5

I recently started using c++ and I chose to learn c++11 features. But how c++ codes run is sometimes not so tangible.

below is my code. At the part with decltype(std::move(sample)) sample2 = std::move(sample); I'm not sure why this line doesn't call move constructor. Could you explain why?

#include <iostream>

class AAA
{
   public:
      AAA() { std::cout << "default constructor" << std::endl; }
      AAA(const AAA& cs) { std::cout << "copy constructor" << std::endl; }
      AAA(AAA&& cs) { std::cout << "move constructor" << std::endl; }
      ~AAA() { std::cout << "destructor" << std::endl; }
};

int main(int argc, char* args[])
{
    AAA sample;
// ((right here))
    decltype(std::move(sample)) sample2 = std::move(sample); 
    return 0;
}

It is compiled on [ ubuntu 16.04 LTS ] with [ gcc 5.4.0 ]

original code : https://ide.geeksforgeeks.org/tALvLuSNbN

  • @user202729 pretty sure the = std::move(sample) has nothing to do with the decltype – Fureeish Jul 16 '18 at 15:17
  • 7
    That line is AAA&& sample2 = std::move(sample); which isn't supposed to cause a construction any more than AAA& sample2 = sample;. – François Andrieux Jul 16 '18 at 15:19
  • 4
    @FrançoisAndrieux that should be an answer – Fureeish Jul 16 '18 at 15:21
  • @user202729 thanks for your advice – Kiseong Yoo Jul 16 '18 at 15:22
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    @KiseongYoo You should be aware of an exception in the language which allows temporaries to be bound to const T &, which in some cases can extend the lifetime of the temporary. See this question. – François Andrieux Jul 16 '18 at 15:41
6

The function std::move<T> returns a T &&, so for std::move(sample) it returns AAA &&. This is an rvalue reference and behave a lot like an lvalue reference (a type like AAA & would be an lvalue reference) in that they both are alias to objects that already exist.

It's important to understand that std::move does not in itself cause anything to be moved. It simply returns an rvalue reference to the argument it's given. For example std::move(foo); alone does absolutely nothing. It's only when the result is used to initialize or assign to an object that it becomes useful.

For example auto bar = std::move(foo); will return an rvalue reference to foo and use that reference to call bar's constructor.

To answer the question, since std::move(sample) returns a AAA &&, the line in question is the same as AAA && sample2 = std::move(sample);. The behavior is practically the same as AAA & sample2 = sample;. In both cases, you are initializing a reference to an existing object and no new object needs to be constructed.

If your goal is to move sample into a new AAA, the correct line would be auto sample2 = std::move(sample); like you do with sample3. Though beware that the line sample3 is moving from an already moved-from sample.

  • Thank you very much for your elaborate answer. Now I understand what's happening under the hood. Thanks a lot. – Kiseong Yoo Jul 16 '18 at 16:23
6

Your snippet expands to

AAA&& sample2 = std::move(sample);

which binds an rvalue (the result of std::move(sample)) to an rvalue reference (sample2). No new object is constructed, and hence no such constructor is called.

  • 1
    Do note that it's UB when the expression doesn't point to some object with long lifetime. – user202729 Jul 16 '18 at 15:23
  • Thank you very much for your answer :) The line does "bind rvalue to a rvalue reference." I see. – Kiseong Yoo Jul 16 '18 at 16:13

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