8
struct Bar
{    
   Bar(std::string&& val)
    : m_Val(std::move(val)) {} // A

  Bar& operator=(Bar&& _other) { m_Val = std::move(_other.m_Val); }
  std::string m_Val;
}

struct Foo
{
  void Func1(Bar&& param)
  {
     Func2(std::move(param)) // B
  }

  void Func2(Bar&& param)
  {
     m_Bar = std::move(param); // C
  }

  Bar m_Bar;
};

void main()
{
   Foo f;
   std::string s = "some str";
   Bar b(std::move(s));
   f.Func1(std::move(b));
}

Give that you're calling move in main() to invoke the rvalue reference methods, is it necessary in lines A & B & C to repeat an additional call to move()? You already have the rvalue reference, so is it doing anything different in those lines with vs without?

I understand in Bar's operator= it's necessary because you're technically moving the m_Val rather than _other itself correct?

Note: Originally, I was incorrectly calling rvalue references as rvalue parameters. My apologies. I've corrected that to make the question easier to find and make clearer.

  • 1
    I know you're probably doing this to make your point clear but note in your current example you don't need to write Bar's move constructor at all. – Sombrero Chicken Feb 28 at 15:54
  • 7
    There's no such thing as "rvalue parameter". A named reference makes an lvalue expression (yes, even a rvalue reference is an lvalue). So, in order to make it into an xvalue again you need to apply std::move again. – AnT Feb 28 at 15:54
  • @AnT I'm still confused about what your profile picture is supposed to be. – Sombrero Chicken Feb 28 at 15:58
  • @SombreroChicken - why is that? If I make the string in main, I don't need to move it? The whole thing, including String is contrived yeah, but my understanding is if I want to avoid copying it, I need to move it. – user99999991 Feb 28 at 15:58
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    @user99999991 SombreroChicken means that for this struct in your example compiler will generate proper move ctor and move assignment operator implicitly so it is not necessary to define them manually here. – Slava Feb 28 at 16:03
12

Give that you're calling move in main() to invoke the rvalue parameter methods, is it necessary in lines A & B & C to repeat an additional call to move()?

Yes. What you call an rvalue parameter is actually an rvalue reference. Just like a lvalue reference, it is an lvalue in the scope that it is being used. That means you need to use move to cast it back into an rvalue so that it gets moved, instead of copied. Remember, if the object has a name, it is an lvalue.

  • 1
    You'd improve this if you illustrated why. Basically, because the parameter could be used more than once in the body of the function. – Yakk - Adam Nevraumont Feb 28 at 18:48
  • 1
    I did like you to make bold this; "..if the object has a name, it is an lvalue" ;. Because that's the key thing everyone should remember.. – WhiZTiM Mar 2 at 9:47
  • @WhiZTiM And done. – NathanOliver Mar 2 at 15:31

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