptimization call_optimization(setter); if (call_optimization.is_simple_api_call()) { if (call_optimization.IsCompatibleReceiver(receiver, holder)) { break; // Custom-compiled handler. } TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreNormal); DCHECK(holder.is_identical_to(receiver)); return isolate()->builtins()->StoreIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } if (use_stub) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreFieldStub); StoreFieldStub stub(isolate(), lookup->GetFieldIndex(), lookup->representation()); return stub.GetCode(); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); TRACE_GENERIC_IC(isolate(), "StoreIC", "constant property"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } return Handle::null(); } Handle StoreIC::CompileHandler(LookupIterator* lookup, Handle value, CacheHolderFlag cache_holder) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { // TODO(dcarney): this currently just deopts. Use the transition cell. TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobalTransition); auto cell = isolate()->factory()->NewPropertyCell(); cell->set_value(*value); auto code = PropertyCellStoreHandler( isolate(), store_target, Handle::cast(store_target), lookup->name(), cell, PropertyCellType::kConstant); cell->set_value(isolate()->heap()->the_hole_value()); return code; } Handle transition = lookup->transition_map(); // Currently not handled by CompileStoreTransition. DCHECK(holder->HasFastProperties()); DCHECK(lookup->IsCacheableTransition()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreTransition); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreTransition(transition, lookup->name()); } case LookupIterator::INTERCEPTOR: UNREACHABLE(); case LookupIterator::ACCESSOR: { DCHECK(holder->HasFastProperties()); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->setter()) != 0); DCHECK(!AccessorInfo::cast(*accessors)->is_special_data_property() || lookup->HolderIsReceiverOrHiddenPrototype()); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), info, language_mode()); return code; } else { DCHECK(accessors->IsAccessorPair()); Handle setter(Handle::cast(accessors)->setter(), isolate()); DCHECK(setter->IsJSFunction() || setter->IsFunctionTemplateInfo()); CallOptimization call_optimization(setter); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); if (call_optimization.is_simple_api_call()) { DCHECK(call_optimization.IsCompatibleReceiver(receiver, holder)); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), call_optimization, lookup->GetAccessorIndex()); return code; } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreViaSetter); int expected_arguments = JSFunction::cast(*setter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileStoreViaSetter(receiver, lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobal); DCHECK(holder.is_identical_to(receiver) || receiver->map()->prototype() == *holder); auto cell = lookup->GetPropertyCell(); auto updated_type = PropertyCell::UpdatedType(cell, value, lookup->property_details()); auto code = PropertyCellStoreHandler( isolate(), receiver, Handle::cast(holder), lookup->name(), cell, updated_type); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { #ifdef DEBUG bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } DCHECK(!use_stub); #endif TRACE_HANDLER_STATS(isolate(), StoreIC_StoreField); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreField(lookup); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); UNREACHABLE(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } void KeyedStoreIC::UpdateStoreElement(Handle receiver_map, KeyedAccessStoreMode store_mode) { MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle monomorphic_map = ComputeTransitionedMap(receiver_map, store_mode); store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(monomorphic_map, store_mode); return ConfigureVectorState(Handle(), monomorphic_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { if (!target_receiver_maps.at(i).is_null() && target_receiver_maps.at(i)->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "JSValue"); return; } } // There are several special cases where an IC that is MONOMORPHIC can still // transition to a different GetNonTransitioningStoreMode IC that handles a // superset of the original IC. Handle those here if the receiver map hasn't // changed or it has transitioned to a more general kind. KeyedAccessStoreMode old_store_mode = GetKeyedAccessStoreMode(); Handle previous_receiver_map = target_receiver_maps.at(0); if (state() == MONOMORPHIC) { Handle transitioned_receiver_map = receiver_map; if (IsTransitionStoreMode(store_mode)) { transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); } if ((receiver_map.is_identical_to(previous_receiver_map) && IsTransitionStoreMode(store_mode)) || IsTransitionOfMonomorphicTarget(*previous_receiver_map, *transitioned_receiver_map)) { // If the "old" and "new" maps are in the same elements map family, or // if they at least come from the same origin for a transitioning store, // stay MONOMORPHIC and use the map for the most generic ElementsKind. store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler( transitioned_receiver_map, store_mode); ConfigureVectorState(Handle(), transitioned_receiver_map, handler); return; } if (receiver_map.is_identical_to(previous_receiver_map) && old_store_mode == STANDARD_STORE && (store_mode == STORE_AND_GROW_NO_TRANSITION || store_mode == STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS || store_mode == STORE_NO_TRANSITION_HANDLE_COW)) { // A "normal" IC that handles stores can switch to a version that can // grow at the end of the array, handle OOB accesses or copy COW arrays // and still stay MONOMORPHIC. Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(receiver_map, store_mode); return ConfigureVectorState(Handle(), receiver_map, handler); } } DCHECK(state() != GENERIC); bool map_added = AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map); if (IsTransitionStoreMode(store_mode)) { Handle transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); map_added |= AddOneReceiverMapIfMissing(&target_receiver_maps, transitioned_receiver_map); } if (!map_added) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the megamorphic stub which can handle everything. TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the // megamorphic version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) return; // Make sure all polymorphic handlers have the same store mode, otherwise the // megamorphic stub must be used. store_mode = GetNonTransitioningStoreMode(store_mode); if (old_store_mode != STANDARD_STORE) { if (store_mode == STANDARD_STORE) { store_mode = old_store_mode; } else if (store_mode != old_store_mode) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "store mode mismatch"); return; } } // If the store mode isn't the standard mode, make sure that all polymorphic // receivers are either external arrays, or all "normal" arrays. Otherwise, // use the megamorphic stub. if (store_mode != STANDARD_STORE) { int external_arrays = 0; for (int i = 0; i < target_receiver_maps.length(); ++i) { if (target_receiver_maps[i]->has_fixed_typed_array_elements()) { external_arrays++; } } if (external_arrays != 0 && external_arrays != target_receiver_maps.length()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unsupported combination of external and normal arrays"); return; } } TRACE_HANDLER_STATS(isolate(), KeyedStoreIC_Polymorphic); MapHandleList transitioned_maps(target_receiver_maps.length()); CodeHandleList handlers(target_receiver_maps.length()); PropertyICCompiler::ComputeKeyedStorePolymorphicHandlers( &target_receiver_maps, &transitioned_maps, &handlers, store_mode); ConfigureVectorState(&target_receiver_maps, &transitioned_maps, &handlers); } Handle KeyedStoreIC::ComputeTransitionedMap( Handle map, KeyedAccessStoreMode store_mode) { switch (store_mode) { case STORE_TRANSITION_TO_OBJECT: case STORE_AND_GROW_TRANSITION_TO_OBJECT: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_ELEMENTS : FAST_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_TRANSITION_TO_DOUBLE: case STORE_AND_GROW_TRANSITION_TO_DOUBLE: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_DOUBLE_ELEMENTS : FAST_DOUBLE_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS: DCHECK(map->has_fixed_typed_array_elements()); // Fall through case STORE_NO_TRANSITION_HANDLE_COW: case STANDARD_STORE: case STORE_AND_GROW_NO_TRANSITION: return map; } UNREACHABLE(); return MaybeHandle().ToHandleChecked(); } bool IsOutOfBoundsAccess(Handle receiver, uint32_t index) { uint32_t length = 0; if (receiver->IsJSArray()) { JSArray::cast(*receiver)->length()->ToArrayLength(&length); } else { length = static_cast(receiver->elements()->length()); } return index >= length; } static KeyedAccessStoreMode GetStoreMode(Handle receiver, uint32_t index, Handle value) { bool oob_access = IsOutOfBoundsAccess(receiver, index); // Don't consider this a growing store if the store would send the receiver to // dictionary mode. bool allow_growth = receiver->IsJSArray() && oob_access && !receiver->WouldConvertToSlowElements(index); if (allow_growth) { // Handle growing array in stub if necessary. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_DOUBLE; } if (value->IsHeapObject()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } return STORE_AND_GROW_NO_TRANSITION; } else { // Handle only in-bounds elements accesses. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_TRANSITION_TO_DOUBLE; } else if (value->IsHeapObject()) { return STORE_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_TRANSITION_TO_OBJECT; } } if (!FLAG_trace_external_array_abuse && receiver->map()->has_fixed_typed_array_elements() && oob_access) { return STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS; } Heap* heap = receiver->GetHeap(); if (receiver->elements()->map() == heap->fixed_cow_array_map()) { return STORE_NO_TRANSITION_HANDLE_COW; } else { return STANDARD_STORE; } } } MaybeHandle KeyedStoreIC::Store(Handle object, Handle key, Handle value) { // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); return result; } // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); Handle store_handle; uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION( isolate(), store_handle, StoreIC::Store(object, Handle::cast(key), value, JSReceiver::MAY_BE_STORE_FROM_KEYED), Object); if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unhandled internalized string key"); TRACE_IC("StoreIC", key); } return store_handle; } bool use_ic = FLAG_use_ic && !object->IsStringWrapper() && !object->IsAccessCheckNeeded() && !object->IsJSGlobalProxy(); if (use_ic && !object->IsSmi()) { // Don't use ICs for maps of the objects in Array's prototype chain. We // expect to be able to trap element sets to objects with those maps in // the runtime to enable optimization of element hole access. Handle heap_object = Handle::cast(object); if (heap_object->map()->IsMapInArrayPrototypeChain()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "map in array prototype"); use_ic = false; } } Handle old_receiver_map; bool sloppy_arguments_elements = false; bool key_is_valid_index = false; KeyedAccessStoreMode store_mode = STANDARD_STORE; if (use_ic && object->IsJSObject()) { Handle receiver = Handle::cast(object); old_receiver_map = handle(receiver->map(), isolate()); sloppy_arguments_elements = !is_sloppy(language_mode()) && receiver->elements()->map() == isolate()->heap()->sloppy_arguments_elements_map(); if (!sloppy_arguments_elements) { key_is_valid_index = key->IsSmi() && Smi::cast(*key)->value() >= 0; if (key_is_valid_index) { uint32_t index = static_cast(Smi::cast(*key)->value()); store_mode = GetStoreMode(receiver, index, value); } } } DCHECK(store_handle.is_null()); ASSIGN_RETURN_ON_EXCEPTION(isolate(), store_handle, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); if (use_ic) { if (!old_receiver_map.is_null()) { if (sloppy_arguments_elements) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "arguments receiver"); } else if (key_is_valid_index) { // We should go generic if receiver isn't a dictionary, but our // prototype chain does have dictionary elements. This ensures that // other non-dictionary receivers in the polymorphic case benefit // from fast path keyed stores. if (!old_receiver_map->DictionaryElementsInPrototypeChainOnly()) { UpdateStoreElement(old_receiver_map, store_mode); } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "dictionary or proxy prototype"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-smi-like key"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-JSObject receiver"); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "set generic"); } TRACE_IC("StoreIC", key); return store_handle; } void CallIC::HandleMiss(Handle function) { Handle name = isolate()->factory()->empty_string(); CallICNexus* nexus = casted_nexus(); Object* feedback = nexus->GetFeedback(); // Hand-coded MISS handling is easier if CallIC slots don't contain smis. DCHECK(!feedback->IsSmi()); if (feedback->IsWeakCell() || !function->IsJSFunction() || feedback->IsAllocationSite()) { // We are going generic. nexus->ConfigureMegamorphic(); } else { DCHECK(feedback == *TypeFeedbackVector::UninitializedSentinel(isolate())); Handle js_function = Handle::cast(function); Handle array_function = Handle(isolate()->native_context()->array_function()); if (array_function.is_identical_to(js_function)) { // Alter the slot. nexus->ConfigureMonomorphicArray(); } else if (js_function->context()->native_context() != *isolate()->native_context()) { // Don't collect cross-native context feedback for the CallIC. // TODO(bmeurer): We should collect the SharedFunctionInfo as // feedback in this case instead. nexus->ConfigureMegamorphic(); } else { nexus->ConfigureMonomorphic(js_function); } } if (function->IsJSFunction()) { Handle
stub; TRACE_HANDLER_STATS(isolate(), LoadIC_FunctionPrototypeStub); FunctionPrototypeStub function_prototype_stub(isolate()); return function_prototype_stub.GetCode(); } Handle map = receiver_map(); Handle holder = lookup->GetHolder(); bool receiver_is_holder = receiver.is_identical_to(holder); switch (lookup->state()) { case LookupIterator::INTERCEPTOR: break; // Custom-compiled handler. case LookupIterator::ACCESSOR: { // Use simple field loads for some well-known callback properties. // The method will only return true for absolute truths based on the // receiver maps. int object_offset; if (Accessors::IsJSObjectFieldAccessor(map, lookup->name(), &object_offset)) { FieldIndex index = FieldIndex::ForInObjectOffset(object_offset, *map); return SimpleFieldLoad(index); } if (IsCompatibleReceiver(lookup, map)) { Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorPair()) { if (!holder->HasFastProperties()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } // When debugging we need to go the slow path to flood the accessor. if (GetSharedFunctionInfo()->HasDebugInfo()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->getter()) == nullptr) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } // Ruled out by IsCompatibleReceiver() above. DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, map)); if (!holder->HasFastProperties()) return slow_stub(); if (receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadApiGetterStub); int index = lookup->GetAccessorIndex(); LoadApiGetterStub stub(isolate(), true, index); return stub.GetCode(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } } TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (kind() != Code::LOAD_IC && kind() != Code::LOAD_GLOBAL_IC) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } // There is only one shared stub for loading normalized // properties. It does not traverse the prototype chain, so the // property must be found in the object for the stub to be // applicable. if (!receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); } TRACE_HANDLER_STATS(isolate(), LoadIC_LoadNormal); return isolate()->builtins()->LoadIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { FieldIndex field = lookup->GetFieldIndex(); if (receiver_is_holder) { return SimpleFieldLoad(field); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); if (receiver_is_holder) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadConstantStub); LoadConstantStub stub(isolate(), lookup->GetConstantIndex()); return stub.GetCode(); } break; // Custom-compiled handler. } case LookupIterator::INTEGER_INDEXED_EXOTIC: TRACE_HANDLER_STATS(isolate(), LoadIC_SlowStub); return slow_stub(); case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); } return Handle::null(); } Handle LoadIC::CompileHandler(LookupIterator* lookup, Handle unused, CacheHolderFlag cache_holder) { Handle holder = lookup->GetHolder(); #ifdef DEBUG // Only used by DCHECKs below. Handle receiver = lookup->GetReceiver(); bool receiver_is_holder = receiver.is_identical_to(holder); #endif // Non-map-specific handler stubs have already been selected. DCHECK(!receiver->IsString() || !Name::Equals(isolate()->factory()->length_string(), lookup->name())); DCHECK(!receiver->IsStringWrapper() || !Name::Equals(isolate()->factory()->length_string(), lookup->name())); DCHECK(!( receiver->IsJSFunction() && Name::Equals(isolate()->factory()->prototype_string(), lookup->name()) && receiver->IsConstructor() && !Handle::cast(receiver) ->map() ->has_non_instance_prototype())); Handle map = receiver_map(); switch (lookup->state()) { case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->getter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadInterceptor); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); // Perform a lookup behind the interceptor. Copy the LookupIterator since // the original iterator will be used to fetch the value. LookupIterator it = *lookup; it.Next(); LookupForRead(&it); return compiler.CompileLoadInterceptor(&it); } case LookupIterator::ACCESSOR: { #ifdef DEBUG int object_offset; DCHECK(!Accessors::IsJSObjectFieldAccessor(map, lookup->name(), &object_offset)); #endif DCHECK(IsCompatibleReceiver(lookup, map)); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorPair()) { DCHECK(holder->HasFastProperties()); DCHECK(!GetSharedFunctionInfo()->HasDebugInfo()); Handle getter(Handle::cast(accessors)->getter(), isolate()); CallOptimization call_optimization(getter); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); if (call_optimization.is_simple_api_call()) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadCallback); int index = lookup->GetAccessorIndex(); Handle code = compiler.CompileLoadCallback( lookup->name(), call_optimization, index); return code; } TRACE_HANDLER_STATS(isolate(), LoadIC_LoadViaGetter); int expected_arguments = Handle::cast(getter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileLoadViaGetter( lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } else { DCHECK(accessors->IsAccessorInfo()); Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->getter()) != nullptr); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, map)); DCHECK(holder->HasFastProperties()); DCHECK(!receiver_is_holder); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadCallback); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle code = compiler.CompileLoadCallback(lookup->name(), info); return code; } UNREACHABLE(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC); DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadGlobal); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle cell = lookup->GetPropertyCell(); Handle code = compiler.CompileLoadGlobal( cell, lookup->name(), lookup->IsConfigurable()); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { FieldIndex field = lookup->GetFieldIndex(); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadField); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadField(lookup->name(), field); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadConstant); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadConstant(lookup->name(), lookup->GetConstantIndex()); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } static Handle TryConvertKey(Handle key, Isolate* isolate) { // This helper implements a few common fast cases for converting // non-smi keys of keyed loads/stores to a smi or a string. if (key->IsHeapNumber()) { double value = Handle::cast(key)->value(); if (std::isnan(value)) { key = isolate->factory()->nan_string(); } else { int int_value = FastD2I(value); if (value == int_value && Smi::IsValid(int_value)) { key = handle(Smi::FromInt(int_value), isolate); } } } else if (key->IsUndefined(isolate)) { key = isolate->factory()->undefined_string(); } return key; } void KeyedLoadIC::UpdateLoadElement(Handle receiver) { Handle receiver_map(receiver->map(), isolate()); DCHECK(receiver_map->instance_type() != JS_VALUE_TYPE && receiver_map->instance_type() != JS_PROXY_TYPE); // Checked by caller. MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { Handle map = target_receiver_maps.at(i); if (map.is_null()) continue; if (map->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSValue"); return; } if (map->instance_type() == JS_PROXY_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSProxy"); return; } } // The first time a receiver is seen that is a transitioned version of the // previous monomorphic receiver type, assume the new ElementsKind is the // monomorphic type. This benefits global arrays that only transition // once, and all call sites accessing them are faster if they remain // monomorphic. If this optimistic assumption is not true, the IC will // miss again and it will become polymorphic and support both the // untransitioned and transitioned maps. if (state() == MONOMORPHIC && !receiver->IsString() && IsMoreGeneralElementsKindTransition( target_receiver_maps.at(0)->elements_kind(), Handle::cast(receiver)->GetElementsKind())) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } DCHECK(state() != GENERIC); // Determine the list of receiver maps that this call site has seen, // adding the map that was just encountered. if (!AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map)) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the generic stub. TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the generic // version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "max polymorph exceeded"); return; } CodeHandleList handlers(target_receiver_maps.length()); TRACE_HANDLER_STATS(isolate(), KeyedLoadIC_PolymorphicElement); ElementHandlerCompiler compiler(isolate()); compiler.CompileElementHandlers(&target_receiver_maps, &handlers); ConfigureVectorState(Handle(), &target_receiver_maps, &handlers); } MaybeHandle KeyedLoadIC::Load(Handle object, Handle key) { if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } Handle load_handle; // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION(isolate(), load_handle, LoadIC::Load(object, Handle::cast(key)), Object); } else if (FLAG_use_ic && !object->IsAccessCheckNeeded() && !object->IsJSValue()) { if (object->IsJSObject() || (object->IsString() && key->IsNumber())) { Handle receiver = Handle::cast(object); if (object->IsString() || key->IsSmi()) UpdateLoadElement(receiver); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "set generic"); } TRACE_IC("LoadIC", key); if (!load_handle.is_null()) return load_handle; Handle result; ASSIGN_RETURN_ON_EXCEPTION(isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } bool StoreIC::LookupForWrite(LookupIterator* it, Handle value, JSReceiver::StoreFromKeyed store_mode) { // Disable ICs for non-JSObjects for now. Handle object = it->GetReceiver(); if (!object->IsJSObject()) return false; Handle receiver = Handle::cast(object); DCHECK(!receiver->map()->is_deprecated()); for (; it->IsFound(); it->Next()) { switch (it->state()) { case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); case LookupIterator::JSPROXY: return false; case LookupIterator::INTERCEPTOR: { Handle holder = it->GetHolder(); InterceptorInfo* info = holder->GetNamedInterceptor(); if (it->HolderIsReceiverOrHiddenPrototype()) { return !info->non_masking() && receiver.is_identical_to(holder) && !info->setter()->IsUndefined(it->isolate()); } else if (!info->getter()->IsUndefined(it->isolate()) || !info->query()->IsUndefined(it->isolate())) { return false; } break; } case LookupIterator::ACCESS_CHECK: if (it->GetHolder()->IsAccessCheckNeeded()) return false; break; case LookupIterator::ACCESSOR: return !it->IsReadOnly(); case LookupIterator::INTEGER_INDEXED_EXOTIC: return false; case LookupIterator::DATA: { if (it->IsReadOnly()) return false; Handle holder = it->GetHolder(); if (receiver.is_identical_to(holder)) { it->PrepareForDataProperty(value); // The previous receiver map might just have been deprecated, // so reload it. update_receiver_map(receiver); return true; } // Receiver != holder. if (receiver->IsJSGlobalProxy()) { PrototypeIterator iter(it->isolate(), receiver); return it->GetHolder().is_identical_to( PrototypeIterator::GetCurrent(iter)); } if (it->HolderIsReceiverOrHiddenPrototype()) return false; if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } } } receiver = it->GetStoreTarget(); if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } MaybeHandle StoreIC::Store(Handle object, Handle name, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (object->IsJSGlobalObject() && name->IsString()) { // Look up in script context table. Handle str_name = Handle::cast(name); Handle global = Handle::cast(object); Handle script_contexts( global->native_context()->script_context_table()); ScriptContextTable::LookupResult lookup_result; if (ScriptContextTable::Lookup(script_contexts, str_name, &lookup_result)) { Handle script_context = ScriptContextTable::GetContext( script_contexts, lookup_result.context_index); if (lookup_result.mode == CONST) { return TypeError(MessageTemplate::kConstAssign, object, name); } Handle previous_value = FixedArray::get(*script_context, lookup_result.slot_index, isolate()); if (previous_value->IsTheHole(isolate())) { // Do not install stubs and stay pre-monomorphic for // uninitialized accesses. return ReferenceError(name); } if (FLAG_use_ic && StoreScriptContextFieldStub::Accepted(&lookup_result)) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreScriptContextFieldStub); StoreScriptContextFieldStub stub(isolate(), &lookup_result); PatchCache(name, stub.GetCode()); } script_context->set(lookup_result.slot_index, *value); return value; } } // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object) || object->IsJSProxy()) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Object::SetProperty(object, name, value, language_mode()), Object); return result; } // If the object is undefined or null it's illegal to try to set any // properties on it; throw a TypeError in that case. if (object->IsUndefined(isolate()) || object->IsNull(isolate())) { return TypeError(MessageTemplate::kNonObjectPropertyStore, object, name); } if (state() != UNINITIALIZED) { JSObject::MakePrototypesFast(object, kStartAtPrototype, isolate()); } LookupIterator it(object, name); if (FLAG_use_ic) UpdateCaches(&it, value, store_mode); MAYBE_RETURN_NULL( Object::SetProperty(&it, value, language_mode(), store_mode)); return value; } Handle CallIC::initialize_stub_in_optimized_code( Isolate* isolate, int argc, ConvertReceiverMode mode, TailCallMode tail_call_mode) { CallICStub stub(isolate, CallICState(argc, mode, tail_call_mode)); Handle code = stub.GetCode(); return code; } Handle StoreIC::initialize_stub_in_optimized_code( Isolate* isolate, LanguageMode language_mode) { VectorStoreICStub stub(isolate, StoreICState(language_mode)); return stub.GetCode(); } void StoreIC::UpdateCaches(LookupIterator* lookup, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (state() == UNINITIALIZED) { // This is the first time we execute this inline cache. Set the target to // the pre monomorphic stub to delay setting the monomorphic state. ConfigureVectorState(PREMONOMORPHIC, Handle()); TRACE_IC("StoreIC", lookup->name()); return; } bool use_ic = LookupForWrite(lookup, value, store_mode); if (!use_ic) { TRACE_GENERIC_IC(isolate(), "StoreIC", "LookupForWrite said 'false'"); } Handle code = use_ic ? ComputeHandler(lookup, value) : slow_stub(); PatchCache(lookup->name(), code); TRACE_IC("StoreIC", lookup->name()); } static Handle PropertyCellStoreHandler( Isolate* isolate, Handle receiver, Handle holder, Handle name, Handle cell, PropertyCellType type) { auto constant_type = Nothing(); if (type == PropertyCellType::kConstantType) { constant_type = Just(cell->GetConstantType()); } StoreGlobalStub stub(isolate, type, constant_type, receiver->IsJSGlobalProxy()); auto code = stub.GetCodeCopyFromTemplate(holder, cell); // TODO(verwaest): Move caching of these NORMAL stubs outside as well. HeapObject::UpdateMapCodeCache(receiver, name, code); return code; } Handle StoreIC::GetMapIndependentHandler(LookupIterator* lookup) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { break; // Custom-compiled handler. } // Currently not handled by CompileStoreTransition. if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "transition from slow"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } DCHECK(lookup->IsCacheableTransition()); break; // Custom-compiled handler. } case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->setter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreInterceptorStub); StoreInterceptorStub stub(isolate()); return stub.GetCode(); } case LookupIterator::ACCESSOR: { if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "accessor on slow map"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->setter()) == nullptr) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter == nullptr"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (AccessorInfo::cast(*accessors)->is_special_data_property() && !lookup->HolderIsReceiverOrHiddenPrototype()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "special data property in prototype chain"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (!AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())) { TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver type"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorPair()) { Handle setter(Handle::cast(accessors)->setter(), isolate()); if (!setter->IsJSFunction() && !setter->IsFunctionTemplateInfo()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter not a function"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } CallOptimization call_optimization(setter); if (call_optimization.is_simple_api_call()) { if (call_optimization.IsCompatibleReceiver(receiver, holder)) { break; // Custom-compiled handler. } TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreNormal); DCHECK(holder.is_identical_to(receiver)); return isolate()->builtins()->StoreIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } if (use_stub) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreFieldStub); StoreFieldStub stub(isolate(), lookup->GetFieldIndex(), lookup->representation()); return stub.GetCode(); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); TRACE_GENERIC_IC(isolate(), "StoreIC", "constant property"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } return Handle::null(); } Handle StoreIC::CompileHandler(LookupIterator* lookup, Handle value, CacheHolderFlag cache_holder) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { // TODO(dcarney): this currently just deopts. Use the transition cell. TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobalTransition); auto cell = isolate()->factory()->NewPropertyCell(); cell->set_value(*value); auto code = PropertyCellStoreHandler( isolate(), store_target, Handle::cast(store_target), lookup->name(), cell, PropertyCellType::kConstant); cell->set_value(isolate()->heap()->the_hole_value()); return code; } Handle transition = lookup->transition_map(); // Currently not handled by CompileStoreTransition. DCHECK(holder->HasFastProperties()); DCHECK(lookup->IsCacheableTransition()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreTransition); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreTransition(transition, lookup->name()); } case LookupIterator::INTERCEPTOR: UNREACHABLE(); case LookupIterator::ACCESSOR: { DCHECK(holder->HasFastProperties()); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->setter()) != 0); DCHECK(!AccessorInfo::cast(*accessors)->is_special_data_property() || lookup->HolderIsReceiverOrHiddenPrototype()); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), info, language_mode()); return code; } else { DCHECK(accessors->IsAccessorPair()); Handle setter(Handle::cast(accessors)->setter(), isolate()); DCHECK(setter->IsJSFunction() || setter->IsFunctionTemplateInfo()); CallOptimization call_optimization(setter); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); if (call_optimization.is_simple_api_call()) { DCHECK(call_optimization.IsCompatibleReceiver(receiver, holder)); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), call_optimization, lookup->GetAccessorIndex()); return code; } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreViaSetter); int expected_arguments = JSFunction::cast(*setter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileStoreViaSetter(receiver, lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobal); DCHECK(holder.is_identical_to(receiver) || receiver->map()->prototype() == *holder); auto cell = lookup->GetPropertyCell(); auto updated_type = PropertyCell::UpdatedType(cell, value, lookup->property_details()); auto code = PropertyCellStoreHandler( isolate(), receiver, Handle::cast(holder), lookup->name(), cell, updated_type); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { #ifdef DEBUG bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } DCHECK(!use_stub); #endif TRACE_HANDLER_STATS(isolate(), StoreIC_StoreField); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreField(lookup); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); UNREACHABLE(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } void KeyedStoreIC::UpdateStoreElement(Handle receiver_map, KeyedAccessStoreMode store_mode) { MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle monomorphic_map = ComputeTransitionedMap(receiver_map, store_mode); store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(monomorphic_map, store_mode); return ConfigureVectorState(Handle(), monomorphic_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { if (!target_receiver_maps.at(i).is_null() && target_receiver_maps.at(i)->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "JSValue"); return; } } // There are several special cases where an IC that is MONOMORPHIC can still // transition to a different GetNonTransitioningStoreMode IC that handles a // superset of the original IC. Handle those here if the receiver map hasn't // changed or it has transitioned to a more general kind. KeyedAccessStoreMode old_store_mode = GetKeyedAccessStoreMode(); Handle previous_receiver_map = target_receiver_maps.at(0); if (state() == MONOMORPHIC) { Handle transitioned_receiver_map = receiver_map; if (IsTransitionStoreMode(store_mode)) { transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); } if ((receiver_map.is_identical_to(previous_receiver_map) && IsTransitionStoreMode(store_mode)) || IsTransitionOfMonomorphicTarget(*previous_receiver_map, *transitioned_receiver_map)) { // If the "old" and "new" maps are in the same elements map family, or // if they at least come from the same origin for a transitioning store, // stay MONOMORPHIC and use the map for the most generic ElementsKind. store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler( transitioned_receiver_map, store_mode); ConfigureVectorState(Handle(), transitioned_receiver_map, handler); return; } if (receiver_map.is_identical_to(previous_receiver_map) && old_store_mode == STANDARD_STORE && (store_mode == STORE_AND_GROW_NO_TRANSITION || store_mode == STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS || store_mode == STORE_NO_TRANSITION_HANDLE_COW)) { // A "normal" IC that handles stores can switch to a version that can // grow at the end of the array, handle OOB accesses or copy COW arrays // and still stay MONOMORPHIC. Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(receiver_map, store_mode); return ConfigureVectorState(Handle(), receiver_map, handler); } } DCHECK(state() != GENERIC); bool map_added = AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map); if (IsTransitionStoreMode(store_mode)) { Handle transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); map_added |= AddOneReceiverMapIfMissing(&target_receiver_maps, transitioned_receiver_map); } if (!map_added) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the megamorphic stub which can handle everything. TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the // megamorphic version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) return; // Make sure all polymorphic handlers have the same store mode, otherwise the // megamorphic stub must be used. store_mode = GetNonTransitioningStoreMode(store_mode); if (old_store_mode != STANDARD_STORE) { if (store_mode == STANDARD_STORE) { store_mode = old_store_mode; } else if (store_mode != old_store_mode) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "store mode mismatch"); return; } } // If the store mode isn't the standard mode, make sure that all polymorphic // receivers are either external arrays, or all "normal" arrays. Otherwise, // use the megamorphic stub. if (store_mode != STANDARD_STORE) { int external_arrays = 0; for (int i = 0; i < target_receiver_maps.length(); ++i) { if (target_receiver_maps[i]->has_fixed_typed_array_elements()) { external_arrays++; } } if (external_arrays != 0 && external_arrays != target_receiver_maps.length()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unsupported combination of external and normal arrays"); return; } } TRACE_HANDLER_STATS(isolate(), KeyedStoreIC_Polymorphic); MapHandleList transitioned_maps(target_receiver_maps.length()); CodeHandleList handlers(target_receiver_maps.length()); PropertyICCompiler::ComputeKeyedStorePolymorphicHandlers( &target_receiver_maps, &transitioned_maps, &handlers, store_mode); ConfigureVectorState(&target_receiver_maps, &transitioned_maps, &handlers); } Handle KeyedStoreIC::ComputeTransitionedMap( Handle map, KeyedAccessStoreMode store_mode) { switch (store_mode) { case STORE_TRANSITION_TO_OBJECT: case STORE_AND_GROW_TRANSITION_TO_OBJECT: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_ELEMENTS : FAST_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_TRANSITION_TO_DOUBLE: case STORE_AND_GROW_TRANSITION_TO_DOUBLE: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_DOUBLE_ELEMENTS : FAST_DOUBLE_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS: DCHECK(map->has_fixed_typed_array_elements()); // Fall through case STORE_NO_TRANSITION_HANDLE_COW: case STANDARD_STORE: case STORE_AND_GROW_NO_TRANSITION: return map; } UNREACHABLE(); return MaybeHandle().ToHandleChecked(); } bool IsOutOfBoundsAccess(Handle receiver, uint32_t index) { uint32_t length = 0; if (receiver->IsJSArray()) { JSArray::cast(*receiver)->length()->ToArrayLength(&length); } else { length = static_cast(receiver->elements()->length()); } return index >= length; } static KeyedAccessStoreMode GetStoreMode(Handle receiver, uint32_t index, Handle value) { bool oob_access = IsOutOfBoundsAccess(receiver, index); // Don't consider this a growing store if the store would send the receiver to // dictionary mode. bool allow_growth = receiver->IsJSArray() && oob_access && !receiver->WouldConvertToSlowElements(index); if (allow_growth) { // Handle growing array in stub if necessary. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_DOUBLE; } if (value->IsHeapObject()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } return STORE_AND_GROW_NO_TRANSITION; } else { // Handle only in-bounds elements accesses. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_TRANSITION_TO_DOUBLE; } else if (value->IsHeapObject()) { return STORE_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_TRANSITION_TO_OBJECT; } } if (!FLAG_trace_external_array_abuse && receiver->map()->has_fixed_typed_array_elements() && oob_access) { return STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS; } Heap* heap = receiver->GetHeap(); if (receiver->elements()->map() == heap->fixed_cow_array_map()) { return STORE_NO_TRANSITION_HANDLE_COW; } else { return STANDARD_STORE; } } } MaybeHandle KeyedStoreIC::Store(Handle object, Handle key, Handle value) { // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); return result; } // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); Handle store_handle; uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION( isolate(), store_handle, StoreIC::Store(object, Handle::cast(key), value, JSReceiver::MAY_BE_STORE_FROM_KEYED), Object); if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unhandled internalized string key"); TRACE_IC("StoreIC", key); } return store_handle; } bool use_ic = FLAG_use_ic && !object->IsStringWrapper() && !object->IsAccessCheckNeeded() && !object->IsJSGlobalProxy(); if (use_ic && !object->IsSmi()) { // Don't use ICs for maps of the objects in Array's prototype chain. We // expect to be able to trap element sets to objects with those maps in // the runtime to enable optimization of element hole access. Handle heap_object = Handle::cast(object); if (heap_object->map()->IsMapInArrayPrototypeChain()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "map in array prototype"); use_ic = false; } } Handle old_receiver_map; bool sloppy_arguments_elements = false; bool key_is_valid_index = false; KeyedAccessStoreMode store_mode = STANDARD_STORE; if (use_ic && object->IsJSObject()) { Handle receiver = Handle::cast(object); old_receiver_map = handle(receiver->map(), isolate()); sloppy_arguments_elements = !is_sloppy(language_mode()) && receiver->elements()->map() == isolate()->heap()->sloppy_arguments_elements_map(); if (!sloppy_arguments_elements) { key_is_valid_index = key->IsSmi() && Smi::cast(*key)->value() >= 0; if (key_is_valid_index) { uint32_t index = static_cast(Smi::cast(*key)->value()); store_mode = GetStoreMode(receiver, index, value); } } } DCHECK(store_handle.is_null()); ASSIGN_RETURN_ON_EXCEPTION(isolate(), store_handle, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); if (use_ic) { if (!old_receiver_map.is_null()) { if (sloppy_arguments_elements) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "arguments receiver"); } else if (key_is_valid_index) { // We should go generic if receiver isn't a dictionary, but our // prototype chain does have dictionary elements. This ensures that // other non-dictionary receivers in the polymorphic case benefit // from fast path keyed stores. if (!old_receiver_map->DictionaryElementsInPrototypeChainOnly()) { UpdateStoreElement(old_receiver_map, store_mode); } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "dictionary or proxy prototype"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-smi-like key"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-JSObject receiver"); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "set generic"); } TRACE_IC("StoreIC", key); return store_handle; } void CallIC::HandleMiss(Handle function) { Handle name = isolate()->factory()->empty_string(); CallICNexus* nexus = casted_nexus(); Object* feedback = nexus->GetFeedback(); // Hand-coded MISS handling is easier if CallIC slots don't contain smis. DCHECK(!feedback->IsSmi()); if (feedback->IsWeakCell() || !function->IsJSFunction() || feedback->IsAllocationSite()) { // We are going generic. nexus->ConfigureMegamorphic(); } else { DCHECK(feedback == *TypeFeedbackVector::UninitializedSentinel(isolate())); Handle js_function = Handle::cast(function); Handle array_function = Handle(isolate()->native_context()->array_function()); if (array_function.is_identical_to(js_function)) { // Alter the slot. nexus->ConfigureMonomorphicArray(); } else if (js_function->context()->native_context() != *isolate()->native_context()) { // Don't collect cross-native context feedback for the CallIC. // TODO(bmeurer): We should collect the SharedFunctionInfo as // feedback in this case instead. nexus->ConfigureMegamorphic(); } else { nexus->ConfigureMonomorphic(js_function); } } if (function->IsJSFunction()) { Handle
