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I am trying to test RVO and rvalue reference. Here is the code:

#include <iostream>

using namespace std;

class B{
public:
    int i;

    B(){
        i = 0;
        cout << "B() " << i << endl;
    }

    B(const B& b){
        i = 1;
        cout << "B(const B&) " << i << endl;
    }

    B(const B&& b){//if remove this constructor, then call B(const B& b)
        i = 2;
        cout << "B(const B&&) " << i << endl;
    }

    ~B(){
        cout << "~B() " << i << endl;
    }
};

B f(){
    B b;
    return b;
}

int main(){

    B b = f();

    return 0;
}

The output is:

B() 0
B(const B&&) 2
~B() 0
~B() 2

Environment: WIN8, Visual Studio 2012 Express

This means that the move constructor: B(const B&&) is called. Two issues raised:

  • Why RVO is not applied here?
  • Why NOT call the copy constructor: B(const B&)?
  • If I remove the B(const B&&), then B(const B&) is called. Weird output:

    B() 0
    B(const B&) 1
    ~B() 0
    ~B() 1

Here are references I found:


EDIT:
The move constructor should be B(B&&). The thing is why move constructor is called NOT the copy constructor.

share|improve this question
3  
Move constuctors take a non-const rvalue reference. –  Vaughn Cato Jun 25 '13 at 2:41
    
Are you compiling a debug build (it looks like it)? Try the release build. –  Jesse Good Jun 25 '13 at 2:43
    
@VaughnCato From the c++ standard 12.8/3: A non-template constructor for class X is a move constructor if its first parameter is of type X&&, const X&&, volatile X&&, or const volatile X&&, and either there are no other parameters or else all other parameters have default arguments –  Zachary Jun 25 '13 at 2:45
    
@Zack right, but what's the point in taking a const rvalue reference? You'd end up doing the exact same thing as in the copy constructor. –  mfontanini Jun 25 '13 at 2:47
    
@mfontanini Even if I remove the const from the two constructors, the result is the same. I think const is NOT the cause. –  Zachary Jun 25 '13 at 2:50
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1 Answer

up vote 5 down vote accepted

Why RVO is not applied here?

It's not simply performing optimizations. g++ does use RVO here when using -O2. You should enable optimizations on your compiler to test this out. However, note that even if RVO might be applied by some compilers, it's not mandatory, so you might see different results using different compilers.

Why NOT call the move constructor: B(const B&)?

That is a copy constructor. It's calling the move constructor which is a better match here.

If I remove the B(const B&&), then B(const B&) is called. Weird!

No, it's not weird. The move constructor will not be implicitly defined by the compiler if you define a copy constructor. Therefore, the compiler is picking the copy constructor, since no move constructor is available.

Note that your move constructor should take a non const rvalue reference:

B(B&& b) {
    // ...
}

Otherwise, you'd just end up doing the same as in the copy constructor.

share|improve this answer
    
I am using Visual Studio 2012 NOT g++. Why a move constructor is better matched? –  Zachary Jun 25 '13 at 2:48
2  
@Zack my point was: enable optimizations. –  mfontanini Jun 25 '13 at 2:51
    
Some posts says even the optimization is disabled, the Visual Studio apply RVO as well. –  Zachary Jun 25 '13 at 2:52
1  
@Zack well it looks like it's not doing so. Did you try using optimizations? –  mfontanini Jun 25 '13 at 2:57
3  
@Zack: It even says so in the docs: /O1 and /O2 also enable the Named Return Value optimization. –  Jesse Good Jun 25 '13 at 3:01
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