replacing the pthread_mutex in scheduler_t with the wrapped implementation.
added a method to condvar_t which allows to wait for an absolute timeout.
This commit is contained in:
@@ -25,6 +25,7 @@
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#include <daemon.h>
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#include <processing/processor.h>
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#include <processing/jobs/callback_job.h>
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#include <utils/mutex.h>
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typedef struct event_t event_t;
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@@ -76,14 +77,12 @@ struct private_scheduler_t {
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/**
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* Exclusive access to list
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*/
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pthread_mutex_t mutex;
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mutex_t *mutex;
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/**
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* Condvar to wait for next job.
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*/
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pthread_cond_t condvar;
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bool cancelled;
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condvar_t *condvar;
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};
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/**
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@@ -104,7 +103,6 @@ static long time_difference(timeval_t *end, timeval_t *start)
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*/
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static job_requeue_t schedule(private_scheduler_t * this)
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{
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timespec_t timeout;
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timeval_t now;
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event_t *event;
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long difference;
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@@ -112,7 +110,7 @@ static job_requeue_t schedule(private_scheduler_t * this)
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bool timed = FALSE;
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DBG2(DBG_JOB, "waiting for next event...");
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pthread_mutex_lock(&this->mutex);
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this->mutex->lock(this->mutex);
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gettimeofday(&now, NULL);
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@@ -122,27 +120,25 @@ static job_requeue_t schedule(private_scheduler_t * this)
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difference = time_difference(&now, &event->time);
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if (difference > 0)
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{
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DBG2(DBG_JOB, "got event, queueing job for execution");
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this->list->remove_first(this->list, (void **)&event);
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pthread_mutex_unlock(&this->mutex);
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this->mutex->unlock(this->mutex);
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DBG2(DBG_JOB, "got event, queueing job for execution");
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charon->processor->queue_job(charon->processor, event->job);
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free(event);
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return JOB_REQUEUE_DIRECT;
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}
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timeout.tv_sec = event->time.tv_sec;
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timeout.tv_nsec = event->time.tv_usec * 1000;
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timed = TRUE;
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}
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pthread_cleanup_push((void*)pthread_mutex_unlock, &this->mutex);
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pthread_cleanup_push((void*)this->mutex->unlock, this->mutex);
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pthread_setcancelstate(PTHREAD_CANCEL_ENABLE, &oldstate);
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if (timed)
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{
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pthread_cond_timedwait(&this->condvar, &this->mutex, &timeout);
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this->condvar->timed_wait_abs(this->condvar, this->mutex, event->time);
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}
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else
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{
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pthread_cond_wait(&this->condvar, &this->mutex);
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this->condvar->wait(this->condvar, this->mutex);
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}
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pthread_setcancelstate(oldstate, NULL);
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pthread_cleanup_pop(TRUE);
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@@ -155,9 +151,9 @@ static job_requeue_t schedule(private_scheduler_t * this)
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static u_int get_job_load(private_scheduler_t *this)
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{
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int count;
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pthread_mutex_lock(&this->mutex);
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this->mutex->lock(this->mutex);
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count = this->list->get_count(this->list);
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pthread_mutex_unlock(&this->mutex);
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this->mutex->unlock(this->mutex);
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return count;
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}
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@@ -182,7 +178,7 @@ static void schedule_job(private_scheduler_t *this, job_t *job, u_int32_t time)
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event->time.tv_usec = (now.tv_usec + us) % 1000000;
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event->time.tv_sec = now.tv_sec + (now.tv_usec + us)/1000000 + s;
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pthread_mutex_lock(&this->mutex);
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this->mutex->lock(this->mutex);
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while(TRUE)
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{
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if (this->list->get_count(this->list) == 0)
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@@ -220,8 +216,8 @@ static void schedule_job(private_scheduler_t *this, job_t *job, u_int32_t time)
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iterator->destroy(iterator);
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break;
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}
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pthread_cond_signal(&this->condvar);
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pthread_mutex_unlock(&this->mutex);
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this->condvar->signal(this->condvar);
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this->mutex->unlock(this->mutex);
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}
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/**
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@@ -229,8 +225,9 @@ static void schedule_job(private_scheduler_t *this, job_t *job, u_int32_t time)
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*/
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static void destroy(private_scheduler_t *this)
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{
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this->cancelled = TRUE;
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this->job->cancel(this->job);
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this->condvar->destroy(this->condvar);
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this->mutex->destroy(this->mutex);
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this->list->destroy_function(this->list, (void*)event_destroy);
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free(this);
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}
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@@ -247,9 +244,8 @@ scheduler_t * scheduler_create()
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this->public.destroy = (void(*)(scheduler_t*)) destroy;
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this->list = linked_list_create();
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this->cancelled = FALSE;
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pthread_mutex_init(&this->mutex, NULL);
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pthread_cond_init(&this->condvar, NULL);
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this->mutex = mutex_create(MUTEX_DEFAULT);
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this->condvar = condvar_create(CONDVAR_DEFAULT);
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this->job = callback_job_create((callback_job_cb_t)schedule, this, NULL, NULL);
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charon->processor->queue_job(charon->processor, (job_t*)this->job);
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@@ -1,4 +1,5 @@
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/*
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* Copyright (C) 2008 Tobias Brunner
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* Copyright (C) 2008 Martin Willi
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* Hochschule fuer Technik Rapperswil
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*
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@@ -332,28 +333,17 @@ static void wait(private_condvar_t *this, private_mutex_t *mutex)
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}
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/**
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* Implementation of condvar_t.timed_wait.
