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Static initialization of class instances is not thread-safe. The code below is an example of what not to do :

extern int computesomething();

class cachedcomputation
{
public:
    cachedcomputation()
    {
        result = computesomething();
    }

    int result;
};

void usecached()
{
    static cachedcomputation c;

    // use of c.result - may break
}

However, would the code below be thread-safe ? (Ignoring the ugliness of the solution) When or why would it break ?

extern int computesomething();

class cachedcomputation
{
public:
    cachedcomputation()
    {
    if(0==InterlockedCompareExchange(&mutex, 1, 0))
    {
        // first thread
            result = computesomething();
        InterlockedExchange(&mutex, 2);
    }
    else
    {
        // other thread - spinlock until mutex==2
        while(2!=InterlockedCompareExchange(&mutex, 2, 2)){}
    }
    }

    int result;

private:
    long mutex;
};

void usecached()
{
    static cachedcomputation c;

    // use of c.result - ???
}
share|improve this question

1 Answer 1

You need to:

  • initialize your "mutex"
  • reset "mutex" at the end of if block: InterlockedExchange(&mutex, 0)
  • optionally convert if-statement to while, so your code would block until "mutex" is unlocked
share|improve this answer
    
1 - the static should set it to 0 by default ? 2&3 - I want the computesomething to be called only once. solution modified to take it into account and make it clearer –  docdocdoc9 Nov 12 '12 at 5:24
    
long mutex is not static itself, and is never assigned. cachedcomputation() : mutex(0) is a clean way to initialize mutex. –  Michael Sh Nov 12 '12 at 6:10
    
@MichaelSh Why do you reset "mutex" to zero? –  yohjp Nov 13 '12 at 13:32
    
Reset is not required as computesomething is required to be called only once. Initialization of mutex to zero is still required, though. –  Michael Sh Nov 13 '12 at 21:20

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