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I've encountered a weird situation where the compiler chooses to cast a structure even though there's a perfectly good constructor that receives the structure type.
A small example:

struct A
{
    operator int() {return 1;}
};

struct B
{
    B(A& a) { OutputDebugStringA("A constructor\n"); }
    B(int i) { OutputDebugStringA("int constructor\n"); }
};
A test () { A a; return a;};

int _tmain(int argc, _TCHAR* argv[])
{
    B b(test());
   return 0;
}

Explanation: A has a cast operator to int. B has 2 overloaded constructors, one that accepts A reference, and one that accepts int.
Function test() returns an A object.

For some reason, the compiler decides to cast the return value to an int, and use the constructor that accepts an int. int constructor

Can anyone explain why this happens ? I have a few theories, but I would like an answer that is based on something real (maybe a quote from the standard).

Note:
I can get the expected result (constructor that accepts the type) by changing the constructor signature to: B(const A& a) or B(A&& a)

share|improve this question
up vote 5 down vote accepted

Your constructor takes a non-const reference to A, which cannot bind to a temporary. You pass it a temporary here:

 B b(test());
 //  ^^^^^^ temporary A

so the only valid constructor is the one taking an int. You can change this behaviour by making the relevant constructor take a const reference:

B(const A& a) { OutputDebugStringA("A constructor\n"); }
//^^^^^

and similarly for B(A&& a); in C++11.

Alternatively, keeping the original constructor signature and passing an lvalue also results in the constructor call:

A a;
B b(a);
share|improve this answer
    
Yeap, I thought it might have to do with the fact that it's an rvalue. – Yochai Timmer Jul 24 '13 at 19:36
    
B(A&& a) works as well in C++11, as does template<typename T> T& unmove( T&& t ) { return t; } for extra evil. – Yakk Jul 24 '13 at 19:57

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