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I am trying to overload the operator==, but the compiler is throwing the following error:

‘bool Rationalnumber::operator==(Rationalnumber, Rationalnumber)’ must take exactly one argument

My short piece of code is as follows:

bool Rationalnumber::operator==(Rationalnumber l, Rationalnumber r) {
  return l.numerator() * r.denominator() == l.denominator() * r.numerator();
}

Declaration:

bool operator==( Rationalnumber l, Rationalnumber r );

Does anyone have any ideas why it's throwing the error?

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1  
This might help: stackoverflow.com/questions/4421706/operator-overloading. Since yours is a member, though, it already has the left side coming in implicitly through the hidden this argument. –  chris Jun 27 '12 at 14:56
1  
You must define the member funtion with one argument or the file scope function with two arguments. –  harper Jun 27 '12 at 14:56
    
Is it a member function or a free standing function? –  Anon Mail Jun 27 '12 at 14:57
1  
I think the RationalNumber::operator== part pretty clearly explains which one it is. –  chris Jun 27 '12 at 14:59
1  
@juanchopanza: A non-member is a better option if the type supports implicit conversion. A member would allow num == 0, but not 0 == num while a non-member would allow both. –  Mike Seymour Jun 27 '12 at 15:16

4 Answers 4

If operator== is a non static data member, is should take only one parameter, as the comparison will be to the implicit this parameter:

class Foo {
  bool operator==(const Foo& rhs) const { return true;}
};

If you want to use a free operator (i.e. not a member of a class), then you can specify two arguments:

class Bar { };
bool operator==(const Bar& lhs, const Bar& rhs) { return true;}
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You should remove your operator== from a RationalNumber to somewhere else. As it is declared inside a class it is considered that 'this' is the first argument. From semantics it is seen that you offer 3 arguments to a compiler.

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As a member operator overload it should only take one argument, the other being this.

class Foo
{
    int a;

public:
    bool operator==(const Foo & foo);
};

//...

bool Foo::operator==(const Foo & foo)
{
    return a == foo.a;
}
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friend bool operator==( Rationalnumber l, Rationalnumber r );

when you declare it as non-member function, it can take two arguments. when you declare it as member function, it can only take one argument.

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