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When you have a derived object with a move constructor, and the base object also has move semantics, what is the proper way to call the base object move constructor from the derived object move constructor?

I tried the most obvious thing first:

 Derived(Derived&& rval) : Base(rval)
 { }

However, this seems to end up calling the Base object's copy constructor. Then I tried explicitly using std::move here, like this:

 Derived(Derived&& rval) : Base(std::move(rval))
 { }

This worked, but I'm confused why it's necessary. I thought std::move merely returns an rvalue reference. But since in this example rval is already an rvalue reference, the call to std::move should be superfluous. But if I don't use std::move here, it just calls the copy constructor. So why is the call to std::move necessary?

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2 Answers 2

up vote 15 down vote accepted

rval is not a Rvalue. It is an Lvalue inside the body of the move copy constructor. That's why we have to explicitly invoke std::move.

Refer this. The important note is

Note above that the argument x is treated as an lvalue internal to the move functions, even though it is declared as an rvalue reference parameter. That's why it is necessary to say move(x) instead of just x when passing down to the base class. This is a key safety feature of move semantics designed to prevent accidently moving twice from some named variable. All moves occur only from rvalues, or with an explicit cast to rvalue such as using std::move. If you have a name for the variable, it is an lvalue.

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You really should use std::forward(obj) rather than std::move(obj). Forward will return the proper rvalue or lvalue based on the what obj is whereas move will turn an lvalue into an rvalue.

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1  
In this context you always want to cast to an rvalue. –  Howard Hinnant Feb 1 '11 at 20:02
2  
So the real intent is forward exactly what was passed in not to change what was passed in. Forward<type>() does exactly that. It would also get you into the practice of using that for calling all base functions no matter what is passed in. Getting in the habit of calling move() might yield mistakes that could be difficult to trace. Also this comes in handy if you wanted to use templates on a function that can act on both an rvalue and a an lvalue. If this fucntion was mistakenly passed in an object that is an lvalue would want it to continue execution? Just playing devils advocate a little bit –  jbreiding Feb 2 '11 at 17:31
1  
@jbreiding I dont understand any of this... mind elaborating on your explanation with some code samples on when std::move will fail, why std::forward is preferred and when to use which? –  aCuria Mar 10 '12 at 16:25

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