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	Cleanup unnecessary whitespace at the end of lines and end of files in the unittest/ directory. Note that all code changes are non-functional. All new code of the whole pull request, including one or several files that are either new files or modified ones, are contributed under the BSD-new license. I am contributing on behalf of my employer Amazon Web Services, Inc.
		
			
				
	
	
		
			285 lines
		
	
	
	
		
			8.4 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
			
		
		
	
	
			285 lines
		
	
	
	
		
			8.4 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
/* Copyright (C) 2008 MySQL AB, 2008-2009 Sun Microsystems, Inc.
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   This program is free software; you can redistribute it and/or modify
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   it under the terms of the GNU General Public License as published by
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   the Free Software Foundation; version 2 of the License.
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   This program is distributed in the hope that it will be useful,
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   but WITHOUT ANY WARRANTY; without even the implied warranty of
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   MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
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   GNU General Public License for more details.
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   You should have received a copy of the GNU General Public License
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   along with this program; if not, write to the Free Software
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   Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1335 USA */
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#include "thr_template.c"
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#include <waiting_threads.h>
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#include <m_string.h>
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struct test_wt_thd {
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  WT_THD thd;
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  pthread_mutex_t lock;
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} thds[THREADS];
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uint i, cnt;
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pthread_mutex_t lock;
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pthread_cond_t thread_sync;
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ulong wt_timeout_short=100, wt_deadlock_search_depth_short=4;
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ulong wt_timeout_long=10000, wt_deadlock_search_depth_long=15;
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#define reset(ARRAY) bzero(ARRAY, sizeof(ARRAY))
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/* see explanation of the kill strategies in waiting_threads.h */
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enum { LATEST, RANDOM, YOUNGEST, LOCKS } kill_strategy;
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WT_RESOURCE_TYPE restype={ wt_resource_id_memcmp, 0};
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#define rnd() ((uint)(my_rnd(&rand) * INT_MAX32))
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/*
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  stress test: wait on a random number of random threads.
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  it always succeeds (unless crashes or hangs).
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*/
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pthread_handler_t test_wt(void *arg)
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{
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  int    m, n, i, id, res;
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  struct my_rnd_struct rand;
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  my_thread_init();
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  pthread_mutex_lock(&mutex);
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  id= cnt++;
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  wt_thd_lazy_init(& thds[id].thd,
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                   & wt_deadlock_search_depth_short, & wt_timeout_short,
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                   & wt_deadlock_search_depth_long, & wt_timeout_long);
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  /* now, wait for everybody to be ready to run */
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  if (cnt >= THREADS)
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    pthread_cond_broadcast(&thread_sync);
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  else
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    while (cnt < THREADS)
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      pthread_cond_wait(&thread_sync, &mutex);
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  pthread_mutex_unlock(&mutex);
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  my_rnd_init(&rand, (ulong)(intptr)&m, id);
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  if (kill_strategy == YOUNGEST)
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    thds[id].thd.weight= (ulong) ~ my_interval_timer();
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  if (kill_strategy == LOCKS)
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    thds[id].thd.weight= 0;
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  for (m= *(int *)arg; m ; m--)
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  {
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    WT_RESOURCE_ID resid;
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    int blockers[THREADS/10], j, k;
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    resid.value= id;
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    resid.type= &restype;
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    res= 0;
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    /* prepare for waiting for a random number of random threads */
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    for (j= n= (rnd() % THREADS)/10; !res && j >= 0; j--)
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    {
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retry:
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      i= rnd() % (THREADS-1); /* pick a random thread */
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      if (i >= id) i++;   /* with a number from 0 to THREADS-1 excluding ours */
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      for (k=n; k >=j; k--) /* the one we didn't pick before */
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        if (blockers[k] == i)
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          goto retry;
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      blockers[j]= i;
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      if (kill_strategy == RANDOM)
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        thds[id].thd.weight= rnd();
