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I have a multi-threaded C++ app which does 3D rendering with the OpenSceneGraph library. I'm planning to kick off OSG's render loop as a separate thread using boost::threads, passing a data structure containing shared state in to the thread. I'm trying to avoid anything too heavyweight (like mutexes) for synchronization, as the render loop needs to be pretty tight, and OSG itself tries to avoid having to ever lock. Most of the shared state is set before the thread is started, and never changed. I do have some data that does need to be changed, which I am planning to double-buffer. However, I have a simple boolean for signaling the thread to suspend rendering, and later resume rendering, and another to kill it. In both cases the app thread sets the bool, and the render thread only reads it. Do I need to synchronize access to these bools? As far as I can tell, the worse thing that could happen is the the render loop continues on for an extra frame before suspending or quitting.

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4 Answers 4

up vote 11 down vote accepted

You're right, in this case you won't need to synchronise the bools. You should declare them volatile though, to ensure that the compiler actually reads them from memory each time, instead of caching the previous read in a thread (that's a simplified explanation, but it should do for this purpose).

The following question has more information about this: C++ Thread, shared data

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That's not what 'volatile' actually does by the spec, though. MSVC is a bit more forgiving of lazy programmers, but GCC certainly will happily optimize, reschedule, and otherwise mangle your 'volatile' memory accesses. –  ephemient Oct 21 '08 at 18:33
    
IIRC, per the spec, 'volatile' means the compiler must assume the variable can change at any time outside of the application's control. So if the compiler is correct, 'volatile' should give the desired effect. –  Nick Oct 21 '08 at 18:43
    
No, 'volatile' only has meaning on memory mapped to device I/O registers. Anything else is unspecified, and is not obeyed by GCC with higher optimizations. –  ephemient Oct 21 '08 at 20:08
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That's true but not useful. The access to the volatile object must have been evaluated, but C++ has nothing to say about whether a write from another thread is visible to your thread, because C++ has nothing to say about threads. You must consult your compiler/thread documentation, or use C++0x. –  Steve Jessop Oct 22 '08 at 1:05
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volatile does not prevent read / write re-ordering. VC++ 2005/8 seems to do this correctly, by adding additional meaning to the keyword volatile in the same way Java 5 does. GCC on the other hand will definitely re-order things. –  computinglife Oct 22 '08 at 18:08

Why not simply use an interlocked variable?

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I don't think you need a fully fledged mutex here -- though the render thread will need to busy wait in the 'suspended' state if you aren't using a synchronization object that supports a wait primitive.

You should look into using the various interlocked exchange primitives though (InterlockedExchange under Windows). Not because read/writes from the bool are non-atomic, but to ensure that there are no weird behaviours the compiler reordering memory accesses on a single thread.

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This thread has a little more info and discussion on thread-safety, especially for simple data types:

http://stackoverflow.com/questions/164496/how-can-i-create-a-thread-safe-singleton-pattern-in-windows

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