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This question already has an answer here:

vector<int> myVector;

and lets say the values in the vector are this (in this order):

5 9 2 8 0 7

If I wanted to erase the element that contains the value of "8", I think I would do this:

myVector.erase(myVector.begin()+4);

Because that would erase the 4th element. But is there any way to erase an element based off of the value "8"? Like:

myVector.eraseElementWhoseValueIs(8);

Or do I simply just need to iterate through all the vector elements and test their values?

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marked as duplicate by Cody Gray c++ Jul 20 at 12:32

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

8  
There could be zero, one, or many elements with that value. What do you want to do in each case? – Ben Voigt Aug 2 '10 at 5:31
up vote 185 down vote accepted

How about std::remove() instead:

#include <algorithm>
...
vec.erase(std::remove(vec.begin(), vec.end(), 8), vec.end());

This combination is also known as the erase-remove idiom.

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1  
I'm a bit confused... It appears this would erase elements from the vector from the element that I'm looking to erase, all the way to the end of the vector... Am I incorrect? All I want is that one element removed. – Jake Wilson Aug 2 '10 at 6:09
7  
@jak: Take a look at the description of remove(): It moves all values not equal to the value passed to the beginning of the range [begin,end). With your example in the question you'd get 5,9,2,0,7,7. As remove() however returns an iterator to the new end, vec.erase() can remove the obsolete elements (i.e. the second 7 here) if that is needed. – Georg Fritzsche Aug 2 '10 at 6:28
2  
@Assimilater: It is not necessary. – Georg Fritzsche Apr 7 '15 at 12:45
12  
in order to use remove() function you have to #include <algorithm>. Otherwise it will give u a crazy error. Please add it to answer. – tharinduwijewardane Jun 4 '15 at 6:18
3  
The documentation page linked to gives you that information. – Georg Fritzsche Jun 5 '15 at 18:13

You can use std::find to get an iterator to a value:

#include <algorithm>
std::vector<int>::iterator position = std::find(myVector.begin(), myVector.end(), 8);
if (position != myVector.end()) // == myVector.end() means the element was not found
    myVector.erase(position);
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5  
This is good if you only expect one occurence of that value. – Tomáš Zato Nov 16 '15 at 8:46
    
@TomášZato: Or want only one removed, which seems to be the case for this question. – Gauthier Jun 2 at 11:32

You can not do that directly. You need to use std::remove algorithm to move the element to be erased to the end of the vector and then use erase function. Something like: myVector.erase(std::remove(myVector.begin(), myVector.end(), 8), myVec.end());. See this erasing elements from vector for more details.

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Eric Niebler is working on a range-proposal and some of the examples show how to remove certain elements. Removing 8. Does create a new vector.

#include <iostream>
#include <range/v3/all.hpp>

int main(int argc, char const *argv[])
{
    std::vector<int> vi{2,4,6,8,10};
    for (auto& i : vi) {
        std::cout << i << std::endl;
    }
    std::cout << "-----" << std::endl;
    std::vector<int> vim = vi | ranges::view::remove_if([](int i){return i == 8;});
    for (auto& i : vim) {
        std::cout << i << std::endl;
    }
    return 0;
}

outputs

2
4
6
8
10
-----
2
4
6
10

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you can usevec.erase(vec.begin() + (8-1)) it will erase the element 8(by value)

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1  
No, that will erase the element at position 7, not the element with value 8. – Toby Speight Mar 2 at 11:08
    
@toby sry i was mistaken. It deletes the value at position 7. – Tarun Kumar Mar 4 at 4:13
    
we can use vec.erase(std::remove(vec.begin(), vec.end(), 8), vec.end()); from george – Tarun Kumar Mar 4 at 4:20

deleting the value between two ranges in a vector by value

vector :1 4 6 2 8 9 want to erase : [2,4] code used : vec.erase(vec.begin() + a-1, vec.begin() + b-1);//where a=2 and b=4 output vector : 1 6 8 9

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