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I know that there are similar questions to this one, but I didn’t manage to find the way on my code by their aid. I want merely to delete/remove an element of a vector by checking an attribute of this element inside a loop. How can I do that? I tried the following code but I receive the vague message of error:

'operator =' function is unavailable in 'Player’.

 for (vector<Player>::iterator it = allPlayers.begin(); it != allPlayers.end(); it++)
 {
     if(it->getpMoney()<=0) 
         it = allPlayers.erase(it);
     else 
         ++it;
 }

What should I do?

Update: Do you think that the question vector::erase with pointer member pertains to the same problem? Do I need hence an assignment operator? Why?

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1  
Please note that that you could be a lot better off using std::remove_if. Please see this post for details on that. –  user405725 Jan 14 '13 at 15:12

4 Answers 4

up vote 30 down vote accepted

You should not increment it in the for loop:

for (vector<Player>::iterator it=allPlayers.begin(); 
                              it!=allPlayers.end(); 
                              /*it++*/) <----------- I commented it.
{

   if(it->getpMoney()<=0) 
      it = allPlayers.erase(it);
  else 
      ++it;
 }

Notice the commented part;it++ is not needed there, as it is getting incremented in the for-body itself.

As for the error "'operator =' function is unavailable in 'Player’", it comes from the usage of erase() which internally uses operator= to move elements in the vector. In order to use erase(), the objects of class Player must be assignable, which means you need to implement operator= for Player class.

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1  
I tried this but I receive the same error. When I remove the above loop (of deleting) the programs compiles. Consequently, there is a problem with the delete/erase. There are members of class Player that are pointers to other objects. What become they in this case? –  arjacsoh Dec 25 '11 at 9:43
1  
Actually the error comes from std::vector.erase, which uses the assignment operator to move elements in order to keep the vector contiguous. –  ronag Dec 25 '11 at 11:52

Forget the loop and use the std or boost range algorthims.
Using Boost.Range en Lambda it would look like this:

boost::remove_if( allPlayers, bind(&Player::getpMoney, _1)<=0 );
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3  
+1. This is the way to go! –  user405725 Jan 14 '13 at 15:13
7  
-1 for a disingenuous answer. For example, how would one write said algorithms without knowing how to do it at a lower level. Not everyone can live in Abstraction Heaven. About as useful as someone answering USE JQUERY!!1! for someone trying to learn Javascript. –  Thomas Eding Sep 26 '13 at 17:53

Your specific problem is that your Player class does not have an assignment operator. You must make "Player" either copyable or movable in order to remove it from a vector. This is due to that vector needs to be contiguous and therefore needs to reorder elements in order to fill gaps created when you remove elements.

Also:

Use std algorithm

allPlayers.erase(std::remove_if(allPlayers.begin(), allPlayers.end(), [](const Player& player)
{
    return player.getpMoney() <= 0;
}), allPlayers.end());

or even simpler if you have boost:

boost::remove_erase_if(allPlayers, [](const Player& player)
{
    return player.getpMoney() <= 0;
});

See TimW's answer if you don't have support for C++11 lambdas.

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I think also that the problem is what you mention. However, I have added an assignement operator as Player& operator= (const Player& rhs); in the Player.h file but I still get error(with different message). Do I need finallly a copy constructor? –  arjacsoh Dec 25 '11 at 11:52
1  
You should also implement a copy constructor. It is difficult to tell what the problem is, if you don't post the relevant error nor code. –  ronag Dec 25 '11 at 11:54
if(allPlayers.empty() == false) {
    for(int i = allPlayers.size() - 1; i >= 0; i--)
    {
        if(allPlayers.at(i).getpMoney() <= 0) 
            allPlayers.erase(allPlayers.at(i));
    }
}

This is my way to remove elements in vector. It's easy to understand and doesn't need any tricks.

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