::null(); } Handle LoadIC::CompileHandler(LookupIterator* lookup, Handle unused, CacheHolderFlag cache_holder) { Handle holder = lookup->GetHolder(); #ifdef DEBUG // Only used by DCHECKs below. Handle receiver = lookup->GetReceiver(); bool receiver_is_holder = receiver.is_identical_to(holder); #endif // Non-map-specific handler stubs have already been selected. DCHECK(!receiver->IsString() || !Name::Equals(isolate()->factory()->length_string(), lookup->name())); DCHECK(!receiver->IsStringWrapper() || !Name::Equals(isolate()->factory()->length_string(), lookup->name())); DCHECK(!( receiver->IsJSFunction() && Name::Equals(isolate()->factory()->prototype_string(), lookup->name()) && receiver->IsConstructor() && !Handle::cast(receiver) ->map() ->has_non_instance_prototype())); Handle map = receiver_map(); switch (lookup->state()) { case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->getter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadInterceptor); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); // Perform a lookup behind the interceptor. Copy the LookupIterator since // the original iterator will be used to fetch the value. LookupIterator it = *lookup; it.Next(); LookupForRead(&it); return compiler.CompileLoadInterceptor(&it); } case LookupIterator::ACCESSOR: { #ifdef DEBUG int object_offset; DCHECK(!Accessors::IsJSObjectFieldAccessor(map, lookup->name(), &object_offset)); #endif DCHECK(IsCompatibleReceiver(lookup, map)); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorPair()) { DCHECK(holder->HasFastProperties()); DCHECK(!GetSharedFunctionInfo()->HasDebugInfo()); Handle getter(Handle::cast(accessors)->getter(), isolate()); CallOptimization call_optimization(getter); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); if (call_optimization.is_simple_api_call()) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadCallback); int index = lookup->GetAccessorIndex(); Handle code = compiler.CompileLoadCallback( lookup->name(), call_optimization, index); return code; } TRACE_HANDLER_STATS(isolate(), LoadIC_LoadViaGetter); int expected_arguments = Handle::cast(getter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileLoadViaGetter( lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } else { DCHECK(accessors->IsAccessorInfo()); Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->getter()) != nullptr); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, map)); DCHECK(holder->HasFastProperties()); DCHECK(!receiver_is_holder); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadCallback); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle code = compiler.CompileLoadCallback(lookup->name(), info); return code; } UNREACHABLE(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC); DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadGlobal); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle cell = lookup->GetPropertyCell(); Handle code = compiler.CompileLoadGlobal( cell, lookup->name(), lookup->IsConfigurable()); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { FieldIndex field = lookup->GetFieldIndex(); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadField); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadField(lookup->name(), field); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadConstant); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadConstant(lookup->name(), lookup->GetConstantIndex()); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } static Handle TryConvertKey(Handle key, Isolate* isolate) { // This helper implements a few common fast cases for converting // non-smi keys of keyed loads/stores to a smi or a string. if (key->IsHeapNumber()) { double value = Handle::cast(key)->value(); if (std::isnan(value)) { key = isolate->factory()->nan_string(); } else { int int_value = FastD2I(value); if (value == int_value && Smi::IsValid(int_value)) { key = handle(Smi::FromInt(int_value), isolate); } } } else if (key->IsUndefined(isolate)) { key = isolate->factory()->undefined_string(); } return key; } void KeyedLoadIC::UpdateLoadElement(Handle receiver) { Handle receiver_map(receiver->map(), isolate()); DCHECK(receiver_map->instance_type() != JS_VALUE_TYPE && receiver_map->instance_type() != JS_PROXY_TYPE); // Checked by caller. MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { Handle map = target_receiver_maps.at(i); if (map.is_null()) continue; if (map->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSValue"); return; } if (map->instance_type() == JS_PROXY_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSProxy"); return; } } // The first time a receiver is seen that is a transitioned version of the // previous monomorphic receiver type, assume the new ElementsKind is the // monomorphic type. This benefits global arrays that only transition // once, and all call sites accessing them are faster if they remain // monomorphic. If this optimistic assumption is not true, the IC will // miss again and it will become polymorphic and support both the // untransitioned and transitioned maps. if (state() == MONOMORPHIC && !receiver->IsString() && IsMoreGeneralElementsKindTransition( target_receiver_maps.at(0)->elements_kind(), Handle::cast(receiver)->GetElementsKind())) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } DCHECK(state() != GENERIC); // Determine the list of receiver maps that this call site has seen, // adding the map that was just encountered. if (!AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map)) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the generic stub. TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the generic // version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "max polymorph exceeded"); return; } CodeHandleList handlers(target_receiver_maps.length()); TRACE_HANDLER_STATS(isolate(), KeyedLoadIC_PolymorphicElement); ElementHandlerCompiler compiler(isolate()); compiler.CompileElementHandlers(&target_receiver_maps, &handlers); ConfigureVectorState(Handle(), &target_receiver_maps, &handlers); } MaybeHandle KeyedLoadIC::Load(Handle object, Handle key) { if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } Handle load_handle; // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION(isolate(), load_handle, LoadIC::Load(object, Handle::cast(key)), Object); } else if (FLAG_use_ic && !object->IsAccessCheckNeeded() && !object->IsJSValue()) { if (object->IsJSObject() || (object->IsString() && key->IsNumber())) { Handle receiver = Handle::cast(object); if (object->IsString() || key->IsSmi()) UpdateLoadElement(receiver); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "set generic"); } TRACE_IC("LoadIC", key); if (!load_handle.is_null()) return load_handle; Handle result; ASSIGN_RETURN_ON_EXCEPTION(isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } bool StoreIC::LookupForWrite(LookupIterator* it, Handle value, JSReceiver::StoreFromKeyed store_mode) { // Disable ICs for non-JSObjects for now. Handle object = it->GetReceiver(); if (!object->IsJSObject()) return false; Handle receiver = Handle::cast(object); DCHECK(!receiver->map()->is_deprecated()); for (; it->IsFound(); it->Next()) { switch (it->state()) { case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); case LookupIterator::JSPROXY: return false; case LookupIterator::INTERCEPTOR: { Handle holder = it->GetHolder(); InterceptorInfo* info = holder->GetNamedInterceptor(); if (it->HolderIsReceiverOrHiddenPrototype()) { return !info->non_masking() && receiver.is_identical_to(holder) && !info->setter()->IsUndefined(it->isolate()); } else if (!info->getter()->IsUndefined(it->isolate()) || !info->query()->IsUndefined(it->isolate())) { return false; } break; } case LookupIterator::ACCESS_CHECK: if (it->GetHolder()->IsAccessCheckNeeded()) return false; break; case LookupIterator::ACCESSOR: return !it->IsReadOnly(); case LookupIterator::INTEGER_INDEXED_EXOTIC: return false; case LookupIterator::DATA: { if (it->IsReadOnly()) return false; Handle holder = it->GetHolder(); if (receiver.is_identical_to(holder)) { it->PrepareForDataProperty(value); // The previous receiver map might just have been deprecated, // so reload it. update_receiver_map(receiver); return true; } // Receiver != holder. if (receiver->IsJSGlobalProxy()) { PrototypeIterator iter(it->isolate(), receiver); return it->GetHolder().is_identical_to( PrototypeIterator::GetCurrent(iter)); } if (it->HolderIsReceiverOrHiddenPrototype()) return false; if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } } } receiver = it->GetStoreTarget(); if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } MaybeHandle StoreIC::Store(Handle object, Handle name, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (object->IsJSGlobalObject() && name->IsString()) { // Look up in script context table. Handle str_name = Handle::cast(name); Handle global = Handle::cast(object); Handle script_contexts( global->native_context()->script_context_table()); ScriptContextTable::LookupResult lookup_result; if (ScriptContextTable::Lookup(script_contexts, str_name, &lookup_result)) { Handle script_context = ScriptContextTable::GetContext( script_contexts, lookup_result.context_index); if (lookup_result.mode == CONST) { return TypeError(MessageTemplate::kConstAssign, object, name); } Handle previous_value = FixedArray::get(*script_context, lookup_result.slot_index, isolate()); if (previous_value->IsTheHole(isolate())) { // Do not install stubs and stay pre-monomorphic for // uninitialized accesses. return ReferenceError(name); } if (FLAG_use_ic && StoreScriptContextFieldStub::Accepted(&lookup_result)) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreScriptContextFieldStub); StoreScriptContextFieldStub stub(isolate(), &lookup_result); PatchCache(name, stub.GetCode()); } script_context->set(lookup_result.slot_index, *value); return value; } } // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object) || object->IsJSProxy()) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Object::SetProperty(object, name, value, language_mode()), Object); return result; } // If the object is undefined or null it's illegal to try to set any // properties on it; throw a TypeError in that case. if (object->IsUndefined(isolate()) || object->IsNull(isolate())) { return TypeError(MessageTemplate::kNonObjectPropertyStore, object, name); } if (state() != UNINITIALIZED) { JSObject::MakePrototypesFast(object, kStartAtPrototype, isolate()); } LookupIterator it(object, name); if (FLAG_use_ic) UpdateCaches(&it, value, store_mode); MAYBE_RETURN_NULL( Object::SetProperty(&it, value, language_mode(), store_mode)); return value; } Handle CallIC::initialize_stub_in_optimized_code( Isolate* isolate, int argc, ConvertReceiverMode mode, TailCallMode tail_call_mode) { CallICStub stub(isolate, CallICState(argc, mode, tail_call_mode)); Handle code = stub.GetCode(); return code; } Handle StoreIC::initialize_stub_in_optimized_code( Isolate* isolate, LanguageMode language_mode) { VectorStoreICStub stub(isolate, StoreICState(language_mode)); return stub.GetCode(); } void StoreIC::UpdateCaches(LookupIterator* lookup, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (state() == UNINITIALIZED) { // This is the first time we execute this inline cache. Set the target to // the pre monomorphic stub to delay setting the monomorphic state. ConfigureVectorState(PREMONOMORPHIC, Handle()); TRACE_IC("StoreIC", lookup->name()); return; } bool use_ic = LookupForWrite(lookup, value, store_mode); if (!use_ic) { TRACE_GENERIC_IC(isolate(), "StoreIC", "LookupForWrite said 'false'"); } Handle code = use_ic ? ComputeHandler(lookup, value) : slow_stub(); PatchCache(lookup->name(), code); TRACE_IC("StoreIC", lookup->name()); } static Handle PropertyCellStoreHandler( Isolate* isolate, Handle receiver, Handle holder, Handle name, Handle cell, PropertyCellType type) { auto constant_type = Nothing(); if (type == PropertyCellType::kConstantType) { constant_type = Just(cell->GetConstantType()); } StoreGlobalStub stub(isolate, type, constant_type, receiver->IsJSGlobalProxy()); auto code = stub.GetCodeCopyFromTemplate(holder, cell); // TODO(verwaest): Move caching of these NORMAL stubs outside as well. HeapObject::UpdateMapCodeCache(receiver, name, code); return code; } Handle StoreIC::GetMapIndependentHandler(LookupIterator* lookup) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { break; // Custom-compiled handler. } // Currently not handled by CompileStoreTransition. if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "transition from slow"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } DCHECK(lookup->IsCacheableTransition()); break; // Custom-compiled handler. } case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->setter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreInterceptorStub); StoreInterceptorStub stub(isolate()); return stub.GetCode(); } case LookupIterator::ACCESSOR: { if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "accessor on slow map"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->setter()) == nullptr) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter == nullptr"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (AccessorInfo::cast(*accessors)->is_special_data_property() && !lookup->HolderIsReceiverOrHiddenPrototype()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "special data property in prototype chain"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (!AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())) { TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver type"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorPair()) { Handle setter(Handle::cast(accessors)->setter(), isolate()); if (!setter->IsJSFunction() && !setter->IsFunctionTemplateInfo()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter not a function"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } CallOptimization call_optimization(setter); if (call_optimization.is_simple_api_call()) { if (call_optimization.IsCompatibleReceiver(receiver, holder)) { break; // Custom-compiled handler. } TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreNormal); DCHECK(holder.is_identical_to(receiver)); return isolate()->builtins()->StoreIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } if (use_stub) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreFieldStub); StoreFieldStub stub(isolate(), lookup->GetFieldIndex(), lookup->representation()); return stub.GetCode(); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); TRACE_GENERIC_IC(isolate(), "StoreIC", "constant property"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } return Handle::null(); } Handle StoreIC::CompileHandler(LookupIterator* lookup, Handle value, CacheHolderFlag cache_holder) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { // TODO(dcarney): this currently just deopts. Use the transition cell. TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobalTransition); auto cell = isolate()->factory()->NewPropertyCell(); cell->set_value(*value); auto code = PropertyCellStoreHandler( isolate(), store_target, Handle::cast(store_target), lookup->name(), cell, PropertyCellType::kConstant); cell->set_value(isolate()->heap()->the_hole_value()); return code; } Handle transition = lookup->transition_map(); // Currently not handled by CompileStoreTransition. DCHECK(holder->HasFastProperties()); DCHECK(lookup->IsCacheableTransition()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreTransition); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreTransition(transition, lookup->name()); } case LookupIterator::INTERCEPTOR: UNREACHABLE(); case LookupIterator::ACCESSOR: { DCHECK(holder->HasFastProperties()); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->setter()) != 0); DCHECK(!AccessorInfo::cast(*accessors)->is_special_data_property() || lookup->HolderIsReceiverOrHiddenPrototype()); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), info, language_mode()); return code; } else { DCHECK(accessors->IsAccessorPair()); Handle setter(Handle::cast(accessors)->setter(), isolate()); DCHECK(setter->IsJSFunction() || setter->IsFunctionTemplateInfo()); CallOptimization call_optimization(setter); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); if (call_optimization.is_simple_api_call()) { DCHECK(call_optimization.IsCompatibleReceiver(receiver, holder)); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), call_optimization, lookup->GetAccessorIndex()); return code; } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreViaSetter); int expected_arguments = JSFunction::cast(*setter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileStoreViaSetter(receiver, lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobal); DCHECK(holder.is_identical_to(receiver) || receiver->map()->prototype() == *holder); auto cell = lookup->GetPropertyCell(); auto updated_type = PropertyCell::UpdatedType(cell, value, lookup->property_details()); auto code = PropertyCellStoreHandler( isolate(), receiver, Handle::cast(holder), lookup->name(), cell, updated_type); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { #ifdef DEBUG bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } DCHECK(!use_stub); #endif TRACE_HANDLER_STATS(isolate(), StoreIC_StoreField); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreField(lookup); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); UNREACHABLE(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } void KeyedStoreIC::UpdateStoreElement(Handle receiver_map, KeyedAccessStoreMode store_mode) { MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle monomorphic_map = ComputeTransitionedMap(receiver_map, store_mode); store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(monomorphic_map, store_mode); return ConfigureVectorState(Handle(), monomorphic_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { if (!target_receiver_maps.at(i).is_null() && target_receiver_maps.at(i)->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "JSValue"); return; } } // There are several special cases where an IC that is MONOMORPHIC can still // transition to a different GetNonTransitioningStoreMode IC that handles a // superset of the original IC. Handle those here if the receiver map hasn't // changed or it has transitioned to a more general kind. KeyedAccessStoreMode old_store_mode = GetKeyedAccessStoreMode(); Handle previous_receiver_map = target_receiver_maps.at(0); if (state() == MONOMORPHIC) { Handle transitioned_receiver_map = receiver_map; if (IsTransitionStoreMode(store_mode)) { transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); } if ((receiver_map.is_identical_to(previous_receiver_map) && IsTransitionStoreMode(store_mode)) || IsTransitionOfMonomorphicTarget(*previous_receiver_map, *transitioned_receiver_map)) { // If the "old" and "new" maps are in the same elements map family, or // if they at least come from the same origin for a transitioning store, // stay MONOMORPHIC and use the map for the most generic ElementsKind. store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler( transitioned_receiver_map, store_mode); ConfigureVectorState(Handle(), transitioned_receiver_map, handler); return; } if (receiver_map.is_identical_to(previous_receiver_map) && old_store_mode == STANDARD_STORE && (store_mode == STORE_AND_GROW_NO_TRANSITION || store_mode == STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS || store_mode == STORE_NO_TRANSITION_HANDLE_COW)) { // A "normal" IC that handles stores can switch to a version that can // grow at the end of the array, handle OOB accesses or copy COW arrays // and still stay MONOMORPHIC. Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(receiver_map, store_mode); return ConfigureVectorState(Handle(), receiver_map, handler); } } DCHECK(state() != GENERIC); bool map_added = AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map); if (IsTransitionStoreMode(store_mode)) { Handle transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); map_added |= AddOneReceiverMapIfMissing(&target_receiver_maps, transitioned_receiver_map); } if (!map_added) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the megamorphic stub which can handle everything. TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the // megamorphic version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) return; // Make sure all polymorphic handlers have the same store mode, otherwise the // megamorphic stub must be used. store_mode = GetNonTransitioningStoreMode(store_mode); if (old_store_mode != STANDARD_STORE) { if (store_mode == STANDARD_STORE) { store_mode = old_store_mode; } else if (store_mode != old_store_mode) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "store mode mismatch"); return; } } // If the store mode isn't the standard mode, make sure that all polymorphic // receivers are either external arrays, or all "normal" arrays. Otherwise, // use the megamorphic stub. if (store_mode != STANDARD_STORE) { int external_arrays = 0; for (int i = 0; i < target_receiver_maps.length(); ++i) { if (target_receiver_maps[i]->has_fixed_typed_array_elements()) { external_arrays++; } } if (external_arrays != 0 && external_arrays != target_receiver_maps.length()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unsupported combination of external and normal arrays"); return; } } TRACE_HANDLER_STATS(isolate(), KeyedStoreIC_Polymorphic); MapHandleList transitioned_maps(target_receiver_maps.length()); CodeHandleList handlers(target_receiver_maps.length()); PropertyICCompiler::ComputeKeyedStorePolymorphicHandlers( &target_receiver_maps, &transitioned_maps, &handlers, store_mode); ConfigureVectorState(&target_receiver_maps, &transitioned_maps, &handlers); } Handle KeyedStoreIC::ComputeTransitionedMap( Handle map, KeyedAccessStoreMode store_mode) { switch (store_mode) { case STORE_TRANSITION_TO_OBJECT: case STORE_AND_GROW_TRANSITION_TO_OBJECT: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_ELEMENTS : FAST_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_TRANSITION_TO_DOUBLE: case STORE_AND_GROW_TRANSITION_TO_DOUBLE: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_DOUBLE_ELEMENTS : FAST_DOUBLE_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS: DCHECK(map->has_fixed_typed_array_elements()); // Fall through case STORE_NO_TRANSITION_HANDLE_COW: case STANDARD_STORE: case STORE_AND_GROW_NO_TRANSITION: return map; } UNREACHABLE(); return MaybeHandle().ToHandleChecked(); } bool IsOutOfBoundsAccess(Handle receiver, uint32_t index) { uint32_t length = 0; if (receiver->IsJSArray()) { JSArray::cast(*receiver)->length()->ToArrayLength(&length); } else { length = static_cast(receiver->elements()->length()); } return index >= length; } static KeyedAccessStoreMode GetStoreMode(Handle receiver, uint32_t index, Handle value) { bool oob_access = IsOutOfBoundsAccess(receiver, index); // Don't consider this a growing store if the store would send the receiver to // dictionary mode. bool allow_growth = receiver->IsJSArray() && oob_access && !receiver->WouldConvertToSlowElements(index); if (allow_growth) { // Handle growing array in stub if necessary. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_DOUBLE; } if (value->IsHeapObject()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } return STORE_AND_GROW_NO_TRANSITION; } else { // Handle only in-bounds elements accesses. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_TRANSITION_TO_DOUBLE; } else if (value->IsHeapObject()) { return STORE_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_TRANSITION_TO_OBJECT; } } if (!FLAG_trace_external_array_abuse && receiver->map()->has_fixed_typed_array_elements() && oob_access) { return STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS; } Heap* heap = receiver->GetHeap(); if (receiver->elements()->map() == heap->fixed_cow_array_map()) { return STORE_NO_TRANSITION_HANDLE_COW; } else { return STANDARD_STORE; } } } MaybeHandle KeyedStoreIC::Store(Handle object, Handle key, Handle value) { // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); return result; } // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); Handle store_handle; uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION( isolate(), store_handle, StoreIC::Store(object, Handle::cast(key), value, JSReceiver::MAY_BE_STORE_FROM_KEYED), Object); if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unhandled internalized string key"); TRACE_IC("StoreIC", key); } return store_handle; } bool use_ic = FLAG_use_ic && !object->IsStringWrapper() && !object->IsAccessCheckNeeded() && !object->IsJSGlobalProxy(); if (use_ic && !object->IsSmi()) { // Don't use ICs for maps of the objects in Array's prototype chain. We // expect to be able to trap element sets to objects with those maps in // the runtime to enable optimization of element hole access. Handle heap_object = Handle::cast(object); if (heap_object->map()->IsMapInArrayPrototypeChain()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "map in array prototype"); use_ic = false; } } Handle old_receiver_map; bool sloppy_arguments_elements = false; bool key_is_valid_index = false; KeyedAccessStoreMode store_mode = STANDARD_STORE; if (use_ic && object->IsJSObject()) { Handle receiver = Handle::cast(object); old_receiver_map = handle(receiver->map(), isolate()); sloppy_arguments_elements = !is_sloppy(language_mode()) && receiver->elements()->map() == isolate()->heap()->sloppy_arguments_elements_map(); if (!sloppy_arguments_elements) { key_is_valid_index = key->IsSmi() && Smi::cast(*key)->value() >= 0; if (key_is_valid_index) { uint32_t index = static_cast(Smi::cast(*key)->value()); store_mode = GetStoreMode(receiver, index, value); } } } DCHECK(store_handle.is_null()); ASSIGN_RETURN_ON_EXCEPTION(isolate(), store_handle, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); if (use_ic) { if (!old_receiver_map.is_null()) { if (sloppy_arguments_elements) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "arguments receiver"); } else if (key_is_valid_index) { // We should go generic if receiver isn't a dictionary, but our // prototype chain does have dictionary elements. This ensures that // other non-dictionary receivers in the polymorphic case benefit // from fast path keyed stores. if (!old_receiver_map->DictionaryElementsInPrototypeChainOnly()) { UpdateStoreElement(old_receiver_map, store_mode); } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "dictionary or proxy prototype"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-smi-like key"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-JSObject receiver"); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "set generic"); } TRACE_IC("StoreIC", key); return store_handle; } void CallIC::HandleMiss(Handle function) { Handle name = isolate()->factory()->empty_string(); CallICNexus* nexus = casted_nexus(); Object* feedback = nexus->GetFeedback(); // Hand-coded MISS handling is easier if CallIC slots don't contain smis. DCHECK(!feedback->IsSmi()); if (feedback->IsWeakCell() || !function->IsJSFunction() || feedback->IsAllocationSite()) { // We are going generic. nexus->ConfigureMegamorphic(); } else { DCHECK(feedback == *TypeFeedbackVector::UninitializedSentinel(isolate())); Handle js_function = Handle::cast(function); Handle array_function = Handle(isolate()->native_context()->array_function()); if (array_function.is_identical_to(js_function)) { // Alter the slot. nexus->ConfigureMonomorphicArray(); } else if (js_function->context()->native_context() != *isolate()->native_context()) { // Don't collect cross-native context feedback for the CallIC. // TODO(bmeurer): We should collect the SharedFunctionInfo as // feedback in this case instead. nexus->ConfigureMegamorphic(); } else { nexus->ConfigureMonomorphic(js_function); } } if (function->IsJSFunction()) { Handle
LoadIC::CompileHandler(LookupIterator* lookup, Handle unused, CacheHolderFlag cache_holder) { Handle holder = lookup->GetHolder(); #ifdef DEBUG // Only used by DCHECKs below. Handle receiver = lookup->GetReceiver(); bool receiver_is_holder = receiver.is_identical_to(holder); #endif // Non-map-specific handler stubs have already been selected. DCHECK(!receiver->IsString() || !Name::Equals(isolate()->factory()->length_string(), lookup->name())); DCHECK(!receiver->IsStringWrapper() || !Name::Equals(isolate()->factory()->length_string(), lookup->name())); DCHECK(!( receiver->IsJSFunction() && Name::Equals(isolate()->factory()->prototype_string(), lookup->name()) && receiver->IsConstructor() && !Handle::cast(receiver) ->map() ->has_non_instance_prototype())); Handle map = receiver_map(); switch (lookup->state()) { case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->getter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadInterceptor); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); // Perform a lookup behind the interceptor. Copy the LookupIterator since // the original iterator will be used to fetch the value. LookupIterator it = *lookup; it.Next(); LookupForRead(&it); return compiler.CompileLoadInterceptor(&it); } case LookupIterator::ACCESSOR: { #ifdef DEBUG int object_offset; DCHECK(!Accessors::IsJSObjectFieldAccessor(map, lookup->name(), &object_offset)); #endif DCHECK(IsCompatibleReceiver(lookup, map)); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorPair()) { DCHECK(holder->HasFastProperties()); DCHECK(!GetSharedFunctionInfo()->HasDebugInfo()); Handle getter(Handle::cast(accessors)->getter(), isolate()); CallOptimization call_optimization(getter); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); if (call_optimization.is_simple_api_call()) { TRACE_HANDLER_STATS(isolate(), LoadIC_LoadCallback); int index = lookup->GetAccessorIndex(); Handle code = compiler.CompileLoadCallback( lookup->name(), call_optimization, index); return code; } TRACE_HANDLER_STATS(isolate(), LoadIC_LoadViaGetter); int expected_arguments = Handle::cast(getter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileLoadViaGetter( lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } else { DCHECK(accessors->IsAccessorInfo()); Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->getter()) != nullptr); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, map)); DCHECK(holder->HasFastProperties()); DCHECK(!receiver_is_holder); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadCallback); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle code = compiler.CompileLoadCallback(lookup->name(), info); return code; } UNREACHABLE(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC); DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadGlobal); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle cell = lookup->GetPropertyCell(); Handle code = compiler.CompileLoadGlobal( cell, lookup->name(), lookup->IsConfigurable()); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { FieldIndex field = lookup->GetFieldIndex(); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadField); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadField(lookup->name(), field); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadConstant); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadConstant(lookup->name(), lookup->GetConstantIndex()); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } static Handle TryConvertKey(Handle key, Isolate* isolate) { // This helper implements a few common fast cases for converting // non-smi keys of keyed loads/stores to a smi or a string. if (key->IsHeapNumber()) { double value = Handle::cast(key)->value(); if (std::isnan(value)) { key = isolate->factory()->nan_string(); } else { int int_value = FastD2I(value); if (value == int_value && Smi::IsValid(int_value)) { key = handle(Smi::FromInt(int_value), isolate); } } } else if (key->IsUndefined(isolate)) { key = isolate->factory()->undefined_string(); } return key; } void KeyedLoadIC::UpdateLoadElement(Handle receiver) { Handle receiver_map(receiver->map(), isolate()); DCHECK(receiver_map->instance_type() != JS_VALUE_TYPE && receiver_map->instance_type() != JS_PROXY_TYPE); // Checked by caller. MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { Handle map = target_receiver_maps.at(i); if (map.is_null()) continue; if (map->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSValue"); return; } if (map->instance_type() == JS_PROXY_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSProxy"); return; } } // The first time a receiver is seen that is a transitioned version of the // previous monomorphic receiver type, assume the new ElementsKind is the // monomorphic type. This benefits global arrays that only transition // once, and all call sites accessing them are faster if they remain // monomorphic. If this optimistic assumption is not true, the IC will // miss again and it will become polymorphic and support both the // untransitioned and transitioned maps. if (state() == MONOMORPHIC && !receiver->IsString() && IsMoreGeneralElementsKindTransition( target_receiver_maps.at(0)->elements_kind(), Handle::cast(receiver)->GetElementsKind())) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } DCHECK(state() != GENERIC); // Determine the list of receiver maps that this call site has seen, // adding the map that was just encountered. if (!AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map)) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the generic stub. TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the generic // version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "max polymorph exceeded"); return; } CodeHandleList handlers(target_receiver_maps.length()); TRACE_HANDLER_STATS(isolate(), KeyedLoadIC_PolymorphicElement); ElementHandlerCompiler compiler(isolate()); compiler.CompileElementHandlers(&target_receiver_maps, &handlers); ConfigureVectorState(Handle(), &target_receiver_maps, &handlers); } MaybeHandle KeyedLoadIC::Load(Handle object, Handle key) { if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } Handle load_handle; // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION(isolate(), load_handle, LoadIC::Load(object, Handle::cast(key)), Object); } else if (FLAG_use_ic && !object->IsAccessCheckNeeded() && !object->IsJSValue()) { if (object->IsJSObject() || (object->IsString() && key->IsNumber())) { Handle receiver = Handle::cast(object); if (object->IsString() || key->IsSmi()) UpdateLoadElement(receiver); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "set generic"); } TRACE_IC("LoadIC", key); if (!load_handle.is_null()) return load_handle; Handle result; ASSIGN_RETURN_ON_EXCEPTION(isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } bool StoreIC::LookupForWrite(LookupIterator* it, Handle value, JSReceiver::StoreFromKeyed store_mode) { // Disable ICs for non-JSObjects for now. Handle object = it->GetReceiver(); if (!object->IsJSObject()) return false; Handle receiver = Handle::cast(object); DCHECK(!receiver->map()->is_deprecated()); for (; it->IsFound(); it->Next()) { switch (it->state()) { case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); case LookupIterator::JSPROXY: return false; case LookupIterator::INTERCEPTOR: { Handle holder = it->GetHolder(); InterceptorInfo* info = holder->GetNamedInterceptor(); if (it->HolderIsReceiverOrHiddenPrototype()) { return !info->non_masking() && receiver.is_identical_to(holder) && !info->setter()->IsUndefined(it->isolate()); } else if (!info->getter()->IsUndefined(it->isolate()) || !info->query()->IsUndefined(it->isolate())) { return false; } break; } case LookupIterator::ACCESS_CHECK: if (it->GetHolder()->IsAccessCheckNeeded()) return false; break; case LookupIterator::ACCESSOR: return !it->IsReadOnly(); case LookupIterator::INTEGER_INDEXED_EXOTIC: return false; case LookupIterator::DATA: { if (it->IsReadOnly()) return false; Handle holder = it->GetHolder(); if (receiver.is_identical_to(holder)) { it->PrepareForDataProperty(value); // The previous receiver map might just have been deprecated, // so reload it. update_receiver_map(receiver); return true; } // Receiver != holder. if (receiver->IsJSGlobalProxy()) { PrototypeIterator iter(it->isolate(), receiver); return it->GetHolder().is_identical_to( PrototypeIterator::GetCurrent(iter)); } if (it->HolderIsReceiverOrHiddenPrototype()) return false; if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } } } receiver = it->GetStoreTarget(); if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } MaybeHandle StoreIC::Store(Handle object, Handle name, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (object->IsJSGlobalObject() && name->IsString()) { // Look up in script context table. Handle str_name = Handle::cast(name); Handle global = Handle::cast(object); Handle script_contexts( global->native_context()->script_context_table()); ScriptContextTable::LookupResult lookup_result; if (ScriptContextTable::Lookup(script_contexts, str_name, &lookup_result)) { Handle script_context = ScriptContextTable::GetContext( script_contexts, lookup_result.context_index); if (lookup_result.mode == CONST) { return TypeError(MessageTemplate::kConstAssign, object, name); } Handle previous_value = FixedArray::get(*script_context, lookup_result.slot_index, isolate()); if (previous_value->IsTheHole(isolate())) { // Do not install stubs and stay pre-monomorphic for // uninitialized accesses. return ReferenceError(name); } if (FLAG_use_ic && StoreScriptContextFieldStub::Accepted(&lookup_result)) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreScriptContextFieldStub); StoreScriptContextFieldStub stub(isolate(), &lookup_result); PatchCache(name, stub.GetCode()); } script_context->set(lookup_result.slot_index, *value); return value; } } // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object) || object->IsJSProxy()) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Object::SetProperty(object, name, value, language_mode()), Object); return result; } // If the object is undefined or null it's illegal to try to set any // properties on it; throw a TypeError in that case. if (object->IsUndefined(isolate()) || object->IsNull(isolate())) { return TypeError(MessageTemplate::kNonObjectPropertyStore, object, name); } if (state() != UNINITIALIZED) { JSObject::MakePrototypesFast(object, kStartAtPrototype, isolate()); } LookupIterator it(object, name); if (FLAG_use_ic) UpdateCaches(&it, value, store_mode); MAYBE_RETURN_NULL( Object::SetProperty(&it, value, language_mode(), store_mode)); return value; } Handle CallIC::initialize_stub_in_optimized_code( Isolate* isolate, int argc, ConvertReceiverMode mode, TailCallMode tail_call_mode) { CallICStub stub(isolate, CallICState(argc, mode, tail_call_mode)); Handle code = stub.GetCode(); return code; } Handle StoreIC::initialize_stub_in_optimized_code( Isolate* isolate, LanguageMode language_mode) { VectorStoreICStub stub(isolate, StoreICState(language_mode)); return stub.GetCode(); } void StoreIC::UpdateCaches(LookupIterator* lookup, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (state() == UNINITIALIZED) { // This is the first time we execute this inline cache. Set the target to // the pre monomorphic stub to delay setting the monomorphic state. ConfigureVectorState(PREMONOMORPHIC, Handle()); TRACE_IC("StoreIC", lookup->name()); return; } bool use_ic = LookupForWrite(lookup, value, store_mode); if (!use_ic) { TRACE_GENERIC_IC(isolate(), "StoreIC", "LookupForWrite said 'false'"); } Handle code = use_ic ? ComputeHandler(lookup, value) : slow_stub(); PatchCache(lookup->name(), code); TRACE_IC("StoreIC", lookup->name()); } static Handle PropertyCellStoreHandler( Isolate* isolate, Handle receiver, Handle holder, Handle name, Handle cell, PropertyCellType type) { auto constant_type = Nothing(); if (type == PropertyCellType::kConstantType) { constant_type = Just(cell->GetConstantType()); } StoreGlobalStub stub(isolate, type, constant_type, receiver->IsJSGlobalProxy()); auto code = stub.GetCodeCopyFromTemplate(holder, cell); // TODO(verwaest): Move caching of these NORMAL stubs outside as well. HeapObject::UpdateMapCodeCache(receiver, name, code); return code; } Handle StoreIC::GetMapIndependentHandler(LookupIterator* lookup) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { break; // Custom-compiled handler. } // Currently not handled by CompileStoreTransition. if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "transition from slow"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } DCHECK(lookup->IsCacheableTransition()); break; // Custom-compiled handler. } case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->setter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreInterceptorStub); StoreInterceptorStub stub(isolate()); return stub.GetCode(); } case LookupIterator::ACCESSOR: { if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "accessor on slow map"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->setter()) == nullptr) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter == nullptr"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (AccessorInfo::cast(*accessors)->is_special_data_property() && !lookup->HolderIsReceiverOrHiddenPrototype()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "special data property in prototype chain"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (!AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())) { TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver type"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorPair()) { Handle setter(Handle::cast(accessors)->setter(), isolate()); if (!setter->IsJSFunction() && !setter->IsFunctionTemplateInfo()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter not a function"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } CallOptimization call_optimization(setter); if (call_optimization.is_simple_api_call()) { if (call_optimization.IsCompatibleReceiver(receiver, holder)) { break; // Custom-compiled handler. } TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreNormal); DCHECK(holder.is_identical_to(receiver)); return isolate()->builtins()->StoreIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } if (use_stub) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreFieldStub); StoreFieldStub stub(isolate(), lookup->GetFieldIndex(), lookup->representation()); return stub.GetCode(); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); TRACE_GENERIC_IC(isolate(), "StoreIC", "constant property"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } return Handle::null(); } Handle StoreIC::CompileHandler(LookupIterator* lookup, Handle value, CacheHolderFlag cache_holder) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { // TODO(dcarney): this currently just deopts. Use the transition cell. TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobalTransition); auto cell = isolate()->factory()->NewPropertyCell(); cell->set_value(*value); auto code = PropertyCellStoreHandler( isolate(), store_target, Handle::cast(store_target), lookup->name(), cell, PropertyCellType::kConstant); cell->set_value(isolate()->heap()->the_hole_value()); return code; } Handle transition = lookup->transition_map(); // Currently not handled by CompileStoreTransition. DCHECK(holder->HasFastProperties()); DCHECK(lookup->IsCacheableTransition()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreTransition); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreTransition(transition, lookup->name()); } case LookupIterator::INTERCEPTOR: UNREACHABLE(); case LookupIterator::ACCESSOR: { DCHECK(holder->HasFastProperties()); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->setter()) != 0); DCHECK(!AccessorInfo::cast(*accessors)->is_special_data_property() || lookup->HolderIsReceiverOrHiddenPrototype()); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), info, language_mode()); return code; } else { DCHECK(accessors->IsAccessorPair()); Handle setter(Handle::cast(accessors)->setter(), isolate()); DCHECK(setter->IsJSFunction() || setter->IsFunctionTemplateInfo()); CallOptimization call_optimization(setter); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); if (call_optimization.is_simple_api_call()) { DCHECK(call_optimization.IsCompatibleReceiver(receiver, holder)); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), call_optimization, lookup->GetAccessorIndex()); return code; } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreViaSetter); int expected_arguments = JSFunction::cast(*setter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileStoreViaSetter(receiver, lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobal); DCHECK(holder.is_identical_to(receiver) || receiver->map()->prototype() == *holder); auto cell = lookup->GetPropertyCell(); auto updated_type = PropertyCell::UpdatedType(cell, value, lookup->property_details()); auto code = PropertyCellStoreHandler( isolate(), receiver, Handle::cast(holder), lookup->name(), cell, updated_type); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { #ifdef DEBUG bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } DCHECK(!use_stub); #endif TRACE_HANDLER_STATS(isolate(), StoreIC_StoreField); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreField(lookup); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); UNREACHABLE(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } void KeyedStoreIC::UpdateStoreElement(Handle receiver_map, KeyedAccessStoreMode store_mode) { MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle monomorphic_map = ComputeTransitionedMap(receiver_map, store_mode); store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(monomorphic_map, store_mode); return ConfigureVectorState(Handle(), monomorphic_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { if (!target_receiver_maps.at(i).is_null() && target_receiver_maps.at(i)->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "JSValue"); return; } } // There are several special cases where an IC that is MONOMORPHIC can still // transition to a different GetNonTransitioningStoreMode IC that handles a // superset of the original IC. Handle those here if the receiver map hasn't // changed or it has transitioned to a more general kind. KeyedAccessStoreMode old_store_mode = GetKeyedAccessStoreMode(); Handle previous_receiver_map = target_receiver_maps.at(0); if (state() == MONOMORPHIC) { Handle transitioned_receiver_map = receiver_map; if (IsTransitionStoreMode(store_mode)) { transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); } if ((receiver_map.is_identical_to(previous_receiver_map) && IsTransitionStoreMode(store_mode)) || IsTransitionOfMonomorphicTarget(*previous_receiver_map, *transitioned_receiver_map)) { // If the "old" and "new" maps are in the same elements map family, or // if they at least come from the same origin for a transitioning store, // stay MONOMORPHIC and use the map for the most generic ElementsKind. store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler( transitioned_receiver_map, store_mode); ConfigureVectorState(Handle(), transitioned_receiver_map, handler); return; } if (receiver_map.is_identical_to(previous_receiver_map) && old_store_mode == STANDARD_STORE && (store_mode == STORE_AND_GROW_NO_TRANSITION || store_mode == STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS || store_mode == STORE_NO_TRANSITION_HANDLE_COW)) { // A "normal" IC that handles stores can switch to a version that can // grow at the end of the array, handle OOB accesses or copy COW arrays // and still stay MONOMORPHIC. Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(receiver_map, store_mode); return ConfigureVectorState(Handle(), receiver_map, handler); } } DCHECK(state() != GENERIC); bool map_added = AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map); if (IsTransitionStoreMode(store_mode)) { Handle transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); map_added |= AddOneReceiverMapIfMissing(&target_receiver_maps, transitioned_receiver_map); } if (!map_added) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the megamorphic stub which can handle everything. TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the // megamorphic version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) return; // Make sure all polymorphic handlers have the same store mode, otherwise the // megamorphic stub must be used. store_mode = GetNonTransitioningStoreMode(store_mode); if (old_store_mode != STANDARD_STORE) { if (store_mode == STANDARD_STORE) { store_mode = old_store_mode; } else if (store_mode != old_store_mode) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "store mode mismatch"); return; } } // If the store mode isn't the standard mode, make sure that all polymorphic // receivers are either external arrays, or all "normal" arrays. Otherwise, // use the megamorphic stub. if (store_mode != STANDARD_STORE) { int external_arrays = 0; for (int i = 0; i < target_receiver_maps.length(); ++i) { if (target_receiver_maps[i]->has_fixed_typed_array_elements()) { external_arrays++; } } if (external_arrays != 0 && external_arrays != target_receiver_maps.length()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unsupported combination of external and normal arrays"); return; } } TRACE_HANDLER_STATS(isolate(), KeyedStoreIC_Polymorphic); MapHandleList transitioned_maps(target_receiver_maps.length()); CodeHandleList handlers(target_receiver_maps.length()); PropertyICCompiler::ComputeKeyedStorePolymorphicHandlers( &target_receiver_maps, &transitioned_maps, &handlers, store_mode); ConfigureVectorState(&target_receiver_maps, &transitioned_maps, &handlers); } Handle KeyedStoreIC::ComputeTransitionedMap( Handle map, KeyedAccessStoreMode store_mode) { switch (store_mode) { case STORE_TRANSITION_TO_OBJECT: case STORE_AND_GROW_TRANSITION_TO_OBJECT: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_ELEMENTS : FAST_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_TRANSITION_TO_DOUBLE: case STORE_AND_GROW_TRANSITION_TO_DOUBLE: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_DOUBLE_ELEMENTS : FAST_DOUBLE_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS: DCHECK(map->has_fixed_typed_array_elements()); // Fall through case STORE_NO_TRANSITION_HANDLE_COW: case STANDARD_STORE: case STORE_AND_GROW_NO_TRANSITION: return map; } UNREACHABLE(); return MaybeHandle().ToHandleChecked(); } bool IsOutOfBoundsAccess(Handle receiver, uint32_t index) { uint32_t length = 0; if (receiver->IsJSArray()) { JSArray::cast(*receiver)->length()->ToArrayLength(&length); } else { length = static_cast(receiver->elements()->length()); } return index >= length; } static KeyedAccessStoreMode GetStoreMode(Handle receiver, uint32_t index, Handle value) { bool oob_access = IsOutOfBoundsAccess(receiver, index); // Don't consider this a growing store if the store would send the receiver to // dictionary mode. bool allow_growth = receiver->IsJSArray() && oob_access && !receiver->WouldConvertToSlowElements(index); if (allow_growth) { // Handle growing array in stub if necessary. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_DOUBLE; } if (value->IsHeapObject()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } return STORE_AND_GROW_NO_TRANSITION; } else { // Handle only in-bounds elements accesses. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_TRANSITION_TO_DOUBLE; } else if (value->IsHeapObject()) { return STORE_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_TRANSITION_TO_OBJECT; } } if (!FLAG_trace_external_array_abuse && receiver->map()->has_fixed_typed_array_elements() && oob_access) { return STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS; } Heap* heap = receiver->GetHeap(); if (receiver->elements()->map() == heap->fixed_cow_array_map()) { return STORE_NO_TRANSITION_HANDLE_COW; } else { return STANDARD_STORE; } } } MaybeHandle KeyedStoreIC::Store(Handle object, Handle key, Handle value) { // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); return result; } // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); Handle store_handle; uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION( isolate(), store_handle, StoreIC::Store(object, Handle::cast(key), value, JSReceiver::MAY_BE_STORE_FROM_KEYED), Object); if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unhandled internalized string key"); TRACE_IC("StoreIC", key); } return store_handle; } bool use_ic = FLAG_use_ic && !object->IsStringWrapper() && !object->IsAccessCheckNeeded() && !object->IsJSGlobalProxy(); if (use_ic && !object->IsSmi()) { // Don't use ICs for maps of the objects in Array's prototype chain. We // expect to be able to trap element sets to objects with those maps in // the runtime to enable optimization of element hole access. Handle heap_object = Handle::cast(object); if (heap_object->map()->IsMapInArrayPrototypeChain()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "map in array prototype"); use_ic = false; } } Handle old_receiver_map; bool sloppy_arguments_elements = false; bool key_is_valid_index = false; KeyedAccessStoreMode store_mode = STANDARD_STORE; if (use_ic && object->IsJSObject()) { Handle receiver = Handle::cast(object); old_receiver_map = handle(receiver->map(), isolate()); sloppy_arguments_elements = !is_sloppy(language_mode()) && receiver->elements()->map() == isolate()->heap()->sloppy_arguments_elements_map(); if (!sloppy_arguments_elements) { key_is_valid_index = key->IsSmi() && Smi::cast(*key)->value() >= 0; if (key_is_valid_index) { uint32_t index = static_cast(Smi::cast(*key)->value()); store_mode = GetStoreMode(receiver, index, value); } } } DCHECK(store_handle.is_null()); ASSIGN_RETURN_ON_EXCEPTION(isolate(), store_handle, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); if (use_ic) { if (!old_receiver_map.is_null()) { if (sloppy_arguments_elements) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "arguments receiver"); } else if (key_is_valid_index) { // We should go generic if receiver isn't a dictionary, but our // prototype chain does have dictionary elements. This ensures that // other non-dictionary receivers in the polymorphic case benefit // from fast path keyed stores. if (!old_receiver_map->DictionaryElementsInPrototypeChainOnly()) { UpdateStoreElement(old_receiver_map, store_mode); } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "dictionary or proxy prototype"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-smi-like key"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-JSObject receiver"); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "set generic"); } TRACE_IC("StoreIC", key); return store_handle; } void CallIC::HandleMiss(Handle function) { Handle name = isolate()->factory()->empty_string(); CallICNexus* nexus = casted_nexus(); Object* feedback = nexus->GetFeedback(); // Hand-coded MISS handling is easier if CallIC slots don't contain smis. DCHECK(!feedback->IsSmi()); if (feedback->IsWeakCell() || !function->IsJSFunction() || feedback->IsAllocationSite()) { // We are going generic. nexus->ConfigureMegamorphic(); } else { DCHECK(feedback == *TypeFeedbackVector::UninitializedSentinel(isolate())); Handle js_function = Handle::cast(function); Handle array_function = Handle(isolate()->native_context()->array_function()); if (array_function.is_identical_to(js_function)) { // Alter the slot. nexus->ConfigureMonomorphicArray(); } else if (js_function->context()->native_context() != *isolate()->native_context()) { // Don't collect cross-native context feedback for the CallIC. // TODO(bmeurer): We should collect the SharedFunctionInfo as // feedback in this case instead. nexus->ConfigureMegamorphic(); } else { nexus->ConfigureMonomorphic(js_function); } } if (function->IsJSFunction()) { Handle
