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Does Visual C++ not perform return-value optimization?

#include <cstdio>
struct Foo { ~Foo() { printf("Destructing...\n"); } };
Foo foo() { return Foo(); }
int main() { foo(); }

I compile and run it:

cl /O2 test.cpp
test.exe

And it prints:

Destructing...
Destructing...

Why is it not performing RVO?

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4  
You might want to ask Microsoft, rather than StackOverflow... –  David Rodríguez - dribeas Jul 30 '12 at 22:07
1  
@DavidRodríguez-dribeas: Well Microsoft's documentation says they can perform named RVO (which is much more difficult), but I was neither able to get NRVO working, nor simple RVO. So I'm feeling I'm doing something wrong here, since if they didn't support it they wouldn't have mentioned it (hopefully...) –  Mehrdad Jul 30 '12 at 22:08
    
@Mehrdad: Do you have a link to the doc from Microsoft? –  Chris Dargis Jul 30 '12 at 22:11
1  
I retracted my comment because I had an alternative hypothesis that turned out to be incorrect (I thought a move construction might be occurring instead of RVO, but that is not the case). I would recommend opening a bug on Microsoft Connect, if the issue is important to you. Since the issue only appears to affect class types that have no nontrivial constructors, I'm not sure that it's a huge problem (and since RVO is an optional optimization, it's not a conformance issue), but it's still worth reporting. –  James McNellis Jul 30 '12 at 22:30
1  
@JamesMcNellis: Oh awesome, thanks! connect.microsoft.com/VisualStudio/feedback/details/756190/… –  Mehrdad Jul 30 '12 at 22:39

1 Answer 1

up vote 13 down vote accepted

When I test with this:

#include <iostream>
struct Foo { 
    Foo(Foo const &r) { std::cout << "Copying...\n"; }
    ~Foo() { std::cout << "Destructing...\n"; }
    Foo() {}
};

Foo foo() { return Foo(); }

int main() { Foo f = foo(); }

...the output I get is:

Destructing...

No invocation of the copy constructor, and only one of the destructor.

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1  
Hmmm... would you mind explaining what causes the difference between this code and my code? –  Mehrdad Jul 30 '12 at 22:20
5  
@Mehrdad: Somehow, the compiler-generated default constructor seems to inhibit [N]RVO. As soon as you add a default ctor of your own, you get working [N]RVO (e.g., if you add and call: Foo bar() { Foo f; return f; }, you just get one more destructor invcation, so NRVO works as well). –  Jerry Coffin Jul 30 '12 at 22:26
4  
The constructor does not necessarily need to be user-declared: causing Foo to have a nontrivial default or copy constructor will also "reenable" RVO (e.g., give it a data member of type std::string). –  James McNellis Jul 30 '12 at 22:28
1  
@JamesMcNellis: :O Where did you learn all this?! I've never seen this information before... –  Mehrdad Jul 30 '12 at 22:29
6  
Bottom line: the compiler only bothers with eliminating copies when there's at least some possibility that copying is expensive enough to be worth eliminating. –  Jerry Coffin Jul 30 '12 at 22:31

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