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I am creating a program that will run the same function in several processes and several threads so I created a function to achieve locking and synchronization which is

HANDLE WaitOnMutex(char* mt)
{
    HANDLE ghMutex=NULL; 
    DWORD lastError=-1;
    do
    {
        ghMutex = CreateMutex(NULL,TRUE,mt);
        lastError=  GetLastError();
        if(lastError!=ERROR_SUCCESS)
        {
            CloseHandle(ghMutex);
            Sleep(2000);
        }
    }
    while(lastError!=ERROR_SUCCESS);
    return ghMutex;
}

and I am using it like the following

    HANDLE mtx=WaitOnMutex("Global\\DBG_MY_APP");
    //Do the work that needs sync
    CloseHandle(mtx)

Is this a proper way to lock this function ? or do I need to use a different method..

Note: I am using "Global" because some parts of my app is winService and I need to lock between session-Isolated processes

The code is working in testing environment, but I am not sure if I am doing it the right way

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You are using the wrong way. See this documentation for more information. mutex msdn –  rbelli Mar 30 '12 at 17:23
    
@rbelli can plz tell me what exactly wrong with my way ? –  CnativeFreak Mar 30 '12 at 17:25
1  
If I understand exactly what you are doing you are only creating or opening the mutex. You are not getting the mutex. For this, as I see in the example you need to call the function WaitForSingleObjects for check and get the mutex, and then call the function ReleaseMutex to release it. –  rbelli Mar 30 '12 at 17:31

2 Answers 2

What you have coded is a busy wait, which is less than ideal under most circumstances. Not only that, but you've wrapped it in heavyweight mutex creation and release calls.

To use a named mutex for cross-process synchronization, each process should call CreateMutex only once. You then keep the mutex handle around, and use WaitForSingleObject to wait for it and ReleaseMutex to release the lock. You can then lock it again with WaitForSingleObject next time you need to access the protected resource, and so forth.

When your process is done with the mutex "forever" (e.g. because the process is exiting) then you call CloseHandle.

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Nice, but firstly I dont think it is busy wait bcoz of "Sleep(2000);" but I guess you are right with heavyweight mutex creation. Now my question is function CreateMutex interruptable ? if so then all my work is wrong if not then my work is bad in performance.. –  CnativeFreak Mar 30 '12 at 17:36
1  
Admittedly, a 2 second wait is not "busy", but it's still a polling loop, which requires the scheduler to wake up the thread just to check if it can acquire the mutex and then go back to sleep. –  Anthony Williams Mar 31 '12 at 7:47
1  
CreateMutex cannot "fail" due to scheduling issues unless the other thread/process that creates the mutex changes the access rights so that your thread/process doesn't have the necessary permissions. If that doesn't happen then either your thread creates the mutex, and you get the lock (because you specified the "initial owner" flag as true), or the other thread creates the mutex and you get the handle and an ERROR_ALREADY_EXISTS error code, but not the lock. –  Anthony Williams Mar 31 '12 at 7:52

I guess this will sort of work, for a sufficiently loose definition of "work". It's not how I'd do the job though.

I think I'd do things more like this:

Somewhere in one-time initialization code:

HANDLE mutex = CreateMutex(name); // yes, there are more parameters here.

Then to write to the log:

WaitForSingleObject(mutex, INFINITE);

// write to log

ReleaseMutex(handle);

Then during one-time shut-down code:

CloseHandle(mutex);

If you're using C++ instead of C, you usually want to handle this via RAII though, so you'd create a log object that does the CreateMutex call in its ctor, and the CloseHandle call in it dtor. Then you'd have a write functor that does the WaitForSingleObject in its ctor, writes to the log in its operator(), and does the ReleaseMutex in its dtor. This keeps most of your code relatively simple, and maintains exception safety with little or no extra work.

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Oops -- looks like Anthony beat me to it. –  Jerry Coffin Mar 30 '12 at 17:35
    
My new question: is the function CreateMutex interruptable ? if so then all my work is wrong if not then my work is bad in performance.. –  CnativeFreak Mar 30 '12 at 17:40
    
I suppose it depends a bit on what you mean by interruptable, but to your code it acts like it's atomic. –  Jerry Coffin Mar 30 '12 at 17:42
    
I mean by interruptable that the cpu can be interrupted while executing it, If so another process might enter createMutex while another is executing it that would cause a non-locked situation –  CnativeFreak Mar 30 '12 at 17:45
    
@CnativeFreak: From that viewpoint, yes, it's atomic -- while several processes can hold handles to the same mutex at once, only one of them will own the mutex at any given time. –  Jerry Coffin Mar 30 '12 at 17:57

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