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Suppose I have this class:

class Int{
    private:
        int x;
    public:
        Int(int i) : x(i) {}
};

Can I build a prefix + operator to write expression such x = + a b?

I tried to overload operator+ inside the class but the compiler complain that operator+ must be unary or binary and not ternary.

Is there a way to do such thing?

share|improve this question
    
What do you want = + to mean? As written, this is algebraic nonsense. – John Dibling May 3 '12 at 17:13
2  
No, there's no way to start writing Lisp in C++ (even though we may want to). (Coincidentally, x = + a will work but not x = + a b.) – Seth Carnegie May 3 '12 at 17:13
    
@JohnDibling: He's describing Prefix Notation. – Robert Harvey May 3 '12 at 17:14
1  
@RobertHarvey: Ah, should have known. I have an HP50g calculator sitting 3 inches from me. :) – John Dibling May 3 '12 at 17:15
    
@JohnDibling: Being pedantic, HP calculators are postfix notation (a b +), versus prefix notation (+ a b). – Thomas Matthews May 3 '12 at 19:34
up vote 3 down vote accepted

You can't change the way that the '+' character is interpreted by the compiler - it has special syntactic significance. If you're willing to give up the + symbol, though, you could create a class called plus and overload operator() to take its following arguments.

Essentially, you're creating a dsl using the plus class as a proxy for the + operator.

share|improve this answer
    
Oh, maybe I got. So it is impossible because of the parser? If you write + x x there is not any syntatic rule that match. Is it (more or less) right? – Aslan986 May 3 '12 at 17:25
1  
Yes, that's it. – Matt May 3 '12 at 17:29

No you can't change the basic syntax of the expression.

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In general it is not possible to fiddle with the basic syntax of C++, because it is hardwired into the grammar. But maybe

template<typename A, typename B>
auto plus(const A& a, const B& b) -> decltype(a + b) { return a + b; }
a = plus(a, b);

is a suitable replacement? Building this for all arithmetic operators is trivial.

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Just for fun:

#include <iostream>

struct Expr {
  int value;
  enum oper { plus = '+', minus = '-', times = '*', div = '/', nop = 0 } op;
  Expr(int value, oper op) : value(value), op(op) { }
  Expr(int value) : value(value), op(nop) {}
  Expr operator+() { return Expr(value, plus); }
  Expr operator-() { return Expr(value, minus); }
  Expr operator*() { return Expr(value, times); }
  Expr operator,(const Expr& rhs) {
    Expr result(value, op);
    switch(op) {
      case '+': result.value += rhs.value; break;
      case '-': result.value -= rhs.value; break;
      case '*': result.value *= rhs.value; break;
      case '/': result.value /= rhs.value; break;
    }
    return result;
  }
};

int main () {
  Expr x(0), a(1), b(2);
  x = ( + a , b );
  std::cout << x.value << "\n";
}
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