code = compiler.CompileLoadCallback( lookup->name(), call_optimization, index); return code; } TRACE_HANDLER_STATS(isolate(), LoadIC_LoadViaGetter); int expected_arguments = Handle::cast(getter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileLoadViaGetter( lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } else { DCHECK(accessors->IsAccessorInfo()); Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->getter()) != nullptr); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, map)); DCHECK(holder->HasFastProperties()); DCHECK(!receiver_is_holder); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadCallback); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle code = compiler.CompileLoadCallback(lookup->name(), info); return code; } UNREACHABLE(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC); DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadGlobal); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle cell = lookup->GetPropertyCell(); Handle code = compiler.CompileLoadGlobal( cell, lookup->name(), lookup->IsConfigurable()); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { FieldIndex field = lookup->GetFieldIndex(); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadField); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadField(lookup->name(), field); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadConstant); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadConstant(lookup->name(), lookup->GetConstantIndex()); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } static Handle TryConvertKey(Handle key, Isolate* isolate) { // This helper implements a few common fast cases for converting // non-smi keys of keyed loads/stores to a smi or a string. if (key->IsHeapNumber()) { double value = Handle::cast(key)->value(); if (std::isnan(value)) { key = isolate->factory()->nan_string(); } else { int int_value = FastD2I(value); if (value == int_value && Smi::IsValid(int_value)) { key = handle(Smi::FromInt(int_value), isolate); } } } else if (key->IsUndefined(isolate)) { key = isolate->factory()->undefined_string(); } return key; } void KeyedLoadIC::UpdateLoadElement(Handle receiver) { Handle receiver_map(receiver->map(), isolate()); DCHECK(receiver_map->instance_type() != JS_VALUE_TYPE && receiver_map->instance_type() != JS_PROXY_TYPE); // Checked by caller. MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { Handle map = target_receiver_maps.at(i); if (map.is_null()) continue; if (map->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSValue"); return; } if (map->instance_type() == JS_PROXY_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSProxy"); return; } } // The first time a receiver is seen that is a transitioned version of the // previous monomorphic receiver type, assume the new ElementsKind is the // monomorphic type. This benefits global arrays that only transition // once, and all call sites accessing them are faster if they remain // monomorphic. If this optimistic assumption is not true, the IC will // miss again and it will become polymorphic and support both the // untransitioned and transitioned maps. if (state() == MONOMORPHIC && !receiver->IsString() && IsMoreGeneralElementsKindTransition( target_receiver_maps.at(0)->elements_kind(), Handle::cast(receiver)->GetElementsKind())) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } DCHECK(state() != GENERIC); // Determine the list of receiver maps that this call site has seen, // adding the map that was just encountered. if (!AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map)) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the generic stub. TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the generic // version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "max polymorph exceeded"); return; } CodeHandleList handlers(target_receiver_maps.length()); TRACE_HANDLER_STATS(isolate(), KeyedLoadIC_PolymorphicElement); ElementHandlerCompiler compiler(isolate()); compiler.CompileElementHandlers(&target_receiver_maps, &handlers); ConfigureVectorState(Handle(), &target_receiver_maps, &handlers); } MaybeHandle KeyedLoadIC::Load(Handle object, Handle key) { if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } Handle load_handle; // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION(isolate(), load_handle, LoadIC::Load(object, Handle::cast(key)), Object); } else if (FLAG_use_ic && !object->IsAccessCheckNeeded() && !object->IsJSValue()) { if (object->IsJSObject() || (object->IsString() && key->IsNumber())) { Handle receiver = Handle::cast(object); if (object->IsString() || key->IsSmi()) UpdateLoadElement(receiver); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "set generic"); } TRACE_IC("LoadIC", key); if (!load_handle.is_null()) return load_handle; Handle result; ASSIGN_RETURN_ON_EXCEPTION(isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } bool StoreIC::LookupForWrite(LookupIterator* it, Handle value, JSReceiver::StoreFromKeyed store_mode) { // Disable ICs for non-JSObjects for now. Handle object = it->GetReceiver(); if (!object->IsJSObject()) return false; Handle receiver = Handle::cast(object); DCHECK(!receiver->map()->is_deprecated()); for (; it->IsFound(); it->Next()) { switch (it->state()) { case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); case LookupIterator::JSPROXY: return false; case LookupIterator::INTERCEPTOR: { Handle holder = it->GetHolder(); InterceptorInfo* info = holder->GetNamedInterceptor(); if (it->HolderIsReceiverOrHiddenPrototype()) { return !info->non_masking() && receiver.is_identical_to(holder) && !info->setter()->IsUndefined(it->isolate()); } else if (!info->getter()->IsUndefined(it->isolate()) || !info->query()->IsUndefined(it->isolate())) { return false; } break; } case LookupIterator::ACCESS_CHECK: if (it->GetHolder()->IsAccessCheckNeeded()) return false; break; case LookupIterator::ACCESSOR: return !it->IsReadOnly(); case LookupIterator::INTEGER_INDEXED_EXOTIC: return false; case LookupIterator::DATA: { if (it->IsReadOnly()) return false; Handle holder = it->GetHolder(); if (receiver.is_identical_to(holder)) { it->PrepareForDataProperty(value); // The previous receiver map might just have been deprecated, // so reload it. update_receiver_map(receiver); return true; } // Receiver != holder. if (receiver->IsJSGlobalProxy()) { PrototypeIterator iter(it->isolate(), receiver); return it->GetHolder().is_identical_to( PrototypeIterator::GetCurrent(iter)); } if (it->HolderIsReceiverOrHiddenPrototype()) return false; if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } } } receiver = it->GetStoreTarget(); if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } MaybeHandle StoreIC::Store(Handle object, Handle name, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (object->IsJSGlobalObject() && name->IsString()) { // Look up in script context table. Handle str_name = Handle::cast(name); Handle global = Handle::cast(object); Handle script_contexts( global->native_context()->script_context_table()); ScriptContextTable::LookupResult lookup_result; if (ScriptContextTable::Lookup(script_contexts, str_name, &lookup_result)) { Handle script_context = ScriptContextTable::GetContext( script_contexts, lookup_result.context_index); if (lookup_result.mode == CONST) { return TypeError(MessageTemplate::kConstAssign, object, name); } Handle previous_value = FixedArray::get(*script_context, lookup_result.slot_index, isolate()); if (previous_value->IsTheHole(isolate())) { // Do not install stubs and stay pre-monomorphic for // uninitialized accesses. return ReferenceError(name); } if (FLAG_use_ic && StoreScriptContextFieldStub::Accepted(&lookup_result)) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreScriptContextFieldStub); StoreScriptContextFieldStub stub(isolate(), &lookup_result); PatchCache(name, stub.GetCode()); } script_context->set(lookup_result.slot_index, *value); return value; } } // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object) || object->IsJSProxy()) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Object::SetProperty(object, name, value, language_mode()), Object); return result; } // If the object is undefined or null it's illegal to try to set any // properties on it; throw a TypeError in that case. if (object->IsUndefined(isolate()) || object->IsNull(isolate())) { return TypeError(MessageTemplate::kNonObjectPropertyStore, object, name); } if (state() != UNINITIALIZED) { JSObject::MakePrototypesFast(object, kStartAtPrototype, isolate()); } LookupIterator it(object, name); if (FLAG_use_ic) UpdateCaches(&it, value, store_mode); MAYBE_RETURN_NULL( Object::SetProperty(&it, value, language_mode(), store_mode)); return value; } Handle CallIC::initialize_stub_in_optimized_code( Isolate* isolate, int argc, ConvertReceiverMode mode, TailCallMode tail_call_mode) { CallICStub stub(isolate, CallICState(argc, mode, tail_call_mode)); Handle code = stub.GetCode(); return code; } Handle StoreIC::initialize_stub_in_optimized_code( Isolate* isolate, LanguageMode language_mode) { VectorStoreICStub stub(isolate, StoreICState(language_mode)); return stub.GetCode(); } void StoreIC::UpdateCaches(LookupIterator* lookup, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (state() == UNINITIALIZED) { // This is the first time we execute this inline cache. Set the target to // the pre monomorphic stub to delay setting the monomorphic state. ConfigureVectorState(PREMONOMORPHIC, Handle()); TRACE_IC("StoreIC", lookup->name()); return; } bool use_ic = LookupForWrite(lookup, value, store_mode); if (!use_ic) { TRACE_GENERIC_IC(isolate(), "StoreIC", "LookupForWrite said 'false'"); } Handle code = use_ic ? ComputeHandler(lookup, value) : slow_stub(); PatchCache(lookup->name(), code); TRACE_IC("StoreIC", lookup->name()); } static Handle PropertyCellStoreHandler( Isolate* isolate, Handle receiver, Handle holder, Handle name, Handle cell, PropertyCellType type) { auto constant_type = Nothing(); if (type == PropertyCellType::kConstantType) { constant_type = Just(cell->GetConstantType()); } StoreGlobalStub stub(isolate, type, constant_type, receiver->IsJSGlobalProxy()); auto code = stub.GetCodeCopyFromTemplate(holder, cell); // TODO(verwaest): Move caching of these NORMAL stubs outside as well. HeapObject::UpdateMapCodeCache(receiver, name, code); return code; } Handle StoreIC::GetMapIndependentHandler(LookupIterator* lookup) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { break; // Custom-compiled handler. } // Currently not handled by CompileStoreTransition. if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "transition from slow"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } DCHECK(lookup->IsCacheableTransition()); break; // Custom-compiled handler. } case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->setter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreInterceptorStub); StoreInterceptorStub stub(isolate()); return stub.GetCode(); } case LookupIterator::ACCESSOR: { if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "accessor on slow map"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->setter()) == nullptr) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter == nullptr"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (AccessorInfo::cast(*accessors)->is_special_data_property() && !lookup->HolderIsReceiverOrHiddenPrototype()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "special data property in prototype chain"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (!AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())) { TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver type"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorPair()) { Handle setter(Handle::cast(accessors)->setter(), isolate()); if (!setter->IsJSFunction() && !setter->IsFunctionTemplateInfo()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter not a function"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } CallOptimization call_optimization(setter); if (call_optimization.is_simple_api_call()) { if (call_optimization.IsCompatibleReceiver(receiver, holder)) { break; // Custom-compiled handler. } TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreNormal); DCHECK(holder.is_identical_to(receiver)); return isolate()->builtins()->StoreIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } if (use_stub) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreFieldStub); StoreFieldStub stub(isolate(), lookup->GetFieldIndex(), lookup->representation()); return stub.GetCode(); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); TRACE_GENERIC_IC(isolate(), "StoreIC", "constant property"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } return Handle::null(); } Handle StoreIC::CompileHandler(LookupIterator* lookup, Handle value, CacheHolderFlag cache_holder) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { // TODO(dcarney): this currently just deopts. Use the transition cell. TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobalTransition); auto cell = isolate()->factory()->NewPropertyCell(); cell->set_value(*value); auto code = PropertyCellStoreHandler( isolate(), store_target, Handle::cast(store_target), lookup->name(), cell, PropertyCellType::kConstant); cell->set_value(isolate()->heap()->the_hole_value()); return code; } Handle transition = lookup->transition_map(); // Currently not handled by CompileStoreTransition. DCHECK(holder->HasFastProperties()); DCHECK(lookup->IsCacheableTransition()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreTransition); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreTransition(transition, lookup->name()); } case LookupIterator::INTERCEPTOR: UNREACHABLE(); case LookupIterator::ACCESSOR: { DCHECK(holder->HasFastProperties()); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->setter()) != 0); DCHECK(!AccessorInfo::cast(*accessors)->is_special_data_property() || lookup->HolderIsReceiverOrHiddenPrototype()); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), info, language_mode()); return code; } else { DCHECK(accessors->IsAccessorPair()); Handle setter(Handle::cast(accessors)->setter(), isolate()); DCHECK(setter->IsJSFunction() || setter->IsFunctionTemplateInfo()); CallOptimization call_optimization(setter); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); if (call_optimization.is_simple_api_call()) { DCHECK(call_optimization.IsCompatibleReceiver(receiver, holder)); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), call_optimization, lookup->GetAccessorIndex()); return code; } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreViaSetter); int expected_arguments = JSFunction::cast(*setter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileStoreViaSetter(receiver, lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobal); DCHECK(holder.is_identical_to(receiver) || receiver->map()->prototype() == *holder); auto cell = lookup->GetPropertyCell(); auto updated_type = PropertyCell::UpdatedType(cell, value, lookup->property_details()); auto code = PropertyCellStoreHandler( isolate(), receiver, Handle::cast(holder), lookup->name(), cell, updated_type); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { #ifdef DEBUG bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } DCHECK(!use_stub); #endif TRACE_HANDLER_STATS(isolate(), StoreIC_StoreField); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreField(lookup); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); UNREACHABLE(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } void KeyedStoreIC::UpdateStoreElement(Handle receiver_map, KeyedAccessStoreMode store_mode) { MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle monomorphic_map = ComputeTransitionedMap(receiver_map, store_mode); store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(monomorphic_map, store_mode); return ConfigureVectorState(Handle(), monomorphic_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { if (!target_receiver_maps.at(i).is_null() && target_receiver_maps.at(i)->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "JSValue"); return; } } // There are several special cases where an IC that is MONOMORPHIC can still // transition to a different GetNonTransitioningStoreMode IC that handles a // superset of the original IC. Handle those here if the receiver map hasn't // changed or it has transitioned to a more general kind. KeyedAccessStoreMode old_store_mode = GetKeyedAccessStoreMode(); Handle previous_receiver_map = target_receiver_maps.at(0); if (state() == MONOMORPHIC) { Handle transitioned_receiver_map = receiver_map; if (IsTransitionStoreMode(store_mode)) { transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); } if ((receiver_map.is_identical_to(previous_receiver_map) && IsTransitionStoreMode(store_mode)) || IsTransitionOfMonomorphicTarget(*previous_receiver_map, *transitioned_receiver_map)) { // If the "old" and "new" maps are in the same elements map family, or // if they at least come from the same origin for a transitioning store, // stay MONOMORPHIC and use the map for the most generic ElementsKind. store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler( transitioned_receiver_map, store_mode); ConfigureVectorState(Handle(), transitioned_receiver_map, handler); return; } if (receiver_map.is_identical_to(previous_receiver_map) && old_store_mode == STANDARD_STORE && (store_mode == STORE_AND_GROW_NO_TRANSITION || store_mode == STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS || store_mode == STORE_NO_TRANSITION_HANDLE_COW)) { // A "normal" IC that handles stores can switch to a version that can // grow at the end of the array, handle OOB accesses or copy COW arrays // and still stay MONOMORPHIC. Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(receiver_map, store_mode); return ConfigureVectorState(Handle(), receiver_map, handler); } } DCHECK(state() != GENERIC); bool map_added = AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map); if (IsTransitionStoreMode(store_mode)) { Handle transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); map_added |= AddOneReceiverMapIfMissing(&target_receiver_maps, transitioned_receiver_map); } if (!map_added) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the megamorphic stub which can handle everything. TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the // megamorphic version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) return; // Make sure all polymorphic handlers have the same store mode, otherwise the // megamorphic stub must be used. store_mode = GetNonTransitioningStoreMode(store_mode); if (old_store_mode != STANDARD_STORE) { if (store_mode == STANDARD_STORE) { store_mode = old_store_mode; } else if (store_mode != old_store_mode) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "store mode mismatch"); return; } } // If the store mode isn't the standard mode, make sure that all polymorphic // receivers are either external arrays, or all "normal" arrays. Otherwise, // use the megamorphic stub. if (store_mode != STANDARD_STORE) { int external_arrays = 0; for (int i = 0; i < target_receiver_maps.length(); ++i) { if (target_receiver_maps[i]->has_fixed_typed_array_elements()) { external_arrays++; } } if (external_arrays != 0 && external_arrays != target_receiver_maps.length()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unsupported combination of external and normal arrays"); return; } } TRACE_HANDLER_STATS(isolate(), KeyedStoreIC_Polymorphic); MapHandleList transitioned_maps(target_receiver_maps.length()); CodeHandleList handlers(target_receiver_maps.length()); PropertyICCompiler::ComputeKeyedStorePolymorphicHandlers( &target_receiver_maps, &transitioned_maps, &handlers, store_mode); ConfigureVectorState(&target_receiver_maps, &transitioned_maps, &handlers); } Handle KeyedStoreIC::ComputeTransitionedMap( Handle map, KeyedAccessStoreMode store_mode) { switch (store_mode) { case STORE_TRANSITION_TO_OBJECT: case STORE_AND_GROW_TRANSITION_TO_OBJECT: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_ELEMENTS : FAST_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_TRANSITION_TO_DOUBLE: case STORE_AND_GROW_TRANSITION_TO_DOUBLE: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_DOUBLE_ELEMENTS : FAST_DOUBLE_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS: DCHECK(map->has_fixed_typed_array_elements()); // Fall through case STORE_NO_TRANSITION_HANDLE_COW: case STANDARD_STORE: case STORE_AND_GROW_NO_TRANSITION: return map; } UNREACHABLE(); return MaybeHandle().ToHandleChecked(); } bool IsOutOfBoundsAccess(Handle receiver, uint32_t index) { uint32_t length = 0; if (receiver->IsJSArray()) { JSArray::cast(*receiver)->length()->ToArrayLength(&length); } else { length = static_cast(receiver->elements()->length()); } return index >= length; } static KeyedAccessStoreMode GetStoreMode(Handle receiver, uint32_t index, Handle value) { bool oob_access = IsOutOfBoundsAccess(receiver, index); // Don't consider this a growing store if the store would send the receiver to // dictionary mode. bool allow_growth = receiver->IsJSArray() && oob_access && !receiver->WouldConvertToSlowElements(index); if (allow_growth) { // Handle growing array in stub if necessary. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_DOUBLE; } if (value->IsHeapObject()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } return STORE_AND_GROW_NO_TRANSITION; } else { // Handle only in-bounds elements accesses. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_TRANSITION_TO_DOUBLE; } else if (value->IsHeapObject()) { return STORE_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_TRANSITION_TO_OBJECT; } } if (!FLAG_trace_external_array_abuse && receiver->map()->has_fixed_typed_array_elements() && oob_access) { return STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS; } Heap* heap = receiver->GetHeap(); if (receiver->elements()->map() == heap->fixed_cow_array_map()) { return STORE_NO_TRANSITION_HANDLE_COW; } else { return STANDARD_STORE; } } } MaybeHandle KeyedStoreIC::Store(Handle object, Handle key, Handle value) { // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); return result; } // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); Handle store_handle; uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION( isolate(), store_handle, StoreIC::Store(object, Handle::cast(key), value, JSReceiver::MAY_BE_STORE_FROM_KEYED), Object); if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unhandled internalized string key"); TRACE_IC("StoreIC", key); } return store_handle; } bool use_ic = FLAG_use_ic && !object->IsStringWrapper() && !object->IsAccessCheckNeeded() && !object->IsJSGlobalProxy(); if (use_ic && !object->IsSmi()) { // Don't use ICs for maps of the objects in Array's prototype chain. We // expect to be able to trap element sets to objects with those maps in // the runtime to enable optimization of element hole access. Handle heap_object = Handle::cast(object); if (heap_object->map()->IsMapInArrayPrototypeChain()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "map in array prototype"); use_ic = false; } } Handle old_receiver_map; bool sloppy_arguments_elements = false; bool key_is_valid_index = false; KeyedAccessStoreMode store_mode = STANDARD_STORE; if (use_ic && object->IsJSObject()) { Handle receiver = Handle::cast(object); old_receiver_map = handle(receiver->map(), isolate()); sloppy_arguments_elements = !is_sloppy(language_mode()) && receiver->elements()->map() == isolate()->heap()->sloppy_arguments_elements_map(); if (!sloppy_arguments_elements) { key_is_valid_index = key->IsSmi() && Smi::cast(*key)->value() >= 0; if (key_is_valid_index) { uint32_t index = static_cast(Smi::cast(*key)->value()); store_mode = GetStoreMode(receiver, index, value); } } } DCHECK(store_handle.is_null()); ASSIGN_RETURN_ON_EXCEPTION(isolate(), store_handle, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); if (use_ic) { if (!old_receiver_map.is_null()) { if (sloppy_arguments_elements) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "arguments receiver"); } else if (key_is_valid_index) { // We should go generic if receiver isn't a dictionary, but our // prototype chain does have dictionary elements. This ensures that // other non-dictionary receivers in the polymorphic case benefit // from fast path keyed stores. if (!old_receiver_map->DictionaryElementsInPrototypeChainOnly()) { UpdateStoreElement(old_receiver_map, store_mode); } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "dictionary or proxy prototype"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-smi-like key"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-JSObject receiver"); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "set generic"); } TRACE_IC("StoreIC", key); return store_handle; } void CallIC::HandleMiss(Handle function) { Handle name = isolate()->factory()->empty_string(); CallICNexus* nexus = casted_nexus(); Object* feedback = nexus->GetFeedback(); // Hand-coded MISS handling is easier if CallIC slots don't contain smis. DCHECK(!feedback->IsSmi()); if (feedback->IsWeakCell() || !function->IsJSFunction() || feedback->IsAllocationSite()) { // We are going generic. nexus->ConfigureMegamorphic(); } else { DCHECK(feedback == *TypeFeedbackVector::UninitializedSentinel(isolate())); Handle js_function = Handle::cast(function); Handle array_function = Handle(isolate()->native_context()->array_function()); if (array_function.is_identical_to(js_function)) { // Alter the slot. nexus->ConfigureMonomorphicArray(); } else if (js_function->context()->native_context() != *isolate()->native_context()) { // Don't collect cross-native context feedback for the CallIC. // TODO(bmeurer): We should collect the SharedFunctionInfo as // feedback in this case instead. nexus->ConfigureMegamorphic(); } else { nexus->ConfigureMonomorphic(js_function); } } if (function->IsJSFunction()) { Handle
code = compiler.CompileLoadCallback(lookup->name(), info); return code; } UNREACHABLE(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(kind() == Code::LOAD_IC || kind() == Code::LOAD_GLOBAL_IC); DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadGlobal); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); Handle cell = lookup->GetPropertyCell(); Handle code = compiler.CompileLoadGlobal( cell, lookup->name(), lookup->IsConfigurable()); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { FieldIndex field = lookup->GetFieldIndex(); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadField); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadField(lookup->name(), field); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadConstant); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadConstant(lookup->name(), lookup->GetConstantIndex()); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } static Handle TryConvertKey(Handle key, Isolate* isolate) { // This helper implements a few common fast cases for converting // non-smi keys of keyed loads/stores to a smi or a string. if (key->IsHeapNumber()) { double value = Handle::cast(key)->value(); if (std::isnan(value)) { key = isolate->factory()->nan_string(); } else { int int_value = FastD2I(value); if (value == int_value && Smi::IsValid(int_value)) { key = handle(Smi::FromInt(int_value), isolate); } } } else if (key->IsUndefined(isolate)) { key = isolate->factory()->undefined_string(); } return key; } void KeyedLoadIC::UpdateLoadElement(Handle receiver) { Handle receiver_map(receiver->map(), isolate()); DCHECK(receiver_map->instance_type() != JS_VALUE_TYPE && receiver_map->instance_type() != JS_PROXY_TYPE); // Checked by caller. MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { Handle map = target_receiver_maps.at(i); if (map.is_null()) continue; if (map->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSValue"); return; } if (map->instance_type() == JS_PROXY_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSProxy"); return; } } // The first time a receiver is seen that is a transitioned version of the // previous monomorphic receiver type, assume the new ElementsKind is the // monomorphic type. This benefits global arrays that only transition // once, and all call sites accessing them are faster if they remain // monomorphic. If this optimistic assumption is not true, the IC will // miss again and it will become polymorphic and support both the // untransitioned and transitioned maps. if (state() == MONOMORPHIC && !receiver->IsString() && IsMoreGeneralElementsKindTransition( target_receiver_maps.at(0)->elements_kind(), Handle::cast(receiver)->GetElementsKind())) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } DCHECK(state() != GENERIC); // Determine the list of receiver maps that this call site has seen, // adding the map that was just encountered. if (!AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map)) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the generic stub. TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the generic // version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "max polymorph exceeded"); return; } CodeHandleList handlers(target_receiver_maps.length()); TRACE_HANDLER_STATS(isolate(), KeyedLoadIC_PolymorphicElement); ElementHandlerCompiler compiler(isolate()); compiler.CompileElementHandlers(&target_receiver_maps, &handlers); ConfigureVectorState(Handle(), &target_receiver_maps, &handlers); } MaybeHandle KeyedLoadIC::Load(Handle object, Handle key) { if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } Handle load_handle; // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION(isolate(), load_handle, LoadIC::Load(object, Handle::cast(key)), Object); } else if (FLAG_use_ic && !object->IsAccessCheckNeeded() && !object->IsJSValue()) { if (object->IsJSObject() || (object->IsString() && key->IsNumber())) { Handle receiver = Handle::cast(object); if (object->IsString() || key->IsSmi()) UpdateLoadElement(receiver); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "set generic"); } TRACE_IC("LoadIC", key); if (!load_handle.is_null()) return load_handle; Handle result; ASSIGN_RETURN_ON_EXCEPTION(isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } bool StoreIC::LookupForWrite(LookupIterator* it, Handle value, JSReceiver::StoreFromKeyed store_mode) { // Disable ICs for non-JSObjects for now. Handle object = it->GetReceiver(); if (!object->IsJSObject()) return false; Handle receiver = Handle::cast(object); DCHECK(!receiver->map()->is_deprecated()); for (; it->IsFound(); it->Next()) { switch (it->state()) { case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); case LookupIterator::JSPROXY: return false; case LookupIterator::INTERCEPTOR: { Handle holder = it->GetHolder(); InterceptorInfo* info = holder->GetNamedInterceptor(); if (it->HolderIsReceiverOrHiddenPrototype()) { return !info->non_masking() && receiver.is_identical_to(holder) && !info->setter()->IsUndefined(it->isolate()); } else if (!info->getter()->IsUndefined(it->isolate()) || !info->query()->IsUndefined(it->isolate())) { return false; } break; } case LookupIterator::ACCESS_CHECK: if (it->GetHolder()->IsAccessCheckNeeded()) return false; break; case LookupIterator::ACCESSOR: return !it->IsReadOnly(); case LookupIterator::INTEGER_INDEXED_EXOTIC: return false; case LookupIterator::DATA: { if (it->IsReadOnly()) return false; Handle holder = it->GetHolder(); if (receiver.is_identical_to(holder)) { it->PrepareForDataProperty(value); // The previous receiver map might just have been deprecated, // so reload it. update_receiver_map(receiver); return true; } // Receiver != holder. if (receiver->IsJSGlobalProxy()) { PrototypeIterator iter(it->isolate(), receiver); return it->GetHolder().is_identical_to( PrototypeIterator::GetCurrent(iter)); } if (it->HolderIsReceiverOrHiddenPrototype()) return false; if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } } } receiver = it->GetStoreTarget(); if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } MaybeHandle StoreIC::Store(Handle object, Handle name, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (object->IsJSGlobalObject() && name->IsString()) { // Look up in script context table. Handle str_name = Handle::cast(name); Handle global = Handle::cast(object); Handle script_contexts( global->native_context()->script_context_table()); ScriptContextTable::LookupResult lookup_result; if (ScriptContextTable::Lookup(script_contexts, str_name, &lookup_result)) { Handle script_context = ScriptContextTable::GetContext( script_contexts, lookup_result.context_index); if (lookup_result.mode == CONST) { return TypeError(MessageTemplate::kConstAssign, object, name); } Handle previous_value = FixedArray::get(*script_context, lookup_result.slot_index, isolate()); if (previous_value->IsTheHole(isolate())) { // Do not install stubs and stay pre-monomorphic for // uninitialized accesses. return ReferenceError(name); } if (FLAG_use_ic && StoreScriptContextFieldStub::Accepted(&lookup_result)) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreScriptContextFieldStub); StoreScriptContextFieldStub stub(isolate(), &lookup_result); PatchCache(name, stub.GetCode()); } script_context->set(lookup_result.slot_index, *value); return value; } } // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object) || object->IsJSProxy()) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Object::SetProperty(object, name, value, language_mode()), Object); return result; } // If the object is undefined or null it's illegal to try to set any // properties on it; throw a TypeError in that case. if (object->IsUndefined(isolate()) || object->IsNull(isolate())) { return TypeError(MessageTemplate::kNonObjectPropertyStore, object, name); } if (state() != UNINITIALIZED) { JSObject::MakePrototypesFast(object, kStartAtPrototype, isolate()); } LookupIterator it(object, name); if (FLAG_use_ic) UpdateCaches(&it, value, store_mode); MAYBE_RETURN_NULL( Object::SetProperty(&it, value, language_mode(), store_mode)); return value; } Handle CallIC::initialize_stub_in_optimized_code( Isolate* isolate, int argc, ConvertReceiverMode mode, TailCallMode tail_call_mode) { CallICStub stub(isolate, CallICState(argc, mode, tail_call_mode)); Handle code = stub.GetCode(); return code; } Handle StoreIC::initialize_stub_in_optimized_code( Isolate* isolate, LanguageMode language_mode) { VectorStoreICStub stub(isolate, StoreICState(language_mode)); return stub.GetCode(); } void StoreIC::UpdateCaches(LookupIterator* lookup, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (state() == UNINITIALIZED) { // This is the first time we execute this inline cache. Set the target to // the pre monomorphic stub to delay setting the monomorphic state. ConfigureVectorState(PREMONOMORPHIC, Handle()); TRACE_IC("StoreIC", lookup->name()); return; } bool use_ic = LookupForWrite(lookup, value, store_mode); if (!use_ic) { TRACE_GENERIC_IC(isolate(), "StoreIC", "LookupForWrite said 'false'"); } Handle code = use_ic ? ComputeHandler(lookup, value) : slow_stub(); PatchCache(lookup->name(), code); TRACE_IC("StoreIC", lookup->name()); } static Handle PropertyCellStoreHandler( Isolate* isolate, Handle receiver, Handle holder, Handle name, Handle cell, PropertyCellType type) { auto constant_type = Nothing(); if (type == PropertyCellType::kConstantType) { constant_type = Just(cell->GetConstantType()); } StoreGlobalStub stub(isolate, type, constant_type, receiver->IsJSGlobalProxy()); auto code = stub.GetCodeCopyFromTemplate(holder, cell); // TODO(verwaest): Move caching of these NORMAL stubs outside as well. HeapObject::UpdateMapCodeCache(receiver, name, code); return code; } Handle StoreIC::GetMapIndependentHandler(LookupIterator* lookup) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { break; // Custom-compiled handler. } // Currently not handled by CompileStoreTransition. if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "transition from slow"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } DCHECK(lookup->IsCacheableTransition()); break; // Custom-compiled handler. } case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->setter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreInterceptorStub); StoreInterceptorStub stub(isolate()); return stub.GetCode(); } case LookupIterator::ACCESSOR: { if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "accessor on slow map"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->setter()) == nullptr) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter == nullptr"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (AccessorInfo::cast(*accessors)->is_special_data_property() && !lookup->HolderIsReceiverOrHiddenPrototype()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "special data property in prototype chain"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (!AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())) { TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver type"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorPair()) { Handle setter(Handle::cast(accessors)->setter(), isolate()); if (!setter->IsJSFunction() && !setter->IsFunctionTemplateInfo()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter not a function"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } CallOptimization call_optimization(setter); if (call_optimization.is_simple_api_call()) { if (call_optimization.IsCompatibleReceiver(receiver, holder)) { break; // Custom-compiled handler. } TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreNormal); DCHECK(holder.is_identical_to(receiver)); return isolate()->builtins()->StoreIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } if (use_stub) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreFieldStub); StoreFieldStub stub(isolate(), lookup->GetFieldIndex(), lookup->representation()); return stub.GetCode(); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); TRACE_GENERIC_IC(isolate(), "StoreIC", "constant property"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } return Handle::null(); } Handle StoreIC::CompileHandler(LookupIterator* lookup, Handle value, CacheHolderFlag cache_holder) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { // TODO(dcarney): this currently just deopts. Use the transition cell. TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobalTransition); auto cell = isolate()->factory()->NewPropertyCell(); cell->set_value(*value); auto code = PropertyCellStoreHandler( isolate(), store_target, Handle::cast(store_target), lookup->name(), cell, PropertyCellType::kConstant); cell->set_value(isolate()->heap()->the_hole_value()); return code; } Handle transition = lookup->transition_map(); // Currently not handled by CompileStoreTransition. DCHECK(holder->HasFastProperties()); DCHECK(lookup->IsCacheableTransition()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreTransition); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreTransition(transition, lookup->name()); } case LookupIterator::INTERCEPTOR: UNREACHABLE(); case LookupIterator::ACCESSOR: { DCHECK(holder->HasFastProperties()); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->setter()) != 0); DCHECK(!AccessorInfo::cast(*accessors)->is_special_data_property() || lookup->HolderIsReceiverOrHiddenPrototype()); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), info, language_mode()); return code; } else { DCHECK(accessors->IsAccessorPair()); Handle setter(Handle::cast(accessors)->setter(), isolate()); DCHECK(setter->IsJSFunction() || setter->IsFunctionTemplateInfo()); CallOptimization call_optimization(setter); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); if (call_optimization.is_simple_api_call()) { DCHECK(call_optimization.IsCompatibleReceiver(receiver, holder)); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), call_optimization, lookup->GetAccessorIndex()); return code; } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreViaSetter); int expected_arguments = JSFunction::cast(*setter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileStoreViaSetter(receiver, lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobal); DCHECK(holder.is_identical_to(receiver) || receiver->map()->prototype() == *holder); auto cell = lookup->GetPropertyCell(); auto updated_type = PropertyCell::UpdatedType(cell, value, lookup->property_details()); auto code = PropertyCellStoreHandler( isolate(), receiver, Handle::cast(holder), lookup->name(), cell, updated_type); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { #ifdef DEBUG bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } DCHECK(!use_stub); #endif TRACE_HANDLER_STATS(isolate(), StoreIC_StoreField); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreField(lookup); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); UNREACHABLE(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } void KeyedStoreIC::UpdateStoreElement(Handle receiver_map, KeyedAccessStoreMode store_mode) { MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle monomorphic_map = ComputeTransitionedMap(receiver_map, store_mode); store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(monomorphic_map, store_mode); return ConfigureVectorState(Handle(), monomorphic_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { if (!target_receiver_maps.at(i).is_null() && target_receiver_maps.at(i)->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "JSValue"); return; } } // There are several special cases where an IC that is MONOMORPHIC can still // transition to a different GetNonTransitioningStoreMode IC that handles a // superset of the original IC. Handle those here if the receiver map hasn't // changed or it has transitioned to a more general kind. KeyedAccessStoreMode old_store_mode = GetKeyedAccessStoreMode(); Handle previous_receiver_map = target_receiver_maps.at(0); if (state() == MONOMORPHIC) { Handle transitioned_receiver_map = receiver_map; if (IsTransitionStoreMode(store_mode)) { transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); } if ((receiver_map.is_identical_to(previous_receiver_map) && IsTransitionStoreMode(store_mode)) || IsTransitionOfMonomorphicTarget(*previous_receiver_map, *transitioned_receiver_map)) { // If the "old" and "new" maps are in the same elements map family, or // if they at least come from the same origin for a transitioning store, // stay MONOMORPHIC and use the map for the most generic ElementsKind. store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler( transitioned_receiver_map, store_mode); ConfigureVectorState(Handle(), transitioned_receiver_map, handler); return; } if (receiver_map.is_identical_to(previous_receiver_map) && old_store_mode == STANDARD_STORE && (store_mode == STORE_AND_GROW_NO_TRANSITION || store_mode == STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS || store_mode == STORE_NO_TRANSITION_HANDLE_COW)) { // A "normal" IC that handles stores can switch to a version that can // grow at the end of the array, handle OOB accesses or copy COW arrays // and still stay MONOMORPHIC. Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(receiver_map, store_mode); return ConfigureVectorState(Handle(), receiver_map, handler); } } DCHECK(state() != GENERIC); bool map_added = AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map); if (IsTransitionStoreMode(store_mode)) { Handle transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); map_added |= AddOneReceiverMapIfMissing(&target_receiver_maps, transitioned_receiver_map); } if (!map_added) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the megamorphic stub which can handle everything. TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the // megamorphic version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) return; // Make sure all polymorphic handlers have the same store mode, otherwise the // megamorphic stub must be used. store_mode = GetNonTransitioningStoreMode(store_mode); if (old_store_mode != STANDARD_STORE) { if (store_mode == STANDARD_STORE) { store_mode = old_store_mode; } else if (store_mode != old_store_mode) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "store mode mismatch"); return; } } // If the store mode isn't the standard mode, make sure that all polymorphic // receivers are either external arrays, or all "normal" arrays. Otherwise, // use the megamorphic stub. if (store_mode != STANDARD_STORE) { int external_arrays = 0; for (int i = 0; i < target_receiver_maps.length(); ++i) { if (target_receiver_maps[i]->has_fixed_typed_array_elements()) { external_arrays++; } } if (external_arrays != 0 && external_arrays != target_receiver_maps.length()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unsupported combination of external and normal arrays"); return; } } TRACE_HANDLER_STATS(isolate(), KeyedStoreIC_Polymorphic); MapHandleList transitioned_maps(target_receiver_maps.length()); CodeHandleList handlers(target_receiver_maps.length()); PropertyICCompiler::ComputeKeyedStorePolymorphicHandlers( &target_receiver_maps, &transitioned_maps, &handlers, store_mode); ConfigureVectorState(&target_receiver_maps, &transitioned_maps, &handlers); } Handle KeyedStoreIC::ComputeTransitionedMap( Handle map, KeyedAccessStoreMode store_mode) { switch (store_mode) { case STORE_TRANSITION_TO_OBJECT: case STORE_AND_GROW_TRANSITION_TO_OBJECT: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_ELEMENTS : FAST_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_TRANSITION_TO_DOUBLE: case STORE_AND_GROW_TRANSITION_TO_DOUBLE: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_DOUBLE_ELEMENTS : FAST_DOUBLE_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS: DCHECK(map->has_fixed_typed_array_elements()); // Fall through case STORE_NO_TRANSITION_HANDLE_COW: case STANDARD_STORE: case STORE_AND_GROW_NO_TRANSITION: return map; } UNREACHABLE(); return MaybeHandle().ToHandleChecked(); } bool IsOutOfBoundsAccess(Handle receiver, uint32_t index) { uint32_t length = 0; if (receiver->IsJSArray()) { JSArray::cast(*receiver)->length()->ToArrayLength(&length); } else { length = static_cast(receiver->elements()->length()); } return index >= length; } static KeyedAccessStoreMode GetStoreMode(Handle receiver, uint32_t index, Handle value) { bool oob_access = IsOutOfBoundsAccess(receiver, index); // Don't consider this a growing store if the store would send the receiver to // dictionary mode. bool allow_growth = receiver->IsJSArray() && oob_access && !receiver->WouldConvertToSlowElements(index); if (allow_growth) { // Handle growing array in stub if necessary. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_DOUBLE; } if (value->IsHeapObject()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } return STORE_AND_GROW_NO_TRANSITION; } else { // Handle only in-bounds elements accesses. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_TRANSITION_TO_DOUBLE; } else if (value->IsHeapObject()) { return STORE_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_TRANSITION_TO_OBJECT; } } if (!FLAG_trace_external_array_abuse && receiver->map()->has_fixed_typed_array_elements() && oob_access) { return STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS; } Heap* heap = receiver->GetHeap(); if (receiver->elements()->map() == heap->fixed_cow_array_map()) { return STORE_NO_TRANSITION_HANDLE_COW; } else { return STANDARD_STORE; } } } MaybeHandle KeyedStoreIC::Store(Handle object, Handle key, Handle value) { // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); return result; } // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); Handle store_handle; uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION( isolate(), store_handle, StoreIC::Store(object, Handle::cast(key), value, JSReceiver::MAY_BE_STORE_FROM_KEYED), Object); if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unhandled internalized string key"); TRACE_IC("StoreIC", key); } return store_handle; } bool use_ic = FLAG_use_ic && !object->IsStringWrapper() && !object->IsAccessCheckNeeded() && !object->IsJSGlobalProxy(); if (use_ic && !object->IsSmi()) { // Don't use ICs for maps of the objects in Array's prototype chain. We // expect to be able to trap element sets to objects with those maps in // the runtime to enable optimization of element hole access. Handle heap_object = Handle::cast(object); if (heap_object->map()->IsMapInArrayPrototypeChain()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "map in array prototype"); use_ic = false; } } Handle old_receiver_map; bool sloppy_arguments_elements = false; bool key_is_valid_index = false; KeyedAccessStoreMode store_mode = STANDARD_STORE; if (use_ic && object->IsJSObject()) { Handle receiver = Handle::cast(object); old_receiver_map = handle(receiver->map(), isolate()); sloppy_arguments_elements = !is_sloppy(language_mode()) && receiver->elements()->map() == isolate()->heap()->sloppy_arguments_elements_map(); if (!sloppy_arguments_elements) { key_is_valid_index = key->IsSmi() && Smi::cast(*key)->value() >= 0; if (key_is_valid_index) { uint32_t index = static_cast(Smi::cast(*key)->value()); store_mode = GetStoreMode(receiver, index, value); } } } DCHECK(store_handle.is_null()); ASSIGN_RETURN_ON_EXCEPTION(isolate(), store_handle, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); if (use_ic) { if (!old_receiver_map.is_null()) { if (sloppy_arguments_elements) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "arguments receiver"); } else if (key_is_valid_index) { // We should go generic if receiver isn't a dictionary, but our // prototype chain does have dictionary elements. This ensures that // other non-dictionary receivers in the polymorphic case benefit // from fast path keyed stores. if (!old_receiver_map->DictionaryElementsInPrototypeChainOnly()) { UpdateStoreElement(old_receiver_map, store_mode); } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "dictionary or proxy prototype"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-smi-like key"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-JSObject receiver"); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "set generic"); } TRACE_IC("StoreIC", key); return store_handle; } void CallIC::HandleMiss(Handle function) { Handle name = isolate()->factory()->empty_string(); CallICNexus* nexus = casted_nexus(); Object* feedback = nexus->GetFeedback(); // Hand-coded MISS handling is easier if CallIC slots don't contain smis. DCHECK(!feedback->IsSmi()); if (feedback->IsWeakCell() || !function->IsJSFunction() || feedback->IsAllocationSite()) { // We are going generic. nexus->ConfigureMegamorphic(); } else { DCHECK(feedback == *TypeFeedbackVector::UninitializedSentinel(isolate())); Handle js_function = Handle::cast(function); Handle array_function = Handle(isolate()->native_context()->array_function()); if (array_function.is_identical_to(js_function)) { // Alter the slot. nexus->ConfigureMonomorphicArray(); } else if (js_function->context()->native_context() != *isolate()->native_context()) { // Don't collect cross-native context feedback for the CallIC. // TODO(bmeurer): We should collect the SharedFunctionInfo as // feedback in this case instead. nexus->ConfigureMegamorphic(); } else { nexus->ConfigureMonomorphic(js_function); } } if (function->IsJSFunction()) { Handle
