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Here is my issue, lets say I have a std::vector with ints in it.

let's say it has 50,90,40,90,80,60,80.

I know I need to remove the second, fifth and third elements. I don't necessarily always know the order of elements to remove, nor how many. The issue is by erasing an element, this changes the index of the other elements. Therefore, how could I erase these and compensate for the index change. (sorting then linearly erasing with an offset is not an option)

Thanks

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"sorting then linearly erasing with an offset is not an option": Why? –  nikie Aug 15 '10 at 14:28

5 Answers 5

up vote 7 down vote accepted

Assign the current last element of the vector to the element to erase, then erase the last element. This will avoid big moves and all indexes except the last will remain constant. If you start erasing from the back, all precomputed indexes will be correct.

void quickDelete( int idx )
{
  vec[idx] = vec.back();
  vec.pop_back();
}

I see this essentially is a hand-coded version of the erase-remove idiom pointed out by Klaim ...

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What if the last element is one of those scheduled for deletion? –  Andreas Brinck Aug 15 '10 at 14:21
2  
Then swapping with itself is a no-op and pop_back still does the right thing. –  Mark B Aug 15 '10 at 14:22
1  
The order of the indices isn't known according to the OP –  Andreas Brinck Aug 15 '10 at 14:28
5  
This will reorder the vector, which might not be what you want. –  Mike Seymour Aug 15 '10 at 15:28
1  
HUH? Say that given a vector of 10 items, and I want to delete slot 5: I now Assign slot 5 with the value in slot 10, and delete slot 10? How is that supposed to be the correct answer? It's not. –  C Johnson Aug 16 '10 at 4:13

Using a predicate and the algorithm remove_if you can achieve what you want : see http://www.cplusplus.com/reference/algorithm/remove_if/

Don't forget to erase the item (see remove-erase idiom).

Your predicate will simply hold the idx of each value to remove and decrease all indexes it keeps each time it returns true.

That said if you can afford just removing each object using the remove-erase idiom, just make your life simple by doing it.

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Erase the items backwards. In other words erase the highest index first, then next highest etc. You won't invalidate any previous iterators or indexes so you can just use the obvious approach of multiple erase calls.

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I wrote though: (sorting then linearly erasing with an offset is not an option) –  Milo Aug 15 '10 at 14:22
1  
@Milo: unless there's a good reason to arbitrarily reject one of the better solutions, then it certainly is an option. Why can't you sort the indexes? –  Mike Seymour Aug 15 '10 at 15:32

I would move the elements which you don't want to erase to a temporary vector and then replace the original vector with this.

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Would this work:

void DeleteAll(vector<int>& data, const vector<int>& deleteIndices)
{
    vector<bool> markedElements(data.size(), false);
    vector<int> tempBuffer;
    tempBuffer.reserve(data.size()-deleteIndices.size());

    for (vector<int>::const_iterator itDel = deleteIndices.begin(); itDel != deleteIndices.end(); itDel++)
        markedElements[*itDel] = true;

    for (size_t i=0; i<data.size(); i++)
    {
        if (!markedElements[i])
            tempBuffer.push_back(data[i]);
    }
    data = tempBuffer;
}

It's an O(n) operation, no matter how many elements you delete. You could gain some efficiency by reordering the vector inline (but I think this way it's more readable).

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