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I'm having a problem using the dispatch_semaphore_wait(..) when the semaphore was created with a value greater than 0

sema = dispatch_semaphore_create(2);
dispatch_async(dispatch_get_global_queue(DISPATCH_QUEUE_PRIORITY_DEFAULT, 0), ^{
    //signals here
});

dispatch_semaphore_wait(sema, DISPATCH_TIME_FOREVER);
dispatch_release(sema);

Shouldn't the wait has to wait for two signals? In the code above it doesn't wait at all and so the release is called and the result is a crash!

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2 Answers 2

up vote 3 down vote accepted

No that is not how it works. The thread will block on the third wait, until one of the previous two are signaled. It is a system to specify how many threads can access a resource at once. More info here.

If you want to wait in the way you describe, you could use the NSCondition class, I think.

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Use a dispatch group instead of a semaphore to get this behavior.

Initialize the group to size 2 by calling dispatch_group_enter() twice before you start your task, and dispatch_group_wait() will wait for two calls to dispatch_group_leave() before it returns.

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