code = compiler.CompileLoadGlobal( cell, lookup->name(), lookup->IsConfigurable()); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { FieldIndex field = lookup->GetFieldIndex(); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadField); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadField(lookup->name(), field); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); DCHECK(!receiver_is_holder); TRACE_HANDLER_STATS(isolate(), LoadIC_LoadConstant); NamedLoadHandlerCompiler compiler(isolate(), map, holder, cache_holder); return compiler.CompileLoadConstant(lookup->name(), lookup->GetConstantIndex()); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } static Handle TryConvertKey(Handle key, Isolate* isolate) { // This helper implements a few common fast cases for converting // non-smi keys of keyed loads/stores to a smi or a string. if (key->IsHeapNumber()) { double value = Handle::cast(key)->value(); if (std::isnan(value)) { key = isolate->factory()->nan_string(); } else { int int_value = FastD2I(value); if (value == int_value && Smi::IsValid(int_value)) { key = handle(Smi::FromInt(int_value), isolate); } } } else if (key->IsUndefined(isolate)) { key = isolate->factory()->undefined_string(); } return key; } void KeyedLoadIC::UpdateLoadElement(Handle receiver) { Handle receiver_map(receiver->map(), isolate()); DCHECK(receiver_map->instance_type() != JS_VALUE_TYPE && receiver_map->instance_type() != JS_PROXY_TYPE); // Checked by caller. MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { Handle map = target_receiver_maps.at(i); if (map.is_null()) continue; if (map->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSValue"); return; } if (map->instance_type() == JS_PROXY_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSProxy"); return; } } // The first time a receiver is seen that is a transitioned version of the // previous monomorphic receiver type, assume the new ElementsKind is the // monomorphic type. This benefits global arrays that only transition // once, and all call sites accessing them are faster if they remain // monomorphic. If this optimistic assumption is not true, the IC will // miss again and it will become polymorphic and support both the // untransitioned and transitioned maps. if (state() == MONOMORPHIC && !receiver->IsString() && IsMoreGeneralElementsKindTransition( target_receiver_maps.at(0)->elements_kind(), Handle::cast(receiver)->GetElementsKind())) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } DCHECK(state() != GENERIC); // Determine the list of receiver maps that this call site has seen, // adding the map that was just encountered. if (!AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map)) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the generic stub. TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the generic // version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "max polymorph exceeded"); return; } CodeHandleList handlers(target_receiver_maps.length()); TRACE_HANDLER_STATS(isolate(), KeyedLoadIC_PolymorphicElement); ElementHandlerCompiler compiler(isolate()); compiler.CompileElementHandlers(&target_receiver_maps, &handlers); ConfigureVectorState(Handle(), &target_receiver_maps, &handlers); } MaybeHandle KeyedLoadIC::Load(Handle object, Handle key) { if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } Handle load_handle; // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION(isolate(), load_handle, LoadIC::Load(object, Handle::cast(key)), Object); } else if (FLAG_use_ic && !object->IsAccessCheckNeeded() && !object->IsJSValue()) { if (object->IsJSObject() || (object->IsString() && key->IsNumber())) { Handle receiver = Handle::cast(object); if (object->IsString() || key->IsSmi()) UpdateLoadElement(receiver); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "set generic"); } TRACE_IC("LoadIC", key); if (!load_handle.is_null()) return load_handle; Handle result; ASSIGN_RETURN_ON_EXCEPTION(isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } bool StoreIC::LookupForWrite(LookupIterator* it, Handle value, JSReceiver::StoreFromKeyed store_mode) { // Disable ICs for non-JSObjects for now. Handle object = it->GetReceiver(); if (!object->IsJSObject()) return false; Handle receiver = Handle::cast(object); DCHECK(!receiver->map()->is_deprecated()); for (; it->IsFound(); it->Next()) { switch (it->state()) { case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); case LookupIterator::JSPROXY: return false; case LookupIterator::INTERCEPTOR: { Handle holder = it->GetHolder(); InterceptorInfo* info = holder->GetNamedInterceptor(); if (it->HolderIsReceiverOrHiddenPrototype()) { return !info->non_masking() && receiver.is_identical_to(holder) && !info->setter()->IsUndefined(it->isolate()); } else if (!info->getter()->IsUndefined(it->isolate()) || !info->query()->IsUndefined(it->isolate())) { return false; } break; } case LookupIterator::ACCESS_CHECK: if (it->GetHolder()->IsAccessCheckNeeded()) return false; break; case LookupIterator::ACCESSOR: return !it->IsReadOnly(); case LookupIterator::INTEGER_INDEXED_EXOTIC: return false; case LookupIterator::DATA: { if (it->IsReadOnly()) return false; Handle holder = it->GetHolder(); if (receiver.is_identical_to(holder)) { it->PrepareForDataProperty(value); // The previous receiver map might just have been deprecated, // so reload it. update_receiver_map(receiver); return true; } // Receiver != holder. if (receiver->IsJSGlobalProxy()) { PrototypeIterator iter(it->isolate(), receiver); return it->GetHolder().is_identical_to( PrototypeIterator::GetCurrent(iter)); } if (it->HolderIsReceiverOrHiddenPrototype()) return false; if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } } } receiver = it->GetStoreTarget(); if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } MaybeHandle StoreIC::Store(Handle object, Handle name, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (object->IsJSGlobalObject() && name->IsString()) { // Look up in script context table. Handle str_name = Handle::cast(name); Handle global = Handle::cast(object); Handle script_contexts( global->native_context()->script_context_table()); ScriptContextTable::LookupResult lookup_result; if (ScriptContextTable::Lookup(script_contexts, str_name, &lookup_result)) { Handle script_context = ScriptContextTable::GetContext( script_contexts, lookup_result.context_index); if (lookup_result.mode == CONST) { return TypeError(MessageTemplate::kConstAssign, object, name); } Handle previous_value = FixedArray::get(*script_context, lookup_result.slot_index, isolate()); if (previous_value->IsTheHole(isolate())) { // Do not install stubs and stay pre-monomorphic for // uninitialized accesses. return ReferenceError(name); } if (FLAG_use_ic && StoreScriptContextFieldStub::Accepted(&lookup_result)) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreScriptContextFieldStub); StoreScriptContextFieldStub stub(isolate(), &lookup_result); PatchCache(name, stub.GetCode()); } script_context->set(lookup_result.slot_index, *value); return value; } } // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object) || object->IsJSProxy()) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Object::SetProperty(object, name, value, language_mode()), Object); return result; } // If the object is undefined or null it's illegal to try to set any // properties on it; throw a TypeError in that case. if (object->IsUndefined(isolate()) || object->IsNull(isolate())) { return TypeError(MessageTemplate::kNonObjectPropertyStore, object, name); } if (state() != UNINITIALIZED) { JSObject::MakePrototypesFast(object, kStartAtPrototype, isolate()); } LookupIterator it(object, name); if (FLAG_use_ic) UpdateCaches(&it, value, store_mode); MAYBE_RETURN_NULL( Object::SetProperty(&it, value, language_mode(), store_mode)); return value; } Handle CallIC::initialize_stub_in_optimized_code( Isolate* isolate, int argc, ConvertReceiverMode mode, TailCallMode tail_call_mode) { CallICStub stub(isolate, CallICState(argc, mode, tail_call_mode)); Handle code = stub.GetCode(); return code; } Handle StoreIC::initialize_stub_in_optimized_code( Isolate* isolate, LanguageMode language_mode) { VectorStoreICStub stub(isolate, StoreICState(language_mode)); return stub.GetCode(); } void StoreIC::UpdateCaches(LookupIterator* lookup, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (state() == UNINITIALIZED) { // This is the first time we execute this inline cache. Set the target to // the pre monomorphic stub to delay setting the monomorphic state. ConfigureVectorState(PREMONOMORPHIC, Handle()); TRACE_IC("StoreIC", lookup->name()); return; } bool use_ic = LookupForWrite(lookup, value, store_mode); if (!use_ic) { TRACE_GENERIC_IC(isolate(), "StoreIC", "LookupForWrite said 'false'"); } Handle code = use_ic ? ComputeHandler(lookup, value) : slow_stub(); PatchCache(lookup->name(), code); TRACE_IC("StoreIC", lookup->name()); } static Handle PropertyCellStoreHandler( Isolate* isolate, Handle receiver, Handle holder, Handle name, Handle cell, PropertyCellType type) { auto constant_type = Nothing(); if (type == PropertyCellType::kConstantType) { constant_type = Just(cell->GetConstantType()); } StoreGlobalStub stub(isolate, type, constant_type, receiver->IsJSGlobalProxy()); auto code = stub.GetCodeCopyFromTemplate(holder, cell); // TODO(verwaest): Move caching of these NORMAL stubs outside as well. HeapObject::UpdateMapCodeCache(receiver, name, code); return code; } Handle StoreIC::GetMapIndependentHandler(LookupIterator* lookup) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { break; // Custom-compiled handler. } // Currently not handled by CompileStoreTransition. if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "transition from slow"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } DCHECK(lookup->IsCacheableTransition()); break; // Custom-compiled handler. } case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->setter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreInterceptorStub); StoreInterceptorStub stub(isolate()); return stub.GetCode(); } case LookupIterator::ACCESSOR: { if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "accessor on slow map"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->setter()) == nullptr) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter == nullptr"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (AccessorInfo::cast(*accessors)->is_special_data_property() && !lookup->HolderIsReceiverOrHiddenPrototype()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "special data property in prototype chain"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (!AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())) { TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver type"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorPair()) { Handle setter(Handle::cast(accessors)->setter(), isolate()); if (!setter->IsJSFunction() && !setter->IsFunctionTemplateInfo()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter not a function"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } CallOptimization call_optimization(setter); if (call_optimization.is_simple_api_call()) { if (call_optimization.IsCompatibleReceiver(receiver, holder)) { break; // Custom-compiled handler. } TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreNormal); DCHECK(holder.is_identical_to(receiver)); return isolate()->builtins()->StoreIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } if (use_stub) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreFieldStub); StoreFieldStub stub(isolate(), lookup->GetFieldIndex(), lookup->representation()); return stub.GetCode(); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); TRACE_GENERIC_IC(isolate(), "StoreIC", "constant property"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } return Handle::null(); } Handle StoreIC::CompileHandler(LookupIterator* lookup, Handle value, CacheHolderFlag cache_holder) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { // TODO(dcarney): this currently just deopts. Use the transition cell. TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobalTransition); auto cell = isolate()->factory()->NewPropertyCell(); cell->set_value(*value); auto code = PropertyCellStoreHandler( isolate(), store_target, Handle::cast(store_target), lookup->name(), cell, PropertyCellType::kConstant); cell->set_value(isolate()->heap()->the_hole_value()); return code; } Handle transition = lookup->transition_map(); // Currently not handled by CompileStoreTransition. DCHECK(holder->HasFastProperties()); DCHECK(lookup->IsCacheableTransition()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreTransition); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreTransition(transition, lookup->name()); } case LookupIterator::INTERCEPTOR: UNREACHABLE(); case LookupIterator::ACCESSOR: { DCHECK(holder->HasFastProperties()); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->setter()) != 0); DCHECK(!AccessorInfo::cast(*accessors)->is_special_data_property() || lookup->HolderIsReceiverOrHiddenPrototype()); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), info, language_mode()); return code; } else { DCHECK(accessors->IsAccessorPair()); Handle setter(Handle::cast(accessors)->setter(), isolate()); DCHECK(setter->IsJSFunction() || setter->IsFunctionTemplateInfo()); CallOptimization call_optimization(setter); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); if (call_optimization.is_simple_api_call()) { DCHECK(call_optimization.IsCompatibleReceiver(receiver, holder)); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), call_optimization, lookup->GetAccessorIndex()); return code; } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreViaSetter); int expected_arguments = JSFunction::cast(*setter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileStoreViaSetter(receiver, lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobal); DCHECK(holder.is_identical_to(receiver) || receiver->map()->prototype() == *holder); auto cell = lookup->GetPropertyCell(); auto updated_type = PropertyCell::UpdatedType(cell, value, lookup->property_details()); auto code = PropertyCellStoreHandler( isolate(), receiver, Handle::cast(holder), lookup->name(), cell, updated_type); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { #ifdef DEBUG bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } DCHECK(!use_stub); #endif TRACE_HANDLER_STATS(isolate(), StoreIC_StoreField); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreField(lookup); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); UNREACHABLE(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } void KeyedStoreIC::UpdateStoreElement(Handle receiver_map, KeyedAccessStoreMode store_mode) { MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle monomorphic_map = ComputeTransitionedMap(receiver_map, store_mode); store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(monomorphic_map, store_mode); return ConfigureVectorState(Handle(), monomorphic_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { if (!target_receiver_maps.at(i).is_null() && target_receiver_maps.at(i)->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "JSValue"); return; } } // There are several special cases where an IC that is MONOMORPHIC can still // transition to a different GetNonTransitioningStoreMode IC that handles a // superset of the original IC. Handle those here if the receiver map hasn't // changed or it has transitioned to a more general kind. KeyedAccessStoreMode old_store_mode = GetKeyedAccessStoreMode(); Handle previous_receiver_map = target_receiver_maps.at(0); if (state() == MONOMORPHIC) { Handle transitioned_receiver_map = receiver_map; if (IsTransitionStoreMode(store_mode)) { transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); } if ((receiver_map.is_identical_to(previous_receiver_map) && IsTransitionStoreMode(store_mode)) || IsTransitionOfMonomorphicTarget(*previous_receiver_map, *transitioned_receiver_map)) { // If the "old" and "new" maps are in the same elements map family, or // if they at least come from the same origin for a transitioning store, // stay MONOMORPHIC and use the map for the most generic ElementsKind. store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler( transitioned_receiver_map, store_mode); ConfigureVectorState(Handle(), transitioned_receiver_map, handler); return; } if (receiver_map.is_identical_to(previous_receiver_map) && old_store_mode == STANDARD_STORE && (store_mode == STORE_AND_GROW_NO_TRANSITION || store_mode == STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS || store_mode == STORE_NO_TRANSITION_HANDLE_COW)) { // A "normal" IC that handles stores can switch to a version that can // grow at the end of the array, handle OOB accesses or copy COW arrays // and still stay MONOMORPHIC. Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(receiver_map, store_mode); return ConfigureVectorState(Handle(), receiver_map, handler); } } DCHECK(state() != GENERIC); bool map_added = AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map); if (IsTransitionStoreMode(store_mode)) { Handle transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); map_added |= AddOneReceiverMapIfMissing(&target_receiver_maps, transitioned_receiver_map); } if (!map_added) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the megamorphic stub which can handle everything. TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the // megamorphic version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) return; // Make sure all polymorphic handlers have the same store mode, otherwise the // megamorphic stub must be used. store_mode = GetNonTransitioningStoreMode(store_mode); if (old_store_mode != STANDARD_STORE) { if (store_mode == STANDARD_STORE) { store_mode = old_store_mode; } else if (store_mode != old_store_mode) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "store mode mismatch"); return; } } // If the store mode isn't the standard mode, make sure that all polymorphic // receivers are either external arrays, or all "normal" arrays. Otherwise, // use the megamorphic stub. if (store_mode != STANDARD_STORE) { int external_arrays = 0; for (int i = 0; i < target_receiver_maps.length(); ++i) { if (target_receiver_maps[i]->has_fixed_typed_array_elements()) { external_arrays++; } } if (external_arrays != 0 && external_arrays != target_receiver_maps.length()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unsupported combination of external and normal arrays"); return; } } TRACE_HANDLER_STATS(isolate(), KeyedStoreIC_Polymorphic); MapHandleList transitioned_maps(target_receiver_maps.length()); CodeHandleList handlers(target_receiver_maps.length()); PropertyICCompiler::ComputeKeyedStorePolymorphicHandlers( &target_receiver_maps, &transitioned_maps, &handlers, store_mode); ConfigureVectorState(&target_receiver_maps, &transitioned_maps, &handlers); } Handle KeyedStoreIC::ComputeTransitionedMap( Handle map, KeyedAccessStoreMode store_mode) { switch (store_mode) { case STORE_TRANSITION_TO_OBJECT: case STORE_AND_GROW_TRANSITION_TO_OBJECT: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_ELEMENTS : FAST_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_TRANSITION_TO_DOUBLE: case STORE_AND_GROW_TRANSITION_TO_DOUBLE: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_DOUBLE_ELEMENTS : FAST_DOUBLE_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS: DCHECK(map->has_fixed_typed_array_elements()); // Fall through case STORE_NO_TRANSITION_HANDLE_COW: case STANDARD_STORE: case STORE_AND_GROW_NO_TRANSITION: return map; } UNREACHABLE(); return MaybeHandle().ToHandleChecked(); } bool IsOutOfBoundsAccess(Handle receiver, uint32_t index) { uint32_t length = 0; if (receiver->IsJSArray()) { JSArray::cast(*receiver)->length()->ToArrayLength(&length); } else { length = static_cast(receiver->elements()->length()); } return index >= length; } static KeyedAccessStoreMode GetStoreMode(Handle receiver, uint32_t index, Handle value) { bool oob_access = IsOutOfBoundsAccess(receiver, index); // Don't consider this a growing store if the store would send the receiver to // dictionary mode. bool allow_growth = receiver->IsJSArray() && oob_access && !receiver->WouldConvertToSlowElements(index); if (allow_growth) { // Handle growing array in stub if necessary. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_DOUBLE; } if (value->IsHeapObject()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } return STORE_AND_GROW_NO_TRANSITION; } else { // Handle only in-bounds elements accesses. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_TRANSITION_TO_DOUBLE; } else if (value->IsHeapObject()) { return STORE_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_TRANSITION_TO_OBJECT; } } if (!FLAG_trace_external_array_abuse && receiver->map()->has_fixed_typed_array_elements() && oob_access) { return STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS; } Heap* heap = receiver->GetHeap(); if (receiver->elements()->map() == heap->fixed_cow_array_map()) { return STORE_NO_TRANSITION_HANDLE_COW; } else { return STANDARD_STORE; } } } MaybeHandle KeyedStoreIC::Store(Handle object, Handle key, Handle value) { // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); return result; } // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); Handle store_handle; uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION( isolate(), store_handle, StoreIC::Store(object, Handle::cast(key), value, JSReceiver::MAY_BE_STORE_FROM_KEYED), Object); if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unhandled internalized string key"); TRACE_IC("StoreIC", key); } return store_handle; } bool use_ic = FLAG_use_ic && !object->IsStringWrapper() && !object->IsAccessCheckNeeded() && !object->IsJSGlobalProxy(); if (use_ic && !object->IsSmi()) { // Don't use ICs for maps of the objects in Array's prototype chain. We // expect to be able to trap element sets to objects with those maps in // the runtime to enable optimization of element hole access. Handle heap_object = Handle::cast(object); if (heap_object->map()->IsMapInArrayPrototypeChain()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "map in array prototype"); use_ic = false; } } Handle old_receiver_map; bool sloppy_arguments_elements = false; bool key_is_valid_index = false; KeyedAccessStoreMode store_mode = STANDARD_STORE; if (use_ic && object->IsJSObject()) { Handle receiver = Handle::cast(object); old_receiver_map = handle(receiver->map(), isolate()); sloppy_arguments_elements = !is_sloppy(language_mode()) && receiver->elements()->map() == isolate()->heap()->sloppy_arguments_elements_map(); if (!sloppy_arguments_elements) { key_is_valid_index = key->IsSmi() && Smi::cast(*key)->value() >= 0; if (key_is_valid_index) { uint32_t index = static_cast(Smi::cast(*key)->value()); store_mode = GetStoreMode(receiver, index, value); } } } DCHECK(store_handle.is_null()); ASSIGN_RETURN_ON_EXCEPTION(isolate(), store_handle, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); if (use_ic) { if (!old_receiver_map.is_null()) { if (sloppy_arguments_elements) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "arguments receiver"); } else if (key_is_valid_index) { // We should go generic if receiver isn't a dictionary, but our // prototype chain does have dictionary elements. This ensures that // other non-dictionary receivers in the polymorphic case benefit // from fast path keyed stores. if (!old_receiver_map->DictionaryElementsInPrototypeChainOnly()) { UpdateStoreElement(old_receiver_map, store_mode); } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "dictionary or proxy prototype"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-smi-like key"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-JSObject receiver"); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "set generic"); } TRACE_IC("StoreIC", key); return store_handle; } void CallIC::HandleMiss(Handle function) { Handle name = isolate()->factory()->empty_string(); CallICNexus* nexus = casted_nexus(); Object* feedback = nexus->GetFeedback(); // Hand-coded MISS handling is easier if CallIC slots don't contain smis. DCHECK(!feedback->IsSmi()); if (feedback->IsWeakCell() || !function->IsJSFunction() || feedback->IsAllocationSite()) { // We are going generic. nexus->ConfigureMegamorphic(); } else { DCHECK(feedback == *TypeFeedbackVector::UninitializedSentinel(isolate())); Handle js_function = Handle::cast(function); Handle array_function = Handle(isolate()->native_context()->array_function()); if (array_function.is_identical_to(js_function)) { // Alter the slot. nexus->ConfigureMonomorphicArray(); } else if (js_function->context()->native_context() != *isolate()->native_context()) { // Don't collect cross-native context feedback for the CallIC. // TODO(bmeurer): We should collect the SharedFunctionInfo as // feedback in this case instead. nexus->ConfigureMegamorphic(); } else { nexus->ConfigureMonomorphic(js_function); } } if (function->IsJSFunction()) { Handle
handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { Handle map = target_receiver_maps.at(i); if (map.is_null()) continue; if (map->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSValue"); return; } if (map->instance_type() == JS_PROXY_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "JSProxy"); return; } } // The first time a receiver is seen that is a transitioned version of the // previous monomorphic receiver type, assume the new ElementsKind is the // monomorphic type. This benefits global arrays that only transition // once, and all call sites accessing them are faster if they remain // monomorphic. If this optimistic assumption is not true, the IC will // miss again and it will become polymorphic and support both the // untransitioned and transitioned maps. if (state() == MONOMORPHIC && !receiver->IsString() && IsMoreGeneralElementsKindTransition( target_receiver_maps.at(0)->elements_kind(), Handle::cast(receiver)->GetElementsKind())) { Handle handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } DCHECK(state() != GENERIC); // Determine the list of receiver maps that this call site has seen, // adding the map that was just encountered. if (!AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map)) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the generic stub. TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the generic // version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "max polymorph exceeded"); return; } CodeHandleList handlers(target_receiver_maps.length()); TRACE_HANDLER_STATS(isolate(), KeyedLoadIC_PolymorphicElement); ElementHandlerCompiler compiler(isolate()); compiler.CompileElementHandlers(&target_receiver_maps, &handlers); ConfigureVectorState(Handle(), &target_receiver_maps, &handlers); } MaybeHandle KeyedLoadIC::Load(Handle object, Handle key) { if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } Handle load_handle; // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION(isolate(), load_handle, LoadIC::Load(object, Handle::cast(key)), Object); } else if (FLAG_use_ic && !object->IsAccessCheckNeeded() && !object->IsJSValue()) { if (object->IsJSObject() || (object->IsString() && key->IsNumber())) { Handle receiver = Handle::cast(object); if (object->IsString() || key->IsSmi()) UpdateLoadElement(receiver); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "set generic"); } TRACE_IC("LoadIC", key); if (!load_handle.is_null()) return load_handle; Handle result; ASSIGN_RETURN_ON_EXCEPTION(isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } bool StoreIC::LookupForWrite(LookupIterator* it, Handle value, JSReceiver::StoreFromKeyed store_mode) { // Disable ICs for non-JSObjects for now. Handle object = it->GetReceiver(); if (!object->IsJSObject()) return false; Handle receiver = Handle::cast(object); DCHECK(!receiver->map()->is_deprecated()); for (; it->IsFound(); it->Next()) { switch (it->state()) { case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); case LookupIterator::JSPROXY: return false; case LookupIterator::INTERCEPTOR: { Handle holder = it->GetHolder(); InterceptorInfo* info = holder->GetNamedInterceptor(); if (it->HolderIsReceiverOrHiddenPrototype()) { return !info->non_masking() && receiver.is_identical_to(holder) && !info->setter()->IsUndefined(it->isolate()); } else if (!info->getter()->IsUndefined(it->isolate()) || !info->query()->IsUndefined(it->isolate())) { return false; } break; } case LookupIterator::ACCESS_CHECK: if (it->GetHolder()->IsAccessCheckNeeded()) return false; break; case LookupIterator::ACCESSOR: return !it->IsReadOnly(); case LookupIterator::INTEGER_INDEXED_EXOTIC: return false; case LookupIterator::DATA: { if (it->IsReadOnly()) return false; Handle holder = it->GetHolder(); if (receiver.is_identical_to(holder)) { it->PrepareForDataProperty(value); // The previous receiver map might just have been deprecated, // so reload it. update_receiver_map(receiver); return true; } // Receiver != holder. if (receiver->IsJSGlobalProxy()) { PrototypeIterator iter(it->isolate(), receiver); return it->GetHolder().is_identical_to( PrototypeIterator::GetCurrent(iter)); } if (it->HolderIsReceiverOrHiddenPrototype()) return false; if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } } } receiver = it->GetStoreTarget(); if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } MaybeHandle StoreIC::Store(Handle object, Handle name, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (object->IsJSGlobalObject() && name->IsString()) { // Look up in script context table. Handle str_name = Handle::cast(name); Handle global = Handle::cast(object); Handle script_contexts( global->native_context()->script_context_table()); ScriptContextTable::LookupResult lookup_result; if (ScriptContextTable::Lookup(script_contexts, str_name, &lookup_result)) { Handle script_context = ScriptContextTable::GetContext( script_contexts, lookup_result.context_index); if (lookup_result.mode == CONST) { return TypeError(MessageTemplate::kConstAssign, object, name); } Handle previous_value = FixedArray::get(*script_context, lookup_result.slot_index, isolate()); if (previous_value->IsTheHole(isolate())) { // Do not install stubs and stay pre-monomorphic for // uninitialized accesses. return ReferenceError(name); } if (FLAG_use_ic && StoreScriptContextFieldStub::Accepted(&lookup_result)) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreScriptContextFieldStub); StoreScriptContextFieldStub stub(isolate(), &lookup_result); PatchCache(name, stub.GetCode()); } script_context->set(lookup_result.slot_index, *value); return value; } } // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object) || object->IsJSProxy()) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Object::SetProperty(object, name, value, language_mode()), Object); return result; } // If the object is undefined or null it's illegal to try to set any // properties on it; throw a TypeError in that case. if (object->IsUndefined(isolate()) || object->IsNull(isolate())) { return TypeError(MessageTemplate::kNonObjectPropertyStore, object, name); } if (state() != UNINITIALIZED) { JSObject::MakePrototypesFast(object, kStartAtPrototype, isolate()); } LookupIterator it(object, name); if (FLAG_use_ic) UpdateCaches(&it, value, store_mode); MAYBE_RETURN_NULL( Object::SetProperty(&it, value, language_mode(), store_mode)); return value; } Handle CallIC::initialize_stub_in_optimized_code( Isolate* isolate, int argc, ConvertReceiverMode mode, TailCallMode tail_call_mode) { CallICStub stub(isolate, CallICState(argc, mode, tail_call_mode)); Handle code = stub.GetCode(); return code; } Handle StoreIC::initialize_stub_in_optimized_code( Isolate* isolate, LanguageMode language_mode) { VectorStoreICStub stub(isolate, StoreICState(language_mode)); return stub.GetCode(); } void StoreIC::UpdateCaches(LookupIterator* lookup, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (state() == UNINITIALIZED) { // This is the first time we execute this inline cache. Set the target to // the pre monomorphic stub to delay setting the monomorphic state. ConfigureVectorState(PREMONOMORPHIC, Handle()); TRACE_IC("StoreIC", lookup->name()); return; } bool use_ic = LookupForWrite(lookup, value, store_mode); if (!use_ic) { TRACE_GENERIC_IC(isolate(), "StoreIC", "LookupForWrite said 'false'"); } Handle code = use_ic ? ComputeHandler(lookup, value) : slow_stub(); PatchCache(lookup->name(), code); TRACE_IC("StoreIC", lookup->name()); } static Handle PropertyCellStoreHandler( Isolate* isolate, Handle receiver, Handle holder, Handle name, Handle cell, PropertyCellType type) { auto constant_type = Nothing(); if (type == PropertyCellType::kConstantType) { constant_type = Just(cell->GetConstantType()); } StoreGlobalStub stub(isolate, type, constant_type, receiver->IsJSGlobalProxy()); auto code = stub.GetCodeCopyFromTemplate(holder, cell); // TODO(verwaest): Move caching of these NORMAL stubs outside as well. HeapObject::UpdateMapCodeCache(receiver, name, code); return code; } Handle StoreIC::GetMapIndependentHandler(LookupIterator* lookup) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { break; // Custom-compiled handler. } // Currently not handled by CompileStoreTransition. if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "transition from slow"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } DCHECK(lookup->IsCacheableTransition()); break; // Custom-compiled handler. } case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->setter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreInterceptorStub); StoreInterceptorStub stub(isolate()); return stub.GetCode(); } case LookupIterator::ACCESSOR: { if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "accessor on slow map"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->setter()) == nullptr) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter == nullptr"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (AccessorInfo::cast(*accessors)->is_special_data_property() && !lookup->HolderIsReceiverOrHiddenPrototype()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "special data property in prototype chain"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (!AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())) { TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver type"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorPair()) { Handle setter(Handle::cast(accessors)->setter(), isolate()); if (!setter->IsJSFunction() && !setter->IsFunctionTemplateInfo()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter not a function"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } CallOptimization call_optimization(setter); if (call_optimization.is_simple_api_call()) { if (call_optimization.IsCompatibleReceiver(receiver, holder)) { break; // Custom-compiled handler. } TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreNormal); DCHECK(holder.is_identical_to(receiver)); return isolate()->builtins()->StoreIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } if (use_stub) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreFieldStub); StoreFieldStub stub(isolate(), lookup->GetFieldIndex(), lookup->representation()); return stub.GetCode(); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); TRACE_GENERIC_IC(isolate(), "StoreIC", "constant property"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } return Handle::null(); } Handle StoreIC::CompileHandler(LookupIterator* lookup, Handle value, CacheHolderFlag cache_holder) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { // TODO(dcarney): this currently just deopts. Use the transition cell. TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobalTransition); auto cell = isolate()->factory()->NewPropertyCell(); cell->set_value(*value); auto code = PropertyCellStoreHandler( isolate(), store_target, Handle::cast(store_target), lookup->name(), cell, PropertyCellType::kConstant); cell->set_value(isolate()->heap()->the_hole_value()); return code; } Handle transition = lookup->transition_map(); // Currently not handled by CompileStoreTransition. DCHECK(holder->HasFastProperties()); DCHECK(lookup->IsCacheableTransition()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreTransition); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreTransition(transition, lookup->name()); } case LookupIterator::INTERCEPTOR: UNREACHABLE(); case LookupIterator::ACCESSOR: { DCHECK(holder->HasFastProperties()); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->setter()) != 0); DCHECK(!AccessorInfo::cast(*accessors)->is_special_data_property() || lookup->HolderIsReceiverOrHiddenPrototype()); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), info, language_mode()); return code; } else { DCHECK(accessors->IsAccessorPair()); Handle setter(Handle::cast(accessors)->setter(), isolate()); DCHECK(setter->IsJSFunction() || setter->IsFunctionTemplateInfo()); CallOptimization call_optimization(setter); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); if (call_optimization.is_simple_api_call()) { DCHECK(call_optimization.IsCompatibleReceiver(receiver, holder)); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), call_optimization, lookup->GetAccessorIndex()); return code; } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreViaSetter); int expected_arguments = JSFunction::cast(*setter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileStoreViaSetter(receiver, lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobal); DCHECK(holder.is_identical_to(receiver) || receiver->map()->prototype() == *holder); auto cell = lookup->GetPropertyCell(); auto updated_type = PropertyCell::UpdatedType(cell, value, lookup->property_details()); auto code = PropertyCellStoreHandler( isolate(), receiver, Handle::cast(holder), lookup->name(), cell, updated_type); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { #ifdef DEBUG bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } DCHECK(!use_stub); #endif TRACE_HANDLER_STATS(isolate(), StoreIC_StoreField); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreField(lookup); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); UNREACHABLE(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } void KeyedStoreIC::UpdateStoreElement(Handle receiver_map, KeyedAccessStoreMode store_mode) { MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle monomorphic_map = ComputeTransitionedMap(receiver_map, store_mode); store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(monomorphic_map, store_mode); return ConfigureVectorState(Handle(), monomorphic_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { if (!target_receiver_maps.at(i).is_null() && target_receiver_maps.at(i)->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "JSValue"); return; } } // There are several special cases where an IC that is MONOMORPHIC can still // transition to a different GetNonTransitioningStoreMode IC that handles a // superset of the original IC. Handle those here if the receiver map hasn't // changed or it has transitioned to a more general kind. KeyedAccessStoreMode old_store_mode = GetKeyedAccessStoreMode(); Handle previous_receiver_map = target_receiver_maps.at(0); if (state() == MONOMORPHIC) { Handle transitioned_receiver_map = receiver_map; if (IsTransitionStoreMode(store_mode)) { transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); } if ((receiver_map.is_identical_to(previous_receiver_map) && IsTransitionStoreMode(store_mode)) || IsTransitionOfMonomorphicTarget(*previous_receiver_map, *transitioned_receiver_map)) { // If the "old" and "new" maps are in the same elements map family, or // if they at least come from the same origin for a transitioning store, // stay MONOMORPHIC and use the map for the most generic ElementsKind. store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler( transitioned_receiver_map, store_mode); ConfigureVectorState(Handle(), transitioned_receiver_map, handler); return; } if (receiver_map.is_identical_to(previous_receiver_map) && old_store_mode == STANDARD_STORE && (store_mode == STORE_AND_GROW_NO_TRANSITION || store_mode == STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS || store_mode == STORE_NO_TRANSITION_HANDLE_COW)) { // A "normal" IC that handles stores can switch to a version that can // grow at the end of the array, handle OOB accesses or copy COW arrays // and still stay MONOMORPHIC. Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(receiver_map, store_mode); return ConfigureVectorState(Handle(), receiver_map, handler); } } DCHECK(state() != GENERIC); bool map_added = AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map); if (IsTransitionStoreMode(store_mode)) { Handle transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); map_added |= AddOneReceiverMapIfMissing(&target_receiver_maps, transitioned_receiver_map); } if (!map_added) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the megamorphic stub which can handle everything. TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the // megamorphic version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) return; // Make sure all polymorphic handlers have the same store mode, otherwise the // megamorphic stub must be used. store_mode = GetNonTransitioningStoreMode(store_mode); if (old_store_mode != STANDARD_STORE) { if (store_mode == STANDARD_STORE) { store_mode = old_store_mode; } else if (store_mode != old_store_mode) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "store mode mismatch"); return; } } // If the store mode isn't the standard mode, make sure that all polymorphic // receivers are either external arrays, or all "normal" arrays. Otherwise, // use the megamorphic stub. if (store_mode != STANDARD_STORE) { int external_arrays = 0; for (int i = 0; i < target_receiver_maps.length(); ++i) { if (target_receiver_maps[i]->has_fixed_typed_array_elements()) { external_arrays++; } } if (external_arrays != 0 && external_arrays != target_receiver_maps.length()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unsupported combination of external and normal arrays"); return; } } TRACE_HANDLER_STATS(isolate(), KeyedStoreIC_Polymorphic); MapHandleList transitioned_maps(target_receiver_maps.length()); CodeHandleList handlers(target_receiver_maps.length()); PropertyICCompiler::ComputeKeyedStorePolymorphicHandlers( &target_receiver_maps, &transitioned_maps, &handlers, store_mode); ConfigureVectorState(&target_receiver_maps, &transitioned_maps, &handlers); } Handle KeyedStoreIC::ComputeTransitionedMap( Handle map, KeyedAccessStoreMode store_mode) { switch (store_mode) { case STORE_TRANSITION_TO_OBJECT: case STORE_AND_GROW_TRANSITION_TO_OBJECT: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_ELEMENTS : FAST_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_TRANSITION_TO_DOUBLE: case STORE_AND_GROW_TRANSITION_TO_DOUBLE: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_DOUBLE_ELEMENTS : FAST_DOUBLE_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS: DCHECK(map->has_fixed_typed_array_elements()); // Fall through case STORE_NO_TRANSITION_HANDLE_COW: case STANDARD_STORE: case STORE_AND_GROW_NO_TRANSITION: return map; } UNREACHABLE(); return MaybeHandle().ToHandleChecked(); } bool IsOutOfBoundsAccess(Handle receiver, uint32_t index) { uint32_t length = 0; if (receiver->IsJSArray()) { JSArray::cast(*receiver)->length()->ToArrayLength(&length); } else { length = static_cast(receiver->elements()->length()); } return index >= length; } static KeyedAccessStoreMode GetStoreMode(Handle receiver, uint32_t index, Handle value) { bool oob_access = IsOutOfBoundsAccess(receiver, index); // Don't consider this a growing store if the store would send the receiver to // dictionary mode. bool allow_growth = receiver->IsJSArray() && oob_access && !receiver->WouldConvertToSlowElements(index); if (allow_growth) { // Handle growing array in stub if necessary. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_DOUBLE; } if (value->IsHeapObject()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } return STORE_AND_GROW_NO_TRANSITION; } else { // Handle only in-bounds elements accesses. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_TRANSITION_TO_DOUBLE; } else if (value->IsHeapObject()) { return STORE_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_TRANSITION_TO_OBJECT; } } if (!FLAG_trace_external_array_abuse && receiver->map()->has_fixed_typed_array_elements() && oob_access) { return STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS; } Heap* heap = receiver->GetHeap(); if (receiver->elements()->map() == heap->fixed_cow_array_map()) { return STORE_NO_TRANSITION_HANDLE_COW; } else { return STANDARD_STORE; } } } MaybeHandle KeyedStoreIC::Store(Handle object, Handle key, Handle value) { // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); return result; } // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); Handle store_handle; uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION( isolate(), store_handle, StoreIC::Store(object, Handle::cast(key), value, JSReceiver::MAY_BE_STORE_FROM_KEYED), Object); if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unhandled internalized string key"); TRACE_IC("StoreIC", key); } return store_handle; } bool use_ic = FLAG_use_ic && !object->IsStringWrapper() && !object->IsAccessCheckNeeded() && !object->IsJSGlobalProxy(); if (use_ic && !object->IsSmi()) { // Don't use ICs for maps of the objects in Array's prototype chain. We // expect to be able to trap element sets to objects with those maps in // the runtime to enable optimization of element hole access. Handle heap_object = Handle::cast(object); if (heap_object->map()->IsMapInArrayPrototypeChain()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "map in array prototype"); use_ic = false; } } Handle old_receiver_map; bool sloppy_arguments_elements = false; bool key_is_valid_index = false; KeyedAccessStoreMode store_mode = STANDARD_STORE; if (use_ic && object->IsJSObject()) { Handle receiver = Handle::cast(object); old_receiver_map = handle(receiver->map(), isolate()); sloppy_arguments_elements = !is_sloppy(language_mode()) && receiver->elements()->map() == isolate()->heap()->sloppy_arguments_elements_map(); if (!sloppy_arguments_elements) { key_is_valid_index = key->IsSmi() && Smi::cast(*key)->value() >= 0; if (key_is_valid_index) { uint32_t index = static_cast(Smi::cast(*key)->value()); store_mode = GetStoreMode(receiver, index, value); } } } DCHECK(store_handle.is_null()); ASSIGN_RETURN_ON_EXCEPTION(isolate(), store_handle, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); if (use_ic) { if (!old_receiver_map.is_null()) { if (sloppy_arguments_elements) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "arguments receiver"); } else if (key_is_valid_index) { // We should go generic if receiver isn't a dictionary, but our // prototype chain does have dictionary elements. This ensures that // other non-dictionary receivers in the polymorphic case benefit // from fast path keyed stores. if (!old_receiver_map->DictionaryElementsInPrototypeChainOnly()) { UpdateStoreElement(old_receiver_map, store_mode); } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "dictionary or proxy prototype"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-smi-like key"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-JSObject receiver"); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "set generic"); } TRACE_IC("StoreIC", key); return store_handle; } void CallIC::HandleMiss(Handle function) { Handle name = isolate()->factory()->empty_string(); CallICNexus* nexus = casted_nexus(); Object* feedback = nexus->GetFeedback(); // Hand-coded MISS handling is easier if CallIC slots don't contain smis. DCHECK(!feedback->IsSmi()); if (feedback->IsWeakCell() || !function->IsJSFunction() || feedback->IsAllocationSite()) { // We are going generic. nexus->ConfigureMegamorphic(); } else { DCHECK(feedback == *TypeFeedbackVector::UninitializedSentinel(isolate())); Handle js_function = Handle::cast(function); Handle array_function = Handle(isolate()->native_context()->array_function()); if (array_function.is_identical_to(js_function)) { // Alter the slot. nexus->ConfigureMonomorphicArray(); } else if (js_function->context()->native_context() != *isolate()->native_context()) { // Don't collect cross-native context feedback for the CallIC. // TODO(bmeurer): We should collect the SharedFunctionInfo as // feedback in this case instead. nexus->ConfigureMegamorphic(); } else { nexus->ConfigureMonomorphic(js_function); } } if (function->IsJSFunction()) { Handle
