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I need to remove an element from a std::list after finding it with std::find. What is the behavior of calling std::list::erase with the end() of the list? My case is something like this:

std::list<T> mylist;
T value;
std::list::iterator it = std::find(mylist.begin(), mylist.end(), value);
std::list::iterator next = mylist.erase(it);

cplusplus.com says:

If position (or the range) is valid, the function never throws exceptions (no-throw guarantee). Otherwise, it causes undefined behavior.

but what I don't know is whether end() is considered valid there.

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end() is one past the last element. –  Alok Save Feb 27 '13 at 16:06
    
cplusplus.com is likewise outside the bounds of reputable sources. See cppreference.com instead. –  Potatoswatter Feb 27 '13 at 16:29
    
@Potatoswatter: The internet is outside the bounds of reputable sources. See the language specification instead. –  Mike Seymour Feb 27 '13 at 16:30
    
@MikeSeymour Hmm, if we're in a glass house… anyway the wiki site is pretty well maintained by interested users, the same crowd as on this site. cplusplus.com on the other hand is closed. They focus on SEO to get links from Google, at the expense of accuracy. –  Potatoswatter Feb 27 '13 at 16:32
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@Potatoswatter: Also, cppreference.com doesn't mention any preconditions on the arguments to erase at all, so doesn't help with this question. –  Mike Seymour Feb 27 '13 at 16:33
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3 Answers

up vote 14 down vote accepted

That site uses the vague (and arguably incorrect) term "valid", but the library specification (C++11 23.2.3) uses the more specific term "dereferenceable" - meaning that the iterator must refer to an object. The past-the-end iterator is not dereferenceable, so erasing it gives undefined behaviour.

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+1, also I think that the web has a worse issue than being vague, as valid is a term that is used in the standard and end() yields a valid iterator (i.e. the web page is not vague, it is wrong) –  David Rodríguez - dribeas Feb 27 '13 at 16:15
    
Actually, the library specification uses "valid" as well (e.g. for insertion, where an end()-Iterator is ok), but it explicitly says "valid and dereferencable" as a requirement for single-iterator-erase. –  Arne Mertz Feb 27 '13 at 16:19
    
Thanks! This is what I was looking for. I don't have access to the specification. Do you know if it is the same in C++03? –  Janoma Feb 27 '13 at 16:25
    
@Janoma: Yes, it's the same in C++03. –  Mike Seymour Feb 27 '13 at 16:30
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It isn't. Trying to erase end() results in undefined behaviour.

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end() Returns an iterator referring to the past-the-end iterator in the list container and not the last object in the list.

By deleting/erasing end, you are deleting outside the range of your list. Your code should be:

std::list<T> mylist;
T value;
std::list::iterator it = std::find(mylist.begin(), mylist.end(), value);
If(it!=mylist.end())
  std::list::iterator next = mylist.erase(it);

Also if find() fails to find a value in your list it will return the end iterator, it is basically telling you that the value you are searching for is outside of your list (not in you list)

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There is no past-the-end element in a container. end() returns a past-the-end iterator. In general, a past-the-end iterator does not have to refer to an element, although in many situations it in fact does. –  Pete Becker Feb 27 '13 at 17:22
    
Fixed, no need to be mad –  Red Serpent Feb 27 '13 at 17:37
    
Mad? I hope I didn't come across that way. –  Pete Becker Feb 27 '13 at 17:45
    
Lol, was joking bro... –  Red Serpent Feb 27 '13 at 17:46
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