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Is it valid to store the return value of an object in a reference?

class A { ... };
A myFunction()
{
    A myObject;
    return myObject;
} //myObject goes out of scope here

void mySecondFunction()
{
    A& mySecondObject = myFunction();
}

Is it possible to do this in order to avoid copying myObject to mySecondObject? myObject is not needed anymore and should be exactly the same as mySecondObject so it would in theory be faster just to pass ownership of the object from one object to another. (This is also possible using boost shared pointer but that has the overhead of the shared pointer.)

Thanks in advance.

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3 Answers 3

up vote 17 down vote accepted

It is not allowed to bind the temporary to a non-const reference, but if you make your reference const you will extend the lifetime of the temporary to the reference, see this Danny Kalev post about it.

In short:

const A& mySecondObject = myFunction();
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Do you happen to know why this is not allowed? –  Mehrdad Feb 17 '12 at 4:11
    
I'm not sure but I'm guessing that the reason is that allowing a non-const reference would mean that the compiler would be required to determine when the reference is re-assigned. I reckon that this is normally considered part of dynamic scope analysis and not used in the C++ standard. In the const case, on the other hand, only the static lifetime of the reference needs to be determined. This analysis is probably already required in other cases and was therefore deemed acceptable. –  Alexander Torstling Aug 5 '13 at 14:35
    
One can also note that this is a pretty simplistic pointer tracking feature, and that one could imagine a more advanced system. But in general I believe that C++ wants to avoid that problem and delegate it to the programmer instead. That's what smart pointers are for. –  Alexander Torstling Aug 5 '13 at 14:37

You might be interested in the return-by-value optimization that many compilers make to avoid calling the copy constructor.

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It's possible with a const reference.

myFunction returns by value, so that return value is a temporary object. You can bind a temporary to a const reference, and the lifetime of the temporary is extended to the lifetime of the reference. You can't bind a temporary to a non-const reference (unfortunately).

The return value of myFunction might be a copy of myObject. On the plus side, copy constructor elision (aka the "named return value optimisation" in this case) permits the compiler to construct myObject directly into the temporary which is the return value of myFunction, presumably located somewhere on the stack of the calling code. If it does that, then when myObject goes out of scope the object is not actually destroyed. The optimisation is commonly implemented - for example GCC (usually?) does it even without any optimisation flags.

Copy ctor elision also permits the compiler to avoid all copying if you did:

A mySecondObject = myFunction();

This requires the application of both legal types of copy ctor elision: (1) returning a named value from a function, and (2) initializing an object from a temporary.

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