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I want to loop through a vector and erase certain elements that correspond to a certain criteria, for example:

vector<int> myvector;
vector<int>::iterator it;

myvector.push_back(1);
myvector.push_back(2);
myvector.push_back(3);
myvector.push_back(4);

for(it = myvector.begin(); it != myvector.end(); ++it){

    if((*it) == 4){
        it = myvector.erase(it);
    }
}

Now this works fine unless the criterion erases the last item like in the code above. How do you avoid this behaviour ?

Thanks.

EDIT------------------------------------

Now the reason I was looping through it was that there are actually 4 vectors I need to delete the element from (but the criterion is only on one vector):

In this case, is this how to go ?

vector<int> myvector;
vector<int> myvector2;
vector<int> myvector3;
vector<int> myvector4;
vector<int>::iterator it;
vector<int>::iterator it2;
vector<int>::iterator it3;
vector<int>::iterator it4;

myvector.push_back(1);
myvector.push_back(2);
myvector.push_back(3);
myvector.push_back(4);

(assume myvector2/3/4 have values inside them)

it2 = myvector2.begin()
it3 = myvector3.begin()
it4 = myvector4.begin()

for(it = myvector.begin(); it != myvector.end();){

    if((*it) == 4){
        it = myvector.erase(it);
        it2 = myvector2.erase(it2);
        it3 = myvector3.erase(it3);
        it4 = myvector4.erase(it4);
    }
    else{
    ++it;
    ++it2;
    ++it3;
    ++it4;
    }
}

Is there a modification to the erase/remove idiom valid in this case ?

share|improve this question
    
"Now this works fine unless the criterion erases the last item." No it doesn't. It has undefined behavior any time you erase the element. (Just thought I'd mention this; other's have posted the correct solutions.) –  James Kanze Mar 21 '11 at 18:09

4 Answers 4

up vote 3 down vote accepted

Don't do this with a for loop, there's already a well-debugged algorithm for you.

myvector.erase(std::remove(myvector.begin(), myvector.end(), 4), myvector.end());

share|improve this answer

The usual is the remove/erase idiom, which would look something like this:

myvector.erase(std::remove(myvector.begin(), myvector.end(), 4), myvector.end());

Edit: Rereading your question, you mention "certain criteria". If the criteria aren't necessarily just removing a single value, you can use std::remove_if instead of std::remove, and specify your criteria in a functor.

Edit2: for the version dealing with four vectors, the usual method is to create a struct holding the four related values, and delete entire structs:

struct x4 { 
    int a, b, c, d;

    // define equality based on the key field:
    bool operator==(x4 const &other) { return a == other.a; }

    x4(int a_, int b_=0, int c_=0, ind d_=0) : a(a_), b(b_), c(c_), d(d_) {}
};

std::vector<x4> myvector;

myvector.erase(std::remove(myvector.begin(), myvector.end(), x4(4));

Again, if your criteria are more complex than you can easily express in a comparison operator, you can use std::remove_if instead of std::remove. This is also useful if/when you might need to apply different criteria at different times.

If you really need to keep your data in parallel vectors (e.g., you're feeding the data to something external that requires separate, contiguous arrays), then using a loop is probably as good as the alternatives.

share|improve this answer
    
Don't forget that if there are duplicates you need to erase from the return iterator to end. –  Mark B Mar 21 '11 at 16:56
    
@Mark B: Yup -- already corrected. Thanks though. –  Jerry Coffin Mar 21 '11 at 16:57

I think you should write the loop as :

for(it = myvector.begin(); it != myvector.end(); )
{
    if((*it) == 4)
        it = myvector.erase(it);
    else
        ++it; //increment here!
}

Because in your code, if you find 4, you update it in the if block itself, but after that you again increment/update it in the for also which is wrong. That is why I moved it to else block that ensures that it gets incremented if you don't find 4 (or whatever value you're searching).

Also remember that erase returns iterator pointing to the new location of the element that followed the last element erased by the function call.

share|improve this answer
1  
@Simon: Note that the for loop has changed. This is because erase will return the next item, and ++it isn't what you want to do when you loop in this case. –  John Dibling Mar 21 '11 at 16:55
    
@ John & Nawaz: Thanks, now I understand that it's actually doing ++it twice and going out of bounds for the last element –  Simon Mar 21 '11 at 17:05
    
@Simon: Twice. Exactly! –  Nawaz Mar 21 '11 at 17:07
    
Is the code I wrote in the edited portion of my question valid now? –  Simon Mar 21 '11 at 17:13
    
You should avoid this construct and use the remove/erase idiom instead. Manually performing the erasures can be a O(N^2) operation in the worst case --all elements match the delete criteria, for each element all other elements are shifted one position left, for a total of N^2/2 moves. The remove/erase idiom is guaranteed to be O(N) –  David Rodríguez - dribeas Mar 21 '11 at 17:16

erase is generally used with remove (Also have a look at erase-remove idiom) as shown below

myvector.erase(std::remove(myvector.begin(), myvector.end(), 4), myvector.end());
share|improve this answer
    
Prasoon: You're confusing erase with remove. It's remove which doesn't delete the element actually! –  Nawaz Mar 21 '11 at 16:59
    
@Nawaz : Corrected already –  Prasoon Saurav Mar 21 '11 at 17:00

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