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I'm having some difficulty with this. I've determined I need to overload this operator for my personal project. It is necessitated by the use of the following line:

if(playerVec[i] == 0)

The player class has several data members for calculating one particular data member, mInitiative. This is the one I want to check in my if condition. Here is my attempt at overloading it:

bool operator==(const Player& lhs) const {
    return mInitiative == lhs.mInitiative;
}

It seems fine enough, but the error persists. If I want to compare that particular player datum to an integer (in this case, 0), how do I go about it? What's the mistake in my approach?

EDIT: I have tried:

 bool operator==(const Player& lhs, int rhs) const {
    //...
 }

But the compiler says there are too many parameters for the function. Why is this? Shouldn't == be able to take two?

Thanks!

share|improve this question
    
What error(s) are you getting? –  0x499602D2 Jun 15 '13 at 17:47
    
Try to declare operators that don't directly modify the object outside the class, it makes things much clearer. –  theunamedguy Jun 15 '13 at 17:47
1  
You can declare overloads that take mixed types, e.g. bool operator==(const Player &lhs, int rhs) { ... }, however you strongly consider whether this is a good idea. Is it unequivocally clear to the reader of your code what it means to compare a player and an integer? –  Oliver Charlesworth Jun 15 '13 at 17:49
1  
@Rome_Leader Because it is a member function and operators that are member to a class take only one argument, the right hand side. –  0x499602D2 Jun 15 '13 at 17:55
1  
@Rome_Leader Yes, you should do that. But remember that the extra const after the parameter list doesn't belong there because it is not a member function. –  0x499602D2 Jun 15 '13 at 17:57

2 Answers 2

up vote 4 down vote accepted

There are two ways to overload an equality operator: declare it as a member, taking one argument (rhs); or declare it as a global, taking two arguments (lhs and rhs). Since your lhs is a Player, and your rhs is an integer, here are the two ways to define it:

// declared inside Player class as a member
bool operator == (int rhs) const
{
    return mInitiative == rhs;
}

// can also be declared inside Player class, but is not a member due to friend keyword
friend bool operator == (Player const& lhs, int rhs)
{
    return lhs.mInitiative == rhs;
}

That is leaving aside the style considerations of overloading operators in such a way.

share|improve this answer
    
Note that in both cases, it's wise to declare a further overload for symmetry (otherwise you won't be able to do 0 == player). –  Oliver Charlesworth Jun 15 '13 at 17:56
    
That is true, although you will only be able to do that with the second declaration, since member operator will always treat the argument as rhs. Besides, that is mostly useful if your class is intended to behave like a numeric type; in other cases, perhaps overloading an operator is not a good idea at all. –  riv Jun 15 '13 at 17:57

When trying to overload equality operator (i.e. ==), you always need to think about whether the target instances are really the same.

In your case, I think people might be confused when reading the following code if you provide the Player to integer comparison. Since it looks like checking whether a pointer is null or not:

if(playerVec[i] == 0)

Rather than overloading == operator of Player to compare with integer, I would suggest providing a get() function, which allows you to compare Player with integer more clearly. For example:

if (playerVec[i].getPlayerID() == 0)

If you will use some stl function to manage your Player vector (eg. sorting), then you can overload == or > operator for two Player instances.

share|improve this answer
    
+1 for suggesting a distinction between a player ID and the whole player. –  Thomas Matthews Jun 15 '13 at 18:03
    
I've done what I wanted to do, but your suggestion is interesting and may improve readability, so I'll look into making such a distinction. Thanks! –  Rome_Leader Jun 15 '13 at 18:09
    
@Rome_Leader: You're definitely welcome. I have edited my answer, and I hope it will make things more clearer. –  keelar Jun 15 '13 at 18:12

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