handler = PropertyICCompiler::ComputeKeyedLoadMonomorphicHandler( receiver_map, extra_ic_state()); return ConfigureVectorState(Handle(), receiver_map, handler); } DCHECK(state() != GENERIC); // Determine the list of receiver maps that this call site has seen, // adding the map that was just encountered. if (!AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map)) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the generic stub. TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the generic // version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) { TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "max polymorph exceeded"); return; } CodeHandleList handlers(target_receiver_maps.length()); TRACE_HANDLER_STATS(isolate(), KeyedLoadIC_PolymorphicElement); ElementHandlerCompiler compiler(isolate()); compiler.CompileElementHandlers(&target_receiver_maps, &handlers); ConfigureVectorState(Handle(), &target_receiver_maps, &handlers); } MaybeHandle KeyedLoadIC::Load(Handle object, Handle key) { if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } Handle load_handle; // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION(isolate(), load_handle, LoadIC::Load(object, Handle::cast(key)), Object); } else if (FLAG_use_ic && !object->IsAccessCheckNeeded() && !object->IsJSValue()) { if (object->IsJSObject() || (object->IsString() && key->IsNumber())) { Handle receiver = Handle::cast(object); if (object->IsString() || key->IsSmi()) UpdateLoadElement(receiver); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedLoadIC", "set generic"); } TRACE_IC("LoadIC", key); if (!load_handle.is_null()) return load_handle; Handle result; ASSIGN_RETURN_ON_EXCEPTION(isolate(), result, Runtime::GetObjectProperty(isolate(), object, key), Object); return result; } bool StoreIC::LookupForWrite(LookupIterator* it, Handle value, JSReceiver::StoreFromKeyed store_mode) { // Disable ICs for non-JSObjects for now. Handle object = it->GetReceiver(); if (!object->IsJSObject()) return false; Handle receiver = Handle::cast(object); DCHECK(!receiver->map()->is_deprecated()); for (; it->IsFound(); it->Next()) { switch (it->state()) { case LookupIterator::NOT_FOUND: case LookupIterator::TRANSITION: UNREACHABLE(); case LookupIterator::JSPROXY: return false; case LookupIterator::INTERCEPTOR: { Handle holder = it->GetHolder(); InterceptorInfo* info = holder->GetNamedInterceptor(); if (it->HolderIsReceiverOrHiddenPrototype()) { return !info->non_masking() && receiver.is_identical_to(holder) && !info->setter()->IsUndefined(it->isolate()); } else if (!info->getter()->IsUndefined(it->isolate()) || !info->query()->IsUndefined(it->isolate())) { return false; } break; } case LookupIterator::ACCESS_CHECK: if (it->GetHolder()->IsAccessCheckNeeded()) return false; break; case LookupIterator::ACCESSOR: return !it->IsReadOnly(); case LookupIterator::INTEGER_INDEXED_EXOTIC: return false; case LookupIterator::DATA: { if (it->IsReadOnly()) return false; Handle holder = it->GetHolder(); if (receiver.is_identical_to(holder)) { it->PrepareForDataProperty(value); // The previous receiver map might just have been deprecated, // so reload it. update_receiver_map(receiver); return true; } // Receiver != holder. if (receiver->IsJSGlobalProxy()) { PrototypeIterator iter(it->isolate(), receiver); return it->GetHolder().is_identical_to( PrototypeIterator::GetCurrent(iter)); } if (it->HolderIsReceiverOrHiddenPrototype()) return false; if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } } } receiver = it->GetStoreTarget(); if (it->ExtendingNonExtensible(receiver)) return false; it->PrepareTransitionToDataProperty(receiver, value, NONE, store_mode); return it->IsCacheableTransition(); } MaybeHandle StoreIC::Store(Handle object, Handle name, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (object->IsJSGlobalObject() && name->IsString()) { // Look up in script context table. Handle str_name = Handle::cast(name); Handle global = Handle::cast(object); Handle script_contexts( global->native_context()->script_context_table()); ScriptContextTable::LookupResult lookup_result; if (ScriptContextTable::Lookup(script_contexts, str_name, &lookup_result)) { Handle script_context = ScriptContextTable::GetContext( script_contexts, lookup_result.context_index); if (lookup_result.mode == CONST) { return TypeError(MessageTemplate::kConstAssign, object, name); } Handle previous_value = FixedArray::get(*script_context, lookup_result.slot_index, isolate()); if (previous_value->IsTheHole(isolate())) { // Do not install stubs and stay pre-monomorphic for // uninitialized accesses. return ReferenceError(name); } if (FLAG_use_ic && StoreScriptContextFieldStub::Accepted(&lookup_result)) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreScriptContextFieldStub); StoreScriptContextFieldStub stub(isolate(), &lookup_result); PatchCache(name, stub.GetCode()); } script_context->set(lookup_result.slot_index, *value); return value; } } // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object) || object->IsJSProxy()) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Object::SetProperty(object, name, value, language_mode()), Object); return result; } // If the object is undefined or null it's illegal to try to set any // properties on it; throw a TypeError in that case. if (object->IsUndefined(isolate()) || object->IsNull(isolate())) { return TypeError(MessageTemplate::kNonObjectPropertyStore, object, name); } if (state() != UNINITIALIZED) { JSObject::MakePrototypesFast(object, kStartAtPrototype, isolate()); } LookupIterator it(object, name); if (FLAG_use_ic) UpdateCaches(&it, value, store_mode); MAYBE_RETURN_NULL( Object::SetProperty(&it, value, language_mode(), store_mode)); return value; } Handle CallIC::initialize_stub_in_optimized_code( Isolate* isolate, int argc, ConvertReceiverMode mode, TailCallMode tail_call_mode) { CallICStub stub(isolate, CallICState(argc, mode, tail_call_mode)); Handle code = stub.GetCode(); return code; } Handle StoreIC::initialize_stub_in_optimized_code( Isolate* isolate, LanguageMode language_mode) { VectorStoreICStub stub(isolate, StoreICState(language_mode)); return stub.GetCode(); } void StoreIC::UpdateCaches(LookupIterator* lookup, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (state() == UNINITIALIZED) { // This is the first time we execute this inline cache. Set the target to // the pre monomorphic stub to delay setting the monomorphic state. ConfigureVectorState(PREMONOMORPHIC, Handle()); TRACE_IC("StoreIC", lookup->name()); return; } bool use_ic = LookupForWrite(lookup, value, store_mode); if (!use_ic) { TRACE_GENERIC_IC(isolate(), "StoreIC", "LookupForWrite said 'false'"); } Handle code = use_ic ? ComputeHandler(lookup, value) : slow_stub(); PatchCache(lookup->name(), code); TRACE_IC("StoreIC", lookup->name()); } static Handle PropertyCellStoreHandler( Isolate* isolate, Handle receiver, Handle holder, Handle name, Handle cell, PropertyCellType type) { auto constant_type = Nothing(); if (type == PropertyCellType::kConstantType) { constant_type = Just(cell->GetConstantType()); } StoreGlobalStub stub(isolate, type, constant_type, receiver->IsJSGlobalProxy()); auto code = stub.GetCodeCopyFromTemplate(holder, cell); // TODO(verwaest): Move caching of these NORMAL stubs outside as well. HeapObject::UpdateMapCodeCache(receiver, name, code); return code; } Handle StoreIC::GetMapIndependentHandler(LookupIterator* lookup) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { break; // Custom-compiled handler. } // Currently not handled by CompileStoreTransition. if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "transition from slow"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } DCHECK(lookup->IsCacheableTransition()); break; // Custom-compiled handler. } case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->setter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreInterceptorStub); StoreInterceptorStub stub(isolate()); return stub.GetCode(); } case LookupIterator::ACCESSOR: { if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "accessor on slow map"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->setter()) == nullptr) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter == nullptr"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (AccessorInfo::cast(*accessors)->is_special_data_property() && !lookup->HolderIsReceiverOrHiddenPrototype()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "special data property in prototype chain"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (!AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())) { TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver type"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorPair()) { Handle setter(Handle::cast(accessors)->setter(), isolate()); if (!setter->IsJSFunction() && !setter->IsFunctionTemplateInfo()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter not a function"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } CallOptimization call_optimization(setter); if (call_optimization.is_simple_api_call()) { if (call_optimization.IsCompatibleReceiver(receiver, holder)) { break; // Custom-compiled handler. } TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreNormal); DCHECK(holder.is_identical_to(receiver)); return isolate()->builtins()->StoreIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } if (use_stub) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreFieldStub); StoreFieldStub stub(isolate(), lookup->GetFieldIndex(), lookup->representation()); return stub.GetCode(); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); TRACE_GENERIC_IC(isolate(), "StoreIC", "constant property"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } return Handle::null(); } Handle StoreIC::CompileHandler(LookupIterator* lookup, Handle value, CacheHolderFlag cache_holder) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { // TODO(dcarney): this currently just deopts. Use the transition cell. TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobalTransition); auto cell = isolate()->factory()->NewPropertyCell(); cell->set_value(*value); auto code = PropertyCellStoreHandler( isolate(), store_target, Handle::cast(store_target), lookup->name(), cell, PropertyCellType::kConstant); cell->set_value(isolate()->heap()->the_hole_value()); return code; } Handle transition = lookup->transition_map(); // Currently not handled by CompileStoreTransition. DCHECK(holder->HasFastProperties()); DCHECK(lookup->IsCacheableTransition()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreTransition); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreTransition(transition, lookup->name()); } case LookupIterator::INTERCEPTOR: UNREACHABLE(); case LookupIterator::ACCESSOR: { DCHECK(holder->HasFastProperties()); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->setter()) != 0); DCHECK(!AccessorInfo::cast(*accessors)->is_special_data_property() || lookup->HolderIsReceiverOrHiddenPrototype()); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), info, language_mode()); return code; } else { DCHECK(accessors->IsAccessorPair()); Handle setter(Handle::cast(accessors)->setter(), isolate()); DCHECK(setter->IsJSFunction() || setter->IsFunctionTemplateInfo()); CallOptimization call_optimization(setter); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); if (call_optimization.is_simple_api_call()) { DCHECK(call_optimization.IsCompatibleReceiver(receiver, holder)); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), call_optimization, lookup->GetAccessorIndex()); return code; } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreViaSetter); int expected_arguments = JSFunction::cast(*setter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileStoreViaSetter(receiver, lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobal); DCHECK(holder.is_identical_to(receiver) || receiver->map()->prototype() == *holder); auto cell = lookup->GetPropertyCell(); auto updated_type = PropertyCell::UpdatedType(cell, value, lookup->property_details()); auto code = PropertyCellStoreHandler( isolate(), receiver, Handle::cast(holder), lookup->name(), cell, updated_type); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { #ifdef DEBUG bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } DCHECK(!use_stub); #endif TRACE_HANDLER_STATS(isolate(), StoreIC_StoreField); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreField(lookup); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); UNREACHABLE(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } void KeyedStoreIC::UpdateStoreElement(Handle receiver_map, KeyedAccessStoreMode store_mode) { MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle monomorphic_map = ComputeTransitionedMap(receiver_map, store_mode); store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(monomorphic_map, store_mode); return ConfigureVectorState(Handle(), monomorphic_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { if (!target_receiver_maps.at(i).is_null() && target_receiver_maps.at(i)->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "JSValue"); return; } } // There are several special cases where an IC that is MONOMORPHIC can still // transition to a different GetNonTransitioningStoreMode IC that handles a // superset of the original IC. Handle those here if the receiver map hasn't // changed or it has transitioned to a more general kind. KeyedAccessStoreMode old_store_mode = GetKeyedAccessStoreMode(); Handle previous_receiver_map = target_receiver_maps.at(0); if (state() == MONOMORPHIC) { Handle transitioned_receiver_map = receiver_map; if (IsTransitionStoreMode(store_mode)) { transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); } if ((receiver_map.is_identical_to(previous_receiver_map) && IsTransitionStoreMode(store_mode)) || IsTransitionOfMonomorphicTarget(*previous_receiver_map, *transitioned_receiver_map)) { // If the "old" and "new" maps are in the same elements map family, or // if they at least come from the same origin for a transitioning store, // stay MONOMORPHIC and use the map for the most generic ElementsKind. store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler( transitioned_receiver_map, store_mode); ConfigureVectorState(Handle(), transitioned_receiver_map, handler); return; } if (receiver_map.is_identical_to(previous_receiver_map) && old_store_mode == STANDARD_STORE && (store_mode == STORE_AND_GROW_NO_TRANSITION || store_mode == STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS || store_mode == STORE_NO_TRANSITION_HANDLE_COW)) { // A "normal" IC that handles stores can switch to a version that can // grow at the end of the array, handle OOB accesses or copy COW arrays // and still stay MONOMORPHIC. Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(receiver_map, store_mode); return ConfigureVectorState(Handle(), receiver_map, handler); } } DCHECK(state() != GENERIC); bool map_added = AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map); if (IsTransitionStoreMode(store_mode)) { Handle transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); map_added |= AddOneReceiverMapIfMissing(&target_receiver_maps, transitioned_receiver_map); } if (!map_added) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the megamorphic stub which can handle everything. TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the // megamorphic version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) return; // Make sure all polymorphic handlers have the same store mode, otherwise the // megamorphic stub must be used. store_mode = GetNonTransitioningStoreMode(store_mode); if (old_store_mode != STANDARD_STORE) { if (store_mode == STANDARD_STORE) { store_mode = old_store_mode; } else if (store_mode != old_store_mode) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "store mode mismatch"); return; } } // If the store mode isn't the standard mode, make sure that all polymorphic // receivers are either external arrays, or all "normal" arrays. Otherwise, // use the megamorphic stub. if (store_mode != STANDARD_STORE) { int external_arrays = 0; for (int i = 0; i < target_receiver_maps.length(); ++i) { if (target_receiver_maps[i]->has_fixed_typed_array_elements()) { external_arrays++; } } if (external_arrays != 0 && external_arrays != target_receiver_maps.length()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unsupported combination of external and normal arrays"); return; } } TRACE_HANDLER_STATS(isolate(), KeyedStoreIC_Polymorphic); MapHandleList transitioned_maps(target_receiver_maps.length()); CodeHandleList handlers(target_receiver_maps.length()); PropertyICCompiler::ComputeKeyedStorePolymorphicHandlers( &target_receiver_maps, &transitioned_maps, &handlers, store_mode); ConfigureVectorState(&target_receiver_maps, &transitioned_maps, &handlers); } Handle KeyedStoreIC::ComputeTransitionedMap( Handle map, KeyedAccessStoreMode store_mode) { switch (store_mode) { case STORE_TRANSITION_TO_OBJECT: case STORE_AND_GROW_TRANSITION_TO_OBJECT: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_ELEMENTS : FAST_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_TRANSITION_TO_DOUBLE: case STORE_AND_GROW_TRANSITION_TO_DOUBLE: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_DOUBLE_ELEMENTS : FAST_DOUBLE_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS: DCHECK(map->has_fixed_typed_array_elements()); // Fall through case STORE_NO_TRANSITION_HANDLE_COW: case STANDARD_STORE: case STORE_AND_GROW_NO_TRANSITION: return map; } UNREACHABLE(); return MaybeHandle().ToHandleChecked(); } bool IsOutOfBoundsAccess(Handle receiver, uint32_t index) { uint32_t length = 0; if (receiver->IsJSArray()) { JSArray::cast(*receiver)->length()->ToArrayLength(&length); } else { length = static_cast(receiver->elements()->length()); } return index >= length; } static KeyedAccessStoreMode GetStoreMode(Handle receiver, uint32_t index, Handle value) { bool oob_access = IsOutOfBoundsAccess(receiver, index); // Don't consider this a growing store if the store would send the receiver to // dictionary mode. bool allow_growth = receiver->IsJSArray() && oob_access && !receiver->WouldConvertToSlowElements(index); if (allow_growth) { // Handle growing array in stub if necessary. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_DOUBLE; } if (value->IsHeapObject()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } return STORE_AND_GROW_NO_TRANSITION; } else { // Handle only in-bounds elements accesses. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_TRANSITION_TO_DOUBLE; } else if (value->IsHeapObject()) { return STORE_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_TRANSITION_TO_OBJECT; } } if (!FLAG_trace_external_array_abuse && receiver->map()->has_fixed_typed_array_elements() && oob_access) { return STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS; } Heap* heap = receiver->GetHeap(); if (receiver->elements()->map() == heap->fixed_cow_array_map()) { return STORE_NO_TRANSITION_HANDLE_COW; } else { return STANDARD_STORE; } } } MaybeHandle KeyedStoreIC::Store(Handle object, Handle key, Handle value) { // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); return result; } // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); Handle store_handle; uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION( isolate(), store_handle, StoreIC::Store(object, Handle::cast(key), value, JSReceiver::MAY_BE_STORE_FROM_KEYED), Object); if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unhandled internalized string key"); TRACE_IC("StoreIC", key); } return store_handle; } bool use_ic = FLAG_use_ic && !object->IsStringWrapper() && !object->IsAccessCheckNeeded() && !object->IsJSGlobalProxy(); if (use_ic && !object->IsSmi()) { // Don't use ICs for maps of the objects in Array's prototype chain. We // expect to be able to trap element sets to objects with those maps in // the runtime to enable optimization of element hole access. Handle heap_object = Handle::cast(object); if (heap_object->map()->IsMapInArrayPrototypeChain()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "map in array prototype"); use_ic = false; } } Handle old_receiver_map; bool sloppy_arguments_elements = false; bool key_is_valid_index = false; KeyedAccessStoreMode store_mode = STANDARD_STORE; if (use_ic && object->IsJSObject()) { Handle receiver = Handle::cast(object); old_receiver_map = handle(receiver->map(), isolate()); sloppy_arguments_elements = !is_sloppy(language_mode()) && receiver->elements()->map() == isolate()->heap()->sloppy_arguments_elements_map(); if (!sloppy_arguments_elements) { key_is_valid_index = key->IsSmi() && Smi::cast(*key)->value() >= 0; if (key_is_valid_index) { uint32_t index = static_cast(Smi::cast(*key)->value()); store_mode = GetStoreMode(receiver, index, value); } } } DCHECK(store_handle.is_null()); ASSIGN_RETURN_ON_EXCEPTION(isolate(), store_handle, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); if (use_ic) { if (!old_receiver_map.is_null()) { if (sloppy_arguments_elements) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "arguments receiver"); } else if (key_is_valid_index) { // We should go generic if receiver isn't a dictionary, but our // prototype chain does have dictionary elements. This ensures that // other non-dictionary receivers in the polymorphic case benefit // from fast path keyed stores. if (!old_receiver_map->DictionaryElementsInPrototypeChainOnly()) { UpdateStoreElement(old_receiver_map, store_mode); } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "dictionary or proxy prototype"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-smi-like key"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-JSObject receiver"); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "set generic"); } TRACE_IC("StoreIC", key); return store_handle; } void CallIC::HandleMiss(Handle function) { Handle name = isolate()->factory()->empty_string(); CallICNexus* nexus = casted_nexus(); Object* feedback = nexus->GetFeedback(); // Hand-coded MISS handling is easier if CallIC slots don't contain smis. DCHECK(!feedback->IsSmi()); if (feedback->IsWeakCell() || !function->IsJSFunction() || feedback->IsAllocationSite()) { // We are going generic. nexus->ConfigureMegamorphic(); } else { DCHECK(feedback == *TypeFeedbackVector::UninitializedSentinel(isolate())); Handle js_function = Handle::cast(function); Handle array_function = Handle(isolate()->native_context()->array_function()); if (array_function.is_identical_to(js_function)) { // Alter the slot. nexus->ConfigureMonomorphicArray(); } else if (js_function->context()->native_context() != *isolate()->native_context()) { // Don't collect cross-native context feedback for the CallIC. // TODO(bmeurer): We should collect the SharedFunctionInfo as // feedback in this case instead. nexus->ConfigureMegamorphic(); } else { nexus->ConfigureMonomorphic(js_function); } } if (function->IsJSFunction()) { Handle
CallIC::initialize_stub_in_optimized_code( Isolate* isolate, int argc, ConvertReceiverMode mode, TailCallMode tail_call_mode) { CallICStub stub(isolate, CallICState(argc, mode, tail_call_mode)); Handle code = stub.GetCode(); return code; } Handle StoreIC::initialize_stub_in_optimized_code( Isolate* isolate, LanguageMode language_mode) { VectorStoreICStub stub(isolate, StoreICState(language_mode)); return stub.GetCode(); } void StoreIC::UpdateCaches(LookupIterator* lookup, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (state() == UNINITIALIZED) { // This is the first time we execute this inline cache. Set the target to // the pre monomorphic stub to delay setting the monomorphic state. ConfigureVectorState(PREMONOMORPHIC, Handle()); TRACE_IC("StoreIC", lookup->name()); return; } bool use_ic = LookupForWrite(lookup, value, store_mode); if (!use_ic) { TRACE_GENERIC_IC(isolate(), "StoreIC", "LookupForWrite said 'false'"); } Handle code = use_ic ? ComputeHandler(lookup, value) : slow_stub(); PatchCache(lookup->name(), code); TRACE_IC("StoreIC", lookup->name()); } static Handle PropertyCellStoreHandler( Isolate* isolate, Handle receiver, Handle holder, Handle name, Handle cell, PropertyCellType type) { auto constant_type = Nothing(); if (type == PropertyCellType::kConstantType) { constant_type = Just(cell->GetConstantType()); } StoreGlobalStub stub(isolate, type, constant_type, receiver->IsJSGlobalProxy()); auto code = stub.GetCodeCopyFromTemplate(holder, cell); // TODO(verwaest): Move caching of these NORMAL stubs outside as well. HeapObject::UpdateMapCodeCache(receiver, name, code); return code; } Handle StoreIC::GetMapIndependentHandler(LookupIterator* lookup) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { break; // Custom-compiled handler. } // Currently not handled by CompileStoreTransition. if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "transition from slow"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } DCHECK(lookup->IsCacheableTransition()); break; // Custom-compiled handler. } case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->setter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreInterceptorStub); StoreInterceptorStub stub(isolate()); return stub.GetCode(); } case LookupIterator::ACCESSOR: { if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "accessor on slow map"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->setter()) == nullptr) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter == nullptr"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (AccessorInfo::cast(*accessors)->is_special_data_property() && !lookup->HolderIsReceiverOrHiddenPrototype()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "special data property in prototype chain"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (!AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())) { TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver type"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorPair()) { Handle setter(Handle::cast(accessors)->setter(), isolate()); if (!setter->IsJSFunction() && !setter->IsFunctionTemplateInfo()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter not a function"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } CallOptimization call_optimization(setter); if (call_optimization.is_simple_api_call()) { if (call_optimization.IsCompatibleReceiver(receiver, holder)) { break; // Custom-compiled handler. } TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreNormal); DCHECK(holder.is_identical_to(receiver)); return isolate()->builtins()->StoreIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } if (use_stub) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreFieldStub); StoreFieldStub stub(isolate(), lookup->GetFieldIndex(), lookup->representation()); return stub.GetCode(); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); TRACE_GENERIC_IC(isolate(), "StoreIC", "constant property"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } return Handle::null(); } Handle StoreIC::CompileHandler(LookupIterator* lookup, Handle value, CacheHolderFlag cache_holder) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { // TODO(dcarney): this currently just deopts. Use the transition cell. TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobalTransition); auto cell = isolate()->factory()->NewPropertyCell(); cell->set_value(*value); auto code = PropertyCellStoreHandler( isolate(), store_target, Handle::cast(store_target), lookup->name(), cell, PropertyCellType::kConstant); cell->set_value(isolate()->heap()->the_hole_value()); return code; } Handle transition = lookup->transition_map(); // Currently not handled by CompileStoreTransition. DCHECK(holder->HasFastProperties()); DCHECK(lookup->IsCacheableTransition()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreTransition); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreTransition(transition, lookup->name()); } case LookupIterator::INTERCEPTOR: UNREACHABLE(); case LookupIterator::ACCESSOR: { DCHECK(holder->HasFastProperties()); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->setter()) != 0); DCHECK(!AccessorInfo::cast(*accessors)->is_special_data_property() || lookup->HolderIsReceiverOrHiddenPrototype()); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), info, language_mode()); return code; } else { DCHECK(accessors->IsAccessorPair()); Handle setter(Handle::cast(accessors)->setter(), isolate()); DCHECK(setter->IsJSFunction() || setter->IsFunctionTemplateInfo()); CallOptimization call_optimization(setter); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); if (call_optimization.is_simple_api_call()) { DCHECK(call_optimization.IsCompatibleReceiver(receiver, holder)); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), call_optimization, lookup->GetAccessorIndex()); return code; } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreViaSetter); int expected_arguments = JSFunction::cast(*setter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileStoreViaSetter(receiver, lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobal); DCHECK(holder.is_identical_to(receiver) || receiver->map()->prototype() == *holder); auto cell = lookup->GetPropertyCell(); auto updated_type = PropertyCell::UpdatedType(cell, value, lookup->property_details()); auto code = PropertyCellStoreHandler( isolate(), receiver, Handle::cast(holder), lookup->name(), cell, updated_type); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { #ifdef DEBUG bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } DCHECK(!use_stub); #endif TRACE_HANDLER_STATS(isolate(), StoreIC_StoreField); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreField(lookup); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); UNREACHABLE(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } void KeyedStoreIC::UpdateStoreElement(Handle receiver_map, KeyedAccessStoreMode store_mode) { MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle monomorphic_map = ComputeTransitionedMap(receiver_map, store_mode); store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(monomorphic_map, store_mode); return ConfigureVectorState(Handle(), monomorphic_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { if (!target_receiver_maps.at(i).is_null() && target_receiver_maps.at(i)->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "JSValue"); return; } } // There are several special cases where an IC that is MONOMORPHIC can still // transition to a different GetNonTransitioningStoreMode IC that handles a // superset of the original IC. Handle those here if the receiver map hasn't // changed or it has transitioned to a more general kind. KeyedAccessStoreMode old_store_mode = GetKeyedAccessStoreMode(); Handle previous_receiver_map = target_receiver_maps.at(0); if (state() == MONOMORPHIC) { Handle transitioned_receiver_map = receiver_map; if (IsTransitionStoreMode(store_mode)) { transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); } if ((receiver_map.is_identical_to(previous_receiver_map) && IsTransitionStoreMode(store_mode)) || IsTransitionOfMonomorphicTarget(*previous_receiver_map, *transitioned_receiver_map)) { // If the "old" and "new" maps are in the same elements map family, or // if they at least come from the same origin for a transitioning store, // stay MONOMORPHIC and use the map for the most generic ElementsKind. store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler( transitioned_receiver_map, store_mode); ConfigureVectorState(Handle(), transitioned_receiver_map, handler); return; } if (receiver_map.is_identical_to(previous_receiver_map) && old_store_mode == STANDARD_STORE && (store_mode == STORE_AND_GROW_NO_TRANSITION || store_mode == STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS || store_mode == STORE_NO_TRANSITION_HANDLE_COW)) { // A "normal" IC that handles stores can switch to a version that can // grow at the end of the array, handle OOB accesses or copy COW arrays // and still stay MONOMORPHIC. Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(receiver_map, store_mode); return ConfigureVectorState(Handle(), receiver_map, handler); } } DCHECK(state() != GENERIC); bool map_added = AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map); if (IsTransitionStoreMode(store_mode)) { Handle transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); map_added |= AddOneReceiverMapIfMissing(&target_receiver_maps, transitioned_receiver_map); } if (!map_added) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the megamorphic stub which can handle everything. TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the // megamorphic version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) return; // Make sure all polymorphic handlers have the same store mode, otherwise the // megamorphic stub must be used. store_mode = GetNonTransitioningStoreMode(store_mode); if (old_store_mode != STANDARD_STORE) { if (store_mode == STANDARD_STORE) { store_mode = old_store_mode; } else if (store_mode != old_store_mode) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "store mode mismatch"); return; } } // If the store mode isn't the standard mode, make sure that all polymorphic // receivers are either external arrays, or all "normal" arrays. Otherwise, // use the megamorphic stub. if (store_mode != STANDARD_STORE) { int external_arrays = 0; for (int i = 0; i < target_receiver_maps.length(); ++i) { if (target_receiver_maps[i]->has_fixed_typed_array_elements()) { external_arrays++; } } if (external_arrays != 0 && external_arrays != target_receiver_maps.length()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unsupported combination of external and normal arrays"); return; } } TRACE_HANDLER_STATS(isolate(), KeyedStoreIC_Polymorphic); MapHandleList transitioned_maps(target_receiver_maps.length()); CodeHandleList handlers(target_receiver_maps.length()); PropertyICCompiler::ComputeKeyedStorePolymorphicHandlers( &target_receiver_maps, &transitioned_maps, &handlers, store_mode); ConfigureVectorState(&target_receiver_maps, &transitioned_maps, &handlers); } Handle KeyedStoreIC::ComputeTransitionedMap( Handle map, KeyedAccessStoreMode store_mode) { switch (store_mode) { case STORE_TRANSITION_TO_OBJECT: case STORE_AND_GROW_TRANSITION_TO_OBJECT: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_ELEMENTS : FAST_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_TRANSITION_TO_DOUBLE: case STORE_AND_GROW_TRANSITION_TO_DOUBLE: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_DOUBLE_ELEMENTS : FAST_DOUBLE_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS: DCHECK(map->has_fixed_typed_array_elements()); // Fall through case STORE_NO_TRANSITION_HANDLE_COW: case STANDARD_STORE: case STORE_AND_GROW_NO_TRANSITION: return map; } UNREACHABLE(); return MaybeHandle().ToHandleChecked(); } bool IsOutOfBoundsAccess(Handle receiver, uint32_t index) { uint32_t length = 0; if (receiver->IsJSArray()) { JSArray::cast(*receiver)->length()->ToArrayLength(&length); } else { length = static_cast(receiver->elements()->length()); } return index >= length; } static KeyedAccessStoreMode GetStoreMode(Handle receiver, uint32_t index, Handle value) { bool oob_access = IsOutOfBoundsAccess(receiver, index); // Don't consider this a growing store if the store would send the receiver to // dictionary mode. bool allow_growth = receiver->IsJSArray() && oob_access && !receiver->WouldConvertToSlowElements(index); if (allow_growth) { // Handle growing array in stub if necessary. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_DOUBLE; } if (value->IsHeapObject()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } return STORE_AND_GROW_NO_TRANSITION; } else { // Handle only in-bounds elements accesses. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_TRANSITION_TO_DOUBLE; } else if (value->IsHeapObject()) { return STORE_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_TRANSITION_TO_OBJECT; } } if (!FLAG_trace_external_array_abuse && receiver->map()->has_fixed_typed_array_elements() && oob_access) { return STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS; } Heap* heap = receiver->GetHeap(); if (receiver->elements()->map() == heap->fixed_cow_array_map()) { return STORE_NO_TRANSITION_HANDLE_COW; } else { return STANDARD_STORE; } } } MaybeHandle KeyedStoreIC::Store(Handle object, Handle key, Handle value) { // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); return result; } // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); Handle store_handle; uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION( isolate(), store_handle, StoreIC::Store(object, Handle::cast(key), value, JSReceiver::MAY_BE_STORE_FROM_KEYED), Object); if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unhandled internalized string key"); TRACE_IC("StoreIC", key); } return store_handle; } bool use_ic = FLAG_use_ic && !object->IsStringWrapper() && !object->IsAccessCheckNeeded() && !object->IsJSGlobalProxy(); if (use_ic && !object->IsSmi()) { // Don't use ICs for maps of the objects in Array's prototype chain. We // expect to be able to trap element sets to objects with those maps in // the runtime to enable optimization of element hole access. Handle heap_object = Handle::cast(object); if (heap_object->map()->IsMapInArrayPrototypeChain()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "map in array prototype"); use_ic = false; } } Handle old_receiver_map; bool sloppy_arguments_elements = false; bool key_is_valid_index = false; KeyedAccessStoreMode store_mode = STANDARD_STORE; if (use_ic && object->IsJSObject()) { Handle receiver = Handle::cast(object); old_receiver_map = handle(receiver->map(), isolate()); sloppy_arguments_elements = !is_sloppy(language_mode()) && receiver->elements()->map() == isolate()->heap()->sloppy_arguments_elements_map(); if (!sloppy_arguments_elements) { key_is_valid_index = key->IsSmi() && Smi::cast(*key)->value() >= 0; if (key_is_valid_index) { uint32_t index = static_cast(Smi::cast(*key)->value()); store_mode = GetStoreMode(receiver, index, value); } } } DCHECK(store_handle.is_null()); ASSIGN_RETURN_ON_EXCEPTION(isolate(), store_handle, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); if (use_ic) { if (!old_receiver_map.is_null()) { if (sloppy_arguments_elements) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "arguments receiver"); } else if (key_is_valid_index) { // We should go generic if receiver isn't a dictionary, but our // prototype chain does have dictionary elements. This ensures that // other non-dictionary receivers in the polymorphic case benefit // from fast path keyed stores. if (!old_receiver_map->DictionaryElementsInPrototypeChainOnly()) { UpdateStoreElement(old_receiver_map, store_mode); } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "dictionary or proxy prototype"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-smi-like key"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-JSObject receiver"); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "set generic"); } TRACE_IC("StoreIC", key); return store_handle; } void CallIC::HandleMiss(Handle function) { Handle name = isolate()->factory()->empty_string(); CallICNexus* nexus = casted_nexus(); Object* feedback = nexus->GetFeedback(); // Hand-coded MISS handling is easier if CallIC slots don't contain smis. DCHECK(!feedback->IsSmi()); if (feedback->IsWeakCell() || !function->IsJSFunction() || feedback->IsAllocationSite()) { // We are going generic. nexus->ConfigureMegamorphic(); } else { DCHECK(feedback == *TypeFeedbackVector::UninitializedSentinel(isolate())); Handle js_function = Handle::cast(function); Handle array_function = Handle(isolate()->native_context()->array_function()); if (array_function.is_identical_to(js_function)) { // Alter the slot. nexus->ConfigureMonomorphicArray(); } else if (js_function->context()->native_context() != *isolate()->native_context()) { // Don't collect cross-native context feedback for the CallIC. // TODO(bmeurer): We should collect the SharedFunctionInfo as // feedback in this case instead. nexus->ConfigureMegamorphic(); } else { nexus->ConfigureMonomorphic(js_function); } } if (function->IsJSFunction()) { Handle
code = stub.GetCode(); return code; } Handle StoreIC::initialize_stub_in_optimized_code( Isolate* isolate, LanguageMode language_mode) { VectorStoreICStub stub(isolate, StoreICState(language_mode)); return stub.GetCode(); } void StoreIC::UpdateCaches(LookupIterator* lookup, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (state() == UNINITIALIZED) { // This is the first time we execute this inline cache. Set the target to // the pre monomorphic stub to delay setting the monomorphic state. ConfigureVectorState(PREMONOMORPHIC, Handle()); TRACE_IC("StoreIC", lookup->name()); return; } bool use_ic = LookupForWrite(lookup, value, store_mode); if (!use_ic) { TRACE_GENERIC_IC(isolate(), "StoreIC", "LookupForWrite said 'false'"); } Handle code = use_ic ? ComputeHandler(lookup, value) : slow_stub(); PatchCache(lookup->name(), code); TRACE_IC("StoreIC", lookup->name()); } static Handle PropertyCellStoreHandler( Isolate* isolate, Handle receiver, Handle holder, Handle name, Handle cell, PropertyCellType type) { auto constant_type = Nothing(); if (type == PropertyCellType::kConstantType) { constant_type = Just(cell->GetConstantType()); } StoreGlobalStub stub(isolate, type, constant_type, receiver->IsJSGlobalProxy()); auto code = stub.GetCodeCopyFromTemplate(holder, cell); // TODO(verwaest): Move caching of these NORMAL stubs outside as well. HeapObject::UpdateMapCodeCache(receiver, name, code); return code; } Handle StoreIC::GetMapIndependentHandler(LookupIterator* lookup) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { break; // Custom-compiled handler. } // Currently not handled by CompileStoreTransition. if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "transition from slow"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } DCHECK(lookup->IsCacheableTransition()); break; // Custom-compiled handler. } case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->setter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreInterceptorStub); StoreInterceptorStub stub(isolate()); return stub.GetCode(); } case LookupIterator::ACCESSOR: { if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "accessor on slow map"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->setter()) == nullptr) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter == nullptr"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (AccessorInfo::cast(*accessors)->is_special_data_property() && !lookup->HolderIsReceiverOrHiddenPrototype()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "special data property in prototype chain"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (!AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())) { TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver type"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorPair()) { Handle setter(Handle::cast(accessors)->setter(), isolate()); if (!setter->IsJSFunction() && !setter->IsFunctionTemplateInfo()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter not a function"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } CallOptimization call_optimization(setter); if (call_optimization.is_simple_api_call()) { if (call_optimization.IsCompatibleReceiver(receiver, holder)) { break; // Custom-compiled handler. } TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreNormal); DCHECK(holder.is_identical_to(receiver)); return isolate()->builtins()->StoreIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } if (use_stub) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreFieldStub); StoreFieldStub stub(isolate(), lookup->GetFieldIndex(), lookup->representation()); return stub.GetCode(); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); TRACE_GENERIC_IC(isolate(), "StoreIC", "constant property"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } return Handle::null(); } Handle StoreIC::CompileHandler(LookupIterator* lookup, Handle value, CacheHolderFlag cache_holder) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { // TODO(dcarney): this currently just deopts. Use the transition cell. TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobalTransition); auto cell = isolate()->factory()->NewPropertyCell(); cell->set_value(*value); auto code = PropertyCellStoreHandler( isolate(), store_target, Handle::cast(store_target), lookup->name(), cell, PropertyCellType::kConstant); cell->set_value(isolate()->heap()->the_hole_value()); return code; } Handle transition = lookup->transition_map(); // Currently not handled by CompileStoreTransition. DCHECK(holder->HasFastProperties()); DCHECK(lookup->IsCacheableTransition()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreTransition); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreTransition(transition, lookup->name()); } case LookupIterator::INTERCEPTOR: UNREACHABLE(); case LookupIterator::ACCESSOR: { DCHECK(holder->HasFastProperties()); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->setter()) != 0); DCHECK(!AccessorInfo::cast(*accessors)->is_special_data_property() || lookup->HolderIsReceiverOrHiddenPrototype()); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), info, language_mode()); return code; } else { DCHECK(accessors->IsAccessorPair()); Handle setter(Handle::cast(accessors)->setter(), isolate()); DCHECK(setter->IsJSFunction() || setter->IsFunctionTemplateInfo()); CallOptimization call_optimization(setter); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); if (call_optimization.is_simple_api_call()) { DCHECK(call_optimization.IsCompatibleReceiver(receiver, holder)); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), call_optimization, lookup->GetAccessorIndex()); return code; } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreViaSetter); int expected_arguments = JSFunction::cast(*setter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileStoreViaSetter(receiver, lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobal); DCHECK(holder.is_identical_to(receiver) || receiver->map()->prototype() == *holder); auto cell = lookup->GetPropertyCell(); auto updated_type = PropertyCell::UpdatedType(cell, value, lookup->property_details()); auto code = PropertyCellStoreHandler( isolate(), receiver, Handle::cast(holder), lookup->name(), cell, updated_type); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { #ifdef DEBUG bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } DCHECK(!use_stub); #endif TRACE_HANDLER_STATS(isolate(), StoreIC_StoreField); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreField(lookup); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); UNREACHABLE(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } void KeyedStoreIC::UpdateStoreElement(Handle receiver_map, KeyedAccessStoreMode store_mode) { MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle monomorphic_map = ComputeTransitionedMap(receiver_map, store_mode); store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(monomorphic_map, store_mode); return ConfigureVectorState(Handle(), monomorphic_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { if (!target_receiver_maps.at(i).is_null() && target_receiver_maps.at(i)->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "JSValue"); return; } } // There are several special cases where an IC that is MONOMORPHIC can still // transition to a different GetNonTransitioningStoreMode IC that handles a // superset of the original IC. Handle those here if the receiver map hasn't // changed or it has transitioned to a more general kind. KeyedAccessStoreMode old_store_mode = GetKeyedAccessStoreMode(); Handle previous_receiver_map = target_receiver_maps.at(0); if (state() == MONOMORPHIC) { Handle transitioned_receiver_map = receiver_map; if (IsTransitionStoreMode(store_mode)) { transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); } if ((receiver_map.is_identical_to(previous_receiver_map) && IsTransitionStoreMode(store_mode)) || IsTransitionOfMonomorphicTarget(*previous_receiver_map, *transitioned_receiver_map)) { // If the "old" and "new" maps are in the same elements map family, or // if they at least come from the same origin for a transitioning store, // stay MONOMORPHIC and use the map for the most generic ElementsKind. store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler( transitioned_receiver_map, store_mode); ConfigureVectorState(Handle(), transitioned_receiver_map, handler); return; } if (receiver_map.is_identical_to(previous_receiver_map) && old_store_mode == STANDARD_STORE && (store_mode == STORE_AND_GROW_NO_TRANSITION || store_mode == STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS || store_mode == STORE_NO_TRANSITION_HANDLE_COW)) { // A "normal" IC that handles stores can switch to a version that can // grow at the end of the array, handle OOB accesses or copy COW arrays // and still stay MONOMORPHIC. Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(receiver_map, store_mode); return ConfigureVectorState(Handle(), receiver_map, handler); } } DCHECK(state() != GENERIC); bool map_added = AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map); if (IsTransitionStoreMode(store_mode)) { Handle transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); map_added |= AddOneReceiverMapIfMissing(&target_receiver_maps, transitioned_receiver_map); } if (!map_added) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the megamorphic stub which can handle everything. TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the // megamorphic version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) return; // Make sure all polymorphic handlers have the same store mode, otherwise the // megamorphic stub must be used. store_mode = GetNonTransitioningStoreMode(store_mode); if (old_store_mode != STANDARD_STORE) { if (store_mode == STANDARD_STORE) { store_mode = old_store_mode; } else if (store_mode != old_store_mode) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "store mode mismatch"); return; } } // If the store mode isn't the standard mode, make sure that all polymorphic // receivers are either external arrays, or all "normal" arrays. Otherwise, // use the megamorphic stub. if (store_mode != STANDARD_STORE) { int external_arrays = 0; for (int i = 0; i < target_receiver_maps.length(); ++i) { if (target_receiver_maps[i]->has_fixed_typed_array_elements()) { external_arrays++; } } if (external_arrays != 0 && external_arrays != target_receiver_maps.length()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unsupported combination of external and normal arrays"); return; } } TRACE_HANDLER_STATS(isolate(), KeyedStoreIC_Polymorphic); MapHandleList transitioned_maps(target_receiver_maps.length()); CodeHandleList handlers(target_receiver_maps.length()); PropertyICCompiler::ComputeKeyedStorePolymorphicHandlers( &target_receiver_maps, &transitioned_maps, &handlers, store_mode); ConfigureVectorState(&target_receiver_maps, &transitioned_maps, &handlers); } Handle KeyedStoreIC::ComputeTransitionedMap( Handle map, KeyedAccessStoreMode store_mode) { switch (store_mode) { case STORE_TRANSITION_TO_OBJECT: case STORE_AND_GROW_TRANSITION_TO_OBJECT: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_ELEMENTS : FAST_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_TRANSITION_TO_DOUBLE: case STORE_AND_GROW_TRANSITION_TO_DOUBLE: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_DOUBLE_ELEMENTS : FAST_DOUBLE_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS: DCHECK(map->has_fixed_typed_array_elements()); // Fall through case STORE_NO_TRANSITION_HANDLE_COW: case STANDARD_STORE: case STORE_AND_GROW_NO_TRANSITION: return map; } UNREACHABLE(); return MaybeHandle().ToHandleChecked(); } bool IsOutOfBoundsAccess(Handle receiver, uint32_t index) { uint32_t length = 0; if (receiver->IsJSArray()) { JSArray::cast(*receiver)->length()->ToArrayLength(&length); } else { length = static_cast(receiver->elements()->length()); } return index >= length; } static KeyedAccessStoreMode GetStoreMode(Handle receiver, uint32_t index, Handle value) { bool oob_access = IsOutOfBoundsAccess(receiver, index); // Don't consider this a growing store if the store would send the receiver to // dictionary mode. bool allow_growth = receiver->IsJSArray() && oob_access && !receiver->WouldConvertToSlowElements(index); if (allow_growth) { // Handle growing array in stub if necessary. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_DOUBLE; } if (value->IsHeapObject()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } return STORE_AND_GROW_NO_TRANSITION; } else { // Handle only in-bounds elements accesses. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_TRANSITION_TO_DOUBLE; } else if (value->IsHeapObject()) { return STORE_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_TRANSITION_TO_OBJECT; } } if (!FLAG_trace_external_array_abuse && receiver->map()->has_fixed_typed_array_elements() && oob_access) { return STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS; } Heap* heap = receiver->GetHeap(); if (receiver->elements()->map() == heap->fixed_cow_array_map()) { return STORE_NO_TRANSITION_HANDLE_COW; } else { return STANDARD_STORE; } } } MaybeHandle KeyedStoreIC::Store(Handle object, Handle key, Handle value) { // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); return result; } // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); Handle store_handle; uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION( isolate(), store_handle, StoreIC::Store(object, Handle::cast(key), value, JSReceiver::MAY_BE_STORE_FROM_KEYED), Object); if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unhandled internalized string key"); TRACE_IC("StoreIC", key); } return store_handle; } bool use_ic = FLAG_use_ic && !object->IsStringWrapper() && !object->IsAccessCheckNeeded() && !object->IsJSGlobalProxy(); if (use_ic && !object->IsSmi()) { // Don't use ICs for maps of the objects in Array's prototype chain. We // expect to be able to trap element sets to objects with those maps in // the runtime to enable optimization of element hole access. Handle heap_object = Handle::cast(object); if (heap_object->map()->IsMapInArrayPrototypeChain()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "map in array prototype"); use_ic = false; } } Handle old_receiver_map; bool sloppy_arguments_elements = false; bool key_is_valid_index = false; KeyedAccessStoreMode store_mode = STANDARD_STORE; if (use_ic && object->IsJSObject()) { Handle receiver = Handle::cast(object); old_receiver_map = handle(receiver->map(), isolate()); sloppy_arguments_elements = !is_sloppy(language_mode()) && receiver->elements()->map() == isolate()->heap()->sloppy_arguments_elements_map(); if (!sloppy_arguments_elements) { key_is_valid_index = key->IsSmi() && Smi::cast(*key)->value() >= 0; if (key_is_valid_index) { uint32_t index = static_cast(Smi::cast(*key)->value()); store_mode = GetStoreMode(receiver, index, value); } } } DCHECK(store_handle.is_null()); ASSIGN_RETURN_ON_EXCEPTION(isolate(), store_handle, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); if (use_ic) { if (!old_receiver_map.is_null()) { if (sloppy_arguments_elements) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "arguments receiver"); } else if (key_is_valid_index) { // We should go generic if receiver isn't a dictionary, but our // prototype chain does have dictionary elements. This ensures that // other non-dictionary receivers in the polymorphic case benefit // from fast path keyed stores. if (!old_receiver_map->DictionaryElementsInPrototypeChainOnly()) { UpdateStoreElement(old_receiver_map, store_mode); } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "dictionary or proxy prototype"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-smi-like key"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-JSObject receiver"); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "set generic"); } TRACE_IC("StoreIC", key); return store_handle; } void CallIC::HandleMiss(Handle function) { Handle name = isolate()->factory()->empty_string(); CallICNexus* nexus = casted_nexus(); Object* feedback = nexus->GetFeedback(); // Hand-coded MISS handling is easier if CallIC slots don't contain smis. DCHECK(!feedback->IsSmi()); if (feedback->IsWeakCell() || !function->IsJSFunction() || feedback->IsAllocationSite()) { // We are going generic. nexus->ConfigureMegamorphic(); } else { DCHECK(feedback == *TypeFeedbackVector::UninitializedSentinel(isolate())); Handle js_function = Handle::cast(function); Handle array_function = Handle(isolate()->native_context()->array_function()); if (array_function.is_identical_to(js_function)) { // Alter the slot. nexus->ConfigureMonomorphicArray(); } else if (js_function->context()->native_context() != *isolate()->native_context()) { // Don't collect cross-native context feedback for the CallIC. // TODO(bmeurer): We should collect the SharedFunctionInfo as // feedback in this case instead. nexus->ConfigureMegamorphic(); } else { nexus->ConfigureMonomorphic(js_function); } } if (function->IsJSFunction()) { Handle
