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I want to use the new C++11 for each loop to iterate over all elements of a list and erase certains elements. For example

std::list<int> myList;
myList.push_back(1); 
myList.push_back(13);
myList.push_back(9);
myList.push_back(4);

for(int element : myList) {
    if(element > 5) {
        //Do something with the element

        //erase the element
    }else{
        //Do something else with the element
    }
}

Is it possible to do this using the for each loop or do I have to go back to iterators to achive this?

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3  
why cant you use remove_if/erase? –  Karthik T Jan 13 '13 at 15:34
3  
Or just list::remove_if, no iterators necessary. –  Benjamin Lindley Jan 13 '13 at 15:36
    
@KarthikT and @BenjaminLindley: Sorry, I didn't mention in my question. I want to do some stuff with the elements that satisfy the condition and also with all others. I probably could put this into to Predicate function used by list::remove_if, but I find that is not very nice. –  Haatschii Jan 13 '13 at 15:40
1  
@Haatschii depending on the nature of the processing, if it isnt too performance critical, I would do it in 2 passes, cleaner that way. –  Karthik T Jan 13 '13 at 15:45

3 Answers 3

up vote 6 down vote accepted

You should be able to just do this

myList.erase(std::remove_if(myList.begin(), myList.end(),
    [](int& element) 
    { 
        return element > 5;
    } 
    ),myList.end());

or simply (courtesy Benjamin Lindley)

myList.remove_if(
    [](int& element) 
    { 
        return element > 5;
    } 
    );
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2  
shifting elements is pretty inefficient for a list –  Cheers and hth. - Alf Jan 13 '13 at 15:47
    
hm, nice edit :) but wait... std::erase? have you tried to compile this? –  Cheers and hth. - Alf Jan 13 '13 at 15:54
2  
@Cheersandhth.-Alf I believe you are mistaken, removal and inserting is O(1) for std::list. Shifting will happen for sequential containers such as std::vector. –  Tamás Szelei Jan 13 '13 at 15:55
4  
@fish: std::remove_if doesn't remove elements, it moves or swaps them (aka shifting). –  Ben Voigt Jan 13 '13 at 16:02
    
@fish: you might just try it, removing the call to (non-existent) std::erase. it would have been a good idea to try it before commenting. –  Cheers and hth. - Alf Jan 13 '13 at 16:04

You can't erase elements of standard containers in a range-based for loop over that container -- the loop itself has an iterator to the element that you're currently visiting, and erasing it would invalidate that iterator before the loop increments it.

Range-based for is defined in 6.5.4 of the standard to be equivalent to (slightly simplified):

for (auto __begin=begin-expr, __end=end-expr; __begin != __end; ++__begin) {
    for-range-declaration = *__begin;
    statement
}

begin-expr and end-expr have their own lengthy definition, but in your example they are myList.begin() and myList.end() respectively.

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it depends on the iterator. ;-) that is, you can define one that supports the operations that you want. such as deletion. –  Cheers and hth. - Alf Jan 13 '13 at 16:10
    
@Cheersandhth.-Alf: the iterator here is std::list<int>::iterator. But yes, in principle you could define a range that has iterators that (unlike standard containers) allow erase without invalidating the iterator. I've qualified my answer. –  Steve Jessop Jan 13 '13 at 16:11
    
oh well, my comment was about the original phrasing "You can't erase elements in a range-based for loop", but now that's edited, the comment doesn't apply. heh. –  Cheers and hth. - Alf Jan 13 '13 at 16:14
    
@Cheersandhth.-Alf: it's OK, I didn't get my edit in under the window, so at least to those who check the history I haven't managed to make your original comment look irrelevant :-) –  Steve Jessop Jan 13 '13 at 16:15

Nope, I don't think so. See this SO answer:

No, you can't. Range-based for is for when you need to access each element of a container once.

You should use the normal for loop or one of it's cousins if you need to modify the container as you go along, access an element more than once, or otherwise iterate in a non-linear fashion through the container.

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