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This question already has an answer here:

My compiler doesn't support make_unique. How to write one?

template< class T, class... Args > unique_ptr<T> make_unique( Args&&... args );

marked as duplicate by djechlin, Borgleader, Ali, Praetorian, Nicol Bolas Jul 27 '13 at 22:55

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

30

Copied from make_unique and perfect forwarding (the same is given in Herb Sutter's blog)

template<typename T, typename... Args>
std::unique_ptr<T> make_unique(Args&&... args)
{
    return std::unique_ptr<T>(new T(std::forward<Args>(args)...));
}

If you need it in VC2012, see Is there a way to write make_unique() in VS2012?


Nevertheless, if the solution in sasha.sochka's answer compiles with your compiler, I would go with that one. That is more elaborate and works with arrays as well.

  • Why do the dots go outside the args parentheses? That's so counterintuitive to me! – Apollys Mar 29 at 2:51
  • @Apollys If I understand your question correctly: That would expand the arguments to std::forward, and not to T. (Maybe I misunderstand your question.) – Ali Mar 29 at 10:28
  • Likely that is what I was asking, I don't know much about the ... syntax, only what I have seen in examples. What seems weird to me is that in the line std::forward<Args>(args)... it seems that args now somehow means each parameter individually while at the top it meant all of the parameters as a unit. – Apollys Mar 29 at 23:30
  • @Apollys Yeah, C++ is a weird language, full of such quirks. :( – Ali Mar 29 at 23:38
44

Version by Stephan T. Lavavej (also known by STL) who originally proposed adding this function to C++14

#include <cstddef>
#include <memory>
#include <type_traits>
#include <utility>

namespace std {
    template<class T> struct _Unique_if {
        typedef unique_ptr<T> _Single_object;
    };

    template<class T> struct _Unique_if<T[]> {
        typedef unique_ptr<T[]> _Unknown_bound;
    };

    template<class T, size_t N> struct _Unique_if<T[N]> {
        typedef void _Known_bound;
    };

    template<class T, class... Args>
        typename _Unique_if<T>::_Single_object
        make_unique(Args&&... args) {
            return unique_ptr<T>(new T(std::forward<Args>(args)...));
        }

    template<class T>
        typename _Unique_if<T>::_Unknown_bound
        make_unique(size_t n) {
            typedef typename remove_extent<T>::type U;
            return unique_ptr<T>(new U[n]());
        }

    template<class T, class... Args>
        typename _Unique_if<T>::_Known_bound
        make_unique(Args&&...) = delete;
}

EDIT: updated code to the N3656 standard revision

  • How does the _Known_bound struct match when no use of _Unique_if specifies a second template argument and there is no default? – Ben Jackson Jul 27 '13 at 21:44
  • 2
    @BenJackson The intent is for there to never be a match for the _Known_bound version when make_unique is used correctly. If someone tries to use it as make_unique<T[N]>() it'll match the _Known_bound version and result in an error. – Praetorian Jul 27 '13 at 22:56
  • 2
    What's a good way to include this definition in C++ code that may eventually be compiled in an environment where make_unique is available in stdc++? – Andreas Yankopolus Dec 16 '14 at 0:42
  • 2
    @AndreasYankopolus I'd suggest #if __cplusplus == 201103L ... #endif (see __cplusplus entry near the end of gcc.gnu.org/onlinedocs/cpp/Standard-Predefined-Macros.html ) – Keiji Apr 17 '15 at 6:58
  • 4
    Note that we are not allowed to put things into std:: like this. I'd rather use my own utilities namespace if I had to add make_unique. – Johan Lundberg Mar 25 '16 at 21:32

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