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      pthread_mutex_lock(& thds[i].lock);
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      res= wt_thd_will_wait_for(& thds[id].thd, & thds[i].thd, &resid);
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      pthread_mutex_unlock(& thds[i].lock);
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    }
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    if (!res)
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    {
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      pthread_mutex_lock(&lock);
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      res= wt_thd_cond_timedwait(& thds[id].thd, &lock);
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      pthread_mutex_unlock(&lock);
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    }
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    if (res)
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    {
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      pthread_mutex_lock(& thds[id].lock);
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      pthread_mutex_lock(&lock);
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      wt_thd_release_all(& thds[id].thd);
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      pthread_mutex_unlock(&lock);
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      pthread_mutex_unlock(& thds[id].lock);
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      if (kill_strategy == LOCKS)
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        thds[id].thd.weight= 0;
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      if (kill_strategy == YOUNGEST)
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        thds[id].thd.weight= (ulong)~ my_interval_timer();
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    }
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    else if (kill_strategy == LOCKS)
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      thds[id].thd.weight++;
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  }
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  pthread_mutex_lock(&mutex);
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  /* wait for everybody to finish */
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  if (!--cnt)
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    pthread_cond_broadcast(&thread_sync);
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  else
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    while (cnt)
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      pthread_cond_wait(&thread_sync, &mutex);
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  pthread_mutex_lock(& thds[id].lock);
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  pthread_mutex_lock(&lock);
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  wt_thd_release_all(& thds[id].thd);
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  pthread_mutex_unlock(&lock);
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  pthread_mutex_unlock(& thds[id].lock);
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  wt_thd_destroy(& thds[id].thd);
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  pthread_mutex_unlock(&mutex);
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  DBUG_PRINT("wt", ("exiting"));
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  my_thread_end();
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  return 0;
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}
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void do_one_test()
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{
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  double sum, sum0;
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  DBUG_ENTER("do_one_test");
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  reset(wt_cycle_stats);
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  reset(wt_wait_stats);
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  wt_success_stats=0;
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  cnt=0;
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  test_concurrently("waiting_threads", test_wt, THREADS, CYCLES);
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  sum=sum0=0;
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  for (cnt=0; cnt < WT_CYCLE_STATS; cnt++)
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    sum+= wt_cycle_stats[0][cnt] + wt_cycle_stats[1][cnt];
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  for (cnt=0; cnt < WT_CYCLE_STATS; cnt++)
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    if (wt_cycle_stats[0][cnt] + wt_cycle_stats[1][cnt] > 0)
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    {
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      sum0+=wt_cycle_stats[0][cnt] + wt_cycle_stats[1][cnt];
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      diag("deadlock cycles of length %2u: %4u %4u %8.2f %%", cnt,
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           wt_cycle_stats[0][cnt], wt_cycle_stats[1][cnt], 1e2*sum0/sum);
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    }
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  diag("depth exceeded: %u %u",
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       wt_cycle_stats[0][cnt], wt_cycle_stats[1][cnt]);
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  for (cnt=0; cnt < WT_WAIT_STATS; cnt++)
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    if (wt_wait_stats[cnt]>0)
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      diag("deadlock waits up to %7llu us: %5u",
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           wt_wait_table[cnt], wt_wait_stats[cnt]);
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  diag("timed out: %u", wt_wait_stats[cnt]);
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  diag("successes: %u", wt_success_stats);
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  DBUG_VOID_RETURN;
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}
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void do_tests()
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{
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  DBUG_ENTER("do_tests");
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  if (skip_big_tests)
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  {
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    skip(1, "Big test skipped");
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    return;
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  }
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  plan(13);
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  compile_time_assert(THREADS >= 4);
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  DBUG_PRINT("wt", ("================= initialization ==================="));
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  pthread_cond_init(&thread_sync, 0);
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  pthread_mutex_init(&lock, 0);
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  wt_init();
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  for (cnt=0; cnt < THREADS; cnt++)
