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I am looking at this example, and it raises a queston for me: when looking at this file a mutex is being used when accessing the global variable m_abort when its being changed. But when the run method reads from it, it does nothing with the mutex at all. Why?

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You should ask why m_abort is not volatile :) – Valeri Atamaniouk May 4 '13 at 23:24
    
That was a really helpfull comment, thank you for the suggestion! =D – Cheiron May 5 '13 at 9:51
    
@Valeri Atamaniouk Good question :) I was wondering myself for a while about why it's not volatile - until it clicked for me that there are enough calls of external functions in the loop to prevent compiler from caching the global m_abort variable. – Inspired May 5 '13 at 16:19
up vote 2 down vote accepted

Well, I cannot see the purpose of the mutex at all. Both reading and writing m_abort can be performed without mutex protection as it's a bool variable, and its value is changed atomically (at least on most platforms). And even if the write itself is not atomic and the variable can have an inconsistent value - it can be either false or true, and it will eventually be read as true (since the only value that is written there is true).

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Will work most of the time, but isn't the correct thing to do. It should be locked.

Also, check Is Mutex required for 1 byte shared memory for further information.

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