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I'm writing a network library and use move semantics heavily to handle ownership for file descriptors. One of my class wishes to receive file descriptor wrappers of other kinds and take ownership, so it's something like

struct OwnershipReceiver
{
  template <typename T>
  void receive_ownership(T&& t)
  {
     // taking file descriptor of t, and clear t
  }
};

It has to deal multiple unrelated types so receive_ownership has to be a template, and to be safe, I wish it ONLY binds to rvalue references, so that user has to explicitly state std::move when passing an lvalue.

receive_ownership(std::move(some_lvalue));

But the problem is: C++ template deduction allows an lvalue to be passed in without extra effort. And I actually shot myself on the foot once by accidentally passing an lvalue to receive_ownership and use that lvalue(cleared) later.

So here is the question: how to make a template ONLY bind to rvalue reference?

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2 Answers

up vote 6 down vote accepted

You can restrict T to not be an lvalue reference, and thus prevent lvalues from binding to it:

#include <type_traits>

struct OwnershipReceiver
{
  template <typename T,
            class = typename std::enable_if
            <
                !std::is_lvalue_reference<T>::value
            >::type
           >
  void receive_ownership(T&& t)
  {
     // taking file descriptor of t, and clear t
  }
};

It might also be a good idea to add some sort of restriction to T such that it only accepts file descriptor wrappers.

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You could use std::is_rvalue_reference instead –  Dave Oct 23 '11 at 1:08
    
Thanks Howard, that works fine. And Dave, I thought exactly the same as you do at the beginning, then I found std::is_rvalue_reference is not gonna work: it doesn't bind to a "real" rvalue, or even std::move()ed lvalue. –  Ralph Zhang Oct 23 '11 at 1:24
1  
@Ralph: Did you try is_rvalue_reference<T&&>::value? (Note the &&) –  FredOverflow Oct 23 '11 at 7:17
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I'll thank Howard again for the timely and helpful answer, my problem solved.

And during the course, I learn something that people seem to get confused quite often: using SFINAE is OK, but I can't use

std::is_rvalue_reference<T>::value

the only way it works as I want is

!std::is_lvalue_reference<T>::value

The reason is: I need my function to receive "an rvalue", not "an rvalue reference". A function SFINAE ed with std::is_rvalue_reference::value will not receive "an rvalue", but only receives "an rvalue reference". (quit a quirk, huh?)

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