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Is there a defined behavior for container.erase(first,last) when first == last in the STL, or is it undefined?

Example:

std::vector<int> v(1,1);
v.erase(v.begin(),v.begin());
std::cout << v.size(); // 1 or 0?

If there is a Standard Library specification document that has this information I would appreciate a reference to it.

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2  
Do you mean the STL? or do you mean the standard library? – PlasmaHH Oct 13 '11 at 15:41
    
@PlasmaHH: The subset of the library that deals with templates, I guess. – phresnel Oct 13 '11 at 15:45
    
You can find exact documentation in the standard: stackoverflow.com/questions/81656/… – Loki Astari Oct 13 '11 at 15:49
2  
PlasmaHH: in this context the difference is irrelevant. – rubenvb Oct 13 '11 at 15:57
1  
@rubenvb: Prove it. – PreferenceBean Oct 13 '11 at 16:09
up vote 5 down vote accepted

The behavior is well defined.

It is a No-op(No-Operation). It does not perform any erase operation on the container as end is same as begin.

The relevant Quote from the Standard are as follows:

C++03 Standard: 24.1 Iterator requirements and
C++11 Standard: 24.2.1 Iterator requirements

Para 6 & 7 for both:

An iterator j is called reachable from an iterator i if and only if there is a finite sequence of applications of the expression ++i that makes i == j. If j is reachable from i, they refer to the same container.

Most of the library’s algorithmic templates that operate on data structures have interfaces that use ranges.A range is a pair of iterators that designate the beginning and end of the computation. A range [i, i) is an empty range; in general, a range [i, j) refers to the elements in the data structure starting with the one pointed to by i and up to but not including the one pointed to by j. Range [i, j) is valid if and only if j is reachable from i. The result of the application of functions in the library to invalid ranges is undefined.

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1  
It does at least a comparison, though. – phresnel Oct 13 '11 at 15:46
    
@phresnel: Ofcourse NO-OP is always w.r.t caller. It performs No visible operation for the user. – Alok Save Oct 13 '11 at 15:52
    
thanks for the answer! – Andrew Hundt Oct 13 '11 at 16:08
    
It may become visible with iterator traits. (However, as this is on the borderline of pedantry (but is not pedantry as for the possibility of becoming visible), I don't have any thought of downvoting you and I won't commit doing so) (and my definition of no-op slightly varies from yours, but that's for the fact that nobody standardized that term :/) – phresnel Oct 13 '11 at 16:08

That would erase nothing at all, just like other algorithms that operate on [, ) ranges.

Even if the container is empty I think that would still work because begin() == end().

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1  
+1: The range [i,i) is the empty set in maths. – Loki Astari Oct 13 '11 at 16:04

Conceptually, there is an ordinary loop from begin to end, with a simple loop condition that checks if the iterator is end already, like this:

void erase (iterator from, iterator to) {
    ...
    while (from != to) erase (from++);
    ...
}

(however, implementations may vary). As you see, if from==to, then there is no single iteration of the loop body.

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It is perfectly defined. It removes all elements from first to last, including first and excluding last. If there are no elements in this range (when first == last), then how much are removed? You guessed it, none.

Though I'm not sure what happens if first comes after last, I suppose this will invoke undefined behaviour.

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