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As per title, how to try_lock on a boost::unique_lock ?

I've this code:

void mySafeFunct()
{
    if(myMutex.try_lock() == false)
    {
        return -1;
    }

    // mutex ownership is automatically acquired

    // do stuff safely

    myMutex.unlock();
}

Now I'd like to use a unique_lock (which is also a scoped mutex) instead of the plain boost::mutex. I want this to avoid all the unlock() calls from the function body.

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3  
Are you looking for scoped locks? –  Joachim Pileborg Nov 15 '12 at 10:36
    
I want to use a unique_lock<mutex> over my mutex, something like unique_lock<mutex>myUniqueLock(myMutex); and call a try_lock instead of acquiring the lock on the constructor (as the unique_lock do) –  G_G Nov 15 '12 at 10:45
    
It shouldn't be a problem, if you read the unique_lock destructor reference you will see that it unlocks and so can be used as a scoped lock. –  Joachim Pileborg Nov 15 '12 at 10:52

3 Answers 3

up vote 4 down vote accepted
boost::mutex myMutex;
boost::unique_lock<boost::mutex> lock(myMutex, boost::defer_lock);
lock.try_lock()
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neat solution! thanks Paolo! –  G_G Nov 15 '12 at 10:48

You can either defer the locking with the Defer constructor, or use the the Try constructor when creating your unique_lock:

boost::mutex myMutex;
boost::unique_lock<boost::mutex> lock(myMutex, boost::try_lock);

if (!lock.owns_lock())
    return -1;

...
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Great solution as well, I'll keep that in mind! Thanks! –  cpl Nov 15 '12 at 11:09

Previous answers may be outdated. I'm using boost 1.53 and this seems to work:

boost::unique_lock<boost::mutex> lk(myMutex, boost::try_to_lock);
if (lk)
  doTheJob();
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Are you saying that the previous methods are deprecated by boost 1.53? This looks identical to my answer above. –  jelford Nov 20 '13 at 16:04
    
The difference is in lock-type parameter name: boost::try_lock vs boost::try_to_lock –  vjdy Nov 20 '13 at 20:12
    
Good point; it'd be worth mentioning that in the body of the answer. –  jelford Nov 24 '13 at 15:17

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