StoreIC::initialize_stub_in_optimized_code( Isolate* isolate, LanguageMode language_mode) { VectorStoreICStub stub(isolate, StoreICState(language_mode)); return stub.GetCode(); } void StoreIC::UpdateCaches(LookupIterator* lookup, Handle value, JSReceiver::StoreFromKeyed store_mode) { if (state() == UNINITIALIZED) { // This is the first time we execute this inline cache. Set the target to // the pre monomorphic stub to delay setting the monomorphic state. ConfigureVectorState(PREMONOMORPHIC, Handle()); TRACE_IC("StoreIC", lookup->name()); return; } bool use_ic = LookupForWrite(lookup, value, store_mode); if (!use_ic) { TRACE_GENERIC_IC(isolate(), "StoreIC", "LookupForWrite said 'false'"); } Handle code = use_ic ? ComputeHandler(lookup, value) : slow_stub(); PatchCache(lookup->name(), code); TRACE_IC("StoreIC", lookup->name()); } static Handle PropertyCellStoreHandler( Isolate* isolate, Handle receiver, Handle holder, Handle name, Handle cell, PropertyCellType type) { auto constant_type = Nothing(); if (type == PropertyCellType::kConstantType) { constant_type = Just(cell->GetConstantType()); } StoreGlobalStub stub(isolate, type, constant_type, receiver->IsJSGlobalProxy()); auto code = stub.GetCodeCopyFromTemplate(holder, cell); // TODO(verwaest): Move caching of these NORMAL stubs outside as well. HeapObject::UpdateMapCodeCache(receiver, name, code); return code; } Handle StoreIC::GetMapIndependentHandler(LookupIterator* lookup) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { break; // Custom-compiled handler. } // Currently not handled by CompileStoreTransition. if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "transition from slow"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } DCHECK(lookup->IsCacheableTransition()); break; // Custom-compiled handler. } case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->setter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreInterceptorStub); StoreInterceptorStub stub(isolate()); return stub.GetCode(); } case LookupIterator::ACCESSOR: { if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "accessor on slow map"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->setter()) == nullptr) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter == nullptr"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (AccessorInfo::cast(*accessors)->is_special_data_property() && !lookup->HolderIsReceiverOrHiddenPrototype()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "special data property in prototype chain"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (!AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())) { TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver type"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorPair()) { Handle setter(Handle::cast(accessors)->setter(), isolate()); if (!setter->IsJSFunction() && !setter->IsFunctionTemplateInfo()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter not a function"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } CallOptimization call_optimization(setter); if (call_optimization.is_simple_api_call()) { if (call_optimization.IsCompatibleReceiver(receiver, holder)) { break; // Custom-compiled handler. } TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreNormal); DCHECK(holder.is_identical_to(receiver)); return isolate()->builtins()->StoreIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } if (use_stub) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreFieldStub); StoreFieldStub stub(isolate(), lookup->GetFieldIndex(), lookup->representation()); return stub.GetCode(); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); TRACE_GENERIC_IC(isolate(), "StoreIC", "constant property"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } return Handle::null(); } Handle StoreIC::CompileHandler(LookupIterator* lookup, Handle value, CacheHolderFlag cache_holder) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { // TODO(dcarney): this currently just deopts. Use the transition cell. TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobalTransition); auto cell = isolate()->factory()->NewPropertyCell(); cell->set_value(*value); auto code = PropertyCellStoreHandler( isolate(), store_target, Handle::cast(store_target), lookup->name(), cell, PropertyCellType::kConstant); cell->set_value(isolate()->heap()->the_hole_value()); return code; } Handle transition = lookup->transition_map(); // Currently not handled by CompileStoreTransition. DCHECK(holder->HasFastProperties()); DCHECK(lookup->IsCacheableTransition()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreTransition); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreTransition(transition, lookup->name()); } case LookupIterator::INTERCEPTOR: UNREACHABLE(); case LookupIterator::ACCESSOR: { DCHECK(holder->HasFastProperties()); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->setter()) != 0); DCHECK(!AccessorInfo::cast(*accessors)->is_special_data_property() || lookup->HolderIsReceiverOrHiddenPrototype()); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), info, language_mode()); return code; } else { DCHECK(accessors->IsAccessorPair()); Handle setter(Handle::cast(accessors)->setter(), isolate()); DCHECK(setter->IsJSFunction() || setter->IsFunctionTemplateInfo()); CallOptimization call_optimization(setter); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); if (call_optimization.is_simple_api_call()) { DCHECK(call_optimization.IsCompatibleReceiver(receiver, holder)); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), call_optimization, lookup->GetAccessorIndex()); return code; } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreViaSetter); int expected_arguments = JSFunction::cast(*setter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileStoreViaSetter(receiver, lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobal); DCHECK(holder.is_identical_to(receiver) || receiver->map()->prototype() == *holder); auto cell = lookup->GetPropertyCell(); auto updated_type = PropertyCell::UpdatedType(cell, value, lookup->property_details()); auto code = PropertyCellStoreHandler( isolate(), receiver, Handle::cast(holder), lookup->name(), cell, updated_type); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { #ifdef DEBUG bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } DCHECK(!use_stub); #endif TRACE_HANDLER_STATS(isolate(), StoreIC_StoreField); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreField(lookup); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); UNREACHABLE(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } void KeyedStoreIC::UpdateStoreElement(Handle receiver_map, KeyedAccessStoreMode store_mode) { MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle monomorphic_map = ComputeTransitionedMap(receiver_map, store_mode); store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(monomorphic_map, store_mode); return ConfigureVectorState(Handle(), monomorphic_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { if (!target_receiver_maps.at(i).is_null() && target_receiver_maps.at(i)->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "JSValue"); return; } } // There are several special cases where an IC that is MONOMORPHIC can still // transition to a different GetNonTransitioningStoreMode IC that handles a // superset of the original IC. Handle those here if the receiver map hasn't // changed or it has transitioned to a more general kind. KeyedAccessStoreMode old_store_mode = GetKeyedAccessStoreMode(); Handle previous_receiver_map = target_receiver_maps.at(0); if (state() == MONOMORPHIC) { Handle transitioned_receiver_map = receiver_map; if (IsTransitionStoreMode(store_mode)) { transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); } if ((receiver_map.is_identical_to(previous_receiver_map) && IsTransitionStoreMode(store_mode)) || IsTransitionOfMonomorphicTarget(*previous_receiver_map, *transitioned_receiver_map)) { // If the "old" and "new" maps are in the same elements map family, or // if they at least come from the same origin for a transitioning store, // stay MONOMORPHIC and use the map for the most generic ElementsKind. store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler( transitioned_receiver_map, store_mode); ConfigureVectorState(Handle(), transitioned_receiver_map, handler); return; } if (receiver_map.is_identical_to(previous_receiver_map) && old_store_mode == STANDARD_STORE && (store_mode == STORE_AND_GROW_NO_TRANSITION || store_mode == STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS || store_mode == STORE_NO_TRANSITION_HANDLE_COW)) { // A "normal" IC that handles stores can switch to a version that can // grow at the end of the array, handle OOB accesses or copy COW arrays // and still stay MONOMORPHIC. Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(receiver_map, store_mode); return ConfigureVectorState(Handle(), receiver_map, handler); } } DCHECK(state() != GENERIC); bool map_added = AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map); if (IsTransitionStoreMode(store_mode)) { Handle transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); map_added |= AddOneReceiverMapIfMissing(&target_receiver_maps, transitioned_receiver_map); } if (!map_added) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the megamorphic stub which can handle everything. TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the // megamorphic version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) return; // Make sure all polymorphic handlers have the same store mode, otherwise the // megamorphic stub must be used. store_mode = GetNonTransitioningStoreMode(store_mode); if (old_store_mode != STANDARD_STORE) { if (store_mode == STANDARD_STORE) { store_mode = old_store_mode; } else if (store_mode != old_store_mode) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "store mode mismatch"); return; } } // If the store mode isn't the standard mode, make sure that all polymorphic // receivers are either external arrays, or all "normal" arrays. Otherwise, // use the megamorphic stub. if (store_mode != STANDARD_STORE) { int external_arrays = 0; for (int i = 0; i < target_receiver_maps.length(); ++i) { if (target_receiver_maps[i]->has_fixed_typed_array_elements()) { external_arrays++; } } if (external_arrays != 0 && external_arrays != target_receiver_maps.length()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unsupported combination of external and normal arrays"); return; } } TRACE_HANDLER_STATS(isolate(), KeyedStoreIC_Polymorphic); MapHandleList transitioned_maps(target_receiver_maps.length()); CodeHandleList handlers(target_receiver_maps.length()); PropertyICCompiler::ComputeKeyedStorePolymorphicHandlers( &target_receiver_maps, &transitioned_maps, &handlers, store_mode); ConfigureVectorState(&target_receiver_maps, &transitioned_maps, &handlers); } Handle KeyedStoreIC::ComputeTransitionedMap( Handle map, KeyedAccessStoreMode store_mode) { switch (store_mode) { case STORE_TRANSITION_TO_OBJECT: case STORE_AND_GROW_TRANSITION_TO_OBJECT: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_ELEMENTS : FAST_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_TRANSITION_TO_DOUBLE: case STORE_AND_GROW_TRANSITION_TO_DOUBLE: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_DOUBLE_ELEMENTS : FAST_DOUBLE_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS: DCHECK(map->has_fixed_typed_array_elements()); // Fall through case STORE_NO_TRANSITION_HANDLE_COW: case STANDARD_STORE: case STORE_AND_GROW_NO_TRANSITION: return map; } UNREACHABLE(); return MaybeHandle().ToHandleChecked(); } bool IsOutOfBoundsAccess(Handle receiver, uint32_t index) { uint32_t length = 0; if (receiver->IsJSArray()) { JSArray::cast(*receiver)->length()->ToArrayLength(&length); } else { length = static_cast(receiver->elements()->length()); } return index >= length; } static KeyedAccessStoreMode GetStoreMode(Handle receiver, uint32_t index, Handle value) { bool oob_access = IsOutOfBoundsAccess(receiver, index); // Don't consider this a growing store if the store would send the receiver to // dictionary mode. bool allow_growth = receiver->IsJSArray() && oob_access && !receiver->WouldConvertToSlowElements(index); if (allow_growth) { // Handle growing array in stub if necessary. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_DOUBLE; } if (value->IsHeapObject()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } return STORE_AND_GROW_NO_TRANSITION; } else { // Handle only in-bounds elements accesses. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_TRANSITION_TO_DOUBLE; } else if (value->IsHeapObject()) { return STORE_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_TRANSITION_TO_OBJECT; } } if (!FLAG_trace_external_array_abuse && receiver->map()->has_fixed_typed_array_elements() && oob_access) { return STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS; } Heap* heap = receiver->GetHeap(); if (receiver->elements()->map() == heap->fixed_cow_array_map()) { return STORE_NO_TRANSITION_HANDLE_COW; } else { return STANDARD_STORE; } } } MaybeHandle KeyedStoreIC::Store(Handle object, Handle key, Handle value) { // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); return result; } // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); Handle store_handle; uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION( isolate(), store_handle, StoreIC::Store(object, Handle::cast(key), value, JSReceiver::MAY_BE_STORE_FROM_KEYED), Object); if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unhandled internalized string key"); TRACE_IC("StoreIC", key); } return store_handle; } bool use_ic = FLAG_use_ic && !object->IsStringWrapper() && !object->IsAccessCheckNeeded() && !object->IsJSGlobalProxy(); if (use_ic && !object->IsSmi()) { // Don't use ICs for maps of the objects in Array's prototype chain. We // expect to be able to trap element sets to objects with those maps in // the runtime to enable optimization of element hole access. Handle heap_object = Handle::cast(object); if (heap_object->map()->IsMapInArrayPrototypeChain()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "map in array prototype"); use_ic = false; } } Handle old_receiver_map; bool sloppy_arguments_elements = false; bool key_is_valid_index = false; KeyedAccessStoreMode store_mode = STANDARD_STORE; if (use_ic && object->IsJSObject()) { Handle receiver = Handle::cast(object); old_receiver_map = handle(receiver->map(), isolate()); sloppy_arguments_elements = !is_sloppy(language_mode()) && receiver->elements()->map() == isolate()->heap()->sloppy_arguments_elements_map(); if (!sloppy_arguments_elements) { key_is_valid_index = key->IsSmi() && Smi::cast(*key)->value() >= 0; if (key_is_valid_index) { uint32_t index = static_cast(Smi::cast(*key)->value()); store_mode = GetStoreMode(receiver, index, value); } } } DCHECK(store_handle.is_null()); ASSIGN_RETURN_ON_EXCEPTION(isolate(), store_handle, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); if (use_ic) { if (!old_receiver_map.is_null()) { if (sloppy_arguments_elements) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "arguments receiver"); } else if (key_is_valid_index) { // We should go generic if receiver isn't a dictionary, but our // prototype chain does have dictionary elements. This ensures that // other non-dictionary receivers in the polymorphic case benefit // from fast path keyed stores. if (!old_receiver_map->DictionaryElementsInPrototypeChainOnly()) { UpdateStoreElement(old_receiver_map, store_mode); } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "dictionary or proxy prototype"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-smi-like key"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-JSObject receiver"); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "set generic"); } TRACE_IC("StoreIC", key); return store_handle; } void CallIC::HandleMiss(Handle function) { Handle name = isolate()->factory()->empty_string(); CallICNexus* nexus = casted_nexus(); Object* feedback = nexus->GetFeedback(); // Hand-coded MISS handling is easier if CallIC slots don't contain smis. DCHECK(!feedback->IsSmi()); if (feedback->IsWeakCell() || !function->IsJSFunction() || feedback->IsAllocationSite()) { // We are going generic. nexus->ConfigureMegamorphic(); } else { DCHECK(feedback == *TypeFeedbackVector::UninitializedSentinel(isolate())); Handle js_function = Handle::cast(function); Handle array_function = Handle(isolate()->native_context()->array_function()); if (array_function.is_identical_to(js_function)) { // Alter the slot. nexus->ConfigureMonomorphicArray(); } else if (js_function->context()->native_context() != *isolate()->native_context()) { // Don't collect cross-native context feedback for the CallIC. // TODO(bmeurer): We should collect the SharedFunctionInfo as // feedback in this case instead. nexus->ConfigureMegamorphic(); } else { nexus->ConfigureMonomorphic(js_function); } } if (function->IsJSFunction()) { Handle
code = use_ic ? ComputeHandler(lookup, value) : slow_stub(); PatchCache(lookup->name(), code); TRACE_IC("StoreIC", lookup->name()); } static Handle PropertyCellStoreHandler( Isolate* isolate, Handle receiver, Handle holder, Handle name, Handle cell, PropertyCellType type) { auto constant_type = Nothing(); if (type == PropertyCellType::kConstantType) { constant_type = Just(cell->GetConstantType()); } StoreGlobalStub stub(isolate, type, constant_type, receiver->IsJSGlobalProxy()); auto code = stub.GetCodeCopyFromTemplate(holder, cell); // TODO(verwaest): Move caching of these NORMAL stubs outside as well. HeapObject::UpdateMapCodeCache(receiver, name, code); return code; } Handle StoreIC::GetMapIndependentHandler(LookupIterator* lookup) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { break; // Custom-compiled handler. } // Currently not handled by CompileStoreTransition. if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "transition from slow"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } DCHECK(lookup->IsCacheableTransition()); break; // Custom-compiled handler. } case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->setter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreInterceptorStub); StoreInterceptorStub stub(isolate()); return stub.GetCode(); } case LookupIterator::ACCESSOR: { if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "accessor on slow map"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->setter()) == nullptr) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter == nullptr"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (AccessorInfo::cast(*accessors)->is_special_data_property() && !lookup->HolderIsReceiverOrHiddenPrototype()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "special data property in prototype chain"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (!AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())) { TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver type"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorPair()) { Handle setter(Handle::cast(accessors)->setter(), isolate()); if (!setter->IsJSFunction() && !setter->IsFunctionTemplateInfo()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter not a function"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } CallOptimization call_optimization(setter); if (call_optimization.is_simple_api_call()) { if (call_optimization.IsCompatibleReceiver(receiver, holder)) { break; // Custom-compiled handler. } TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreNormal); DCHECK(holder.is_identical_to(receiver)); return isolate()->builtins()->StoreIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } if (use_stub) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreFieldStub); StoreFieldStub stub(isolate(), lookup->GetFieldIndex(), lookup->representation()); return stub.GetCode(); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); TRACE_GENERIC_IC(isolate(), "StoreIC", "constant property"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } return Handle::null(); } Handle StoreIC::CompileHandler(LookupIterator* lookup, Handle value, CacheHolderFlag cache_holder) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { // TODO(dcarney): this currently just deopts. Use the transition cell. TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobalTransition); auto cell = isolate()->factory()->NewPropertyCell(); cell->set_value(*value); auto code = PropertyCellStoreHandler( isolate(), store_target, Handle::cast(store_target), lookup->name(), cell, PropertyCellType::kConstant); cell->set_value(isolate()->heap()->the_hole_value()); return code; } Handle transition = lookup->transition_map(); // Currently not handled by CompileStoreTransition. DCHECK(holder->HasFastProperties()); DCHECK(lookup->IsCacheableTransition()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreTransition); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreTransition(transition, lookup->name()); } case LookupIterator::INTERCEPTOR: UNREACHABLE(); case LookupIterator::ACCESSOR: { DCHECK(holder->HasFastProperties()); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->setter()) != 0); DCHECK(!AccessorInfo::cast(*accessors)->is_special_data_property() || lookup->HolderIsReceiverOrHiddenPrototype()); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), info, language_mode()); return code; } else { DCHECK(accessors->IsAccessorPair()); Handle setter(Handle::cast(accessors)->setter(), isolate()); DCHECK(setter->IsJSFunction() || setter->IsFunctionTemplateInfo()); CallOptimization call_optimization(setter); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); if (call_optimization.is_simple_api_call()) { DCHECK(call_optimization.IsCompatibleReceiver(receiver, holder)); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), call_optimization, lookup->GetAccessorIndex()); return code; } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreViaSetter); int expected_arguments = JSFunction::cast(*setter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileStoreViaSetter(receiver, lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobal); DCHECK(holder.is_identical_to(receiver) || receiver->map()->prototype() == *holder); auto cell = lookup->GetPropertyCell(); auto updated_type = PropertyCell::UpdatedType(cell, value, lookup->property_details()); auto code = PropertyCellStoreHandler( isolate(), receiver, Handle::cast(holder), lookup->name(), cell, updated_type); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { #ifdef DEBUG bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } DCHECK(!use_stub); #endif TRACE_HANDLER_STATS(isolate(), StoreIC_StoreField); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreField(lookup); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); UNREACHABLE(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } void KeyedStoreIC::UpdateStoreElement(Handle receiver_map, KeyedAccessStoreMode store_mode) { MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle monomorphic_map = ComputeTransitionedMap(receiver_map, store_mode); store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(monomorphic_map, store_mode); return ConfigureVectorState(Handle(), monomorphic_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { if (!target_receiver_maps.at(i).is_null() && target_receiver_maps.at(i)->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "JSValue"); return; } } // There are several special cases where an IC that is MONOMORPHIC can still // transition to a different GetNonTransitioningStoreMode IC that handles a // superset of the original IC. Handle those here if the receiver map hasn't // changed or it has transitioned to a more general kind. KeyedAccessStoreMode old_store_mode = GetKeyedAccessStoreMode(); Handle previous_receiver_map = target_receiver_maps.at(0); if (state() == MONOMORPHIC) { Handle transitioned_receiver_map = receiver_map; if (IsTransitionStoreMode(store_mode)) { transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); } if ((receiver_map.is_identical_to(previous_receiver_map) && IsTransitionStoreMode(store_mode)) || IsTransitionOfMonomorphicTarget(*previous_receiver_map, *transitioned_receiver_map)) { // If the "old" and "new" maps are in the same elements map family, or // if they at least come from the same origin for a transitioning store, // stay MONOMORPHIC and use the map for the most generic ElementsKind. store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler( transitioned_receiver_map, store_mode); ConfigureVectorState(Handle(), transitioned_receiver_map, handler); return; } if (receiver_map.is_identical_to(previous_receiver_map) && old_store_mode == STANDARD_STORE && (store_mode == STORE_AND_GROW_NO_TRANSITION || store_mode == STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS || store_mode == STORE_NO_TRANSITION_HANDLE_COW)) { // A "normal" IC that handles stores can switch to a version that can // grow at the end of the array, handle OOB accesses or copy COW arrays // and still stay MONOMORPHIC. Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(receiver_map, store_mode); return ConfigureVectorState(Handle(), receiver_map, handler); } } DCHECK(state() != GENERIC); bool map_added = AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map); if (IsTransitionStoreMode(store_mode)) { Handle transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); map_added |= AddOneReceiverMapIfMissing(&target_receiver_maps, transitioned_receiver_map); } if (!map_added) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the megamorphic stub which can handle everything. TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the // megamorphic version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) return; // Make sure all polymorphic handlers have the same store mode, otherwise the // megamorphic stub must be used. store_mode = GetNonTransitioningStoreMode(store_mode); if (old_store_mode != STANDARD_STORE) { if (store_mode == STANDARD_STORE) { store_mode = old_store_mode; } else if (store_mode != old_store_mode) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "store mode mismatch"); return; } } // If the store mode isn't the standard mode, make sure that all polymorphic // receivers are either external arrays, or all "normal" arrays. Otherwise, // use the megamorphic stub. if (store_mode != STANDARD_STORE) { int external_arrays = 0; for (int i = 0; i < target_receiver_maps.length(); ++i) { if (target_receiver_maps[i]->has_fixed_typed_array_elements()) { external_arrays++; } } if (external_arrays != 0 && external_arrays != target_receiver_maps.length()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unsupported combination of external and normal arrays"); return; } } TRACE_HANDLER_STATS(isolate(), KeyedStoreIC_Polymorphic); MapHandleList transitioned_maps(target_receiver_maps.length()); CodeHandleList handlers(target_receiver_maps.length()); PropertyICCompiler::ComputeKeyedStorePolymorphicHandlers( &target_receiver_maps, &transitioned_maps, &handlers, store_mode); ConfigureVectorState(&target_receiver_maps, &transitioned_maps, &handlers); } Handle KeyedStoreIC::ComputeTransitionedMap( Handle map, KeyedAccessStoreMode store_mode) { switch (store_mode) { case STORE_TRANSITION_TO_OBJECT: case STORE_AND_GROW_TRANSITION_TO_OBJECT: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_ELEMENTS : FAST_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_TRANSITION_TO_DOUBLE: case STORE_AND_GROW_TRANSITION_TO_DOUBLE: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_DOUBLE_ELEMENTS : FAST_DOUBLE_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS: DCHECK(map->has_fixed_typed_array_elements()); // Fall through case STORE_NO_TRANSITION_HANDLE_COW: case STANDARD_STORE: case STORE_AND_GROW_NO_TRANSITION: return map; } UNREACHABLE(); return MaybeHandle().ToHandleChecked(); } bool IsOutOfBoundsAccess(Handle receiver, uint32_t index) { uint32_t length = 0; if (receiver->IsJSArray()) { JSArray::cast(*receiver)->length()->ToArrayLength(&length); } else { length = static_cast(receiver->elements()->length()); } return index >= length; } static KeyedAccessStoreMode GetStoreMode(Handle receiver, uint32_t index, Handle value) { bool oob_access = IsOutOfBoundsAccess(receiver, index); // Don't consider this a growing store if the store would send the receiver to // dictionary mode. bool allow_growth = receiver->IsJSArray() && oob_access && !receiver->WouldConvertToSlowElements(index); if (allow_growth) { // Handle growing array in stub if necessary. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_DOUBLE; } if (value->IsHeapObject()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } return STORE_AND_GROW_NO_TRANSITION; } else { // Handle only in-bounds elements accesses. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_TRANSITION_TO_DOUBLE; } else if (value->IsHeapObject()) { return STORE_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_TRANSITION_TO_OBJECT; } } if (!FLAG_trace_external_array_abuse && receiver->map()->has_fixed_typed_array_elements() && oob_access) { return STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS; } Heap* heap = receiver->GetHeap(); if (receiver->elements()->map() == heap->fixed_cow_array_map()) { return STORE_NO_TRANSITION_HANDLE_COW; } else { return STANDARD_STORE; } } } MaybeHandle KeyedStoreIC::Store(Handle object, Handle key, Handle value) { // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); return result; } // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); Handle store_handle; uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION( isolate(), store_handle, StoreIC::Store(object, Handle::cast(key), value, JSReceiver::MAY_BE_STORE_FROM_KEYED), Object); if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unhandled internalized string key"); TRACE_IC("StoreIC", key); } return store_handle; } bool use_ic = FLAG_use_ic && !object->IsStringWrapper() && !object->IsAccessCheckNeeded() && !object->IsJSGlobalProxy(); if (use_ic && !object->IsSmi()) { // Don't use ICs for maps of the objects in Array's prototype chain. We // expect to be able to trap element sets to objects with those maps in // the runtime to enable optimization of element hole access. Handle heap_object = Handle::cast(object); if (heap_object->map()->IsMapInArrayPrototypeChain()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "map in array prototype"); use_ic = false; } } Handle old_receiver_map; bool sloppy_arguments_elements = false; bool key_is_valid_index = false; KeyedAccessStoreMode store_mode = STANDARD_STORE; if (use_ic && object->IsJSObject()) { Handle receiver = Handle::cast(object); old_receiver_map = handle(receiver->map(), isolate()); sloppy_arguments_elements = !is_sloppy(language_mode()) && receiver->elements()->map() == isolate()->heap()->sloppy_arguments_elements_map(); if (!sloppy_arguments_elements) { key_is_valid_index = key->IsSmi() && Smi::cast(*key)->value() >= 0; if (key_is_valid_index) { uint32_t index = static_cast(Smi::cast(*key)->value()); store_mode = GetStoreMode(receiver, index, value); } } } DCHECK(store_handle.is_null()); ASSIGN_RETURN_ON_EXCEPTION(isolate(), store_handle, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); if (use_ic) { if (!old_receiver_map.is_null()) { if (sloppy_arguments_elements) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "arguments receiver"); } else if (key_is_valid_index) { // We should go generic if receiver isn't a dictionary, but our // prototype chain does have dictionary elements. This ensures that // other non-dictionary receivers in the polymorphic case benefit // from fast path keyed stores. if (!old_receiver_map->DictionaryElementsInPrototypeChainOnly()) { UpdateStoreElement(old_receiver_map, store_mode); } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "dictionary or proxy prototype"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-smi-like key"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-JSObject receiver"); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "set generic"); } TRACE_IC("StoreIC", key); return store_handle; } void CallIC::HandleMiss(Handle function) { Handle name = isolate()->factory()->empty_string(); CallICNexus* nexus = casted_nexus(); Object* feedback = nexus->GetFeedback(); // Hand-coded MISS handling is easier if CallIC slots don't contain smis. DCHECK(!feedback->IsSmi()); if (feedback->IsWeakCell() || !function->IsJSFunction() || feedback->IsAllocationSite()) { // We are going generic. nexus->ConfigureMegamorphic(); } else { DCHECK(feedback == *TypeFeedbackVector::UninitializedSentinel(isolate())); Handle js_function = Handle::cast(function); Handle array_function = Handle(isolate()->native_context()->array_function()); if (array_function.is_identical_to(js_function)) { // Alter the slot. nexus->ConfigureMonomorphicArray(); } else if (js_function->context()->native_context() != *isolate()->native_context()) { // Don't collect cross-native context feedback for the CallIC. // TODO(bmeurer): We should collect the SharedFunctionInfo as // feedback in this case instead. nexus->ConfigureMegamorphic(); } else { nexus->ConfigureMonomorphic(js_function); } } if (function->IsJSFunction()) { Handle
PropertyCellStoreHandler( Isolate* isolate, Handle receiver, Handle holder, Handle name, Handle cell, PropertyCellType type) { auto constant_type = Nothing(); if (type == PropertyCellType::kConstantType) { constant_type = Just(cell->GetConstantType()); } StoreGlobalStub stub(isolate, type, constant_type, receiver->IsJSGlobalProxy()); auto code = stub.GetCodeCopyFromTemplate(holder, cell); // TODO(verwaest): Move caching of these NORMAL stubs outside as well. HeapObject::UpdateMapCodeCache(receiver, name, code); return code; } Handle StoreIC::GetMapIndependentHandler(LookupIterator* lookup) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { break; // Custom-compiled handler. } // Currently not handled by CompileStoreTransition. if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "transition from slow"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } DCHECK(lookup->IsCacheableTransition()); break; // Custom-compiled handler. } case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->setter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreInterceptorStub); StoreInterceptorStub stub(isolate()); return stub.GetCode(); } case LookupIterator::ACCESSOR: { if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "accessor on slow map"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->setter()) == nullptr) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter == nullptr"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (AccessorInfo::cast(*accessors)->is_special_data_property() && !lookup->HolderIsReceiverOrHiddenPrototype()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "special data property in prototype chain"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (!AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())) { TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver type"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorPair()) { Handle setter(Handle::cast(accessors)->setter(), isolate()); if (!setter->IsJSFunction() && !setter->IsFunctionTemplateInfo()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter not a function"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } CallOptimization call_optimization(setter); if (call_optimization.is_simple_api_call()) { if (call_optimization.IsCompatibleReceiver(receiver, holder)) { break; // Custom-compiled handler. } TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreNormal); DCHECK(holder.is_identical_to(receiver)); return isolate()->builtins()->StoreIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } if (use_stub) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreFieldStub); StoreFieldStub stub(isolate(), lookup->GetFieldIndex(), lookup->representation()); return stub.GetCode(); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); TRACE_GENERIC_IC(isolate(), "StoreIC", "constant property"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } return Handle::null(); } Handle StoreIC::CompileHandler(LookupIterator* lookup, Handle value, CacheHolderFlag cache_holder) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { // TODO(dcarney): this currently just deopts. Use the transition cell. TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobalTransition); auto cell = isolate()->factory()->NewPropertyCell(); cell->set_value(*value); auto code = PropertyCellStoreHandler( isolate(), store_target, Handle::cast(store_target), lookup->name(), cell, PropertyCellType::kConstant); cell->set_value(isolate()->heap()->the_hole_value()); return code; } Handle transition = lookup->transition_map(); // Currently not handled by CompileStoreTransition. DCHECK(holder->HasFastProperties()); DCHECK(lookup->IsCacheableTransition()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreTransition); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreTransition(transition, lookup->name()); } case LookupIterator::INTERCEPTOR: UNREACHABLE(); case LookupIterator::ACCESSOR: { DCHECK(holder->HasFastProperties()); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->setter()) != 0); DCHECK(!AccessorInfo::cast(*accessors)->is_special_data_property() || lookup->HolderIsReceiverOrHiddenPrototype()); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), info, language_mode()); return code; } else { DCHECK(accessors->IsAccessorPair()); Handle setter(Handle::cast(accessors)->setter(), isolate()); DCHECK(setter->IsJSFunction() || setter->IsFunctionTemplateInfo()); CallOptimization call_optimization(setter); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); if (call_optimization.is_simple_api_call()) { DCHECK(call_optimization.IsCompatibleReceiver(receiver, holder)); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), call_optimization, lookup->GetAccessorIndex()); return code; } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreViaSetter); int expected_arguments = JSFunction::cast(*setter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileStoreViaSetter(receiver, lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobal); DCHECK(holder.is_identical_to(receiver) || receiver->map()->prototype() == *holder); auto cell = lookup->GetPropertyCell(); auto updated_type = PropertyCell::UpdatedType(cell, value, lookup->property_details()); auto code = PropertyCellStoreHandler( isolate(), receiver, Handle::cast(holder), lookup->name(), cell, updated_type); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { #ifdef DEBUG bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } DCHECK(!use_stub); #endif TRACE_HANDLER_STATS(isolate(), StoreIC_StoreField); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreField(lookup); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); UNREACHABLE(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } void KeyedStoreIC::UpdateStoreElement(Handle receiver_map, KeyedAccessStoreMode store_mode) { MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle monomorphic_map = ComputeTransitionedMap(receiver_map, store_mode); store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(monomorphic_map, store_mode); return ConfigureVectorState(Handle(), monomorphic_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { if (!target_receiver_maps.at(i).is_null() && target_receiver_maps.at(i)->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "JSValue"); return; } } // There are several special cases where an IC that is MONOMORPHIC can still // transition to a different GetNonTransitioningStoreMode IC that handles a // superset of the original IC. Handle those here if the receiver map hasn't // changed or it has transitioned to a more general kind. KeyedAccessStoreMode old_store_mode = GetKeyedAccessStoreMode(); Handle previous_receiver_map = target_receiver_maps.at(0); if (state() == MONOMORPHIC) { Handle transitioned_receiver_map = receiver_map; if (IsTransitionStoreMode(store_mode)) { transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); } if ((receiver_map.is_identical_to(previous_receiver_map) && IsTransitionStoreMode(store_mode)) || IsTransitionOfMonomorphicTarget(*previous_receiver_map, *transitioned_receiver_map)) { // If the "old" and "new" maps are in the same elements map family, or // if they at least come from the same origin for a transitioning store, // stay MONOMORPHIC and use the map for the most generic ElementsKind. store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler( transitioned_receiver_map, store_mode); ConfigureVectorState(Handle(), transitioned_receiver_map, handler); return; } if (receiver_map.is_identical_to(previous_receiver_map) && old_store_mode == STANDARD_STORE && (store_mode == STORE_AND_GROW_NO_TRANSITION || store_mode == STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS || store_mode == STORE_NO_TRANSITION_HANDLE_COW)) { // A "normal" IC that handles stores can switch to a version that can // grow at the end of the array, handle OOB accesses or copy COW arrays // and still stay MONOMORPHIC. Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(receiver_map, store_mode); return ConfigureVectorState(Handle(), receiver_map, handler); } } DCHECK(state() != GENERIC); bool map_added = AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map); if (IsTransitionStoreMode(store_mode)) { Handle transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); map_added |= AddOneReceiverMapIfMissing(&target_receiver_maps, transitioned_receiver_map); } if (!map_added) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the megamorphic stub which can handle everything. TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the // megamorphic version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) return; // Make sure all polymorphic handlers have the same store mode, otherwise the // megamorphic stub must be used. store_mode = GetNonTransitioningStoreMode(store_mode); if (old_store_mode != STANDARD_STORE) { if (store_mode == STANDARD_STORE) { store_mode = old_store_mode; } else if (store_mode != old_store_mode) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "store mode mismatch"); return; } } // If the store mode isn't the standard mode, make sure that all polymorphic // receivers are either external arrays, or all "normal" arrays. Otherwise, // use the megamorphic stub. if (store_mode != STANDARD_STORE) { int external_arrays = 0; for (int i = 0; i < target_receiver_maps.length(); ++i) { if (target_receiver_maps[i]->has_fixed_typed_array_elements()) { external_arrays++; } } if (external_arrays != 0 && external_arrays != target_receiver_maps.length()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unsupported combination of external and normal arrays"); return; } } TRACE_HANDLER_STATS(isolate(), KeyedStoreIC_Polymorphic); MapHandleList transitioned_maps(target_receiver_maps.length()); CodeHandleList handlers(target_receiver_maps.length()); PropertyICCompiler::ComputeKeyedStorePolymorphicHandlers( &target_receiver_maps, &transitioned_maps, &handlers, store_mode); ConfigureVectorState(&target_receiver_maps, &transitioned_maps, &handlers); } Handle KeyedStoreIC::ComputeTransitionedMap( Handle map, KeyedAccessStoreMode store_mode) { switch (store_mode) { case STORE_TRANSITION_TO_OBJECT: case STORE_AND_GROW_TRANSITION_TO_OBJECT: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_ELEMENTS : FAST_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_TRANSITION_TO_DOUBLE: case STORE_AND_GROW_TRANSITION_TO_DOUBLE: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_DOUBLE_ELEMENTS : FAST_DOUBLE_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS: DCHECK(map->has_fixed_typed_array_elements()); // Fall through case STORE_NO_TRANSITION_HANDLE_COW: case STANDARD_STORE: case STORE_AND_GROW_NO_TRANSITION: return map; } UNREACHABLE(); return MaybeHandle().ToHandleChecked(); } bool IsOutOfBoundsAccess(Handle receiver, uint32_t index) { uint32_t length = 0; if (receiver->IsJSArray()) { JSArray::cast(*receiver)->length()->ToArrayLength(&length); } else { length = static_cast(receiver->elements()->length()); } return index >= length; } static KeyedAccessStoreMode GetStoreMode(Handle receiver, uint32_t index, Handle value) { bool oob_access = IsOutOfBoundsAccess(receiver, index); // Don't consider this a growing store if the store would send the receiver to // dictionary mode. bool allow_growth = receiver->IsJSArray() && oob_access && !receiver->WouldConvertToSlowElements(index); if (allow_growth) { // Handle growing array in stub if necessary. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_DOUBLE; } if (value->IsHeapObject()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } return STORE_AND_GROW_NO_TRANSITION; } else { // Handle only in-bounds elements accesses. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_TRANSITION_TO_DOUBLE; } else if (value->IsHeapObject()) { return STORE_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_TRANSITION_TO_OBJECT; } } if (!FLAG_trace_external_array_abuse && receiver->map()->has_fixed_typed_array_elements() && oob_access) { return STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS; } Heap* heap = receiver->GetHeap(); if (receiver->elements()->map() == heap->fixed_cow_array_map()) { return STORE_NO_TRANSITION_HANDLE_COW; } else { return STANDARD_STORE; } } } MaybeHandle KeyedStoreIC::Store(Handle object, Handle key, Handle value) { // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); return result; } // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); Handle store_handle; uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION( isolate(), store_handle, StoreIC::Store(object, Handle::cast(key), value, JSReceiver::MAY_BE_STORE_FROM_KEYED), Object); if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unhandled internalized string key"); TRACE_IC("StoreIC", key); } return store_handle; } bool use_ic = FLAG_use_ic && !object->IsStringWrapper() && !object->IsAccessCheckNeeded() && !object->IsJSGlobalProxy(); if (use_ic && !object->IsSmi()) { // Don't use ICs for maps of the objects in Array's prototype chain. We // expect to be able to trap element sets to objects with those maps in // the runtime to enable optimization of element hole access. Handle heap_object = Handle::cast(object); if (heap_object->map()->IsMapInArrayPrototypeChain()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "map in array prototype"); use_ic = false; } } Handle old_receiver_map; bool sloppy_arguments_elements = false; bool key_is_valid_index = false; KeyedAccessStoreMode store_mode = STANDARD_STORE; if (use_ic && object->IsJSObject()) { Handle receiver = Handle::cast(object); old_receiver_map = handle(receiver->map(), isolate()); sloppy_arguments_elements = !is_sloppy(language_mode()) && receiver->elements()->map() == isolate()->heap()->sloppy_arguments_elements_map(); if (!sloppy_arguments_elements) { key_is_valid_index = key->IsSmi() && Smi::cast(*key)->value() >= 0; if (key_is_valid_index) { uint32_t index = static_cast(Smi::cast(*key)->value()); store_mode = GetStoreMode(receiver, index, value); } } } DCHECK(store_handle.is_null()); ASSIGN_RETURN_ON_EXCEPTION(isolate(), store_handle, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); if (use_ic) { if (!old_receiver_map.is_null()) { if (sloppy_arguments_elements) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "arguments receiver"); } else if (key_is_valid_index) { // We should go generic if receiver isn't a dictionary, but our // prototype chain does have dictionary elements. This ensures that // other non-dictionary receivers in the polymorphic case benefit // from fast path keyed stores. if (!old_receiver_map->DictionaryElementsInPrototypeChainOnly()) { UpdateStoreElement(old_receiver_map, store_mode); } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "dictionary or proxy prototype"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-smi-like key"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-JSObject receiver"); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "set generic"); } TRACE_IC("StoreIC", key); return store_handle; } void CallIC::HandleMiss(Handle function) { Handle name = isolate()->factory()->empty_string(); CallICNexus* nexus = casted_nexus(); Object* feedback = nexus->GetFeedback(); // Hand-coded MISS handling is easier if CallIC slots don't contain smis. DCHECK(!feedback->IsSmi()); if (feedback->IsWeakCell() || !function->IsJSFunction() || feedback->IsAllocationSite()) { // We are going generic. nexus->ConfigureMegamorphic(); } else { DCHECK(feedback == *TypeFeedbackVector::UninitializedSentinel(isolate())); Handle js_function = Handle::cast(function); Handle array_function = Handle(isolate()->native_context()->array_function()); if (array_function.is_identical_to(js_function)) { // Alter the slot. nexus->ConfigureMonomorphicArray(); } else if (js_function->context()->native_context() != *isolate()->native_context()) { // Don't collect cross-native context feedback for the CallIC. // TODO(bmeurer): We should collect the SharedFunctionInfo as // feedback in this case instead. nexus->ConfigureMegamorphic(); } else { nexus->ConfigureMonomorphic(js_function); } } if (function->IsJSFunction()) { Handle
