[解決済み] C++11 emplace_back on vector<struct>?

質問

次のようなプログラムを考えてみましょう。

#include <string>
#include <vector>

using namespace std;

struct T
{
    int a;
    double b;
    string c;
};

vector<T> V;

int main()
{
    V.emplace_back(42, 3.14, "foo");
}

うまくいきません。

$ g++ -std=gnu++11 ./test.cpp
In file included from /usr/include/c++/4.7/x86_64-linux-gnu/bits/c++allocator.h:34:0,
                 from /usr/include/c++/4.7/bits/allocator.h:48,
                 from /usr/include/c++/4.7/string:43,
                 from ./test.cpp:1:
/usr/include/c++/4.7/ext/new_allocator.h: In instantiation of ‘void __gnu_cxx::new_allocator<_Tp>::construct(_Up*, _Args&& ...) [with _Up = T; _Args = {int, double, const char (&)[4]}; _Tp = T]’:
/usr/include/c++/4.7/bits/alloc_traits.h:253:4:   required from ‘static typename std::enable_if<std::allocator_traits<_Alloc>::__construct_helper<_Tp, _Args>::value, void>::type std::allocator_traits<_Alloc>::_S_construct(_Alloc&, _Tp*, _Args&& ...) [with _Tp = T; _Args = {int, double, const char (&)[4]}; _Alloc = std::allocator<T>; typename std::enable_if<std::allocator_traits<_Alloc>::__construct_helper<_Tp, _Args>::value, void>::type = void]’
/usr/include/c++/4.7/bits/alloc_traits.h:390:4:   required from ‘static void std::allocator_traits<_Alloc>::construct(_Alloc&, _Tp*, _Args&& ...) [with _Tp = T; _Args = {int, double, const char (&)[4]}; _Alloc = std::allocator<T>]’
/usr/include/c++/4.7/bits/vector.tcc:97:6:   required from ‘void std::vector<_Tp, _Alloc>::emplace_back(_Args&& ...) [with _Args = {int, double, const char (&)[4]}; _Tp = T; _Alloc = std::allocator<T>]’
./test.cpp:17:32:   required from here
/usr/include/c++/4.7/ext/new_allocator.h:110:4: error: no matching function for call to ‘T::T(int, double, const char [4])’
/usr/include/c++/4.7/ext/new_allocator.h:110:4: note: candidates are:
./test.cpp:6:8: note: T::T()
./test.cpp:6:8: note:   candidate expects 0 arguments, 3 provided
./test.cpp:6:8: note: T::T(const T&)
./test.cpp:6:8: note:   candidate expects 1 argument, 3 provided
./test.cpp:6:8: note: T::T(T&&)
./test.cpp:6:8: note:   candidate expects 1 argument, 3 provided

正しい方法とその理由は何ですか？

(中括弧は一重と二重を試しました）

どのように解決するのですか？

未来から来た人のために、この動作 は変更されます。 で C++20 .

言い換えれば、たとえ内部的に実装が T(arg0, arg1, ...) を呼び出したとしても、それは通常の T{arg0, arg1, ...} と見なされます。