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Are there any special rules that apply to the unary & operator?

For example, the code:

#include <iostream>
struct X
{
    X() {}
    void* operator &() { return NULL; }
};
int main()
{
    const X x;
    std::cout << &x << std::endl;
    X y;
    std::cout << &y;
}

produces the output

0xbfbccb33
0

I knew this would compile and run like this because of a discussion I've had here before, but hadn't I known this, I would have expected this to fail to compile, because operator & is not declared const.

So it appears that the compiler generates operator &() const regardless of whether operator &() is overloaded or not. Fine, this makes sense, especially with the sample and output.

The question is where is this behavior detailed in the standard?

I'm not looking for answers that re-iterate what I already stated in the question, so please don't explain how my overloaded operator can't be called on a const object, because I already know that.

share|improve this question
4  
This is C++. I'm sure there's something of a hidden detail, special rule, edge case or something in the standard that's not well-known but Mr Stroustrup found it useful... –  user529758 Oct 22 '12 at 8:07
    
@H2CO3 and that's what I'm looking for :) –  Luchian Grigore Oct 22 '12 at 8:08
    
Sry Luchian. didnt' see the suffix there. It must be covered in both deduction and declaration. I'll go hunting as well. Least I can do considering your the one that pointed out the difference to me =P –  WhozCraig Oct 22 '12 at 8:14
    
@WhozCraig since you weren't gonna ask a question, I did. :P –  Luchian Grigore Oct 22 '12 at 8:15
1  
@J99: there's a conflict there. The author of a class generally doesn't know whether the user of the class "really wants the address of their object", or "wants the logical address of the object". So, either there's a lot of broken code out there using & when it should be using std::addressof / boost::addressof, or else it's wrong to overload operator& at all. Formally it's the former (code relies on & taking the address should document that it must), practically it's the latter (people who pass types with overloaded operator& into that code violate the implicit interface). –  Steve Jessop Oct 22 '12 at 8:28

1 Answer 1

up vote 14 down vote accepted

n3337 13.3.1.2/9

If the operator is the operator ,, the unary operator &, or the operator ->, and there are no viable functions, then the operator is assumed to be the built-in operator and interpreted according to Clause 5.

share|improve this answer
    
I totally concur with this answer. The viability is what comes into question, and I believe that is bound by the implicit object argument to the operator, and is covered a little later in 13.3.1.(4-5). Totally the right answer, sir. +1! –  WhozCraig Oct 22 '12 at 8:32
    
Yup, that's it. Thanks. –  Luchian Grigore Oct 22 '12 at 8:52

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