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In the man page it appears that even if you initialise a semaphore to a value of one:

sem_init(&mySem, 0, 1);

It could still be incremented to a value greater than 1 with multiple calls to

sem_post(&mySem);

But in this code example the comment seems to think differently:

sem_init(&mutex, 0, 1);      /* initialize mutex to 1 - binary semaphore */

Is it possible to initialise a strictly binary semaphore in C?

*Note: The reason for doing this instead of using a mutex in this case is the sem_post and sem_wait may be called by different threads.*

share|improve this question
up vote 6 down vote accepted

If you want a strictly binary semaphore on Linux, I suggest building one out of mutexes and condition variables.

struct binary_semaphore {
    pthread_mutex_t mutex;
    pthread_cond_t cvar;
    int v;
};

void mysem_post(struct binary_semaphore *p)
{
    pthread_mutex_lock(&p->mutex);
    if (p->v == 1)
        /* error */
    p->v += 1;
    pthread_cond_signal(&p->cvar);
    pthread_mutex_unlock(&p->mutex);
}

void mysem_wait(struct binar_semaphore *p)
{
    pthread_mutex_lock(&p->mutex);
    while (!p->v)
        pthread_cond_wait(&p->cvar, &p->mutex);
    p->v -= 1;
    pthread_mutex_unlock(&p->mutex);
}
share|improve this answer
    
Great thanks! I had ended up doing pretty much that. – austinmarton Sep 20 '11 at 0:56
    
What exactly is the point of the while loop in mysem_wait? Won't a simple if-statement do the job since pthread_cond_wait will reaquire the mutex after being signaled and pthread_cond_signal only unblocks a single thread waiting on the condition? – Bill DeRose Dec 14 '13 at 0:09
1  
@BillDeRose: Condition variables are subject to spurious wakeups and stolen wakeups. You must use them in a loop if you want to check for a condition. – Dietrich Epp Dec 14 '13 at 0:53

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