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* Implementation of condvar_t.timed_wait_abs.
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*/
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static bool timed_wait(private_condvar_t *this, private_mutex_t *mutex,
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u_int timeout)
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static bool timed_wait_abs(private_condvar_t *this, private_mutex_t *mutex,
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timeval_t time)
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{
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struct timespec ts;
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struct timeval tv;
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u_int s, ms;
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bool timed_out;
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gettimeofday(&tv, NULL);
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ts.tv_sec = time.tv_sec;
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ts.tv_nsec = time.tv_usec * 1000;
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s = timeout / 1000;
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ms = timeout % 1000;
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ts.tv_sec = tv.tv_sec + s;
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ts.tv_nsec = tv.tv_usec * 1000 + ms * 1000000;
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if (ts.tv_nsec > 1000000000 /* 1s */)
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{
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ts.tv_nsec -= 1000000000;
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ts.tv_sec++;
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}
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if (mutex->recursive)
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{
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private_r_mutex_t* recursive = (private_r_mutex_t*)mutex;
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@@ -371,6 +361,31 @@ static bool timed_wait(private_condvar_t *this, private_mutex_t *mutex,
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return timed_out;
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}
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/**
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* Implementation of condvar_t.timed_wait.
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*/
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static bool timed_wait(private_condvar_t *this, private_mutex_t *mutex,
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u_int timeout)
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{
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timeval_t tv;
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u_int s, ms;
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gettimeofday(&tv, NULL);
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s = timeout / 1000;
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ms = timeout % 1000;
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tv.tv_sec += s;
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tv.tv_usec += ms * 1000;
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if (tv.tv_usec > 1000000 /* 1s */)
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{
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tv.tv_usec -= 1000000;
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tv.tv_sec++;
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}
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return timed_wait_abs(this, mutex, tv);
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}
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/**
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* Implementation of condvar_t.signal.
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*/
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@@ -410,6 +425,7 @@ condvar_t *condvar_create(condvar_type_t type)
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this->public.wait = (void(*)(condvar_t*, mutex_t *mutex))wait;
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this->public.timed_wait = (bool(*)(condvar_t*, mutex_t *mutex, u_int timeout))timed_wait;
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this->public.timed_wait_abs = (bool(*)(condvar_t*, mutex_t *mutex, timeval_t time))timed_wait_abs;
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this->public.signal = (void(*)(condvar_t*))signal;
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this->public.broadcast = (void(*)(condvar_t*))broadcast;
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this->public.destroy = (void(*)(condvar_t*))condvar_destroy;
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@@ -1,4 +1,5 @@
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/*
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* Copyright (C) 2008 Tobias Brunner
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* Copyright (C) 2008 Martin Willi
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* Hochschule fuer Technik Rapperswil
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*
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@@ -11,6 +12,8 @@
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* WITHOUT ANY WARRANTY; without even the implied warranty of MERCHANTABILITY
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* or FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
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* for more details.
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*
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* $Id$
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*/
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/**
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@@ -98,6 +101,15 @@ struct condvar_t {
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*/
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bool (*timed_wait)(condvar_t *this, mutex_t *mutex, u_int timeout);
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/**
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* Wait on a condvar until it gets signalized, or times out.
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*
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* @param mutex mutex to release while waiting
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* @param time absolute time until timeout
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* @return TRUE if timed out, FALSE otherwise
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*/
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bool (*timed_wait_abs)(condvar_t *this, mutex_t *mutex, timeval_t timeout);
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/**
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* Wake up a single thread in a condvar.
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*/
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