我想使用std :: tuple的所有元素作为类的初始化.有没有比元组的每个元素执行std :: get< i-th element>(std :: tuple)更简单的方法?
最小工作示例与std :: get:
#include <string>
#include <tuple>
#include <cassert>
struct A
{
std::string string1;
int intVal;
std::string string2;
};
int main()
{
std::tuple< std::string,int,std::string > myTuple("S1",42,"S2");
A myA{ std::get<0>(myTuple),std::get<1>(myTuple),std::get<2>(myTuple) };
assert( myA.string1 == "S1" );
assert( myA.intVal == 42 );
assert( myA.string2 == "S2" );
}
有关实例,请参见http://coliru.stacked-crooked.com/a/4a5d45dbf1461407
解决方法
正如
Kerrek SB所说,这个
P0209R0已经有了一个建议.因此,直到达到标准,你可以按照以下几点做一些事情:
template<typename C,typename T,std::size_t... I>
decltype(auto) make_from_tuple_impl(T &&t,std::index_sequence<I...>) {
return C{std::get<I>(std::forward<T>(t))...};
}
template<typename C,typename... Args,typename Indices = std::make_index_sequence<sizeof...(Args)>>
decltype(auto) make_from_tuple(std::tuple<Args...> const &t) {
return make_from_tuple_impl<C>(t,Indices());
}
并将您的课程初始化为:
A myA{make_from_tuple<A>(myTuple)};
Live Demo
您也可以手工制作index_sequence和make_index_sequence,以便在07年3月4日提出的C 11中工作,并更改为:
namespace idx {
template <std::size_t...> struct index_sequence {};
template <std::size_t N,std::size_t... Is>
struct make_index_sequence : make_index_sequence<N - 1,N - 1,Is...> {};
template <std::size_t... Is>
struct make_index_sequence<0u,Is...> : index_sequence<Is...> { using type = index_sequence<Is...>; };
}
template<typename C,std::size_t... I>
C make_from_tuple_impl(T &&t,idx::index_sequence<I...>) {
return C{std::get<I>(std::forward<T>(t))...};
}
template<typename C,typename Indices = idx::make_index_sequence<sizeof...(Args)>>
C make_from_tuple(std::tuple<Args...> const &t) {
return make_from_tuple_impl<C>(t,Indices());
}
Live Demo