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How do i remove the ith item from a std::vector

I know i want to delete the ith element.

I have int i; and std::vector<process> pList; where process is a struct.

I want to do something equilivent to the following:

pList.remove(i);

Thanks!

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5 Answers 5

up vote 19 down vote accepted
pList.erase(pList.begin()+i);

To remove element with index i.

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Thanks! I didn't understand how to get an iterator to pass to the method... –  kralco626 Dec 14 '10 at 18:09
1  
one note, the behavior is undefined if the vector contains less than i+1 elements. It's probably worth noting :) –  Matthieu M. Dec 14 '10 at 18:49

Here is an O(1) solution, assuming you don't care about the order of elements:

#include <algorithm>

// ...

{
    using std::swap;
    swap(pList[i], pList.back());
    pList.pop_back();
}

For PODs, assignment is faster than swapping, so you should simply write:

pList[i] = pList.back();
pList.pop_back();

In C++11, you can forget the above distinction and always use move semantics for maximum efficiency:

pList[i] = std::move(pList.back());
pList.pop_back();
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+1, nice idea.⁢ –  Matteo Italia Dec 14 '10 at 18:18
3  
+1 I don't care about time, but someone else might. Good to know! –  kralco626 Dec 14 '10 at 18:21
2  
That's clever assuming order is not important. –  Loki Astari Dec 14 '10 at 19:39
    
An even faster version would skip the swap and instead just assign, as the last element is getting pop_backed anyway. –  Ylisar Oct 13 '11 at 15:35
    
@Ylisar: For many types, swapping is much more efficient than assignment. Examples include most of the STL containers. Assignment is more efficient for PODs though. Thanks for reminding me. –  FredOverflow Oct 13 '11 at 16:26

An approach to save yourself from linear complexity!

Since vector.erase() is linear complexity, I would suggest that just swap the ith element with the last element and then erase the element at the end (which is actually ith element); that way, you possibly can save yourself from linear complexity. That is just my thought!

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1  
"vector.erase() is linear complexity" Is there a book with a tabler for such things? I keep getting an impression that such estimates need a thorough knowledge of some algorithms (but I still hope there is a table with methods complexity for each data type somewhere). Thanks. –  user649198 Nov 17 '12 at 3:56

Use Vector.Erase. The complexity is linear on the number of elements erased (destructors) plus the number of elements after the last element deleted (moving).

iterator erase ( iterator position );
iterator erase ( iterator first, iterator last );
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1  
Yes i saw this in the documentation but was still unable to figure out how to use it. –  kralco626 Dec 14 '10 at 18:22
vector.erase(iterator)

Where iterator is the position. You can get the first element with vector.begin() and the last one with vector.end(). Just add to the iterator to get to the desired element. e.g.:

pList.erase(pList.begin()+6);

to erase the 6th item.

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it is the 7th item, isn't it? cplusplus.com –  Martin Meeser Mar 14 '13 at 12:19

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