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If I pass the following code through my GCC 4.7 snapshot, it tries to copy the unique_ptrs into the vector.

#include <vector>
#include <memory>

int main() {
    using move_only = std::unique_ptr<int>;
    std::vector<move_only> v { move_only(), move_only(), move_only() };
}

Obviously that cannot work because std::unique_ptr is not copyable:

error: use of deleted function 'std::unique_ptr<_Tp, _Dp>::unique_ptr(const std::unique_ptr<_Tp, _Dp>&) [with _Tp = int; _Dp = std::default_delete; std::unique_ptr<_Tp, _Dp> = std::unique_ptr]'

Is GCC correct in trying to copy the pointers from the initializer list?

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What do you mean? What else would you suggest it try to do? –  Lightness Races in Orbit Dec 12 '11 at 0:58
2  
@Tomalak Move them? –  R. Martinho Fernandes Dec 12 '11 at 1:00
    
@RMartinhoFernandes: Oh, right. By "obviously that cannot work" I thought you meant the code, not the trying-to-copy. Don't you have to use std::move in order to make this work? –  Lightness Races in Orbit Dec 12 '11 at 1:02
    
@TomalakGeret'kal No, because the elements I'm using in the initialisation are all rvalues. I tried with std::move anyway, but no dice :( –  R. Martinho Fernandes Dec 12 '11 at 1:05
    
@RMartinhoFernandes: OK. –  Lightness Races in Orbit Dec 12 '11 at 1:13
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3 Answers 3

up vote 15 down vote accepted

The synopsis of <initializer_list> in 18.9 makes it reasonably clear that elements of an initializer list are always passed via const-reference. Unfortunately, there does not appear to be any way of using move-semantic in initializer list elements in the current revision of the language.

Specifically, we have:

typedef const E& reference;
typedef const E& const_reference;

typedef const E* iterator;
typedef const E* const_iterator;

const E* begin() const noexcept; // first element
const E* end() const noexcept; // one past the last element
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3  
Consider the in<T> idiom described on cpptruths (cpptruths.blogspot.com/2013/09/…). The idea is to determine lvalue/rvalue at run-time and then call move or copy-construction. in<T> will detect rvalue/lvalue even though the standard interface provided by initializer_list is const reference. –  Sumant Sep 24 '13 at 19:34
    
@Sumant: Thanks, very interesting! –  Kerrek SB Sep 24 '13 at 20:35
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As it has been pointed out, it is not possible to initialize a vector of move-only type with an initializer list. The solution originally proposed by @Johannes works fine, but I have another idea... What if we don't create a temporary array and then move elements from there into the vector, but use placement new to initialize this array already in place of the vector's memory block?

Here's my function to initialize a vector of unique_ptr's using an argument pack:

#include <iostream>
#include <vector>
#include <make_unique.h>  /// @see http://stackoverflow.com/questions/7038357/make-unique-and-perfect-forwarding

template <typename T, typename... Items>
inline std::vector<std::unique_ptr<T>> make_vector_of_unique(Items&&... items) {
    typedef std::unique_ptr<T> value_type;

    // Allocate memory for all items
    std::vector<value_type> result(sizeof...(Items));

    // Initialize the array in place of allocated memory
    new (result.data()) value_type[sizeof...(Items)] {
        make_unique<typename std::remove_reference<Items>::type>(std::forward<Items>(items))...
    };
    return result;
}

int main(int, char**)
{
    auto testVector = make_vector_of_unique<int>(1,2,3);
    for (auto const &item : testVector) {
        std::cout << *item << std::endl;
    }
}
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That is a terrible idea. Placement new is not a hammer, it is a tool of fine precision. result.data() is not a pointer to some random memory. It is a pointer to an object. Think of what happens to that poor object when you placement new over it. –  R. Martinho Fernandes May 15 '13 at 11:38
    
Additionally, the array form of placement new is not really usable stackoverflow.com/questions/8720425/… –  R. Martinho Fernandes May 15 '13 at 11:42
    
@R. Martinho Fernandes: thanks for pointing out that placement-new for arrays would not work. Now I see why that was a bad idea. –  Gart May 15 '13 at 11:55
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Edit: Since @Johannes doesn't seem to want to post the best solution as an answer, I'll just do it.

#include <iterator>
#include <vector>
#include <memory>

int main(){
  using move_only = std::unique_ptr<int>;
  move_only init[] = { move_only(), move_only(), move_only() };
  std::vector<move_only> v{std::make_move_iterator(std::begin(init)),
      std::make_move_iterator(std::end(init))};
}

The iterators returned by std::make_move_iterator will move the pointed-to element when being dereferenced.


Original answer: We're gonna utilize a little helper type here:

#include <utility>
#include <type_traits>

template<class T>
struct rref_wrapper
{ // CAUTION - very volatile, use with care
  explicit rref_wrapper(T&& v)
    : _val(std::move(v)) {}

  explicit operator T() const{
    return T{ std::move(_val) };
  }

private:
  T&& _val;
};

// only usable on temporaries
template<class T>
typename std::enable_if<
  !std::is_lvalue_reference<T>::value,
  rref_wrapper<T>
>::type rref(T&& v){
  return rref_wrapper<T>(std::move(v));
}

// lvalue reference can go away
template<class T>
void rref(T&) = delete;

Sadly, the straight-forward code here won't work:

std::vector<move_only> v{ rref(move_only()), rref(move_only()), rref(move_only()) };

Since the standard, for whatever reason, doesn't define a converting copy constructor like this:

// in class initializer_list
template<class U>
initializer_list(initializer_list<U> const& other);

The initializer_list<rref_wrapper<move_only>> created by the brace-init-list ({...}) won't convert to the initializer_list<move_only> that the vector<move_only> takes. So we need a two-step initialization here:

std::initializer_list<rref_wrapper<move_only>> il{ rref(move_only()),
                                                   rref(move_only()),
                                                   rref(move_only()) };
std::vector<move_only> v(il.begin(), il.end());
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Ah... this is the rvalue analogue of std::ref, non? Maybe it should be called std::rref. –  Kerrek SB Dec 12 '11 at 1:39
12  
Now, I guess this should not be left without being mentioned in a comment :) move_only m[] = { move_only(), move_only(), move_only() }; std::vector<move_only> v(std::make_move_iterator(m), std::make_move_iterator(m + 3));. –  Johannes Schaub - litb Dec 12 '11 at 22:18
1  
@Johannes: Sometimes, it's the simple solutions that just elude me. Though I gotta admit, I didn't bother with those move_iterators yet. –  Xeo Dec 12 '11 at 22:37
2  
@Johannes: Also, why isn't that an answer? :) –  Xeo Dec 12 '11 at 22:43
1  
@JohanLundberg: I'd consider that a QoI issue, but I don't see why it couldn't do that. VC++'s stdlib for example tag-dispatches based on the iterator category and uses std::distance for forward-or-better iterators and std::move_iterator adapts the underlying iterator's category. Anyways, good and concise solution. Post it as an answer, maybe? –  Xeo Nov 2 '12 at 22:49
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