我正在尝试从各种类型的模板类(每个类都有一个非类型参数)中恢复非类型名称模板参数,以便可以将它们用作另一种类型的整数序列。
以下代码显示了我所拥有的。整数序列/成员序列从元组中抄写。
template<std::size_t... Integers>
struct size_t_sequence {
using type = size_t_sequence<Integers...>;
};
template <std::size_t, typename>
struct push_size_t_sequence;
template <std::size_t I, std::size_t... Integers>
struct push_size_t_sequence<I, size_t_sequence<Integers...>>
: size_t_sequence<I, Integers...> {};
template <std::size_t N, std::size_t Head, std::size_t... Tail>
struct make_size_t_sequence
: push_size_t_sequence<Head, typename make_size_t_sequence<N - 1, Tail...>::type>::type {};
template<std::size_t I, std::size_t... OneLeft>
struct make_size_t_sequence <2, I, OneLeft...> :
push_size_t_sequence<I, size_t_sequence<OneLeft...>>::type {};
template<typename... Members>
struct member_sequence {
using type = member_sequence<Members...>;
};
template <typename, typename>
struct push_member_sequence;
template <typename M, typename... Members>
struct push_member_sequence<M, member_sequence<Members...>>
: member_sequence<M, Members...> {};
template <std::size_t N, typename Head, typename... Tail>
struct make_member_sequence
: push_member_sequence<Head, typename make_member_sequence<N - 1, Tail...>::type>::type {};
template<typename M, typename... OneLeft>
struct make_member_sequence <2, M, OneLeft...> :
push_member_sequence<M, member_sequence<OneLeft...>>::type {};
template<typename>
struct unpack_sequence_impl;
template<template<std::size_t> class... T, std::size_t... DimensionSizes>
struct unpack_sequence_impl<member_sequence<T<DimensionSizes>...>> {
using member_types = member_sequence<T<DimensionSizes>...>;
using size_types = size_t_sequence<DimensionSizes...>;
};
template<typename... Members>
struct unpack_sequence :
unpack_sequence_impl<make_member_sequence<sizeof...(Members), Members...>> {
using base_t = unpack_sequence_impl<make_member_sequence<sizeof...(Members), Members...>>;
using member_types = typename base_t::member_types;
using size_types = typename base_t::size_types;
};
template<std::size_t N>
class example {
int s = N;
};
int main()
{
auto mem_sequence = make_member_sequence<3, example<3>, example<2>, example<1>>::type();
auto integer_sequence = make_size_t_sequence<3, 3,2,1>::type();
auto un_mem_sequence = unpack_sequence<example<3>, example<2>, example<1>>::member_types();
auto un_size_sequence = unpack_sequence<example<3>, example<2>, example<1>>::size_types();
}
mem_sequence和integer_sequence的类型为member_sequence<example<3>,example<2>,example<1>>和size_t_sequence<3,2,1>。 un_mem_sequence和un_size_sequence的类型应该相同。
我该怎么做?
谢谢您的帮助!
蒂姆
编辑:
为澄清起见,我要完成的工作是从一个模板类中恢复模板参数以在另一个模板中使用它们。以下是三个模板类:MyObject,MyTuple,MyPack。 MyTuple将MyObject个对象作为其模板参数。我想恢复MyObject模板参数以用作MyPack对象的模板参数。
template<int N>
MyObject;
template<int... Ns>
MyPack;
template<typename... MyObjects>
MyTuple {};
int main() {
MyTuple<MyObject<1>,MyObject<2>,MyObject<3>> a;
MyPack<1,2,3> b;
}
所以我想从MyTuple的MyObject的参数中提取参数,以用于创建MyPack。
编辑2:
第二个说明:MyTuple不仅接受MyObject类型,还接受具有一个int模板参数的任何类型。
template<int N>
MyObject;
template<int N>
MyObject2;
template<int... Ns>
MyPack;
template<typename... MyObjects>
MyTuple {};
int main() {
MyTuple<MyObject<1>,MyObject<2>,MyObject2<1>,MyObject2<2>> a;
MyPack<1,2,1,2> b;
}
答案 0 :(得分:1)
template <typename>
struct MakeMyPack;
template <int... Ns>
struct MakeMyPack<MyTuple<MyObject<Ns>...>>
{
using type = MyPack<Ns...>;
};
答案 1 :(得分:0)
为澄清起见,我要完成的工作是从一个模板类中恢复模板参数以在另一个模板中使用它们。下面是三个模板类:MyObject,MyTuple,MyPack。 MyTuple将MyObject对象作为其模板参数。我想恢复MyObject模板参数以用作MyPack对象的模板参数。
仅出于娱乐目的,我提出了一个更通用的解决方案,该方案具有双重可变参数模板(模板模板和值模板),不限于MyTuple和MyObject
template <typename>
struct getMyPack;
template <template <typename...> class C,
template <int> class ... Cs, int ... Is>
struct getMyPack<C<Cs<Is>...>>
{ using type = MyPack<Is...>; };
以下是完整的编译示例
#include <type_traits>
template <int>
struct MyObject1
{ };
template <int>
struct MyObject2
{ };
template <int...>
struct MyPack
{ };
template <typename...>
struct MyTuple
{ };
template <typename>
struct getMyPack;
template <template <typename...> class C,
template <int> class ... Cs, int ... Is>
struct getMyPack<C<Cs<Is>...>>
{ using type = MyPack<Is...>; };
int main ()
{
using T0 = MyTuple<MyObject1<1>, MyObject2<2>, MyObject1<3>>;
using T1 = MyPack<1, 2, 3>;
using T2 = typename getMyPack<T0>::type;
static_assert( std::is_same<T1, T2>::value, "!" );
}
-编辑-
第二个说明:MyTuple不仅接受MyObject类型,还接受具有一个int模板参数的任何类型。
我怀疑。
我的解决方案不支持MyObject,所以应该可以。
前面的示例已修改以显示它。