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While answering this question I came across an interesting difference in the overload resolution of rvalue to reference between member and non-member operators.

Given two non-member operators, one passing the left parameter as const and one as non-const, both GCC 4.4.3 and MSVC2010 choose the const version when called with an rvalue.

However, given two member operators, one const and one non-const, both compilers choose the non-const version.

I assume that both compilers are complying with the standard on this, so I am curious as to why there is this discrepancy between const overload resolution between members and non-members. Please enlighten me :)

Here's some code to illustrate the difference:

#include <iostream>

class C {
public:
    C(int i) { }

    /*
    C operator<<(C const &rhs) {
        std::cout << "member non-const" << std::endl;
        return *this;
    }
    C operator<<(C const &rhs) const {
        std::cout << "member const" << std::endl;
        return *this;
    }
    //*/
};

C operator<<(C &lhs, C const &rhs) {
    std::cout << "non-member non-const" << std::endl;
    return lhs;
}
C operator<<(C const &lhs, C const &rhs) {
    std::cout << "non-member const" << std::endl;
    return lhs;
}

int main() {
    // Will print:
    // "non-member const" when member operators are commented out
    // "member non-const" when members are uncommented
    C(5) << 6;
}
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1 Answer 1

up vote 2 down vote accepted

Rvalues cannot bind to references-to-nonconst, so only the reference-to-const overload of the free function is viable: operator<<(C(5), 6);.

This does not apply to the member-operator, which is simply C(5).operator<<(6), and the C-object isn't a function argument. You would have to say static_cast<const C &>(C(5)) << 6 to get the const version there, since it is the constness of this that distinguishes the two member operator overloads.

In the presence of both member and free-function operators, the member function is preferred, so putting all this together explains the observed behaviour.

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Note that a special rule in the standard allows non-const member functions to be called on temporaries of the class type. In C++11, this can easily be disabled with a & ref-qualifier. –  Xeo Jan 3 '12 at 13:24
    
Nice, quick answer, thanks! I'm so used to using non-member operators I forgot that member operators use this (i.e., not a reference) as their lhs. –  zennehoy Jan 3 '12 at 13:28
    
@Xeo: Thanks - indeed, C++11 has ref-qualifiers for this, though I don't know of any compiler that implements them at this point. –  Kerrek SB Jan 3 '12 at 14:57
1  
@Kerrek: Clang 3.1 atleast does. :) Also, see this answer of mine. There really are no "ref-qualifiers for *this, it's just a marketing statement that makes it way easier to understand. –  Xeo Jan 3 '12 at 15:02
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