432

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

std::vector<int> vec;

vec.push_back(6);
vec.push_back(-17);
vec.push_back(12);

vec.erase(???);
  • 4
    Consider using a std::deque which provides inserting and deleting at both ends. – Dario May 17 '09 at 18:20
  • 27
    No, don't consider using deque just because you may want to delete an element, that's really poor advice. There's a whole load of reasons why you may want to use deque or vector. It is true that deleting an element from a vector can be costly - esp if the vector is large, but there's no reason to think that a deque would be any better than a vector from the code example you just posted. – Owl Apr 1 '17 at 21:10
  • 3
    For example, if you have a graphical application where you display a "list" of things where you insert/remove things interactively, consider you run through the list 50-100 times each second to display them, and you add/remove things a few times each minute. So implementing the "list" as a vector is probably a better option in term of total efficiency. – Michel Billaud May 28 '17 at 17:54

11 Answers 11

592

To delete a single element, you could do:

std::vector<int> vec;

vec.push_back(6);
vec.push_back(-17);
vec.push_back(12);

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

Or, to delete more than one element at once:

// Deletes the second through third elements (vec[1], vec[2])
vec.erase(vec.begin() + 1, vec.begin() + 3);
  • 34
    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
  • 2
    With advance you must save the iterator in a variable. If you use std::next you can do it in one line: vec.erase( next(begin(vec), 123) ); – dani Oct 5 '16 at 20:36
  • 4
    Thank you to all who have answered. What are we to think of a class design when such a simple operation as deleting an element, requires one to come to StackOverflow? – Pierre Jan 28 '18 at 18:35
  • 1
    @Pierre because the numerical index of a particular element is not the primary model of access, iterator is. All the functions that look at elements of a container use that container's iterators. E.g. std::find_if – Caleth Jul 3 '18 at 9:38
187

The erase method on std::vector is overloaded, so it's probably clearer to call

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

when you only want to erase a single element.

  • This is not good if you have only one element ...you don't check the index... – alap Jan 20 '14 at 10:10
  • 3
    But that problem appears no matter how many elements you have. – Zyx 2000 Sep 1 '14 at 9:32
  • 15
    if there's only one element, index is 0, and so you get vec.begin() which is valid. – Anne Quinn Jan 27 '15 at 18:28
  • 19
    I wish someone would have mentioned that vec.erase(0) does not work, but vec.erase(vec.begin()+0) (or without +0) does. Otherwise I get no matching function call, which is why I came here – ItsmeJulian Feb 15 '16 at 20:19
49
template <typename T>
void remove(std::vector<T>& vec, size_t pos)
{
    std::vector<T>::iterator it = vec.begin();
    std::advance(it, pos);
    vec.erase(it);
}
  • 2
    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
  • 12
    @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 – Lily Ballard Sep 11 '12 at 21:28
  • 1
    This is imo the better answer, as it applies to other container formats too. You could also use std::next(). – Bim Dec 23 '16 at 18:27
14

The erase method will be used in two ways:

  1. Erasing single element:

    vector.erase( vector.begin() + 3 ); // Deleting the fourth element
    
  2. Erasing range of elements:

    vector.erase( vector.begin() + 3, vector.begin() + 5 ); // Deleting from fourth element to sixth element
    
6

Actually, the erase function works for two profiles:

  • Removing a single element

    iterator erase (iterator position);
    
  • Removing a range of elements

    iterator erase (iterator first, iterator last);
    

Since std::vec.begin() marks the start of container and if we want to delete the ith element in our vector, we can use:

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

If you look closely, vec.begin() is just a pointer to the starting position of our vector and adding the value of i to it increments the pointer to i position, so instead we can access the pointer to the ith element by:

&vec[i]

So we can write:

vec.erase(&vec[i]); // To delete the ith element
  • 4
    -1 The last line does not compile (at least in VS2017). The code assumes that vector::iterator is implicitly constructible from a raw pointer, which is not required by the standard. – bitwise Apr 11 '18 at 16:11
  • This is true especially for debug iterators – Nishant Singh May 9 at 6:50
6

