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I have a std::vector, and I want to delete the n'th element. How do I do that?

std::vector<int> vec;



Please help!

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Consider using a std::deque which provides inserting and deleting at both ends. – Dario May 17 '09 at 18:20

4 Answers 4

up vote 233 down vote accepted

To delete a single element, you could do:

std::vector<int> vec;


// Deletes the second element (vec[1])
vec.erase(vec.begin() + 1);

Or, to delete more then one element at once:

// Deletes the 2nd through 3rd elements (vec[1], vec[2])
vec.erase(vec.begin() + 1, vec.begin() + 3);
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vec.erase(vec.begin() + 1, vec.begin() + 2); will only erase one element, since the second iterator is exclusive. – fredoverflow Jan 28 '12 at 17:13
Note: @FredOverflow's comment applies only when the 2nd arg to erase was a 2, but it has since been changed to a 3 – bobobobo Mar 14 '13 at 23:09
Note also binary operator+ is not necessarily defined for iterators on other container types, like list<T>::iterator (you cannot do list.begin() + 2 on an std::list, you have to use std::advance for that) – bobobobo Mar 14 '13 at 23:35
are you stating that the "+1" is the first element myVector[0] or the actual position myVector[1] – Karl Morrison Sep 19 '14 at 7:38

The erase method on std::vector is overloaded, so its probably clearer to call:

vec.erase(vec.begin() + index);

when you only want to erase a single element.

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This is not good if you have only one element ... – alap Jan 20 '14 at 10:10
@Laszlo-AndrasZsurzsa Why? – manuell Feb 4 '14 at 17:50
you dont check index ... – alap Feb 5 '14 at 18:44
But that problem appears no matter how many elements you have. – Zyx 2000 Sep 1 '14 at 9:32
if there's only one element, index is 0, and so you get vec.begin() which is valid. – Clairvoire Jan 27 at 18:28
template <typename T>
void remove(std::vector<T>& vec, size_t pos)
    std::vector<T>::iterator it = vec.begin();
    std::advance(it, pos);
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Max, what makes that function better than: template <typename T> void remove(std::vector<T>& vec, size_t pos) { vec.erase(vec.begin + pos); } I'm not saying either is better, merely asking out of personal interest and to return the best result this question could get. – user1664047 Sep 11 '12 at 20:50
@JoeyvG: Since a vector<T>::iterator is a random-access iterator, your version is fine and maybe a bit clearer. But the version that Max posted should work just fine if you change the container to another one that doesn't support random-access iterators – Kevin Ballard Sep 11 '12 at 21:28
RIP, user1664047. – Limited Atonement Feb 23 at 21:55

I've always found the begin() + n thing a little odd.

I prefer this, which has the added advantage of being shorter to type.


Or, similarly, if you require bounds checking on the erase

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Do you know of any reason netbeans would give an error on v.erase(&;? But no error for v.erase(v.begin() + 17)? – Instinct Apr 4 '14 at 22:53
@Instinct : at(17) does bounds checking, while begin()+17 won't. The error means your vector doesn't have 18 elements in it. – Roddy Apr 5 '14 at 10:36
This solution only works if the std::vector uses value_type * as its iterator type, or allows implicit conversion from one to the another. So you can't count on this working with all standard library implementation (e.g., neither libc++ nor libstdc++ allow this code to compile). – Ken Wayne VanderLinde Apr 19 '14 at 17:12
@KenWayneVanderLinde Eek! So much the "standardness" of the standard library. And why on earth does my answer has 7 upvotes and no downvotes... – Roddy Apr 19 '14 at 20:38
This doesn't work on Microsoft's STL implementation as T* cannot be cast to the iterator type. – Cthutu Mar 24 at 20:41

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