Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.
void WorkHandler::addWork(Work* w){
    printf("WorkHandler::insertWork Thread, insertWork locking \n");
    lock();
    printf("WorkHandler::insertWork Locked, and inserting into queue \n");
    m_workQueue.push(w);
    signal();
    unLock();
}

I followed a tutorial and I got this. I was wondering if it is ok to change the order of singal() and unLock() like this

void WorkHandler::addWork(Work* w){
    printf("WorkHandler::insertWork Thread, insertWork locking \n");
    lock();
    printf("WorkHandler::insertWork Locked, and inserting into queue \n");
    m_workQueue.push(w);
    unLock();
    signal();
}

If I can't do this, could you please give me details why I am not allowed to do this? Thanks in advance.

share|improve this question
    
man page for pthread_cond_signal says you can signal whether or not you own the mutex (essentially anytime you are between lock and unlock) –  Chris Jun 21 '11 at 0:41
    
possible duplicate of pthread_cond_wait and mutex requirement –  Nemo Jun 21 '11 at 0:52

2 Answers 2

up vote 8 down vote accepted

First, there is no correctness issue here. Either order will work. Recall that whenever you use condition variables, you must loop on a predicate while waiting:

pthread_mutex_lock(mutex);
while (!predicate)
  pthread_cond_wait(cvar);
pthread_mutex_unlock(mutex);

By signalling after the unlock, you don't introduce any correctness issues; the thread is still guaranteed to wake up, and the worst case is another wakeup comes first - at which point it sees the predicate becomes true and proceeds.

However, there are two possible performance issues that can come up.

  • "Hurry up and wait". Basically, if you signal while the lock is held, the other thread still needs to wait until the mutex is available. Many pthreads implementations will, instead of waking up the other thread, simply move it to the wait queue of the mutex, saving an unnecessary wakeup->wait cycle. In some cases, however this is unimplemented or unavailable, leading to a potential spurious context switch or IPI.
  • Spurious wakeups. If you signal after the unlock, it's possible for another thread to issue another wakeup. Consider the following scenario:

    1. Thread A starts waiting for items to be added to a threadsafe queue.
    2. Thread B inserts an item on the queue. After unlocking the queue, but before it issues the signal, a context switch occurs.
    3. Thread C inserts an item on the queue, and issues the cvar signal.
    4. Thread A wakes up, and processes both items. It then goes back to waiting on the queue.
    5. Thread B resumes, and signals the cvar.
    6. Thread A wakes up, then immediately goes back to sleep, because the queue is empty.

    As you can see, this can introduce a spurious wakeup, which might waste some CPU time.

Personally, I don't think it's worth worrying too much about it either way. You don't often know offhand whether your implementation supports moving waiters from the condition variable to the mutex wait queue, which is the only real criterion you could use to decide which to use.

My gut feeling would be that, if I had to choose, signalling after the unlock is marginally less likely to introduce an inefficiency, as the inefficiency requires a three-thread race, rather than a two-thread race for the "hurry up and wait" condition. However, this is not really worth worrying about, unless benchmarks show too much context switch overhead or something.

share|improve this answer
1  
perfect answer. this comprehends everything there is to know. –  v.oddou Mar 24 at 2:58
    
IPI? Inter-Path Interference? –  axeoth Oct 15 at 12:05
    
@axeoth, Inter-Processor Interrupt. Basically an interrupt sent from one core to another. –  bdonlan Dec 8 at 6:57
    
many thanks, bdonlan. –  axeoth Dec 8 at 22:03

The answer to your question is "Yes". In fact, it's slightly preferable (as you've probably guessed) as it avoids the 'hurry up and wait' issue of waking up a thread to test a condition only to have it immediately block on the mutex it needs to acquire before testing the condition.

This answer is predicated on the guess that these things hold true:

  • lock is a thin wrapper for pthread_mutex_lock.
  • unLock is a thin wrapper for pthread_mutex_unlock.
  • signal is a thing wrapper for pthread_cond_signal.
  • The mutex your locking and unlocking is the one that your giving to pthread_cond_wait.
share|improve this answer
    
Not true. The waiting thread cannot continue until it grabs the mutex, which cannot happen until the "signaller" unlocks it. The original order is actually better for performance. (See the accepted answer at the "duplicate" question for details.) –  Nemo Jun 21 '11 at 0:54
    
@Nemo: I would like to see a performance analysis. pthread_cond_wait has to give up the mutex until it's signaled, then it has to immediately re-acquire the mutex. Being signaled while the mutex is held by someone else seems like it would force the signaled thread to wake up, try to grab the mutex and go to sleep again until the mutex was free. –  Omnifarious Jun 21 '11 at 0:58
    
The point is that the "hurry up and wait" case -- where it has to re-test the condition -- can only happen in your proposed version (because the condition might become false between the time the signaler releases the mutex and when it signals the condition). With the standard (recommended) sequence, a good threading implementation will impose zero additional overhead (i.e., move waiters to an appropriate wait queue for the mutex). With your suggestion, there is always room for inefficiency... There is a reason every example in every reference does it the same way. –  Nemo Jun 21 '11 at 1:05
1  
@Nemo, In some cases, moving waiters to the mutex's wait queue is not possible. This is the case on Linux when the condvar has its pshared attribute set, for example, as the mutex's address may be different or completely unavailable in the process signalling the condvar. Indeed, this is one of the motivating reasons for not making pshared default (the other being that a mm-private futex hash table reduces the occurance of hash collisions) –  bdonlan Jun 21 '11 at 1:52
1  
@Nemo, yes, it's probably marginally better that way if you know that your pthreads implementation supports moving waiters. On the other hand, signalling after unlock is better (probably by a larger margin) if you know it doesn't support moving waiters. But either way it's fairly minor unless this is a very heavily trafficked cvar... –  bdonlan Jun 21 '11 at 2:02

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.