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I saw the following code used to delete one selected element from std::vector:

vector<hgCoord>::iterator it;
int iIndex = 0;
    const int iSelected = 5;
for( it = vecPoints.begin(); it != vecPoints.end(); ++it, ++iIndex )
{
    if( iIndex == iSelected )
    {
        vecPoints.erase( it );
        break;
    }
}

I argue that this code is not efficient and should be written as follows:

vector<hgCoord>::iterator it;
int iIndex = 0;
    const int iSelected = 5; // we assume the vector has more than 5 elements.

    vecPoints.erase( vecPoints.begin() + iSelected );

However, I am not sure whether or not this code is following the C++ STL standard.

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You are correct, since std::vector<T>::iterator is a RandomAccessIterator (a.k.a. T*). Just remember that if you have less than 5 elements in your vector, your second algorithm will fail. –  Travis Gockel Nov 4 '10 at 19:12
1  
If those prefix-i's are a form of Hungarian Notation, I strongly object to either piece of code. –  eq- Nov 4 '10 at 19:30
    
@eq-: what, because i should be used as a prefix meaning iterator, you mean ;-p –  Steve Jessop Nov 4 '10 at 19:54

4 Answers 4

up vote 12 down vote accepted

To make this code generic, so it works no matter whether the iterator supports operator +, and uses the most efficient available implementation:

template <typename C>
void erase_at(C& container, typename C::size_type index) {
    typename C::iterator i = container.begin();
    std::advance(i, index);
    container.erase(i);
}

Internally, std::advance uses operator + if the iterator type supports it. Otherwise (e.g. for std::list<>::iterator) it advances the iterator one step at a time in a loop, just like the first code you posted.

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.........yup..... +1 –  Crazy Eddie Nov 4 '10 at 19:41
3  
In response to a comment on dirbeas' deleted answer - I think the reason std::advance modifies its argument is something to do with the fact that because it's very type-agnostic, in particular it works on all InputIterators, which are cheap but dangerous to copy. When used with an iterator that might be only an InputIterator, not a ForwardIterator, you can't safely use the old value ever again, so even if it did return an iterator, you would still only use it as i = std::advance(i,n);, or on a temporary as in dribeas' code. Returning void helps prevent stupidity. Sometimes. Maybe. –  Steve Jessop Nov 4 '10 at 19:49
    
Thank you for this explanation. –  q0987 Nov 4 '10 at 21:17

Random-access iterators support addition and subtraction, and std::vector iterators are random-access.

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You argue correctly :)

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That should work fine for a vector because vector iterators are random access iterators, so it's OK to add an offset as you have done. The same won't work for some other container types (such as deque or map).

So, your code is better for a vector, but the other code may have been intended to work with other types of container.

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Actually, deque uses random access iterators too. –  Fred Larson Nov 4 '10 at 19:56
    
I think the modified code works for vector, string, and deque. –  q0987 Nov 4 '10 at 21:16
    
@Fred Larson: Oops! I don't know why I typed deque, I meant list! Thanks for the correction. –  dajames Nov 16 '10 at 13:41

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