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I have two vectors. And I need to remove from vector1 what there is in vector2. I use Visual Studio 2010.

There seems to be a method: http://msdn.microsoft.com/en-us/library/system.windows.vector.subtract.aspx

But it somehow doesn't work and even there is no code example.

Could you help me? If no standard method exists, maybe you could suggest how to organize it via loops? Thank you in advance.

#include "stdafx.h";
#include <vector>;
#include <iostream>

using namespace std;

int main ()
{
  vector<int> vector1;
  vector<int> vector2;

  for (int i = 0; i < 10; i++)
  {
vector1.push_back (i);
  }

  for (int i = 0; i < 6; i++)
  {
    vector2.push_back (i);
  }

  myvector1 = Subtract(vector1, vector2); 

  return 0;
}
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1  
The method you found is for .NET. That means that to use it with C++, you'd have to switch over to C++/CLI. –  chris Jan 5 '13 at 20:05
    
There seems to be a serious misunderstanding of what the function you linked does (2d vector substraction), and what you might want (set difference, or element-wise numeric substraction). Which is it? –  Timbo Jan 5 '13 at 20:12
    
@Timbo: "I need to remove from vector1 what there is in vector2". That's set difference, no misunderstanding. –  K-ballo Jan 5 '13 at 20:12
    
@K-ballo you are probably right. However, it is kind of obvious that the linked method does not do that at all. –  Timbo Jan 5 '13 at 20:14
    
@Timbo: I guess the OP is just confused since .Net Vector is a geometric vector and not a container, and he is clearly using containers... –  K-ballo Jan 5 '13 at 20:15

2 Answers 2

You should use std::set_difference: http://en.cppreference.com/w/cpp/algorithm/set_difference

First you will need to sort your vectors, since set_difference operates on sorted ranges. That is, unless they are sorted already (like in your use case).

std::sort(vector1.begin(), vector1.end());
std::sort(vector2.begin(), vector2.end());

Then you call it like this:

std::vector<int> difference;
std::set_difference(
    vector1.begin(), vector1.end(),
    vector2.begin(), vector2.end(),
    std::back_inserter( difference )
);

This will append to difference those elements found in vector1 that are not found in vector2.

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3  
@Tinctorius: Please stop editing my post. std::set_difference is not from the .NET framework... –  K-ballo Jan 5 '13 at 20:11

If you don't want to use std::set_difference, you can do this:

// substracts b<T> to a<T>
template <typename T>                                                                                            
void
substract_vector(std::vector<T>& a, const std::vector<T>& b)                                                     
{
    typename std::vector<T>::iterator       it = a.begin();                                                          
    typename std::vector<T>::const_iterator it2 = b.begin();                                                     
    typename std::vector<T>::iterator       end = a.end();                                                           
    typename std::vector<T>::const_iterator end2 = b.end();                                                      

    while (it != end)                                                                                            
    {
        while (it2 != end2)                                                                                      
        {
            if (*it == *it2)                                                                                     
            {
                it = a.erase(it);                                                                                
                end = a.end();                                                                                   
                it2 = b.begin();                                                                                         
            }
            else
                ++it2;
        }
        ++it;
        it2 = b.begin();                                                                                         
    }
}

This will erase from a all values that are in b.

Good luck

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