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I need to go through a set and remove elements that meet a predefined criteria.

This is the test code I wrote:

#include <set>
#include <algorithm>

void printElement(int value) {
    std::cout << value << " ";
}

int main() {
    int initNum[] = { 0, 1, 2, 3, 4, 5, 6, 7, 8, 9 };
    std::set<int> numbers(initNum, initNum + 10);
    // print '0 1 2 3 4 5 6 7 8 9'
    std::for_each(numbers.begin(), numbers.end(), printElement);

    std::set<int>::iterator it = numbers.begin();

    // iterate through the set and erase all even numbers
    for (; it != numbers.end(); ++it) {
        int n = *it;
        if (n % 2 == 0) {
            // wouldn't invalidate the iterator?
            numbers.erase(it);
        }
    }

    // print '1 3 5 7 9'
    std::for_each(numbers.begin(), numbers.end(), printElement);

    return 0;
}

At first, I thought that erasing an element from the set while iterating through it would invalidate the iterator, and the increment at the for loop would have undefined behavior. Even though, I executed this test code and all went well, and I can't explain why.

My question: Is this the defined behavior for std sets or is this implementation specific? I am using gcc 4.3.3 on ubuntu 10.04 (32-bit version), by the way.

Thanks!

Proposed solution:

Is this a correct way to iterate and erase elements from the set?

while(it != numbers.end()) {
    int n = *it;
    if (n % 2 == 0) {
        // post-increment operator returns a copy, then increment
        numbers.erase(it++);
    } else {
        // pre-increment operator increments, then return
        ++it;
    }
}

Edit: PREFERED SOLUTION

I came around a solution that seems more elegant to me, even though it does exactly the same.

while(it != numbers.end()) {
    // copy the current iterator then increment it
    std::set<int>::iterator current = it++;
    int n = *current;
    if (n % 2 == 0) {
        // don't invalidate iterator it, because it is already
        // pointing to the next element
        numbers.erase(current);
    }
}

If there are several test conditions inside the while, each one of them must increment the iterator. I like this code better because the iterator is incremented only in one place, making the code less error-prone and more readable.

share|improve this question
    
Asked and answered: stackoverflow.com/questions/263945/… –  Loki Astari May 20 '10 at 16:00
2  
Actually, I read this question (and others) before asking mine, but since they were related to other STL containers and since my initial test apparently worked, I thought there was some difference between them. Only after Matt's answer I thought of using valgrind. Even though, I prefer my NEW solution over the others because it reduces the chances of errors by incrementing the iterator in only one place. Thank you all for the help! –  pedromanoel Jul 6 '10 at 18:58
    
@pedromanoel ++it should be somewhat more efficient than it++ because it doesn't require the use of an invisible temporary copy of the iterator. Kornel's version whilst longer ensures that the non-filtered elements are iterated over most efficiently. –  Alnitak Oct 22 '12 at 16:23
    
@Alnitak I haven't thought about that, but I think that the difference in performance wouldn't be so great. The copy is created in his version too, but only for the elements that match. So the degree of optimization is totally dependent on the structure of the set. For quite some time I pre-optimized code, hurting readability and coding speed in the process... So I would perform some tests before using the other way. –  pedromanoel Oct 22 '12 at 19:24
    
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4 Answers

up vote 50 down vote accepted

This is implementation dependent:

Standard 23.1.2.8:

The insert members shall not affect the validity of iterators and references to the container, and the erase members shall invalidate only iterators and references to the erased elements.

Maybe you could try this -- this is standard conforming:

for (it = numbers.begin(); it != numbers.end(); ) {
    if (*it % 2 == 0) {
        numbers.erase(it++);
    }
    else {
        ++it;
    }
}

Note that it++ is postfix, hence it passes the old position to erase, but first jumps to a newer one due to the operator.

share|improve this answer
    
Just edited my question before hitting the refresh =) Thanks! –  pedromanoel May 20 '10 at 14:29
    
Yes this is a solution ;) –  Kornel Kisielewicz May 20 '10 at 14:31
5  
It is annoying that set<T>::erase does not return an iterator to the following element, as demonstrated it's certainly easy enough to accomplish... –  Matthieu M. May 20 '10 at 14:45
add comment

If you run your program through valgrind, you'll see a bunch of read errors. In other words, yes, the iterators are being invalidated, but you're getting lucky in your example (or really unlucky, as you're not seeing the negative effects of undefined behavior). One solution to this is to create a temporary iterator, increment the temp, delete the target iterator, then set the target to the temp. For example, re-write your loop as follows:

std::set<int>::iterator it = numbers.begin();                               
std::set<int>::iterator tmp;                                                

// iterate through the set and erase all even numbers                       
for ( ; it != numbers.end(); )                                              
{                                                                           
    int n = *it;                                                            
    if (n % 2 == 0)                                                         
    {                                                                       
        tmp = it;                                                           
        ++tmp;                                                              
        numbers.erase(it);                                                  
        it = tmp;                                                           
    }                                                                       
    else                                                                    
    {                                                                       
        ++it;                                                               
    }                                                                       
} 
share|improve this answer
    
D'oh, the proposed solution is effectively the same as mine. –  Matt May 20 '10 at 14:42
3  
+1 for the use of valgrind! –  pedromanoel Jan 17 '11 at 15:12
add comment

You misunderstand what "undefined behavior" means. Undefined behavior does not mean "if you do this, your program will crash or produce unexpected results." It means "if you do this, your program could crash or produce unexpected results", or do anything else, depending on your compiler, your operating system, the phase of the moon, etc.

If something executes without crashing and behaves as you expect it to, that is not proof that it is not undefined behavior. All it proves is that its behavior happened to be as observed for that particular run after compiling with that particular compiler on that particular operating system.

Erasing an element from a set invalidates the iterator to the erased element. Using an invalidated iterator is undefined behavior. It just so happened that the observed behavior was what you intended in this particular instance; it does not mean that the code is correct.

share|improve this answer
    
Oh, I am well aware that undefined behavior can also mean "It works for me, but not for everybody". That is why I asked this question, because I didn't know if this behavior was correct or not. If it was, than I would just leave like that. Using an while loop would solve my problem, then? I edited my question with my proposed solution. Please check it out. –  pedromanoel May 20 '10 at 14:22
    
It works for me too. But when I change the condition into if (n > 2 && n < 7 ) then I get 0 1 2 4 7 8 9. - The particular result here probably depends more on the implementation details of the erase method and set iterators, rather than on the phase of the moon (not that one should ever rely on implementation details). ;) –  UncleBens May 20 '10 at 14:58
add comment

This behaviour is implementation specific. To guarantee the correctness of the iterator you should use "it = numbers.erase(it);" statement if you need to delete the element and simply incerement iterator in other case.

share|improve this answer
1  
Set<T>::erase version doesn't return iterator. –  Arkaitz Jimenez May 20 '10 at 14:12
2  
Actually it does, but only on MSVC implementation. So this is truly an implementation specific answer. :) –  Eugene Sep 24 '12 at 21:00
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