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I'm implementing a pointer / weak pointer mechanism using std::atomics for the reference counter (like this). For converting a weak pointer to a strong one I need to atomically

  • check if the strong reference counter is nonzero
  • if so, increment it
  • know whether something has changed.

Is there a way to do this using std::atomic_int? I think it has to be possible using one of the compare_exchange, but I can't figure it out.

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3  
std::shared_ptr uses atomic reference counters, you know. You could always check the source. –  Pubby Dec 19 '12 at 10:11
1  
what does the "know whether something has changed" part mean? –  bamboon Dec 19 '12 at 10:34
    
Whether it was nonzero before == whether it was incremented. –  lucas clemente Dec 19 '12 at 10:47
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2 Answers

up vote 3 down vote accepted

Given the definition std::atomic<int> ref_count;

int previous = ref_count.load();
for (;;)
{
    if (previous == 0)
        break;
    if (ref_count.compare_exchange_weak(previous, previous + 1))
        break;
}

previous will hold the previous value. Note that compare_exchange_weak will update previous if it fails.

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shouldnt ref_count.load() be in the for loop? I might be wrong, since I have really hard time thinking in atomic ops way. :) –  NoSenseEtAl Dec 20 '12 at 10:46
2  
@NoSenseEtAl compare_exchange_weak takes previous by reference and updates it, so there's no need to do another ref_count.load(). –  ymett Dec 20 '12 at 11:54
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This should do it:

bool increment_if_non_zero(std::atomic<int>& i) {
    int expected = i.load();
    int to_be_loaded = expected;

    do {
        if(expected == 0) {
            to_be_loaded = expected;
        }
        else {
            to_be_loaded = expected + 1;
        }
    } while(!i.compare_exchange_weak(expected, to_be_loaded));

    return expected;
}
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It seems unnecessary to go ahead with the compare_exchange if you've already decided not to change the value. –  ymett Dec 19 '12 at 11:14
    
@ymett I agree with you but I am somehow unsure, as I would else base my decision on whether to increment or not on two different states of i. –  bamboon Dec 19 '12 at 11:25
    
You only need to decide once. Once you've made the decision (in the if) you're finished. –  ymett Dec 19 '12 at 11:27
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