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    pthread_mutex_init(& thds[cnt].lock, 0);
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  {
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    WT_RESOURCE_ID resid[4];
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    for (i=0; i < array_elements(resid); i++)
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    {
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      wt_thd_lazy_init(& thds[i].thd,
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                       & wt_deadlock_search_depth_short, & wt_timeout_short,
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                       & wt_deadlock_search_depth_long, & wt_timeout_long);
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      resid[i].value= i+1;
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      resid[i].type= &restype;
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    }
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    DBUG_PRINT("wt", ("================= manual test ==================="));
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#define ok_wait(X,Y, R) \
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    ok(wt_thd_will_wait_for(& thds[X].thd, & thds[Y].thd, &resid[R]) == 0, \
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      "thd[" #X "] will wait for thd[" #Y "]")
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#define ok_deadlock(X,Y,R) \
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    ok(wt_thd_will_wait_for(& thds[X].thd, & thds[Y].thd, &resid[R]) == WT_DEADLOCK, \
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      "thd[" #X "] will wait for thd[" #Y "] - deadlock")
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    ok_wait(0,1,0);
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    ok_wait(0,2,0);
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    ok_wait(0,3,0);
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    pthread_mutex_lock(&lock);
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    bad= wt_thd_cond_timedwait(& thds[0].thd, &lock);
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    pthread_mutex_unlock(&lock);
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    ok(bad == WT_TIMEOUT, "timeout test returned %d", bad);
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    ok_wait(0,1,0);
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    ok_wait(1,2,1);
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    ok_deadlock(2,0,2);
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    pthread_mutex_lock(&lock);
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    ok(wt_thd_cond_timedwait(& thds[0].thd, &lock) == WT_TIMEOUT, "as always");
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    ok(wt_thd_cond_timedwait(& thds[1].thd, &lock) == WT_TIMEOUT, "as always");
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    wt_thd_release_all(& thds[0].thd);
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    wt_thd_release_all(& thds[1].thd);
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    wt_thd_release_all(& thds[2].thd);
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    wt_thd_release_all(& thds[3].thd);
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    for (i=0; i < array_elements(resid); i++)
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    {
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      wt_thd_release_all(& thds[i].thd);
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      wt_thd_destroy(& thds[i].thd);
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    }
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    pthread_mutex_unlock(&lock);
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  }
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  wt_deadlock_search_depth_short=6;
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  wt_timeout_short=1000;
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  wt_timeout_long= 100;
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  wt_deadlock_search_depth_long=16;
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  DBUG_PRINT("wt", ("================= stress test ==================="));
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  diag("timeout_short=%lu us, deadlock_search_depth_short=%lu",
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       wt_timeout_short, wt_deadlock_search_depth_short);
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  diag("timeout_long=%lu us, deadlock_search_depth_long=%lu",
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       wt_timeout_long, wt_deadlock_search_depth_long);
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#ifndef _WIN32
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#define test_kill_strategy(X)                   \
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  diag("kill strategy: " #X);                   \
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  DBUG_EXECUTE("reset_file",                    \
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               { rewind(DBUG_FILE); my_chsize(fileno(DBUG_FILE), 0, 0, MYF(MY_WME)); }); \
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  DBUG_PRINT("info", ("kill strategy: " #X));   \
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  kill_strategy=X;                              \
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  do_one_test();
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#else
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#define test_kill_strategy(X)                   \
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  diag("kill strategy: " #X);                   \
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  DBUG_PRINT("info", ("kill strategy: " #X));   \
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  kill_strategy=X;                              \
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  do_one_test();
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#endif
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  test_kill_strategy(LATEST);
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  test_kill_strategy(RANDOM);
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  test_kill_strategy(YOUNGEST);
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  test_kill_strategy(LOCKS);
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  DBUG_PRINT("wt", ("================= cleanup ==================="));
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  for (cnt=0; cnt < THREADS; cnt++)
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    pthread_mutex_destroy(& thds[cnt].lock);
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  wt_end();
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  pthread_mutex_destroy(&lock);
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  pthread_cond_destroy(&thread_sync);
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  DBUG_VOID_RETURN;
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}
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