StoreIC::GetMapIndependentHandler(LookupIterator* lookup) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { break; // Custom-compiled handler. } // Currently not handled by CompileStoreTransition. if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "transition from slow"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } DCHECK(lookup->IsCacheableTransition()); break; // Custom-compiled handler. } case LookupIterator::INTERCEPTOR: { DCHECK(!holder->GetNamedInterceptor()->setter()->IsUndefined(isolate())); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreInterceptorStub); StoreInterceptorStub stub(isolate()); return stub.GetCode(); } case LookupIterator::ACCESSOR: { if (!holder->HasFastProperties()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "accessor on slow map"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); if (v8::ToCData(info->setter()) == nullptr) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter == nullptr"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (AccessorInfo::cast(*accessors)->is_special_data_property() && !lookup->HolderIsReceiverOrHiddenPrototype()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "special data property in prototype chain"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (!AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())) { TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver type"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } if (info->is_sloppy() && !receiver->IsJSReceiver()) { TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } else if (accessors->IsAccessorPair()) { Handle setter(Handle::cast(accessors)->setter(), isolate()); if (!setter->IsJSFunction() && !setter->IsFunctionTemplateInfo()) { TRACE_GENERIC_IC(isolate(), "StoreIC", "setter not a function"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } CallOptimization call_optimization(setter); if (call_optimization.is_simple_api_call()) { if (call_optimization.IsCompatibleReceiver(receiver, holder)) { break; // Custom-compiled handler. } TRACE_GENERIC_IC(isolate(), "StoreIC", "incompatible receiver"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { if (holder->IsJSGlobalObject()) { break; // Custom-compiled handler. } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreNormal); DCHECK(holder.is_identical_to(receiver)); return isolate()->builtins()->StoreIC_Normal(); } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } if (use_stub) { TRACE_HANDLER_STATS(isolate(), StoreIC_StoreFieldStub); StoreFieldStub stub(isolate(), lookup->GetFieldIndex(), lookup->representation()); return stub.GetCode(); } break; // Custom-compiled handler. } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); TRACE_GENERIC_IC(isolate(), "StoreIC", "constant property"); TRACE_HANDLER_STATS(isolate(), StoreIC_SlowStub); return slow_stub(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } return Handle::null(); } Handle StoreIC::CompileHandler(LookupIterator* lookup, Handle value, CacheHolderFlag cache_holder) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { // TODO(dcarney): this currently just deopts. Use the transition cell. TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobalTransition); auto cell = isolate()->factory()->NewPropertyCell(); cell->set_value(*value); auto code = PropertyCellStoreHandler( isolate(), store_target, Handle::cast(store_target), lookup->name(), cell, PropertyCellType::kConstant); cell->set_value(isolate()->heap()->the_hole_value()); return code; } Handle transition = lookup->transition_map(); // Currently not handled by CompileStoreTransition. DCHECK(holder->HasFastProperties()); DCHECK(lookup->IsCacheableTransition()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreTransition); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreTransition(transition, lookup->name()); } case LookupIterator::INTERCEPTOR: UNREACHABLE(); case LookupIterator::ACCESSOR: { DCHECK(holder->HasFastProperties()); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->setter()) != 0); DCHECK(!AccessorInfo::cast(*accessors)->is_special_data_property() || lookup->HolderIsReceiverOrHiddenPrototype()); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), info, language_mode()); return code; } else { DCHECK(accessors->IsAccessorPair()); Handle setter(Handle::cast(accessors)->setter(), isolate()); DCHECK(setter->IsJSFunction() || setter->IsFunctionTemplateInfo()); CallOptimization call_optimization(setter); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); if (call_optimization.is_simple_api_call()) { DCHECK(call_optimization.IsCompatibleReceiver(receiver, holder)); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), call_optimization, lookup->GetAccessorIndex()); return code; } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreViaSetter); int expected_arguments = JSFunction::cast(*setter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileStoreViaSetter(receiver, lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobal); DCHECK(holder.is_identical_to(receiver) || receiver->map()->prototype() == *holder); auto cell = lookup->GetPropertyCell(); auto updated_type = PropertyCell::UpdatedType(cell, value, lookup->property_details()); auto code = PropertyCellStoreHandler( isolate(), receiver, Handle::cast(holder), lookup->name(), cell, updated_type); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { #ifdef DEBUG bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } DCHECK(!use_stub); #endif TRACE_HANDLER_STATS(isolate(), StoreIC_StoreField); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreField(lookup); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); UNREACHABLE(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } void KeyedStoreIC::UpdateStoreElement(Handle receiver_map, KeyedAccessStoreMode store_mode) { MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle monomorphic_map = ComputeTransitionedMap(receiver_map, store_mode); store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(monomorphic_map, store_mode); return ConfigureVectorState(Handle(), monomorphic_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { if (!target_receiver_maps.at(i).is_null() && target_receiver_maps.at(i)->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "JSValue"); return; } } // There are several special cases where an IC that is MONOMORPHIC can still // transition to a different GetNonTransitioningStoreMode IC that handles a // superset of the original IC. Handle those here if the receiver map hasn't // changed or it has transitioned to a more general kind. KeyedAccessStoreMode old_store_mode = GetKeyedAccessStoreMode(); Handle previous_receiver_map = target_receiver_maps.at(0); if (state() == MONOMORPHIC) { Handle transitioned_receiver_map = receiver_map; if (IsTransitionStoreMode(store_mode)) { transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); } if ((receiver_map.is_identical_to(previous_receiver_map) && IsTransitionStoreMode(store_mode)) || IsTransitionOfMonomorphicTarget(*previous_receiver_map, *transitioned_receiver_map)) { // If the "old" and "new" maps are in the same elements map family, or // if they at least come from the same origin for a transitioning store, // stay MONOMORPHIC and use the map for the most generic ElementsKind. store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler( transitioned_receiver_map, store_mode); ConfigureVectorState(Handle(), transitioned_receiver_map, handler); return; } if (receiver_map.is_identical_to(previous_receiver_map) && old_store_mode == STANDARD_STORE && (store_mode == STORE_AND_GROW_NO_TRANSITION || store_mode == STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS || store_mode == STORE_NO_TRANSITION_HANDLE_COW)) { // A "normal" IC that handles stores can switch to a version that can // grow at the end of the array, handle OOB accesses or copy COW arrays // and still stay MONOMORPHIC. Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(receiver_map, store_mode); return ConfigureVectorState(Handle(), receiver_map, handler); } } DCHECK(state() != GENERIC); bool map_added = AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map); if (IsTransitionStoreMode(store_mode)) { Handle transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); map_added |= AddOneReceiverMapIfMissing(&target_receiver_maps, transitioned_receiver_map); } if (!map_added) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the megamorphic stub which can handle everything. TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the // megamorphic version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) return; // Make sure all polymorphic handlers have the same store mode, otherwise the // megamorphic stub must be used. store_mode = GetNonTransitioningStoreMode(store_mode); if (old_store_mode != STANDARD_STORE) { if (store_mode == STANDARD_STORE) { store_mode = old_store_mode; } else if (store_mode != old_store_mode) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "store mode mismatch"); return; } } // If the store mode isn't the standard mode, make sure that all polymorphic // receivers are either external arrays, or all "normal" arrays. Otherwise, // use the megamorphic stub. if (store_mode != STANDARD_STORE) { int external_arrays = 0; for (int i = 0; i < target_receiver_maps.length(); ++i) { if (target_receiver_maps[i]->has_fixed_typed_array_elements()) { external_arrays++; } } if (external_arrays != 0 && external_arrays != target_receiver_maps.length()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unsupported combination of external and normal arrays"); return; } } TRACE_HANDLER_STATS(isolate(), KeyedStoreIC_Polymorphic); MapHandleList transitioned_maps(target_receiver_maps.length()); CodeHandleList handlers(target_receiver_maps.length()); PropertyICCompiler::ComputeKeyedStorePolymorphicHandlers( &target_receiver_maps, &transitioned_maps, &handlers, store_mode); ConfigureVectorState(&target_receiver_maps, &transitioned_maps, &handlers); } Handle KeyedStoreIC::ComputeTransitionedMap( Handle map, KeyedAccessStoreMode store_mode) { switch (store_mode) { case STORE_TRANSITION_TO_OBJECT: case STORE_AND_GROW_TRANSITION_TO_OBJECT: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_ELEMENTS : FAST_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_TRANSITION_TO_DOUBLE: case STORE_AND_GROW_TRANSITION_TO_DOUBLE: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_DOUBLE_ELEMENTS : FAST_DOUBLE_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS: DCHECK(map->has_fixed_typed_array_elements()); // Fall through case STORE_NO_TRANSITION_HANDLE_COW: case STANDARD_STORE: case STORE_AND_GROW_NO_TRANSITION: return map; } UNREACHABLE(); return MaybeHandle().ToHandleChecked(); } bool IsOutOfBoundsAccess(Handle receiver, uint32_t index) { uint32_t length = 0; if (receiver->IsJSArray()) { JSArray::cast(*receiver)->length()->ToArrayLength(&length); } else { length = static_cast(receiver->elements()->length()); } return index >= length; } static KeyedAccessStoreMode GetStoreMode(Handle receiver, uint32_t index, Handle value) { bool oob_access = IsOutOfBoundsAccess(receiver, index); // Don't consider this a growing store if the store would send the receiver to // dictionary mode. bool allow_growth = receiver->IsJSArray() && oob_access && !receiver->WouldConvertToSlowElements(index); if (allow_growth) { // Handle growing array in stub if necessary. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_DOUBLE; } if (value->IsHeapObject()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } return STORE_AND_GROW_NO_TRANSITION; } else { // Handle only in-bounds elements accesses. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_TRANSITION_TO_DOUBLE; } else if (value->IsHeapObject()) { return STORE_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_TRANSITION_TO_OBJECT; } } if (!FLAG_trace_external_array_abuse && receiver->map()->has_fixed_typed_array_elements() && oob_access) { return STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS; } Heap* heap = receiver->GetHeap(); if (receiver->elements()->map() == heap->fixed_cow_array_map()) { return STORE_NO_TRANSITION_HANDLE_COW; } else { return STANDARD_STORE; } } } MaybeHandle KeyedStoreIC::Store(Handle object, Handle key, Handle value) { // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); return result; } // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); Handle store_handle; uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION( isolate(), store_handle, StoreIC::Store(object, Handle::cast(key), value, JSReceiver::MAY_BE_STORE_FROM_KEYED), Object); if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unhandled internalized string key"); TRACE_IC("StoreIC", key); } return store_handle; } bool use_ic = FLAG_use_ic && !object->IsStringWrapper() && !object->IsAccessCheckNeeded() && !object->IsJSGlobalProxy(); if (use_ic && !object->IsSmi()) { // Don't use ICs for maps of the objects in Array's prototype chain. We // expect to be able to trap element sets to objects with those maps in // the runtime to enable optimization of element hole access. Handle heap_object = Handle::cast(object); if (heap_object->map()->IsMapInArrayPrototypeChain()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "map in array prototype"); use_ic = false; } } Handle old_receiver_map; bool sloppy_arguments_elements = false; bool key_is_valid_index = false; KeyedAccessStoreMode store_mode = STANDARD_STORE; if (use_ic && object->IsJSObject()) { Handle receiver = Handle::cast(object); old_receiver_map = handle(receiver->map(), isolate()); sloppy_arguments_elements = !is_sloppy(language_mode()) && receiver->elements()->map() == isolate()->heap()->sloppy_arguments_elements_map(); if (!sloppy_arguments_elements) { key_is_valid_index = key->IsSmi() && Smi::cast(*key)->value() >= 0; if (key_is_valid_index) { uint32_t index = static_cast(Smi::cast(*key)->value()); store_mode = GetStoreMode(receiver, index, value); } } } DCHECK(store_handle.is_null()); ASSIGN_RETURN_ON_EXCEPTION(isolate(), store_handle, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); if (use_ic) { if (!old_receiver_map.is_null()) { if (sloppy_arguments_elements) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "arguments receiver"); } else if (key_is_valid_index) { // We should go generic if receiver isn't a dictionary, but our // prototype chain does have dictionary elements. This ensures that // other non-dictionary receivers in the polymorphic case benefit // from fast path keyed stores. if (!old_receiver_map->DictionaryElementsInPrototypeChainOnly()) { UpdateStoreElement(old_receiver_map, store_mode); } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "dictionary or proxy prototype"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-smi-like key"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-JSObject receiver"); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "set generic"); } TRACE_IC("StoreIC", key); return store_handle; } void CallIC::HandleMiss(Handle function) { Handle name = isolate()->factory()->empty_string(); CallICNexus* nexus = casted_nexus(); Object* feedback = nexus->GetFeedback(); // Hand-coded MISS handling is easier if CallIC slots don't contain smis. DCHECK(!feedback->IsSmi()); if (feedback->IsWeakCell() || !function->IsJSFunction() || feedback->IsAllocationSite()) { // We are going generic. nexus->ConfigureMegamorphic(); } else { DCHECK(feedback == *TypeFeedbackVector::UninitializedSentinel(isolate())); Handle js_function = Handle::cast(function); Handle array_function = Handle(isolate()->native_context()->array_function()); if (array_function.is_identical_to(js_function)) { // Alter the slot. nexus->ConfigureMonomorphicArray(); } else if (js_function->context()->native_context() != *isolate()->native_context()) { // Don't collect cross-native context feedback for the CallIC. // TODO(bmeurer): We should collect the SharedFunctionInfo as // feedback in this case instead. nexus->ConfigureMegamorphic(); } else { nexus->ConfigureMonomorphic(js_function); } } if (function->IsJSFunction()) { Handle
::null(); } Handle StoreIC::CompileHandler(LookupIterator* lookup, Handle value, CacheHolderFlag cache_holder) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { // TODO(dcarney): this currently just deopts. Use the transition cell. TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobalTransition); auto cell = isolate()->factory()->NewPropertyCell(); cell->set_value(*value); auto code = PropertyCellStoreHandler( isolate(), store_target, Handle::cast(store_target), lookup->name(), cell, PropertyCellType::kConstant); cell->set_value(isolate()->heap()->the_hole_value()); return code; } Handle transition = lookup->transition_map(); // Currently not handled by CompileStoreTransition. DCHECK(holder->HasFastProperties()); DCHECK(lookup->IsCacheableTransition()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreTransition); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreTransition(transition, lookup->name()); } case LookupIterator::INTERCEPTOR: UNREACHABLE(); case LookupIterator::ACCESSOR: { DCHECK(holder->HasFastProperties()); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->setter()) != 0); DCHECK(!AccessorInfo::cast(*accessors)->is_special_data_property() || lookup->HolderIsReceiverOrHiddenPrototype()); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), info, language_mode()); return code; } else { DCHECK(accessors->IsAccessorPair()); Handle setter(Handle::cast(accessors)->setter(), isolate()); DCHECK(setter->IsJSFunction() || setter->IsFunctionTemplateInfo()); CallOptimization call_optimization(setter); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); if (call_optimization.is_simple_api_call()) { DCHECK(call_optimization.IsCompatibleReceiver(receiver, holder)); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), call_optimization, lookup->GetAccessorIndex()); return code; } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreViaSetter); int expected_arguments = JSFunction::cast(*setter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileStoreViaSetter(receiver, lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobal); DCHECK(holder.is_identical_to(receiver) || receiver->map()->prototype() == *holder); auto cell = lookup->GetPropertyCell(); auto updated_type = PropertyCell::UpdatedType(cell, value, lookup->property_details()); auto code = PropertyCellStoreHandler( isolate(), receiver, Handle::cast(holder), lookup->name(), cell, updated_type); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { #ifdef DEBUG bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } DCHECK(!use_stub); #endif TRACE_HANDLER_STATS(isolate(), StoreIC_StoreField); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreField(lookup); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); UNREACHABLE(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } void KeyedStoreIC::UpdateStoreElement(Handle receiver_map, KeyedAccessStoreMode store_mode) { MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle monomorphic_map = ComputeTransitionedMap(receiver_map, store_mode); store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(monomorphic_map, store_mode); return ConfigureVectorState(Handle(), monomorphic_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { if (!target_receiver_maps.at(i).is_null() && target_receiver_maps.at(i)->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "JSValue"); return; } } // There are several special cases where an IC that is MONOMORPHIC can still // transition to a different GetNonTransitioningStoreMode IC that handles a // superset of the original IC. Handle those here if the receiver map hasn't // changed or it has transitioned to a more general kind. KeyedAccessStoreMode old_store_mode = GetKeyedAccessStoreMode(); Handle previous_receiver_map = target_receiver_maps.at(0); if (state() == MONOMORPHIC) { Handle transitioned_receiver_map = receiver_map; if (IsTransitionStoreMode(store_mode)) { transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); } if ((receiver_map.is_identical_to(previous_receiver_map) && IsTransitionStoreMode(store_mode)) || IsTransitionOfMonomorphicTarget(*previous_receiver_map, *transitioned_receiver_map)) { // If the "old" and "new" maps are in the same elements map family, or // if they at least come from the same origin for a transitioning store, // stay MONOMORPHIC and use the map for the most generic ElementsKind. store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler( transitioned_receiver_map, store_mode); ConfigureVectorState(Handle(), transitioned_receiver_map, handler); return; } if (receiver_map.is_identical_to(previous_receiver_map) && old_store_mode == STANDARD_STORE && (store_mode == STORE_AND_GROW_NO_TRANSITION || store_mode == STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS || store_mode == STORE_NO_TRANSITION_HANDLE_COW)) { // A "normal" IC that handles stores can switch to a version that can // grow at the end of the array, handle OOB accesses or copy COW arrays // and still stay MONOMORPHIC. Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(receiver_map, store_mode); return ConfigureVectorState(Handle(), receiver_map, handler); } } DCHECK(state() != GENERIC); bool map_added = AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map); if (IsTransitionStoreMode(store_mode)) { Handle transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); map_added |= AddOneReceiverMapIfMissing(&target_receiver_maps, transitioned_receiver_map); } if (!map_added) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the megamorphic stub which can handle everything. TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the // megamorphic version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) return; // Make sure all polymorphic handlers have the same store mode, otherwise the // megamorphic stub must be used. store_mode = GetNonTransitioningStoreMode(store_mode); if (old_store_mode != STANDARD_STORE) { if (store_mode == STANDARD_STORE) { store_mode = old_store_mode; } else if (store_mode != old_store_mode) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "store mode mismatch"); return; } } // If the store mode isn't the standard mode, make sure that all polymorphic // receivers are either external arrays, or all "normal" arrays. Otherwise, // use the megamorphic stub. if (store_mode != STANDARD_STORE) { int external_arrays = 0; for (int i = 0; i < target_receiver_maps.length(); ++i) { if (target_receiver_maps[i]->has_fixed_typed_array_elements()) { external_arrays++; } } if (external_arrays != 0 && external_arrays != target_receiver_maps.length()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unsupported combination of external and normal arrays"); return; } } TRACE_HANDLER_STATS(isolate(), KeyedStoreIC_Polymorphic); MapHandleList transitioned_maps(target_receiver_maps.length()); CodeHandleList handlers(target_receiver_maps.length()); PropertyICCompiler::ComputeKeyedStorePolymorphicHandlers( &target_receiver_maps, &transitioned_maps, &handlers, store_mode); ConfigureVectorState(&target_receiver_maps, &transitioned_maps, &handlers); } Handle KeyedStoreIC::ComputeTransitionedMap( Handle map, KeyedAccessStoreMode store_mode) { switch (store_mode) { case STORE_TRANSITION_TO_OBJECT: case STORE_AND_GROW_TRANSITION_TO_OBJECT: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_ELEMENTS : FAST_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_TRANSITION_TO_DOUBLE: case STORE_AND_GROW_TRANSITION_TO_DOUBLE: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_DOUBLE_ELEMENTS : FAST_DOUBLE_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS: DCHECK(map->has_fixed_typed_array_elements()); // Fall through case STORE_NO_TRANSITION_HANDLE_COW: case STANDARD_STORE: case STORE_AND_GROW_NO_TRANSITION: return map; } UNREACHABLE(); return MaybeHandle().ToHandleChecked(); } bool IsOutOfBoundsAccess(Handle receiver, uint32_t index) { uint32_t length = 0; if (receiver->IsJSArray()) { JSArray::cast(*receiver)->length()->ToArrayLength(&length); } else { length = static_cast(receiver->elements()->length()); } return index >= length; } static KeyedAccessStoreMode GetStoreMode(Handle receiver, uint32_t index, Handle value) { bool oob_access = IsOutOfBoundsAccess(receiver, index); // Don't consider this a growing store if the store would send the receiver to // dictionary mode. bool allow_growth = receiver->IsJSArray() && oob_access && !receiver->WouldConvertToSlowElements(index); if (allow_growth) { // Handle growing array in stub if necessary. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_DOUBLE; } if (value->IsHeapObject()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } return STORE_AND_GROW_NO_TRANSITION; } else { // Handle only in-bounds elements accesses. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_TRANSITION_TO_DOUBLE; } else if (value->IsHeapObject()) { return STORE_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_TRANSITION_TO_OBJECT; } } if (!FLAG_trace_external_array_abuse && receiver->map()->has_fixed_typed_array_elements() && oob_access) { return STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS; } Heap* heap = receiver->GetHeap(); if (receiver->elements()->map() == heap->fixed_cow_array_map()) { return STORE_NO_TRANSITION_HANDLE_COW; } else { return STANDARD_STORE; } } } MaybeHandle KeyedStoreIC::Store(Handle object, Handle key, Handle value) { // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); return result; } // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); Handle store_handle; uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION( isolate(), store_handle, StoreIC::Store(object, Handle::cast(key), value, JSReceiver::MAY_BE_STORE_FROM_KEYED), Object); if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unhandled internalized string key"); TRACE_IC("StoreIC", key); } return store_handle; } bool use_ic = FLAG_use_ic && !object->IsStringWrapper() && !object->IsAccessCheckNeeded() && !object->IsJSGlobalProxy(); if (use_ic && !object->IsSmi()) { // Don't use ICs for maps of the objects in Array's prototype chain. We // expect to be able to trap element sets to objects with those maps in // the runtime to enable optimization of element hole access. Handle heap_object = Handle::cast(object); if (heap_object->map()->IsMapInArrayPrototypeChain()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "map in array prototype"); use_ic = false; } } Handle old_receiver_map; bool sloppy_arguments_elements = false; bool key_is_valid_index = false; KeyedAccessStoreMode store_mode = STANDARD_STORE; if (use_ic && object->IsJSObject()) { Handle receiver = Handle::cast(object); old_receiver_map = handle(receiver->map(), isolate()); sloppy_arguments_elements = !is_sloppy(language_mode()) && receiver->elements()->map() == isolate()->heap()->sloppy_arguments_elements_map(); if (!sloppy_arguments_elements) { key_is_valid_index = key->IsSmi() && Smi::cast(*key)->value() >= 0; if (key_is_valid_index) { uint32_t index = static_cast(Smi::cast(*key)->value()); store_mode = GetStoreMode(receiver, index, value); } } } DCHECK(store_handle.is_null()); ASSIGN_RETURN_ON_EXCEPTION(isolate(), store_handle, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); if (use_ic) { if (!old_receiver_map.is_null()) { if (sloppy_arguments_elements) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "arguments receiver"); } else if (key_is_valid_index) { // We should go generic if receiver isn't a dictionary, but our // prototype chain does have dictionary elements. This ensures that // other non-dictionary receivers in the polymorphic case benefit // from fast path keyed stores. if (!old_receiver_map->DictionaryElementsInPrototypeChainOnly()) { UpdateStoreElement(old_receiver_map, store_mode); } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "dictionary or proxy prototype"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-smi-like key"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-JSObject receiver"); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "set generic"); } TRACE_IC("StoreIC", key); return store_handle; } void CallIC::HandleMiss(Handle function) { Handle name = isolate()->factory()->empty_string(); CallICNexus* nexus = casted_nexus(); Object* feedback = nexus->GetFeedback(); // Hand-coded MISS handling is easier if CallIC slots don't contain smis. DCHECK(!feedback->IsSmi()); if (feedback->IsWeakCell() || !function->IsJSFunction() || feedback->IsAllocationSite()) { // We are going generic. nexus->ConfigureMegamorphic(); } else { DCHECK(feedback == *TypeFeedbackVector::UninitializedSentinel(isolate())); Handle js_function = Handle::cast(function); Handle array_function = Handle(isolate()->native_context()->array_function()); if (array_function.is_identical_to(js_function)) { // Alter the slot. nexus->ConfigureMonomorphicArray(); } else if (js_function->context()->native_context() != *isolate()->native_context()) { // Don't collect cross-native context feedback for the CallIC. // TODO(bmeurer): We should collect the SharedFunctionInfo as // feedback in this case instead. nexus->ConfigureMegamorphic(); } else { nexus->ConfigureMonomorphic(js_function); } } if (function->IsJSFunction()) { Handle
StoreIC::CompileHandler(LookupIterator* lookup, Handle value, CacheHolderFlag cache_holder) { DCHECK_NE(LookupIterator::JSPROXY, lookup->state()); // This is currently guaranteed by checks in StoreIC::Store. Handle receiver = Handle::cast(lookup->GetReceiver()); Handle holder = lookup->GetHolder(); DCHECK(!receiver->IsAccessCheckNeeded() || lookup->name()->IsPrivate()); switch (lookup->state()) { case LookupIterator::TRANSITION: { auto store_target = lookup->GetStoreTarget(); if (store_target->IsJSGlobalObject()) { // TODO(dcarney): this currently just deopts. Use the transition cell. TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobalTransition); auto cell = isolate()->factory()->NewPropertyCell(); cell->set_value(*value); auto code = PropertyCellStoreHandler( isolate(), store_target, Handle::cast(store_target), lookup->name(), cell, PropertyCellType::kConstant); cell->set_value(isolate()->heap()->the_hole_value()); return code; } Handle transition = lookup->transition_map(); // Currently not handled by CompileStoreTransition. DCHECK(holder->HasFastProperties()); DCHECK(lookup->IsCacheableTransition()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreTransition); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreTransition(transition, lookup->name()); } case LookupIterator::INTERCEPTOR: UNREACHABLE(); case LookupIterator::ACCESSOR: { DCHECK(holder->HasFastProperties()); Handle accessors = lookup->GetAccessors(); if (accessors->IsAccessorInfo()) { Handle info = Handle::cast(accessors); DCHECK(v8::ToCData(info->setter()) != 0); DCHECK(!AccessorInfo::cast(*accessors)->is_special_data_property() || lookup->HolderIsReceiverOrHiddenPrototype()); DCHECK(AccessorInfo::IsCompatibleReceiverMap(isolate(), info, receiver_map())); DCHECK(!info->is_sloppy() || receiver->IsJSReceiver()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), info, language_mode()); return code; } else { DCHECK(accessors->IsAccessorPair()); Handle setter(Handle::cast(accessors)->setter(), isolate()); DCHECK(setter->IsJSFunction() || setter->IsFunctionTemplateInfo()); CallOptimization call_optimization(setter); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); if (call_optimization.is_simple_api_call()) { DCHECK(call_optimization.IsCompatibleReceiver(receiver, holder)); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), call_optimization, lookup->GetAccessorIndex()); return code; } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreViaSetter); int expected_arguments = JSFunction::cast(*setter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileStoreViaSetter(receiver, lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobal); DCHECK(holder.is_identical_to(receiver) || receiver->map()->prototype() == *holder); auto cell = lookup->GetPropertyCell(); auto updated_type = PropertyCell::UpdatedType(cell, value, lookup->property_details()); auto code = PropertyCellStoreHandler( isolate(), receiver, Handle::cast(holder), lookup->name(), cell, updated_type); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { #ifdef DEBUG bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } DCHECK(!use_stub); #endif TRACE_HANDLER_STATS(isolate(), StoreIC_StoreField); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreField(lookup); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); UNREACHABLE(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } void KeyedStoreIC::UpdateStoreElement(Handle receiver_map, KeyedAccessStoreMode store_mode) { MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle monomorphic_map = ComputeTransitionedMap(receiver_map, store_mode); store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(monomorphic_map, store_mode); return ConfigureVectorState(Handle(), monomorphic_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { if (!target_receiver_maps.at(i).is_null() && target_receiver_maps.at(i)->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "JSValue"); return; } } // There are several special cases where an IC that is MONOMORPHIC can still // transition to a different GetNonTransitioningStoreMode IC that handles a // superset of the original IC. Handle those here if the receiver map hasn't // changed or it has transitioned to a more general kind. KeyedAccessStoreMode old_store_mode = GetKeyedAccessStoreMode(); Handle previous_receiver_map = target_receiver_maps.at(0); if (state() == MONOMORPHIC) { Handle transitioned_receiver_map = receiver_map; if (IsTransitionStoreMode(store_mode)) { transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); } if ((receiver_map.is_identical_to(previous_receiver_map) && IsTransitionStoreMode(store_mode)) || IsTransitionOfMonomorphicTarget(*previous_receiver_map, *transitioned_receiver_map)) { // If the "old" and "new" maps are in the same elements map family, or // if they at least come from the same origin for a transitioning store, // stay MONOMORPHIC and use the map for the most generic ElementsKind. store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler( transitioned_receiver_map, store_mode); ConfigureVectorState(Handle(), transitioned_receiver_map, handler); return; } if (receiver_map.is_identical_to(previous_receiver_map) && old_store_mode == STANDARD_STORE && (store_mode == STORE_AND_GROW_NO_TRANSITION || store_mode == STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS || store_mode == STORE_NO_TRANSITION_HANDLE_COW)) { // A "normal" IC that handles stores can switch to a version that can // grow at the end of the array, handle OOB accesses or copy COW arrays // and still stay MONOMORPHIC. Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(receiver_map, store_mode); return ConfigureVectorState(Handle(), receiver_map, handler); } } DCHECK(state() != GENERIC); bool map_added = AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map); if (IsTransitionStoreMode(store_mode)) { Handle transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); map_added |= AddOneReceiverMapIfMissing(&target_receiver_maps, transitioned_receiver_map); } if (!map_added) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the megamorphic stub which can handle everything. TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the // megamorphic version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) return; // Make sure all polymorphic handlers have the same store mode, otherwise the // megamorphic stub must be used. store_mode = GetNonTransitioningStoreMode(store_mode); if (old_store_mode != STANDARD_STORE) { if (store_mode == STANDARD_STORE) { store_mode = old_store_mode; } else if (store_mode != old_store_mode) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "store mode mismatch"); return; } } // If the store mode isn't the standard mode, make sure that all polymorphic // receivers are either external arrays, or all "normal" arrays. Otherwise, // use the megamorphic stub. if (store_mode != STANDARD_STORE) { int external_arrays = 0; for (int i = 0; i < target_receiver_maps.length(); ++i) { if (target_receiver_maps[i]->has_fixed_typed_array_elements()) { external_arrays++; } } if (external_arrays != 0 && external_arrays != target_receiver_maps.length()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unsupported combination of external and normal arrays"); return; } } TRACE_HANDLER_STATS(isolate(), KeyedStoreIC_Polymorphic); MapHandleList transitioned_maps(target_receiver_maps.length()); CodeHandleList handlers(target_receiver_maps.length()); PropertyICCompiler::ComputeKeyedStorePolymorphicHandlers( &target_receiver_maps, &transitioned_maps, &handlers, store_mode); ConfigureVectorState(&target_receiver_maps, &transitioned_maps, &handlers); } Handle KeyedStoreIC::ComputeTransitionedMap( Handle map, KeyedAccessStoreMode store_mode) { switch (store_mode) { case STORE_TRANSITION_TO_OBJECT: case STORE_AND_GROW_TRANSITION_TO_OBJECT: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_ELEMENTS : FAST_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_TRANSITION_TO_DOUBLE: case STORE_AND_GROW_TRANSITION_TO_DOUBLE: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_DOUBLE_ELEMENTS : FAST_DOUBLE_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS: DCHECK(map->has_fixed_typed_array_elements()); // Fall through case STORE_NO_TRANSITION_HANDLE_COW: case STANDARD_STORE: case STORE_AND_GROW_NO_TRANSITION: return map; } UNREACHABLE(); return MaybeHandle().ToHandleChecked(); } bool IsOutOfBoundsAccess(Handle receiver, uint32_t index) { uint32_t length = 0; if (receiver->IsJSArray()) { JSArray::cast(*receiver)->length()->ToArrayLength(&length); } else { length = static_cast(receiver->elements()->length()); } return index >= length; } static KeyedAccessStoreMode GetStoreMode(Handle receiver, uint32_t index, Handle value) { bool oob_access = IsOutOfBoundsAccess(receiver, index); // Don't consider this a growing store if the store would send the receiver to // dictionary mode. bool allow_growth = receiver->IsJSArray() && oob_access && !receiver->WouldConvertToSlowElements(index); if (allow_growth) { // Handle growing array in stub if necessary. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_DOUBLE; } if (value->IsHeapObject()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } return STORE_AND_GROW_NO_TRANSITION; } else { // Handle only in-bounds elements accesses. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_TRANSITION_TO_DOUBLE; } else if (value->IsHeapObject()) { return STORE_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_TRANSITION_TO_OBJECT; } } if (!FLAG_trace_external_array_abuse && receiver->map()->has_fixed_typed_array_elements() && oob_access) { return STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS; } Heap* heap = receiver->GetHeap(); if (receiver->elements()->map() == heap->fixed_cow_array_map()) { return STORE_NO_TRANSITION_HANDLE_COW; } else { return STANDARD_STORE; } } } MaybeHandle KeyedStoreIC::Store(Handle object, Handle key, Handle value) { // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); return result; } // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); Handle store_handle; uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION( isolate(), store_handle, StoreIC::Store(object, Handle::cast(key), value, JSReceiver::MAY_BE_STORE_FROM_KEYED), Object); if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unhandled internalized string key"); TRACE_IC("StoreIC", key); } return store_handle; } bool use_ic = FLAG_use_ic && !object->IsStringWrapper() && !object->IsAccessCheckNeeded() && !object->IsJSGlobalProxy(); if (use_ic && !object->IsSmi()) { // Don't use ICs for maps of the objects in Array's prototype chain. We // expect to be able to trap element sets to objects with those maps in // the runtime to enable optimization of element hole access. Handle heap_object = Handle::cast(object); if (heap_object->map()->IsMapInArrayPrototypeChain()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "map in array prototype"); use_ic = false; } } Handle old_receiver_map; bool sloppy_arguments_elements = false; bool key_is_valid_index = false; KeyedAccessStoreMode store_mode = STANDARD_STORE; if (use_ic && object->IsJSObject()) { Handle receiver = Handle::cast(object); old_receiver_map = handle(receiver->map(), isolate()); sloppy_arguments_elements = !is_sloppy(language_mode()) && receiver->elements()->map() == isolate()->heap()->sloppy_arguments_elements_map(); if (!sloppy_arguments_elements) { key_is_valid_index = key->IsSmi() && Smi::cast(*key)->value() >= 0; if (key_is_valid_index) { uint32_t index = static_cast(Smi::cast(*key)->value()); store_mode = GetStoreMode(receiver, index, value); } } } DCHECK(store_handle.is_null()); ASSIGN_RETURN_ON_EXCEPTION(isolate(), store_handle, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); if (use_ic) { if (!old_receiver_map.is_null()) { if (sloppy_arguments_elements) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "arguments receiver"); } else if (key_is_valid_index) { // We should go generic if receiver isn't a dictionary, but our // prototype chain does have dictionary elements. This ensures that // other non-dictionary receivers in the polymorphic case benefit // from fast path keyed stores. if (!old_receiver_map->DictionaryElementsInPrototypeChainOnly()) { UpdateStoreElement(old_receiver_map, store_mode); } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "dictionary or proxy prototype"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-smi-like key"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-JSObject receiver"); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "set generic"); } TRACE_IC("StoreIC", key); return store_handle; } void CallIC::HandleMiss(Handle function) { Handle name = isolate()->factory()->empty_string(); CallICNexus* nexus = casted_nexus(); Object* feedback = nexus->GetFeedback(); // Hand-coded MISS handling is easier if CallIC slots don't contain smis. DCHECK(!feedback->IsSmi()); if (feedback->IsWeakCell() || !function->IsJSFunction() || feedback->IsAllocationSite()) { // We are going generic. nexus->ConfigureMegamorphic(); } else { DCHECK(feedback == *TypeFeedbackVector::UninitializedSentinel(isolate())); Handle js_function = Handle::cast(function); Handle array_function = Handle(isolate()->native_context()->array_function()); if (array_function.is_identical_to(js_function)) { // Alter the slot. nexus->ConfigureMonomorphicArray(); } else if (js_function->context()->native_context() != *isolate()->native_context()) { // Don't collect cross-native context feedback for the CallIC. // TODO(bmeurer): We should collect the SharedFunctionInfo as // feedback in this case instead. nexus->ConfigureMegamorphic(); } else { nexus->ConfigureMonomorphic(js_function); } } if (function->IsJSFunction()) { Handle
