Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I am new to c++11 and trying to understand to meaning of std::move and unique_ptr and wrote the following code, which I use std::move on a unique_ptr in two different ways:

void unique_ptr_plain_move() {
  unique_ptr<int> intptr(new int(10));
  unique_ptr<int> intptr2;

  printf("*intptr = %d\n", *intptr);
  intptr2 = std::move(intptr);
  printf("*intptr2 = %d\n", *intptr2);
  // as expected, crash here as we have already moved intptr's ownership.
  printf("*intptr = %d\n", *intptr);
}

/////////////////////////////////////////////

void function_call_move(unique_ptr<int>&& intptr) {
  printf("[func] *intptr = %d\n", *intptr);
}

void unique_ptr_function_call_move() {
  unique_ptr<int> intptr(new int(10));

  printf("*intptr = %d\n", *intptr);
  function_call_move(std::move(intptr));
  // this does not crash, intptr still has the ownership of its pointed instance ....
  printf("*intptr = %d\n", *intptr);
}

In unique_ptr_plain_move(), intptr2 takes the ownership of intptr after std::move and therefore we can no longer use intptr. However, in unique_ptr_function_call_move(), when using std::move in a function call, intptr still have its ownership of its pointed instance. Can I know what exactly happened when we pass a std::move(unique_ptr) to a function? Thank you.

share|improve this question
    
A call to std::move doesn't by itself move anything. It just allows other functions that want to steal contents of the object to do so. function_call_move is not such a function. –  Igor Tandetnik Feb 3 '14 at 21:24
4  
std::move creates a RValue Reference from unique_ptr. function_call_move takes a RValue Reference, but until a RValue Reference assignment operator or constructor is used to steal the unique_ptr's information it doesn't get harmed. Essentially just because you can mug it and steal it's info doesn't mean you have to. –  Dan Feb 3 '14 at 21:25
    
@Dan: thank you very much for your comment. So it is the = operation does the ownership transfer, not the std::move, am I right at this part? –  keelar Feb 3 '14 at 21:28
2  
See Why is std::move named std::move? –  dyp Feb 3 '14 at 21:34

1 Answer 1

up vote 4 down vote accepted

The key concept here is that std::move by itself won't do any moving. You can think of it as marking the object as a object that can be moved from.

The signature for function_call_move is

void function_call_move( unique_ptr<int>&& ptr );

Which means it can only receive objects that could be moved from, formally known as rvalues, and bind that to a reference. The act of associating an rvalue to a rvalue reference don't invalidate the state of the original object either.

So, unless function_call_move actually moves ptr to another std::unique_ptrinside it, your call to function_call_move(std::move(intptr)); won't invalidate intptr and your usage will be perfectly fine.

share|improve this answer
1  
I'm sorry that I didn't provide the signature for function_call_move at the very beginning, but I have provided right after I observed that. Thank you very much for your detailed answer! –  keelar Feb 3 '14 at 21:29
    
You are welcome! –  Tiago Gomes Feb 3 '14 at 21:30

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.