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I found the URL below that says that

 If an operator can be used as either a unary or a binary 
 operator (&, *, +, and -), you can overload each use separately.

I am working with g++ in Linux and I tried the following and it didn't compile.

int operator+ (const int a,const int b){
   std::cout << "MINE"<<std::endl;
   return 0;
}

int main(){
   char c='c';
   std::cout << c+2 << std::endl;
}

The error says

error: ‘int operator+(int, int)’ must have an argument 
of class or enumerated type

I was willing to play and see in action the Integer Promotion Rules.

Am I doing something wrong or that URL is valid only for MS or I misunderstood the promotion rule?

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2 Answers 2

up vote 6 down vote accepted

The error message indirectly tells you what you need to know -- you are not permitted to overload operators (binary or unary) that act only on built-in types.

For a user-defined type T, you can separately overload binary + (for example by T operator+(T lhs, T rhs)) and unary + (for example by T operator+(T t)). You could also define operator+(T lhs, int rhs), but you can't overload addition of two integers.

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Hi Steve! Thanks for your response ( I thank with a bit of delay )! Eh!Eh! These are the kind of things that makes me say 'back-to-basic'!!! –  Abruzzo Forte e Gentile Jan 17 '13 at 15:50
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Example is incorrect since n3337 13.5/6

An operator function shall either be a non-static member function or be a non-member function and have at least one parameter whose type is a class, a reference to a class, an enumeration, or a reference to an enumeration.

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