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I have a GUI thread where I call write(QString text) method of another MyQThread.
MyQthread contains QMutex mutex and QList<QString> list. Here is the write() and run() methods of MyQThread:

void MyQThread::write(QString text)
{
     mutex.lock();
     list.append(text); //Point C
     mutex.unlock();
     start(); //Point D
}  

void MyQThread::run()
{
     mutex.lock();

     while(!list.isEmpty())
     {
         QString text = list.takeFirst();
         mutex.unlock();
         ...//do something
         mutex.lock(); //Point A
     }

     mutex.unlock(); //Point B
}  

For example we are at the 'point A'. After this point we are checking the list and it is empty, so we are going to 'point B'. At this moment write() is called, mutex is still locked, so GUI thread is waiting before 'point C'.
Now we are at the 'point B', after this GUI thread is unlocked and start() ('Point D') is called.
Is it possible, that at 'point D' MyQThread is still running?
In this case calling of start() do nothing. And newly added item in the list will not be processed in run() until next call of the write().
Additional information. In my case here is only one instance of MyQThread.

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3 Answers 3

Yes. Although the probability of having a race condition is low, I believe there's still a chance that QThread will still be sending signals and such. Use QThread::wait before you call start() to be sure.

Edit: Agreed on the need to consider QMutexLocker. That code's going to get scary complicated pretty fast and you can't be sure that you'll remember to unlock with every exit point.

Edit2: Perhaps a QReadWriteLock might be more interesting in your case?

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I would like to lock only MyQThread, and avoid locking of GUI thread. In case of QThread::wait() GUI will be locked till MyQthread is finished. –  Funt Aug 16 '13 at 15:34
    
My point is that the amount of time between Point B and the thread finishing should be a very short amount of time. Using QThread::wait() in the GUI thread gives the main event loop that small amount of time required to handle any signals and slots connected to your thread finishing. It shouldn't lock for long. –  Phlucious Aug 16 '13 at 15:40
2  
@Funt Restarting the thread might still lock the GUI thread anyway, depending on system load. Can't you just keep the thread running but locked ? Since your problem is basically a "producer-consumer" problem, QWaitCondition might help (and the documentation has an example ). –  alexisdm Aug 16 '13 at 15:53
    
@alexisdm In my opinion, you just made the most sensible suggestion. –  Phlucious Aug 16 '13 at 16:03
    
@alexisdm yes, you are right. But in this example thread is running till DataSize is processed. And in my case I need to use start() and while(!list.isEmpty()) even with QWaitCondition. And that will cause the same problem :( Maybe I could just replace while(!list.isEmpty()) with forever and call start() only once. That will solve my problem. But I am not sure whether that is a good idea. –  Funt Aug 19 '13 at 6:15
up vote 1 down vote accepted

@alexisdm thanks for the idea. What about this solution:

class MyQThread:
    public: QThread
{
    ...
    QList<QString> list;
    QMutex mutex;
    QWaitCondition listNotEmpty;
}

void MyQThread::write(QString text)
{
     QMutexLocker locker(&mutex);
     list.append(text);
     listNotEmpty.wakeAll();
}  

void MyQThread::run()
{
     forever
     {
         mutex.lock();
         if(list.isEmpty())
             listNotEmpty.wait(&mutex);

         if(list.isEmpty())
         {
             mutex.unlock();
             continue;
         }
         QString text = list.takeFirst();
         mutex.unlock();
         ...//do something
     }
}  

And what about the second parameter of wait() - unsigned long time = ULONG_MAX.
It seems that in my case it will not be error, when write() method is not called for a long time and wait() will return false in run() after ULONG_MAX. And in this case I need just to wait again...

And in documentation is written:

The mutex will be returned to the same locked state.

Does it mean, that mutex will be always locked after wait() even if mutex was not locked before wait() or wait() returns false?

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ULONG_MAX is a special value that isn't evaluated as a time, on Windows, for instance, it corresponds to the INFINITE value passed to WaitForSingleObject (see the doc), so wait won't return false in that case. Since you can't unlock an unlocked mutex, and wait() does unlock the mutex before actually waiting, it should always be locked before wait(). And even if wait returns false, the mutex is returned in the locked state. –  alexisdm Aug 20 '13 at 22:10
    
You should also edit your answer to make more clear that listNotEmpty is a QWaitCondition. –  alexisdm Aug 20 '13 at 22:14
    
Thanks a lot for your help! Now it's clear. –  Funt Aug 21 '13 at 6:17

QThread has the methods 'isRunning' and 'isFinished'. So you could query the thread state. And sure, your thread could still be running at 'Point D'.

But you really should stop here and do some reading. http://blog.qt.digia.com/blog/2010/06/17/youre-doing-it-wrong/ and http://woboq.com/blog/qthread-you-were-not-doing-so-wrong.html

And most certainly the Qt docs about the QMutexLocker.

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QMutexLocker will lock GUI thread (before 'Point C') until run() is finished (right?). And I would like to append items to the list while run() is running. –  Funt Aug 16 '13 at 15:30
1  
Actually, you can't use only these states, because they might be set from the thread itself, so the thread might still be running when isFinished() returns false. You need to combine that state check with a call to wait() to be sure. –  alexisdm Aug 16 '13 at 15:35
    
@alexisdm, true. –  Greenflow Aug 16 '13 at 15:39
    
Small mistake: I meant "when isFinished() returns true". –  alexisdm Aug 16 '13 at 15:50

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