#include <pthread.h>
#include <stdio.h>
#include <stdlib.h>
#include <assert.h>
/* Test that locks, having entered the lock acquisition tracking
machinery, are forgotten by it when the client does
pthread_{mutex,rwlock}_destroy. 2008-Nov-10: see comments below. */
int main ( void )
{
int r;
pthread_mutex_t *mx1, *mx2;
assert (sizeof(pthread_mutex_t) <= 120);
mx1 = malloc(120 + sizeof(pthread_mutex_t) - sizeof(pthread_mutex_t));
mx2 = malloc(120 + sizeof(pthread_mutex_t) - sizeof(pthread_mutex_t));
assert(mx1);
assert(mx2);
r = pthread_mutex_init( mx1, NULL ); assert(r==0);
r = pthread_mutex_init( mx2, NULL ); assert(r==0);
/* Establish order 1 -> 2 */
fprintf(stderr, "Establish order 1 -> 2\n");
r = pthread_mutex_lock( mx1 ); assert(r==0);
r = pthread_mutex_lock( mx2 ); assert(r==0);
r = pthread_mutex_unlock( mx1 ); assert(r==0);
r = pthread_mutex_unlock( mx2 ); assert(r==0);
/* Try order 2 -> 1. This gives an error. */
fprintf(stderr, "Try order 2 -> 1. This gives an error.\n");
r = pthread_mutex_lock( mx2 ); assert(r==0); /* error */
r = pthread_mutex_lock( mx1 ); assert(r==0);
r = pthread_mutex_unlock( mx1 ); assert(r==0);
r = pthread_mutex_unlock( mx2 ); assert(r==0);
/* De-initialise 2 and re-initialise it. This gives it a new
identity, so a second locking sequence 2 -> 1 should now be OK. */
fprintf(stderr,
"Free 2 and re-allocate it. This gives it a new identity,\n");
fprintf(stderr, "so a second locking sequence 2 -> 1 should now be OK.\n");
pthread_mutex_destroy( mx2 );
r = pthread_mutex_init( mx2, NULL ); assert(r==0);
r = pthread_mutex_lock( mx2 ); assert(r==0);
r = pthread_mutex_lock( mx1 ); assert(r==0); /* no error */
r = pthread_mutex_unlock( mx1 ); assert(r==0);
r = pthread_mutex_unlock( mx2 ); assert(r==0);
/* done */
fprintf(stderr, "done\n");
r = pthread_mutex_destroy( mx1 );
r = pthread_mutex_destroy( mx2 );
free( mx1 );
free( mx2 );
return 0;
}
/* 2008-Nov-10: I believe this test is flawed and requires further
investigation. I don't think it really tests what it claims to
test. In particular, it still gives the right results if
"pthread_mutex_destroy( mx2 );" at line 46 is commented out. In
other words, laog somehow forgets about mx2 so that 2->1 lock
sequence at lines 52/3 does not produce a complaint, EVEN WHEN the
preceding "pthread_mutex_destroy( mx2 );" is not observed. I don't
know why this is, but it seems highly suspicious to me. */