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I'm new to move constructor and quite confused with VS2010 behavior. I design a move constructor (of class A) which in my knowledge is like this:

A(A&& input) {some code}

When I use list's emplace and put an instance of class A:

mylist.emplace(a);

My move constructor is not called, and a non-const copy constructor is called instead:

A(A& input) {the same code as move constructor}

On the other hand when I do this:

mylist.emplace(A(2));

My move constructor is called like it supposed to. So, my question is:

  1. Why is list's emplace call my non-const copy constructor instead of my move constructor?
  2. Is the non-const copy constructor is actually an alternative way to define a move constructor?
  3. Is this behavior is correct (for a c++0x compiler) or it just VS2010's behavior?

Thanks a bunch in advance.

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If your copy constructor has the same behavior as your move constructor, isn't the class seriously broken? – UncleBens Dec 15 '10 at 21:37
    
@UncleBens: Not necessarily, both may do a copy. – ybungalobill Dec 15 '10 at 21:38
    
@ybungalobill: In such a case, why define (rather than perhaps disable) the move constructor? And if the copy constructor makes a copy, why should it take a non-const reference? – UncleBens Dec 15 '10 at 22:00
    
@UncleBens: because the guy studies C++0x here. Otherwise why does the copy constructor take a non-const reference? – ybungalobill Dec 15 '10 at 22:01
    
Actually I add the non-const copy constructor for testing only, after my program crash. It's not part of the design XD – Chlind Dec 15 '10 at 22:08
up vote 2 down vote accepted
mylist.emplace(a);

Here a is an l-value, hence it's copied rather than moved. You need to move it explicitely:

mylist.emplace(std::move(a));

Yes, the behavior is correct.

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