If you have an unordered vector you can take advantage of the fact that it's unordered and use something I saw from Dan Higgins at CPPCON

template< typename TContainer >
static bool EraseFromUnorderedByIndex( TContainer& inContainer, size_t inIndex )
{
    if ( inIndex < inContainer.size() )
    {
        if ( inIndex != inContainer.size() - 1 )
            inContainer[inIndex] = inContainer.back();
        inContainer.pop_back();
        return true;
    }
    return false;
}

Since the list order doesn't matter, just take the last element in the list and copy it over the top of the item you want to remove, then pop and delete the last item.

  • I think this is the best answer if the vector is unordered. It does not rely on the assumption that iterator + index will actually give you back the iterator position at that index, which is not true of all iterable containers. It is also constant complexity instead of linear by taking advantage of the back pointer. – theferrit32 Mar 15 '18 at 18:57
4

If you work with large vectors (size > 100,000) and want to delete lots of elements, I would recommend to do something like this:

int main(int argc, char** argv) {

    vector <int> vec;
    vector <int> vec2;

    for (int i = 0; i < 20000000; i++){
        vec.push_back(i);}

    for (int i = 0; i < vec.size(); i++)
    {
        if(vec.at(i) %3 != 0)
            vec2.push_back(i);
    }

    vec = vec2;
    cout << vec.size() << endl;
}

The code takes every number in vec that can't be divided by 3 and copies it to vec2. Afterwards it copies vec2 in vec. It is pretty fast. To process 20,000,000 elements this algorithm only takes 0.8 sec!

I did the same thing with the erase-method, and it takes lots and lots of time:

Erase-Version (10k elements)  : 0.04 sec
Erase-Version (100k elements) : 0.6  sec
Erase-Version (1000k elements): 56   sec
Erase-Version (10000k elements): ...still calculating (>30 min)
  • 6
    how does this answer the question? – Regis Portalez May 12 '16 at 14:34
  • 4
    Interesting, but not relevant to the question! – Roddy Jun 9 '16 at 20:30
  • Won't a in-place algorithm faster? – user202729 Sep 21 '16 at 4:17
  • 2
    that's std::remove_if (+erase) – RiaD Apr 5 '17 at 12:19
2

To delete an element use the following way:

// declaring and assigning array1 
std:vector<int> array1 {0,2,3,4};

// erasing the value in the array
array1.erase(array1.begin()+n);

For a more broad overview you can visit: http://www.cplusplus.com/reference/vector/vector/erase/

0

The previous answers assume that you always have a signed index. Sadly, std::vector uses size_type for indexing, and difference_type for iterator arithmetic, so they don't work together if you have "-Wconversion" and friends enabled. This is another way to answer the question, while being able to handle both signed and unsigned:

To remove:

template<class T, class I, class = typename std::enable_if<std::is_integral<I>::value>::type>
void remove(std::vector<T> &v, I index)
{
    const auto &iter = v.cbegin() + gsl::narrow_cast<typename std::vector<T>::difference_type>(index);
    v.erase(iter);
}

To take:

template<class T, class I, class = typename std::enable_if<std::is_integral<I>::value>::type>
T take(std::vector<T> &v, I index)
{
    const auto &iter = v.cbegin() + gsl::narrow_cast<typename std::vector<T>::difference_type>(index);

    auto val = *iter;
    v.erase(iter);

    return val;
}
0

here is one more way to do this if you want to delete a element by finding this with its value in vector,you just need to do this on vector.

vector<int> ar(n);
ar.erase(remove(ar.begin(), ar.end()), (place your value here from vector array));

it will remove your value from here. thanks

0

the fastest way (for programming contests by time complexity() = constant)

can erase 100M item in 1 second;

    vector<int> it = (vector<int>::iterator) &vec[pos];
    vec.erase(it);

and most readable way : vec.erase(vec.begin() + pos);

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