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I've been experimenting with std::tuple in combination with references:

#include <iostream>
#include <tuple>

int main() {
  int a,b;
  std::tuple<int&,int&> test(a,b);
  std::get<0>(test) = 1;
  std::get<1>(test) = 2;
  std::cout << a << ":" << b << std::endl;

  // doesn't make ref, not expected
  auto test2 = std::make_tuple(a,b);
  std::get<0>(test2) = -1;
  std::get<1>(test2) = -2;
  std::cout << a << ":" << b << std::endl;

  int &ar=a;
  int &br=b;
  // why does this not make a tuple of int& references? can we force it to notice?
  auto test3 = std::make_tuple(ar,br);
  std::get<0>(test3) = -1;
  std::get<1>(test3) = -2;
  std::cout << a << ":" << b << std::endl;
}

Of the three examples here the first two work as expected. The third one however does not. I was expecting the auto type (test3) to be the same as the type of test (i.e. std::tuple<int&,int&>).

It seems that std::make_tuple can't automatically make tuples of references. Why not? What can I do to make this the case, other than explicitly constructing something of that type myself?

(Compiler was g++ 4.4.5, using 4.5 doesn't change it)

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5 Answers 5

up vote 15 down vote accepted

Try forward_as_tuple:

auto test3 = std::forward_as_tuple(ar,br);
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That looks promising –  Flexo Oct 23 '11 at 16:04
    
@Dani: Why can't tuple<int&, int&> (the return type of std::forward_as_tuple as used above) be stored? Fwiw, I tested the code before I posted it. –  Howard Hinnant Oct 23 '11 at 16:13
    
It compiles and works as expected with g++ 4.7.0 (10/10/2011 snapshot) and 4.6.1, but not with any 4.5 or earlier that I tried –  Flexo Oct 23 '11 at 16:15
2  
You could write your own for use with 4.5 and earlier (as long as you have rvalue reference and variadic support). It is a trivial helper function. It takes T&&... as its argument and returns tuple<T&&...>(std::forward<T>(t)...). –  Howard Hinnant Oct 23 '11 at 16:22

std::tie makes non-const references.

auto ref_tuple = std::tie(a,b); // decltype(ref_tuple) == std::tuple<int&, int&>

For const references, you'll either want the std::cref wrapper function:

auto cref_tuple = std::make_tuple(std::cref(a), std::cref(b));

Or use a simply as_const helper to qualify the variables before passing them off to std::tie:

template<class T>
T const& as_const(T& v){ return v; }

auto cref_tuple = std::tie(as_const(a), as_const(b));

Or, if you want to get fancy, write your own ctie (reusing std::tie and as_const):

template<class... Ts>
std::tuple<Ts const&...> ctie(Ts&... vs){
  return std::tie(as_const(vs)...);
}

auto cref_tuple = ctie(a, b);
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+1 I completely forgot about tie. –  Howard Hinnant Oct 23 '11 at 17:43

How about:

auto test3 = std::make_tuple(std::ref(a),std::ref(b));
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where does std::ref come from? With g++ 4.7 I'm getting "ref is not a member of std", and grep in monumentally unhelpful trying to work that one out. –  Flexo Oct 23 '11 at 16:23
1  
Should be in <functional>. On MSVC2010 it seems to be dragged in by <tuple> –  sbk Oct 23 '11 at 16:39
    
I like this answer because I think it makes something like std::make_tuple(p1?std::ref(a):std::cref(a), p2?std::ref(b):std::cref(b)) feasible –  Flexo Oct 24 '11 at 8:45

For the why: make_tuple parameters are passed by const reference (const T&), so if you pass int&, T matches int. If it deduced T to be int&, the parameter would be const T&&, and you'd get a compile error.

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What about std::make_tuple<int&, int&>(a, b);

Admittedly, it kind of defeats the purpose, but for functions like make_shared you still get benefits.

Warning, I haven't tried to compile this, but I believe it will work.

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The idea was to avoid ever specifying the types explicitly because it's a lot more cumbersome to do in the real code –  Flexo Oct 23 '11 at 16:05
    
@awoodland Yeah, my answer kind of sucks. But I didn't know about std::forward_as_tuple before. That looks like the correct answer to me. –  Michael Price Oct 23 '11 at 16:44

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