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In C++, how can I delete an element from a vector?

  1. Delete it right from where it is, i.e. let the vector resize
  2. Swap the element to be deleted with the last element s.t. pop_back() can be used (which I hope doesn't involve copying everything around...)

For (1), I've tried the following, but I'm not quite sure if it does what it is supposed to do (remove the item passed to removeItem() ), and it doesn't seem very elegant:

vector<Item*> items;            
// fill vector with lots of pointers to item objects (...)

void removeItem(Item * item) {
    // release item from memory
    if (int i = getItemIdIfExists(item) != -1) {
        items.erase (items.begin()+i);
    }
}

int getItemIdIfExists(Item * item) {
    // Get id of passed-in Item in collection
    for (unsigned int i=0; i<items.size(); i++) {
        // if match found
        if (items[i] == item)     return i;  
    }
    // if no match found
    return -1;
}
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3 Answers 3

up vote 2 down vote accepted
void removeItem(Item*item){
  for(int i=0; i<items.size(); i++){
    if (items[i]==item){
      swap(items[i], items.back());
      items.pop_back();
      return;
    }
  }
}

Though, if the order doesn't matter, why not just use a std::set?

share|improve this answer
    
Thank you, that solves my problem. It also only deletes one element (which is what I want). My own code seemed to delete multiple elements for some reason. Regarding the set, I am not quite sure why I would use it!? Apart from this particular case, my access is mainly sequential (i.e. all items are updates, all items are rendered etc). –  Ben Oct 23 '11 at 21:18
    
I wasn't sure how you were using it so I was thinking that removing items from a set would be faster than from a vector (even if we're not shifting the whole vector, it's still O(n) for my removeItem), but if you don't do too many removes, you should be fine with the vector. –  Vlad Oct 23 '11 at 21:24
1  
Well, the items are collectables in a game, so they are updated and rendered sequentially every frame, whereas they are only removed every so often when the player actually collects them. So I guess the vector is the better choice in this case. –  Ben Oct 23 '11 at 21:31
    
erase(remove()) works better. –  Loki Astari Oct 23 '11 at 22:18

The standard remove+erase idiom removes elements by value:

#include <vector>
#include <algorithm>

std::vector<int> v;
v.erase(std::remove(v.begin(), v.end(), 12), v.end());

remove reorders the elements so that all the erasees are at the end and returns an iterator to the beginning of the erasee range, and erase actually removes the elements from the container.

This is as efficient as you can get with a contiguous-storage container like vector, especially if you have multiple elements of the same value that all get erased in one wash.

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Shouldn't that just be remove instead of v.remove? –  Vlad Oct 23 '11 at 21:58
    
@Vlad: Thanks, fixed! –  Kerrek SB Oct 23 '11 at 21:59

Delete it right from where it is, i.e. let the vector resize

That's what erase does.

Swap the element to be deleted with the last element s.t. pop_back() can be used (which I hope doesn't involve copying everything around...)

That's what remove does, except that it preserves the order of the remaining objects so it does involve copying everything around.

What you've done could be written as:

items.erase(
    std::remove(
        items.begin(), items.end()
      , item
    )
  , items.end()
);

The difference with your code being that this will actually remove all items valued item, instead of just the first one.

share|improve this answer
    
With your code I get the following error: cannot convert '__gnu_cxx::__normal_iterator<Item**, std::vector<Item*, std::allocator<Item*> > >' to 'const char*' for argument '1' to 'int remove(const char*)'| –  Ben Oct 23 '11 at 21:03
    
That's not quite what remove does. It involves copying because it preserves the order of the remaining items. –  UncleBens Oct 23 '11 at 21:12
    
@UncleBens: I will edit my answer. Thank you. –  K-ballo Oct 23 '11 at 21:15

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