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I've been reading the latest C++ spec, and I'm unable to figure out whether or not remove_if can be called multiple times for the same element. In particular, I'm looking at std::remove_if being called on deque iterators. So far as I can figure, there's no reason for it to be called multiple times if all it does is simply start from the first param and iterate along till the second.

The code I'm working on uses manual reference counting and, as such, in case the remove_if predicate will return true, it'll decrement and delete the underlying object reference. The obvious catch being that this will only work if the remove_if predicate is only called once for each element, otherwise subsequent calls will be accessing a deleted object. Something tells me this isn't guaranteed to be OK and there will come a point where the same element will be passed to the remove_if predicate twice for a single remove_if call.

If you had some kind of crazy datastructure that implemented iterators and say, randomly selected an entry for each iterator increment until it (randomly) came upon the end iterator, I could see how this would fail. But for straight-forward, standardized structures like deque, vector, and list, can a single element be passed multiple times to the predicate?

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Not the answer to the question you're asking but a problem for you anyway: §25.1[algorithms.general]/8 -- "... The function object pred shall not apply any non-constant function through the dereferenced iterator." – Benjamin Lindley Jul 20 '12 at 3:31
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Note that remove(_if) does not kill the elements, it only moves elements from the end to their place. You have to erase them afterwards with the erase-remove idiom: cont.erase(std::remove_if(...), cont.end());, that's how it works. And if you really need your predicate to modify the ref counter, you're doing something terribly wrong and are not adhering to the RAII principle. – Xeo Jul 20 '12 at 3:39
    
@Xeo Yeah. Dealing with some weird restrictions in someone's code, basically all I have is the predicate which is supplied to the library as a callback. Benjamin's answer makes me second-guess this approach. – Mahmoud Al-Qudsi Jul 20 '12 at 3:42
up vote 2 down vote accepted

According to a draft of the standard §23.3.4.6/14:

Complexity: Exactly distance(begin(), end()) applications 
of the corresponding predicate.

Forgive me if the reference is a little off; it's actually a first for me officially quoting it. I hope it's the information you're looking for.

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Nice catch. I didn't think of it that way - I guess the only way an iterator could be passed in twice while still conforming to the standard is if another iterator was skipped in exchange ;-) – Mahmoud Al-Qudsi Jul 20 '12 at 3:47
    
@MahmoudAl-Qudsi, Yeah, I was thinking about that, too, but it's really just putting two and two together what with it conforming to this, as well as the guaranteed behaviour of the function itself. – chris Jul 20 '12 at 3:49

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