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I have defined a vector which consist of pairs and vectors. For better readability, I do this

#include <iostream>
#include <vector>
using namespace std;
class foo {
public:
  vector< pair<int, vector<int> > > v;
  vector< pair<int, vector<int> > >::iterator it;
  void bar() 
  {
    for( it = v.begin(); it != v.end(); it++ ) {
      if ( 10 == (*it).first ) {
          vector<int> a = (*it).second;   // NOTE
          a[0] = a[0]*2;                  // NOTE
      }
    }
  }
};

int main()
{
  foo f;
  f.bar();
  return 0;
}

As you can see, I assign (*it).second to a variable a so that I manipulate easily. Problem is, when I change the value of a, the original vector v doesn't change. I can resolve that changing a to (*it).second every where in the loop. However this will make the code hard for reading.

Is there any way to reflect the changes in a to the original v? I have to say call by reference like this

vector<int> a = &(*it).second;

doesn't work

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Saving an iterator as a member and then using it while looping like this is very fragile and completely thread-unsafe. Any recursion or parallel execution could break this. A slight improvement would be to have a local iterator for the loop and setting the member it to this local value at the end of the function. –  Agentlien Jan 22 '13 at 11:09

3 Answers 3

up vote 3 down vote accepted

You need to declare a as a reference:

vector<int>& a = (*it).second;

Ampersand in std::vector<int> a = &(*it).second; is being parsed as adress-of operator and a isn't a pointer - that's why it doesn't work/compile.

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You can change the value of the original vector only when you take it into a reference. But instead in your code you are creating a copy of it and changing that copy which does not effect the original vector.

your vector<int> a should be a reference instead.

vector<int> &a...
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first of all: there is no code which demonstrates how do you fill the v member and when you initialize it. just make sure that you have a valid it after all (remember that, all iterators into vector may invalidate after v modifications)

and the second: the correct line should be like this

vector<int>& a = it->second;

(you take an address instead, and your snippet even wouldn't compile)

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