code = compiler.CompileStoreCallback( receiver, lookup->name(), info, language_mode()); return code; } else { DCHECK(accessors->IsAccessorPair()); Handle setter(Handle::cast(accessors)->setter(), isolate()); DCHECK(setter->IsJSFunction() || setter->IsFunctionTemplateInfo()); CallOptimization call_optimization(setter); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); if (call_optimization.is_simple_api_call()) { DCHECK(call_optimization.IsCompatibleReceiver(receiver, holder)); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreCallback); Handle code = compiler.CompileStoreCallback( receiver, lookup->name(), call_optimization, lookup->GetAccessorIndex()); return code; } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreViaSetter); int expected_arguments = JSFunction::cast(*setter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileStoreViaSetter(receiver, lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobal); DCHECK(holder.is_identical_to(receiver) || receiver->map()->prototype() == *holder); auto cell = lookup->GetPropertyCell(); auto updated_type = PropertyCell::UpdatedType(cell, value, lookup->property_details()); auto code = PropertyCellStoreHandler( isolate(), receiver, Handle::cast(holder), lookup->name(), cell, updated_type); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { #ifdef DEBUG bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } DCHECK(!use_stub); #endif TRACE_HANDLER_STATS(isolate(), StoreIC_StoreField); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreField(lookup); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); UNREACHABLE(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } void KeyedStoreIC::UpdateStoreElement(Handle receiver_map, KeyedAccessStoreMode store_mode) { MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle monomorphic_map = ComputeTransitionedMap(receiver_map, store_mode); store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(monomorphic_map, store_mode); return ConfigureVectorState(Handle(), monomorphic_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { if (!target_receiver_maps.at(i).is_null() && target_receiver_maps.at(i)->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "JSValue"); return; } } // There are several special cases where an IC that is MONOMORPHIC can still // transition to a different GetNonTransitioningStoreMode IC that handles a // superset of the original IC. Handle those here if the receiver map hasn't // changed or it has transitioned to a more general kind. KeyedAccessStoreMode old_store_mode = GetKeyedAccessStoreMode(); Handle previous_receiver_map = target_receiver_maps.at(0); if (state() == MONOMORPHIC) { Handle transitioned_receiver_map = receiver_map; if (IsTransitionStoreMode(store_mode)) { transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); } if ((receiver_map.is_identical_to(previous_receiver_map) && IsTransitionStoreMode(store_mode)) || IsTransitionOfMonomorphicTarget(*previous_receiver_map, *transitioned_receiver_map)) { // If the "old" and "new" maps are in the same elements map family, or // if they at least come from the same origin for a transitioning store, // stay MONOMORPHIC and use the map for the most generic ElementsKind. store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler( transitioned_receiver_map, store_mode); ConfigureVectorState(Handle(), transitioned_receiver_map, handler); return; } if (receiver_map.is_identical_to(previous_receiver_map) && old_store_mode == STANDARD_STORE && (store_mode == STORE_AND_GROW_NO_TRANSITION || store_mode == STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS || store_mode == STORE_NO_TRANSITION_HANDLE_COW)) { // A "normal" IC that handles stores can switch to a version that can // grow at the end of the array, handle OOB accesses or copy COW arrays // and still stay MONOMORPHIC. Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(receiver_map, store_mode); return ConfigureVectorState(Handle(), receiver_map, handler); } } DCHECK(state() != GENERIC); bool map_added = AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map); if (IsTransitionStoreMode(store_mode)) { Handle transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); map_added |= AddOneReceiverMapIfMissing(&target_receiver_maps, transitioned_receiver_map); } if (!map_added) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the megamorphic stub which can handle everything. TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the // megamorphic version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) return; // Make sure all polymorphic handlers have the same store mode, otherwise the // megamorphic stub must be used. store_mode = GetNonTransitioningStoreMode(store_mode); if (old_store_mode != STANDARD_STORE) { if (store_mode == STANDARD_STORE) { store_mode = old_store_mode; } else if (store_mode != old_store_mode) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "store mode mismatch"); return; } } // If the store mode isn't the standard mode, make sure that all polymorphic // receivers are either external arrays, or all "normal" arrays. Otherwise, // use the megamorphic stub. if (store_mode != STANDARD_STORE) { int external_arrays = 0; for (int i = 0; i < target_receiver_maps.length(); ++i) { if (target_receiver_maps[i]->has_fixed_typed_array_elements()) { external_arrays++; } } if (external_arrays != 0 && external_arrays != target_receiver_maps.length()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unsupported combination of external and normal arrays"); return; } } TRACE_HANDLER_STATS(isolate(), KeyedStoreIC_Polymorphic); MapHandleList transitioned_maps(target_receiver_maps.length()); CodeHandleList handlers(target_receiver_maps.length()); PropertyICCompiler::ComputeKeyedStorePolymorphicHandlers( &target_receiver_maps, &transitioned_maps, &handlers, store_mode); ConfigureVectorState(&target_receiver_maps, &transitioned_maps, &handlers); } Handle KeyedStoreIC::ComputeTransitionedMap( Handle map, KeyedAccessStoreMode store_mode) { switch (store_mode) { case STORE_TRANSITION_TO_OBJECT: case STORE_AND_GROW_TRANSITION_TO_OBJECT: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_ELEMENTS : FAST_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_TRANSITION_TO_DOUBLE: case STORE_AND_GROW_TRANSITION_TO_DOUBLE: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_DOUBLE_ELEMENTS : FAST_DOUBLE_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS: DCHECK(map->has_fixed_typed_array_elements()); // Fall through case STORE_NO_TRANSITION_HANDLE_COW: case STANDARD_STORE: case STORE_AND_GROW_NO_TRANSITION: return map; } UNREACHABLE(); return MaybeHandle().ToHandleChecked(); } bool IsOutOfBoundsAccess(Handle receiver, uint32_t index) { uint32_t length = 0; if (receiver->IsJSArray()) { JSArray::cast(*receiver)->length()->ToArrayLength(&length); } else { length = static_cast(receiver->elements()->length()); } return index >= length; } static KeyedAccessStoreMode GetStoreMode(Handle receiver, uint32_t index, Handle value) { bool oob_access = IsOutOfBoundsAccess(receiver, index); // Don't consider this a growing store if the store would send the receiver to // dictionary mode. bool allow_growth = receiver->IsJSArray() && oob_access && !receiver->WouldConvertToSlowElements(index); if (allow_growth) { // Handle growing array in stub if necessary. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_DOUBLE; } if (value->IsHeapObject()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } return STORE_AND_GROW_NO_TRANSITION; } else { // Handle only in-bounds elements accesses. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_TRANSITION_TO_DOUBLE; } else if (value->IsHeapObject()) { return STORE_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_TRANSITION_TO_OBJECT; } } if (!FLAG_trace_external_array_abuse && receiver->map()->has_fixed_typed_array_elements() && oob_access) { return STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS; } Heap* heap = receiver->GetHeap(); if (receiver->elements()->map() == heap->fixed_cow_array_map()) { return STORE_NO_TRANSITION_HANDLE_COW; } else { return STANDARD_STORE; } } } MaybeHandle KeyedStoreIC::Store(Handle object, Handle key, Handle value) { // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); return result; } // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); Handle store_handle; uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION( isolate(), store_handle, StoreIC::Store(object, Handle::cast(key), value, JSReceiver::MAY_BE_STORE_FROM_KEYED), Object); if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unhandled internalized string key"); TRACE_IC("StoreIC", key); } return store_handle; } bool use_ic = FLAG_use_ic && !object->IsStringWrapper() && !object->IsAccessCheckNeeded() && !object->IsJSGlobalProxy(); if (use_ic && !object->IsSmi()) { // Don't use ICs for maps of the objects in Array's prototype chain. We // expect to be able to trap element sets to objects with those maps in // the runtime to enable optimization of element hole access. Handle heap_object = Handle::cast(object); if (heap_object->map()->IsMapInArrayPrototypeChain()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "map in array prototype"); use_ic = false; } } Handle old_receiver_map; bool sloppy_arguments_elements = false; bool key_is_valid_index = false; KeyedAccessStoreMode store_mode = STANDARD_STORE; if (use_ic && object->IsJSObject()) { Handle receiver = Handle::cast(object); old_receiver_map = handle(receiver->map(), isolate()); sloppy_arguments_elements = !is_sloppy(language_mode()) && receiver->elements()->map() == isolate()->heap()->sloppy_arguments_elements_map(); if (!sloppy_arguments_elements) { key_is_valid_index = key->IsSmi() && Smi::cast(*key)->value() >= 0; if (key_is_valid_index) { uint32_t index = static_cast(Smi::cast(*key)->value()); store_mode = GetStoreMode(receiver, index, value); } } } DCHECK(store_handle.is_null()); ASSIGN_RETURN_ON_EXCEPTION(isolate(), store_handle, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); if (use_ic) { if (!old_receiver_map.is_null()) { if (sloppy_arguments_elements) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "arguments receiver"); } else if (key_is_valid_index) { // We should go generic if receiver isn't a dictionary, but our // prototype chain does have dictionary elements. This ensures that // other non-dictionary receivers in the polymorphic case benefit // from fast path keyed stores. if (!old_receiver_map->DictionaryElementsInPrototypeChainOnly()) { UpdateStoreElement(old_receiver_map, store_mode); } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "dictionary or proxy prototype"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-smi-like key"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-JSObject receiver"); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "set generic"); } TRACE_IC("StoreIC", key); return store_handle; } void CallIC::HandleMiss(Handle function) { Handle name = isolate()->factory()->empty_string(); CallICNexus* nexus = casted_nexus(); Object* feedback = nexus->GetFeedback(); // Hand-coded MISS handling is easier if CallIC slots don't contain smis. DCHECK(!feedback->IsSmi()); if (feedback->IsWeakCell() || !function->IsJSFunction() || feedback->IsAllocationSite()) { // We are going generic. nexus->ConfigureMegamorphic(); } else { DCHECK(feedback == *TypeFeedbackVector::UninitializedSentinel(isolate())); Handle js_function = Handle::cast(function); Handle array_function = Handle(isolate()->native_context()->array_function()); if (array_function.is_identical_to(js_function)) { // Alter the slot. nexus->ConfigureMonomorphicArray(); } else if (js_function->context()->native_context() != *isolate()->native_context()) { // Don't collect cross-native context feedback for the CallIC. // TODO(bmeurer): We should collect the SharedFunctionInfo as // feedback in this case instead. nexus->ConfigureMegamorphic(); } else { nexus->ConfigureMonomorphic(js_function); } } if (function->IsJSFunction()) { Handle
code = compiler.CompileStoreCallback( receiver, lookup->name(), call_optimization, lookup->GetAccessorIndex()); return code; } TRACE_HANDLER_STATS(isolate(), StoreIC_StoreViaSetter); int expected_arguments = JSFunction::cast(*setter) ->shared() ->internal_formal_parameter_count(); return compiler.CompileStoreViaSetter(receiver, lookup->name(), lookup->GetAccessorIndex(), expected_arguments); } } case LookupIterator::DATA: { if (lookup->is_dictionary_holder()) { DCHECK(holder->IsJSGlobalObject()); TRACE_HANDLER_STATS(isolate(), StoreIC_StoreGlobal); DCHECK(holder.is_identical_to(receiver) || receiver->map()->prototype() == *holder); auto cell = lookup->GetPropertyCell(); auto updated_type = PropertyCell::UpdatedType(cell, value, lookup->property_details()); auto code = PropertyCellStoreHandler( isolate(), receiver, Handle::cast(holder), lookup->name(), cell, updated_type); return code; } // -------------- Fields -------------- if (lookup->property_details().type() == DATA) { #ifdef DEBUG bool use_stub = true; if (lookup->representation().IsHeapObject()) { // Only use a generic stub if no types need to be tracked. Handle field_type = lookup->GetFieldType(); use_stub = !field_type->IsClass(); } DCHECK(!use_stub); #endif TRACE_HANDLER_STATS(isolate(), StoreIC_StoreField); NamedStoreHandlerCompiler compiler(isolate(), receiver_map(), holder); return compiler.CompileStoreField(lookup); } // -------------- Constant properties -------------- DCHECK(lookup->property_details().type() == DATA_CONSTANT); UNREACHABLE(); } case LookupIterator::INTEGER_INDEXED_EXOTIC: case LookupIterator::ACCESS_CHECK: case LookupIterator::JSPROXY: case LookupIterator::NOT_FOUND: UNREACHABLE(); } UNREACHABLE(); return slow_stub(); } void KeyedStoreIC::UpdateStoreElement(Handle receiver_map, KeyedAccessStoreMode store_mode) { MapHandleList target_receiver_maps; TargetMaps(&target_receiver_maps); if (target_receiver_maps.length() == 0) { Handle monomorphic_map = ComputeTransitionedMap(receiver_map, store_mode); store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(monomorphic_map, store_mode); return ConfigureVectorState(Handle(), monomorphic_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { if (!target_receiver_maps.at(i).is_null() && target_receiver_maps.at(i)->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "JSValue"); return; } } // There are several special cases where an IC that is MONOMORPHIC can still // transition to a different GetNonTransitioningStoreMode IC that handles a // superset of the original IC. Handle those here if the receiver map hasn't // changed or it has transitioned to a more general kind. KeyedAccessStoreMode old_store_mode = GetKeyedAccessStoreMode(); Handle previous_receiver_map = target_receiver_maps.at(0); if (state() == MONOMORPHIC) { Handle transitioned_receiver_map = receiver_map; if (IsTransitionStoreMode(store_mode)) { transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); } if ((receiver_map.is_identical_to(previous_receiver_map) && IsTransitionStoreMode(store_mode)) || IsTransitionOfMonomorphicTarget(*previous_receiver_map, *transitioned_receiver_map)) { // If the "old" and "new" maps are in the same elements map family, or // if they at least come from the same origin for a transitioning store, // stay MONOMORPHIC and use the map for the most generic ElementsKind. store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler( transitioned_receiver_map, store_mode); ConfigureVectorState(Handle(), transitioned_receiver_map, handler); return; } if (receiver_map.is_identical_to(previous_receiver_map) && old_store_mode == STANDARD_STORE && (store_mode == STORE_AND_GROW_NO_TRANSITION || store_mode == STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS || store_mode == STORE_NO_TRANSITION_HANDLE_COW)) { // A "normal" IC that handles stores can switch to a version that can // grow at the end of the array, handle OOB accesses or copy COW arrays // and still stay MONOMORPHIC. Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(receiver_map, store_mode); return ConfigureVectorState(Handle(), receiver_map, handler); } } DCHECK(state() != GENERIC); bool map_added = AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map); if (IsTransitionStoreMode(store_mode)) { Handle transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); map_added |= AddOneReceiverMapIfMissing(&target_receiver_maps, transitioned_receiver_map); } if (!map_added) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the megamorphic stub which can handle everything. TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the // megamorphic version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) return; // Make sure all polymorphic handlers have the same store mode, otherwise the // megamorphic stub must be used. store_mode = GetNonTransitioningStoreMode(store_mode); if (old_store_mode != STANDARD_STORE) { if (store_mode == STANDARD_STORE) { store_mode = old_store_mode; } else if (store_mode != old_store_mode) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "store mode mismatch"); return; } } // If the store mode isn't the standard mode, make sure that all polymorphic // receivers are either external arrays, or all "normal" arrays. Otherwise, // use the megamorphic stub. if (store_mode != STANDARD_STORE) { int external_arrays = 0; for (int i = 0; i < target_receiver_maps.length(); ++i) { if (target_receiver_maps[i]->has_fixed_typed_array_elements()) { external_arrays++; } } if (external_arrays != 0 && external_arrays != target_receiver_maps.length()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unsupported combination of external and normal arrays"); return; } } TRACE_HANDLER_STATS(isolate(), KeyedStoreIC_Polymorphic); MapHandleList transitioned_maps(target_receiver_maps.length()); CodeHandleList handlers(target_receiver_maps.length()); PropertyICCompiler::ComputeKeyedStorePolymorphicHandlers( &target_receiver_maps, &transitioned_maps, &handlers, store_mode); ConfigureVectorState(&target_receiver_maps, &transitioned_maps, &handlers); } Handle KeyedStoreIC::ComputeTransitionedMap( Handle map, KeyedAccessStoreMode store_mode) { switch (store_mode) { case STORE_TRANSITION_TO_OBJECT: case STORE_AND_GROW_TRANSITION_TO_OBJECT: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_ELEMENTS : FAST_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_TRANSITION_TO_DOUBLE: case STORE_AND_GROW_TRANSITION_TO_DOUBLE: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_DOUBLE_ELEMENTS : FAST_DOUBLE_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS: DCHECK(map->has_fixed_typed_array_elements()); // Fall through case STORE_NO_TRANSITION_HANDLE_COW: case STANDARD_STORE: case STORE_AND_GROW_NO_TRANSITION: return map; } UNREACHABLE(); return MaybeHandle().ToHandleChecked(); } bool IsOutOfBoundsAccess(Handle receiver, uint32_t index) { uint32_t length = 0; if (receiver->IsJSArray()) { JSArray::cast(*receiver)->length()->ToArrayLength(&length); } else { length = static_cast(receiver->elements()->length()); } return index >= length; } static KeyedAccessStoreMode GetStoreMode(Handle receiver, uint32_t index, Handle value) { bool oob_access = IsOutOfBoundsAccess(receiver, index); // Don't consider this a growing store if the store would send the receiver to // dictionary mode. bool allow_growth = receiver->IsJSArray() && oob_access && !receiver->WouldConvertToSlowElements(index); if (allow_growth) { // Handle growing array in stub if necessary. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_DOUBLE; } if (value->IsHeapObject()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } return STORE_AND_GROW_NO_TRANSITION; } else { // Handle only in-bounds elements accesses. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_TRANSITION_TO_DOUBLE; } else if (value->IsHeapObject()) { return STORE_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_TRANSITION_TO_OBJECT; } } if (!FLAG_trace_external_array_abuse && receiver->map()->has_fixed_typed_array_elements() && oob_access) { return STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS; } Heap* heap = receiver->GetHeap(); if (receiver->elements()->map() == heap->fixed_cow_array_map()) { return STORE_NO_TRANSITION_HANDLE_COW; } else { return STANDARD_STORE; } } } MaybeHandle KeyedStoreIC::Store(Handle object, Handle key, Handle value) { // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); return result; } // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); Handle store_handle; uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION( isolate(), store_handle, StoreIC::Store(object, Handle::cast(key), value, JSReceiver::MAY_BE_STORE_FROM_KEYED), Object); if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unhandled internalized string key"); TRACE_IC("StoreIC", key); } return store_handle; } bool use_ic = FLAG_use_ic && !object->IsStringWrapper() && !object->IsAccessCheckNeeded() && !object->IsJSGlobalProxy(); if (use_ic && !object->IsSmi()) { // Don't use ICs for maps of the objects in Array's prototype chain. We // expect to be able to trap element sets to objects with those maps in // the runtime to enable optimization of element hole access. Handle heap_object = Handle::cast(object); if (heap_object->map()->IsMapInArrayPrototypeChain()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "map in array prototype"); use_ic = false; } } Handle old_receiver_map; bool sloppy_arguments_elements = false; bool key_is_valid_index = false; KeyedAccessStoreMode store_mode = STANDARD_STORE; if (use_ic && object->IsJSObject()) { Handle receiver = Handle::cast(object); old_receiver_map = handle(receiver->map(), isolate()); sloppy_arguments_elements = !is_sloppy(language_mode()) && receiver->elements()->map() == isolate()->heap()->sloppy_arguments_elements_map(); if (!sloppy_arguments_elements) { key_is_valid_index = key->IsSmi() && Smi::cast(*key)->value() >= 0; if (key_is_valid_index) { uint32_t index = static_cast(Smi::cast(*key)->value()); store_mode = GetStoreMode(receiver, index, value); } } } DCHECK(store_handle.is_null()); ASSIGN_RETURN_ON_EXCEPTION(isolate(), store_handle, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); if (use_ic) { if (!old_receiver_map.is_null()) { if (sloppy_arguments_elements) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "arguments receiver"); } else if (key_is_valid_index) { // We should go generic if receiver isn't a dictionary, but our // prototype chain does have dictionary elements. This ensures that // other non-dictionary receivers in the polymorphic case benefit // from fast path keyed stores. if (!old_receiver_map->DictionaryElementsInPrototypeChainOnly()) { UpdateStoreElement(old_receiver_map, store_mode); } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "dictionary or proxy prototype"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-smi-like key"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-JSObject receiver"); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "set generic"); } TRACE_IC("StoreIC", key); return store_handle; } void CallIC::HandleMiss(Handle function) { Handle name = isolate()->factory()->empty_string(); CallICNexus* nexus = casted_nexus(); Object* feedback = nexus->GetFeedback(); // Hand-coded MISS handling is easier if CallIC slots don't contain smis. DCHECK(!feedback->IsSmi()); if (feedback->IsWeakCell() || !function->IsJSFunction() || feedback->IsAllocationSite()) { // We are going generic. nexus->ConfigureMegamorphic(); } else { DCHECK(feedback == *TypeFeedbackVector::UninitializedSentinel(isolate())); Handle js_function = Handle::cast(function); Handle array_function = Handle(isolate()->native_context()->array_function()); if (array_function.is_identical_to(js_function)) { // Alter the slot. nexus->ConfigureMonomorphicArray(); } else if (js_function->context()->native_context() != *isolate()->native_context()) { // Don't collect cross-native context feedback for the CallIC. // TODO(bmeurer): We should collect the SharedFunctionInfo as // feedback in this case instead. nexus->ConfigureMegamorphic(); } else { nexus->ConfigureMonomorphic(js_function); } } if (function->IsJSFunction()) { Handle
handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(monomorphic_map, store_mode); return ConfigureVectorState(Handle(), monomorphic_map, handler); } for (int i = 0; i < target_receiver_maps.length(); i++) { if (!target_receiver_maps.at(i).is_null() && target_receiver_maps.at(i)->instance_type() == JS_VALUE_TYPE) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "JSValue"); return; } } // There are several special cases where an IC that is MONOMORPHIC can still // transition to a different GetNonTransitioningStoreMode IC that handles a // superset of the original IC. Handle those here if the receiver map hasn't // changed or it has transitioned to a more general kind. KeyedAccessStoreMode old_store_mode = GetKeyedAccessStoreMode(); Handle previous_receiver_map = target_receiver_maps.at(0); if (state() == MONOMORPHIC) { Handle transitioned_receiver_map = receiver_map; if (IsTransitionStoreMode(store_mode)) { transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); } if ((receiver_map.is_identical_to(previous_receiver_map) && IsTransitionStoreMode(store_mode)) || IsTransitionOfMonomorphicTarget(*previous_receiver_map, *transitioned_receiver_map)) { // If the "old" and "new" maps are in the same elements map family, or // if they at least come from the same origin for a transitioning store, // stay MONOMORPHIC and use the map for the most generic ElementsKind. store_mode = GetNonTransitioningStoreMode(store_mode); Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler( transitioned_receiver_map, store_mode); ConfigureVectorState(Handle(), transitioned_receiver_map, handler); return; } if (receiver_map.is_identical_to(previous_receiver_map) && old_store_mode == STANDARD_STORE && (store_mode == STORE_AND_GROW_NO_TRANSITION || store_mode == STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS || store_mode == STORE_NO_TRANSITION_HANDLE_COW)) { // A "normal" IC that handles stores can switch to a version that can // grow at the end of the array, handle OOB accesses or copy COW arrays // and still stay MONOMORPHIC. Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(receiver_map, store_mode); return ConfigureVectorState(Handle(), receiver_map, handler); } } DCHECK(state() != GENERIC); bool map_added = AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map); if (IsTransitionStoreMode(store_mode)) { Handle transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); map_added |= AddOneReceiverMapIfMissing(&target_receiver_maps, transitioned_receiver_map); } if (!map_added) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the megamorphic stub which can handle everything. TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the // megamorphic version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) return; // Make sure all polymorphic handlers have the same store mode, otherwise the // megamorphic stub must be used. store_mode = GetNonTransitioningStoreMode(store_mode); if (old_store_mode != STANDARD_STORE) { if (store_mode == STANDARD_STORE) { store_mode = old_store_mode; } else if (store_mode != old_store_mode) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "store mode mismatch"); return; } } // If the store mode isn't the standard mode, make sure that all polymorphic // receivers are either external arrays, or all "normal" arrays. Otherwise, // use the megamorphic stub. if (store_mode != STANDARD_STORE) { int external_arrays = 0; for (int i = 0; i < target_receiver_maps.length(); ++i) { if (target_receiver_maps[i]->has_fixed_typed_array_elements()) { external_arrays++; } } if (external_arrays != 0 && external_arrays != target_receiver_maps.length()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unsupported combination of external and normal arrays"); return; } } TRACE_HANDLER_STATS(isolate(), KeyedStoreIC_Polymorphic); MapHandleList transitioned_maps(target_receiver_maps.length()); CodeHandleList handlers(target_receiver_maps.length()); PropertyICCompiler::ComputeKeyedStorePolymorphicHandlers( &target_receiver_maps, &transitioned_maps, &handlers, store_mode); ConfigureVectorState(&target_receiver_maps, &transitioned_maps, &handlers); } Handle KeyedStoreIC::ComputeTransitionedMap( Handle map, KeyedAccessStoreMode store_mode) { switch (store_mode) { case STORE_TRANSITION_TO_OBJECT: case STORE_AND_GROW_TRANSITION_TO_OBJECT: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_ELEMENTS : FAST_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_TRANSITION_TO_DOUBLE: case STORE_AND_GROW_TRANSITION_TO_DOUBLE: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_DOUBLE_ELEMENTS : FAST_DOUBLE_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS: DCHECK(map->has_fixed_typed_array_elements()); // Fall through case STORE_NO_TRANSITION_HANDLE_COW: case STANDARD_STORE: case STORE_AND_GROW_NO_TRANSITION: return map; } UNREACHABLE(); return MaybeHandle().ToHandleChecked(); } bool IsOutOfBoundsAccess(Handle receiver, uint32_t index) { uint32_t length = 0; if (receiver->IsJSArray()) { JSArray::cast(*receiver)->length()->ToArrayLength(&length); } else { length = static_cast(receiver->elements()->length()); } return index >= length; } static KeyedAccessStoreMode GetStoreMode(Handle receiver, uint32_t index, Handle value) { bool oob_access = IsOutOfBoundsAccess(receiver, index); // Don't consider this a growing store if the store would send the receiver to // dictionary mode. bool allow_growth = receiver->IsJSArray() && oob_access && !receiver->WouldConvertToSlowElements(index); if (allow_growth) { // Handle growing array in stub if necessary. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_DOUBLE; } if (value->IsHeapObject()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } return STORE_AND_GROW_NO_TRANSITION; } else { // Handle only in-bounds elements accesses. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_TRANSITION_TO_DOUBLE; } else if (value->IsHeapObject()) { return STORE_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_TRANSITION_TO_OBJECT; } } if (!FLAG_trace_external_array_abuse && receiver->map()->has_fixed_typed_array_elements() && oob_access) { return STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS; } Heap* heap = receiver->GetHeap(); if (receiver->elements()->map() == heap->fixed_cow_array_map()) { return STORE_NO_TRANSITION_HANDLE_COW; } else { return STANDARD_STORE; } } } MaybeHandle KeyedStoreIC::Store(Handle object, Handle key, Handle value) { // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); return result; } // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); Handle store_handle; uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION( isolate(), store_handle, StoreIC::Store(object, Handle::cast(key), value, JSReceiver::MAY_BE_STORE_FROM_KEYED), Object); if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unhandled internalized string key"); TRACE_IC("StoreIC", key); } return store_handle; } bool use_ic = FLAG_use_ic && !object->IsStringWrapper() && !object->IsAccessCheckNeeded() && !object->IsJSGlobalProxy(); if (use_ic && !object->IsSmi()) { // Don't use ICs for maps of the objects in Array's prototype chain. We // expect to be able to trap element sets to objects with those maps in // the runtime to enable optimization of element hole access. Handle heap_object = Handle::cast(object); if (heap_object->map()->IsMapInArrayPrototypeChain()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "map in array prototype"); use_ic = false; } } Handle old_receiver_map; bool sloppy_arguments_elements = false; bool key_is_valid_index = false; KeyedAccessStoreMode store_mode = STANDARD_STORE; if (use_ic && object->IsJSObject()) { Handle receiver = Handle::cast(object); old_receiver_map = handle(receiver->map(), isolate()); sloppy_arguments_elements = !is_sloppy(language_mode()) && receiver->elements()->map() == isolate()->heap()->sloppy_arguments_elements_map(); if (!sloppy_arguments_elements) { key_is_valid_index = key->IsSmi() && Smi::cast(*key)->value() >= 0; if (key_is_valid_index) { uint32_t index = static_cast(Smi::cast(*key)->value()); store_mode = GetStoreMode(receiver, index, value); } } } DCHECK(store_handle.is_null()); ASSIGN_RETURN_ON_EXCEPTION(isolate(), store_handle, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); if (use_ic) { if (!old_receiver_map.is_null()) { if (sloppy_arguments_elements) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "arguments receiver"); } else if (key_is_valid_index) { // We should go generic if receiver isn't a dictionary, but our // prototype chain does have dictionary elements. This ensures that // other non-dictionary receivers in the polymorphic case benefit // from fast path keyed stores. if (!old_receiver_map->DictionaryElementsInPrototypeChainOnly()) { UpdateStoreElement(old_receiver_map, store_mode); } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "dictionary or proxy prototype"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-smi-like key"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-JSObject receiver"); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "set generic"); } TRACE_IC("StoreIC", key); return store_handle; } void CallIC::HandleMiss(Handle function) { Handle name = isolate()->factory()->empty_string(); CallICNexus* nexus = casted_nexus(); Object* feedback = nexus->GetFeedback(); // Hand-coded MISS handling is easier if CallIC slots don't contain smis. DCHECK(!feedback->IsSmi()); if (feedback->IsWeakCell() || !function->IsJSFunction() || feedback->IsAllocationSite()) { // We are going generic. nexus->ConfigureMegamorphic(); } else { DCHECK(feedback == *TypeFeedbackVector::UninitializedSentinel(isolate())); Handle js_function = Handle::cast(function); Handle array_function = Handle(isolate()->native_context()->array_function()); if (array_function.is_identical_to(js_function)) { // Alter the slot. nexus->ConfigureMonomorphicArray(); } else if (js_function->context()->native_context() != *isolate()->native_context()) { // Don't collect cross-native context feedback for the CallIC. // TODO(bmeurer): We should collect the SharedFunctionInfo as // feedback in this case instead. nexus->ConfigureMegamorphic(); } else { nexus->ConfigureMonomorphic(js_function); } } if (function->IsJSFunction()) { Handle
handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler( transitioned_receiver_map, store_mode); ConfigureVectorState(Handle(), transitioned_receiver_map, handler); return; } if (receiver_map.is_identical_to(previous_receiver_map) && old_store_mode == STANDARD_STORE && (store_mode == STORE_AND_GROW_NO_TRANSITION || store_mode == STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS || store_mode == STORE_NO_TRANSITION_HANDLE_COW)) { // A "normal" IC that handles stores can switch to a version that can // grow at the end of the array, handle OOB accesses or copy COW arrays // and still stay MONOMORPHIC. Handle handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(receiver_map, store_mode); return ConfigureVectorState(Handle(), receiver_map, handler); } } DCHECK(state() != GENERIC); bool map_added = AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map); if (IsTransitionStoreMode(store_mode)) { Handle transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); map_added |= AddOneReceiverMapIfMissing(&target_receiver_maps, transitioned_receiver_map); } if (!map_added) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the megamorphic stub which can handle everything. TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the // megamorphic version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) return; // Make sure all polymorphic handlers have the same store mode, otherwise the // megamorphic stub must be used. store_mode = GetNonTransitioningStoreMode(store_mode); if (old_store_mode != STANDARD_STORE) { if (store_mode == STANDARD_STORE) { store_mode = old_store_mode; } else if (store_mode != old_store_mode) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "store mode mismatch"); return; } } // If the store mode isn't the standard mode, make sure that all polymorphic // receivers are either external arrays, or all "normal" arrays. Otherwise, // use the megamorphic stub. if (store_mode != STANDARD_STORE) { int external_arrays = 0; for (int i = 0; i < target_receiver_maps.length(); ++i) { if (target_receiver_maps[i]->has_fixed_typed_array_elements()) { external_arrays++; } } if (external_arrays != 0 && external_arrays != target_receiver_maps.length()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unsupported combination of external and normal arrays"); return; } } TRACE_HANDLER_STATS(isolate(), KeyedStoreIC_Polymorphic); MapHandleList transitioned_maps(target_receiver_maps.length()); CodeHandleList handlers(target_receiver_maps.length()); PropertyICCompiler::ComputeKeyedStorePolymorphicHandlers( &target_receiver_maps, &transitioned_maps, &handlers, store_mode); ConfigureVectorState(&target_receiver_maps, &transitioned_maps, &handlers); } Handle KeyedStoreIC::ComputeTransitionedMap( Handle map, KeyedAccessStoreMode store_mode) { switch (store_mode) { case STORE_TRANSITION_TO_OBJECT: case STORE_AND_GROW_TRANSITION_TO_OBJECT: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_ELEMENTS : FAST_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_TRANSITION_TO_DOUBLE: case STORE_AND_GROW_TRANSITION_TO_DOUBLE: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_DOUBLE_ELEMENTS : FAST_DOUBLE_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS: DCHECK(map->has_fixed_typed_array_elements()); // Fall through case STORE_NO_TRANSITION_HANDLE_COW: case STANDARD_STORE: case STORE_AND_GROW_NO_TRANSITION: return map; } UNREACHABLE(); return MaybeHandle().ToHandleChecked(); } bool IsOutOfBoundsAccess(Handle receiver, uint32_t index) { uint32_t length = 0; if (receiver->IsJSArray()) { JSArray::cast(*receiver)->length()->ToArrayLength(&length); } else { length = static_cast(receiver->elements()->length()); } return index >= length; } static KeyedAccessStoreMode GetStoreMode(Handle receiver, uint32_t index, Handle value) { bool oob_access = IsOutOfBoundsAccess(receiver, index); // Don't consider this a growing store if the store would send the receiver to // dictionary mode. bool allow_growth = receiver->IsJSArray() && oob_access && !receiver->WouldConvertToSlowElements(index); if (allow_growth) { // Handle growing array in stub if necessary. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_DOUBLE; } if (value->IsHeapObject()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } return STORE_AND_GROW_NO_TRANSITION; } else { // Handle only in-bounds elements accesses. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_TRANSITION_TO_DOUBLE; } else if (value->IsHeapObject()) { return STORE_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_TRANSITION_TO_OBJECT; } } if (!FLAG_trace_external_array_abuse && receiver->map()->has_fixed_typed_array_elements() && oob_access) { return STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS; } Heap* heap = receiver->GetHeap(); if (receiver->elements()->map() == heap->fixed_cow_array_map()) { return STORE_NO_TRANSITION_HANDLE_COW; } else { return STANDARD_STORE; } } } MaybeHandle KeyedStoreIC::Store(Handle object, Handle key, Handle value) { // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); return result; } // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); Handle store_handle; uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION( isolate(), store_handle, StoreIC::Store(object, Handle::cast(key), value, JSReceiver::MAY_BE_STORE_FROM_KEYED), Object); if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unhandled internalized string key"); TRACE_IC("StoreIC", key); } return store_handle; } bool use_ic = FLAG_use_ic && !object->IsStringWrapper() && !object->IsAccessCheckNeeded() && !object->IsJSGlobalProxy(); if (use_ic && !object->IsSmi()) { // Don't use ICs for maps of the objects in Array's prototype chain. We // expect to be able to trap element sets to objects with those maps in // the runtime to enable optimization of element hole access. Handle heap_object = Handle::cast(object); if (heap_object->map()->IsMapInArrayPrototypeChain()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "map in array prototype"); use_ic = false; } } Handle old_receiver_map; bool sloppy_arguments_elements = false; bool key_is_valid_index = false; KeyedAccessStoreMode store_mode = STANDARD_STORE; if (use_ic && object->IsJSObject()) { Handle receiver = Handle::cast(object); old_receiver_map = handle(receiver->map(), isolate()); sloppy_arguments_elements = !is_sloppy(language_mode()) && receiver->elements()->map() == isolate()->heap()->sloppy_arguments_elements_map(); if (!sloppy_arguments_elements) { key_is_valid_index = key->IsSmi() && Smi::cast(*key)->value() >= 0; if (key_is_valid_index) { uint32_t index = static_cast(Smi::cast(*key)->value()); store_mode = GetStoreMode(receiver, index, value); } } } DCHECK(store_handle.is_null()); ASSIGN_RETURN_ON_EXCEPTION(isolate(), store_handle, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); if (use_ic) { if (!old_receiver_map.is_null()) { if (sloppy_arguments_elements) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "arguments receiver"); } else if (key_is_valid_index) { // We should go generic if receiver isn't a dictionary, but our // prototype chain does have dictionary elements. This ensures that // other non-dictionary receivers in the polymorphic case benefit // from fast path keyed stores. if (!old_receiver_map->DictionaryElementsInPrototypeChainOnly()) { UpdateStoreElement(old_receiver_map, store_mode); } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "dictionary or proxy prototype"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-smi-like key"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-JSObject receiver"); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "set generic"); } TRACE_IC("StoreIC", key); return store_handle; } void CallIC::HandleMiss(Handle function) { Handle name = isolate()->factory()->empty_string(); CallICNexus* nexus = casted_nexus(); Object* feedback = nexus->GetFeedback(); // Hand-coded MISS handling is easier if CallIC slots don't contain smis. DCHECK(!feedback->IsSmi()); if (feedback->IsWeakCell() || !function->IsJSFunction() || feedback->IsAllocationSite()) { // We are going generic. nexus->ConfigureMegamorphic(); } else { DCHECK(feedback == *TypeFeedbackVector::UninitializedSentinel(isolate())); Handle js_function = Handle::cast(function); Handle array_function = Handle(isolate()->native_context()->array_function()); if (array_function.is_identical_to(js_function)) { // Alter the slot. nexus->ConfigureMonomorphicArray(); } else if (js_function->context()->native_context() != *isolate()->native_context()) { // Don't collect cross-native context feedback for the CallIC. // TODO(bmeurer): We should collect the SharedFunctionInfo as // feedback in this case instead. nexus->ConfigureMegamorphic(); } else { nexus->ConfigureMonomorphic(js_function); } } if (function->IsJSFunction()) { Handle
handler = PropertyICCompiler::ComputeKeyedStoreMonomorphicHandler(receiver_map, store_mode); return ConfigureVectorState(Handle(), receiver_map, handler); } } DCHECK(state() != GENERIC); bool map_added = AddOneReceiverMapIfMissing(&target_receiver_maps, receiver_map); if (IsTransitionStoreMode(store_mode)) { Handle transitioned_receiver_map = ComputeTransitionedMap(receiver_map, store_mode); map_added |= AddOneReceiverMapIfMissing(&target_receiver_maps, transitioned_receiver_map); } if (!map_added) { // If the miss wasn't due to an unseen map, a polymorphic stub // won't help, use the megamorphic stub which can handle everything. TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "same map added twice"); return; } // If the maximum number of receiver maps has been exceeded, use the // megamorphic version of the IC. if (target_receiver_maps.length() > kMaxKeyedPolymorphism) return; // Make sure all polymorphic handlers have the same store mode, otherwise the // megamorphic stub must be used. store_mode = GetNonTransitioningStoreMode(store_mode); if (old_store_mode != STANDARD_STORE) { if (store_mode == STANDARD_STORE) { store_mode = old_store_mode; } else if (store_mode != old_store_mode) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "store mode mismatch"); return; } } // If the store mode isn't the standard mode, make sure that all polymorphic // receivers are either external arrays, or all "normal" arrays. Otherwise, // use the megamorphic stub. if (store_mode != STANDARD_STORE) { int external_arrays = 0; for (int i = 0; i < target_receiver_maps.length(); ++i) { if (target_receiver_maps[i]->has_fixed_typed_array_elements()) { external_arrays++; } } if (external_arrays != 0 && external_arrays != target_receiver_maps.length()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unsupported combination of external and normal arrays"); return; } } TRACE_HANDLER_STATS(isolate(), KeyedStoreIC_Polymorphic); MapHandleList transitioned_maps(target_receiver_maps.length()); CodeHandleList handlers(target_receiver_maps.length()); PropertyICCompiler::ComputeKeyedStorePolymorphicHandlers( &target_receiver_maps, &transitioned_maps, &handlers, store_mode); ConfigureVectorState(&target_receiver_maps, &transitioned_maps, &handlers); } Handle KeyedStoreIC::ComputeTransitionedMap( Handle map, KeyedAccessStoreMode store_mode) { switch (store_mode) { case STORE_TRANSITION_TO_OBJECT: case STORE_AND_GROW_TRANSITION_TO_OBJECT: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_ELEMENTS : FAST_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_TRANSITION_TO_DOUBLE: case STORE_AND_GROW_TRANSITION_TO_DOUBLE: { ElementsKind kind = IsFastHoleyElementsKind(map->elements_kind()) ? FAST_HOLEY_DOUBLE_ELEMENTS : FAST_DOUBLE_ELEMENTS; return Map::TransitionElementsTo(map, kind); } case STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS: DCHECK(map->has_fixed_typed_array_elements()); // Fall through case STORE_NO_TRANSITION_HANDLE_COW: case STANDARD_STORE: case STORE_AND_GROW_NO_TRANSITION: return map; } UNREACHABLE(); return MaybeHandle().ToHandleChecked(); } bool IsOutOfBoundsAccess(Handle receiver, uint32_t index) { uint32_t length = 0; if (receiver->IsJSArray()) { JSArray::cast(*receiver)->length()->ToArrayLength(&length); } else { length = static_cast(receiver->elements()->length()); } return index >= length; } static KeyedAccessStoreMode GetStoreMode(Handle receiver, uint32_t index, Handle value) { bool oob_access = IsOutOfBoundsAccess(receiver, index); // Don't consider this a growing store if the store would send the receiver to // dictionary mode. bool allow_growth = receiver->IsJSArray() && oob_access && !receiver->WouldConvertToSlowElements(index); if (allow_growth) { // Handle growing array in stub if necessary. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_DOUBLE; } if (value->IsHeapObject()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_AND_GROW_TRANSITION_TO_OBJECT; } } return STORE_AND_GROW_NO_TRANSITION; } else { // Handle only in-bounds elements accesses. if (receiver->HasFastSmiElements()) { if (value->IsHeapNumber()) { return STORE_TRANSITION_TO_DOUBLE; } else if (value->IsHeapObject()) { return STORE_TRANSITION_TO_OBJECT; } } else if (receiver->HasFastDoubleElements()) { if (!value->IsSmi() && !value->IsHeapNumber()) { return STORE_TRANSITION_TO_OBJECT; } } if (!FLAG_trace_external_array_abuse && receiver->map()->has_fixed_typed_array_elements() && oob_access) { return STORE_NO_TRANSITION_IGNORE_OUT_OF_BOUNDS; } Heap* heap = receiver->GetHeap(); if (receiver->elements()->map() == heap->fixed_cow_array_map()) { return STORE_NO_TRANSITION_HANDLE_COW; } else { return STANDARD_STORE; } } } MaybeHandle KeyedStoreIC::Store(Handle object, Handle key, Handle value) { // TODO(verwaest): Let SetProperty do the migration, since storing a property // might deprecate the current map again, if value does not fit. if (MigrateDeprecated(object)) { Handle result; ASSIGN_RETURN_ON_EXCEPTION( isolate(), result, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); return result; } // Check for non-string values that can be converted into an // internalized string directly or is representable as a smi. key = TryConvertKey(key, isolate()); Handle store_handle; uint32_t index; if ((key->IsInternalizedString() && !String::cast(*key)->AsArrayIndex(&index)) || key->IsSymbol()) { ASSIGN_RETURN_ON_EXCEPTION( isolate(), store_handle, StoreIC::Store(object, Handle::cast(key), value, JSReceiver::MAY_BE_STORE_FROM_KEYED), Object); if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "unhandled internalized string key"); TRACE_IC("StoreIC", key); } return store_handle; } bool use_ic = FLAG_use_ic && !object->IsStringWrapper() && !object->IsAccessCheckNeeded() && !object->IsJSGlobalProxy(); if (use_ic && !object->IsSmi()) { // Don't use ICs for maps of the objects in Array's prototype chain. We // expect to be able to trap element sets to objects with those maps in // the runtime to enable optimization of element hole access. Handle heap_object = Handle::cast(object); if (heap_object->map()->IsMapInArrayPrototypeChain()) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "map in array prototype"); use_ic = false; } } Handle old_receiver_map; bool sloppy_arguments_elements = false; bool key_is_valid_index = false; KeyedAccessStoreMode store_mode = STANDARD_STORE; if (use_ic && object->IsJSObject()) { Handle receiver = Handle::cast(object); old_receiver_map = handle(receiver->map(), isolate()); sloppy_arguments_elements = !is_sloppy(language_mode()) && receiver->elements()->map() == isolate()->heap()->sloppy_arguments_elements_map(); if (!sloppy_arguments_elements) { key_is_valid_index = key->IsSmi() && Smi::cast(*key)->value() >= 0; if (key_is_valid_index) { uint32_t index = static_cast(Smi::cast(*key)->value()); store_mode = GetStoreMode(receiver, index, value); } } } DCHECK(store_handle.is_null()); ASSIGN_RETURN_ON_EXCEPTION(isolate(), store_handle, Runtime::SetObjectProperty(isolate(), object, key, value, language_mode()), Object); if (use_ic) { if (!old_receiver_map.is_null()) { if (sloppy_arguments_elements) { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "arguments receiver"); } else if (key_is_valid_index) { // We should go generic if receiver isn't a dictionary, but our // prototype chain does have dictionary elements. This ensures that // other non-dictionary receivers in the polymorphic case benefit // from fast path keyed stores. if (!old_receiver_map->DictionaryElementsInPrototypeChainOnly()) { UpdateStoreElement(old_receiver_map, store_mode); } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "dictionary or proxy prototype"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-smi-like key"); } } else { TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "non-JSObject receiver"); } } if (!is_vector_set()) { ConfigureVectorState(MEGAMORPHIC, key); TRACE_GENERIC_IC(isolate(), "KeyedStoreIC", "set generic"); } TRACE_IC("StoreIC", key); return store_handle; } void CallIC::HandleMiss(Handle function) { Handle name = isolate()->factory()->empty_string(); CallICNexus* nexus = casted_nexus(); Object* feedback = nexus->GetFeedback(); // Hand-coded MISS handling is easier if CallIC slots don't contain smis. DCHECK(!feedback->IsSmi()); if (feedback->IsWeakCell() || !function->IsJSFunction() || feedback->IsAllocationSite()) { // We are going generic. nexus->ConfigureMegamorphic(); } else { DCHECK(feedback == *TypeFeedbackVector::UninitializedSentinel(isolate())); Handle js_function = Handle::cast(function); Handle array_function = Handle(isolate()->native_context()->array_function()); if (array_function.is_identical_to(js_function)) { // Alter the slot. nexus->ConfigureMonomorphicArray(); } else if (js_function->context()->native_context() != *isolate()->native_context()) { // Don't collect cross-native context feedback for the CallIC. // TODO(bmeurer): We should collect the SharedFunctionInfo as // feedback in this case instead. nexus->ConfigureMegamorphic(); } else { nexus->ConfigureMonomorphic(js_function); } } if (function->IsJSFunction()) { Handle