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This example was taken from §8.5.3/5 (first bullet point) in the C++11 Standard:

struct A { };
struct B : A { operator int&(); } b;
int& ri = B();

If it does, is there any way to access the temporary B(), in the code below?

#include <iostream>

struct A { };
struct B : A { int i; B(): i(10) {} operator int&() { return i; } } b;

int main()
{
    int& ri = B();
    std::cout << ri << '\n';
}
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As far as I know, you can't; I don't know if the standard specifies anything, though. –  kirbyfan64sos Jun 21 at 19:08
2  
it's not extended. (How should the compiler know, in the general case anyway, that operator int& returns part of its object instead of something unrelated? –  Deduplicator Jun 21 at 19:11
    
@chris The Standard says this is valid: int& ri = B(); and it seems to me the object B() is kept on the stack, as ri is a reference to its member i. –  Wake up Brazil Jun 21 at 19:16
    
@WakeupBrazil, Shoot, I missed the operator int &, sorry. –  chris Jun 21 at 19:21

1 Answer 1

up vote 3 down vote accepted

No, the destructor for the temporary B object runs at the end of the full expression, as usual. It is not bound to any reference.

In your second example, ri is a reference to an int object whose lifetime has ended.

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"ri is a reference to an int object whose lifetime has ended". How come I can print ri in the code. ri definitly is not a dangling reference. –  Wake up Brazil Jun 21 at 19:22
1  
@WakeupBrazil, Printing a dangling reference is undefined behaviour. It can "work" or do anything else. But it can't work. –  chris Jun 21 at 19:23
    
@WakeupBrazil You can print ri because of stackoverflow.com/a/6445794/273767 –  Cubbi Jun 21 at 19:23
    
@chris But the example in the Standard doesn't say anything about a dangling reference or UB in this case. –  Wake up Brazil Jun 21 at 19:24
    
@WakeupBrazil, It doesn't need to in order for either to be true. The standard's example doesn't have any UB. The reference isn't being used, and even if it was, the implementation of operator int & could return a reference to a global variable or something. –  chris Jun 21 at 19:25

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