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I'm writing a program in which I need to make sure a particular function is called is not being executed in more than one thread at a time.

Here I've written some simplified pseudocode that does exactly what is done in my real program.

mutex _enqueue_mutex;
mutex _action_mutex;
queue _queue;
bool  _executing_queue;

// called in multiple threads, possibly simultaneously
do_action() {
  _enqueue_mutex.lock()
  object o;
  _queue.enqueue(o);
  _enqueue_mutex.unlock();

  execute_queue();
}

execute_queue() {
  if (!executing_queue) {
    _executing_queue = true;
    enqueue_mutex.lock();
    bool is_empty = _queue.isEmpty();
    _enqueue_mutex.lock();
    while (!is_empty) {
      _action_mutex.lock();

      _enqueue_mutex.lock();
      object o = _queue.dequeue();
      is_empty = _queue.isEmpty();
      _enqueue_mutex.unlock();

      // callback is called when "o" is done being used by "do_stuff_to_object_with_callback" also, this function doesn't block, it is executed on its own thread (hence the need for the callback to know when it's done)
      do_stuff_to_object_with_callback(o, &some_callback);
    }
    _executing_queue = false;
  }
}

some_callback() {
  _action_mutex.unlock();
}

Essentially, the idea is that _action_mutex is locked in the while loop (I should say that lock is assumed to be blocking until it can be locked again), and expected to be unlocked when the completion callback is called (some_callback in the above code).

This, does not seem to be working though. What happens is if the do_action is called more than once at the same time, the program locks up. I think it might be related to the while loop executing more than once simultaneously, but I just cant see how that could be the case. Is there something wrong with my approach? Is there a better approach?

Thanks

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2 Answers 2

up vote 1 down vote accepted

A queue that is not specifically designed to be multithreaded (multi-producer multi-consumer) will need to serialize both eneueue and dequeue operations using the same mutex.

(If your queue implementation has a different assumption, please state it in your question.)

The check for _queue.isEmpty() will also need to be protected, if the dequeue operation is prone to the Time of check to time of use problem.

That is, the line
object o = _queue.dequeue();
needs to be surrounded by _enqueue_mutex.lock(); and _enqueue_mutex.unlock(); as well.

share|improve this answer
    
oops... I have that in my code... I just missed it when I was typing out the pseudocode. I'll update my question. Thanks –  hmbl9r Aug 30 '12 at 3:59
    
The first step to debug a program is to add some printf statements. –  rwong Aug 30 '12 at 4:00
    
Well please don't think me rude for saying this, but I did try to solve the issue on my own before asking for help. I know that the while loop tries to execute more than once (see question) because of this. Also, locking the mutex for checking isEmpty doesnt solve the problem. –  hmbl9r Aug 30 '12 at 4:07

You probably only need a single mutex for the queue. Also once you've dequeued the object, you can probably process it outside of the lock. This will prevent calls to do_action() from hanging too long.

mutex moo;
queue qoo;
bool keepRunning = true;

do_action():
{
    moo.lock();
    qoo.enqueue(something);
    moo.unlock(); // really need try-finally to make sure,
    // but don't know which language we are using
}

process_queue():
{
    while(keepRunning)
    {
        moo.lock()
        if(!qoo.isEmpty)
            object o = qoo.dequeue();

        moo.unlock(); // again, try finally needed

        haveFunWith(o);
        sleep(50);
    }
}

Then Call process_queue() on it's own thread.

share|improve this answer
    
well the idea is that I can add to the queue as much as I want and make sure that haveFunWith(o) finishes executing in the same order as it started... so I should be able to add to the queue while some o is being played with. BTW, the language is C++ and i'm using Qt, which doesn't throw exceptions as far as i know. –  hmbl9r Aug 30 '12 at 4:10
    
Using this method things will all be started and finished in order. the queue is by nature ordered, and they are all being processed from a single thread (assuming haveFunWith() is synchronous). –  Daniel Kinsman Aug 30 '12 at 4:15
    
"assuming haveFunWith() is synchronous" it occurs to me that I didn't mention it isn't... my bad –  hmbl9r Aug 30 '12 at 4:18
1  
Should be easy enough to make it synchronous. haveFunWith(o); waitForFunToBeComplete(); –  Daniel Kinsman Aug 30 '12 at 4:23

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