如何按類型派生過濾可變參數模板包?
[英]How to filter a variadic template pack by type derivation?
問題描述
我有一個接收多種類型的模板類,每種接收到的類型都是兩個選項之一的子類。 我想根據標識它們的父類以不同的方式擴展它們。 這等效於對可變參數模板參數實施“過濾器”。
例如:
class A{};
class B{};
template<class... C>
struct F{
std::tuple<types_derived_by<A, C>...> fn(types_subclassing<B, C>...){}
};
types_derived_by模板函數應該生成一個可變參數模板包,其中C中的所有類型都是從A或B派生的。
例如:
struct DA : public A{};
struct DB : public B{};
int main(){
F<DA, DB> f;
//f has a member function: DA fn(DB);
}
我使用的是C ++ 11,但如有必要,我可以移至c ++ 14。
2 個解決方案
解決方案1
4 已采納 2015-11-05 11:46:50
您可以執行以下操作:
template <template <typename> class Pred, typename TUPLE, typename Res = std::tuple<>>
struct Filter;
template <template <typename> class Pred, typename Res>
struct Filter<Pred, std::tuple<>, Res>
{
using type = Res;
};
template <template <typename> class Pred, typename T, typename ... Ts, typename ... TRes>
struct Filter<Pred, std::tuple<T, Ts...>, std::tuple<TRes...>> :
Filter<Pred,
std::tuple<Ts...>,
std::conditional_t<Pred<T>::value,
std::tuple<TRes..., T>,
std::tuple<TRes...>>>
{
};
接着:
class A {};
template <typename T>
using is_base_of_A = std::is_base_of<A, T>;
class B {};
struct DA : public A{};
struct DB : public B{};
struct DA1 : public A{};
static_assert(std::is_same<std::tuple<DA, DA1>,
Filter<is_base_of_A, std::tuple<DA, DB, DA1>>::type>::value,
"unexpected");
解決方案2
0 2015-11-05 12:43:01
如果您不介意使用元組作為返回值和參數,那么這可能是您的解決方案:
template <typename Base, typename...T>
struct base_filter;
template <typename Base>
struct base_filter<Base>
{
using type = std::tuple<>;
};
template <typename Base, typename T1>
struct base_filter<Base, T1>
{
using type = typename std::conditional_t<std::is_base_of<Base, T1>::value, std::tuple<T1>, std::tuple<>>;
};
template <typename Base, typename T1, typename...T>
struct base_filter<Base, T1, T...>
{
using type = decltype(std::tuple_cat(base_filter<Base, T1>::type(), base_filter<Base, T...>::type()));
};
//###########################################################
class A {};
class B {};
template<class...C>
struct F {
typename base_filter<A, C...>::type fn(typename base_filter<B, C...>::type){}
};
struct DA : public A {};
struct DB : public B {};
struct DA1 : public A {};
struct DA2 : public A {};
struct DB1 : public B {};
struct DB2 : public B {};
int main() {
std::tuple<DB> b;
F<DA, DB> f1;
std::tuple<DA> a = f1.fn(b);
std::tuple<DB1, DB2> bb;
F<DB1, DA1, DB2, DA2> f2;
std::tuple<DA1, DA2> aa = f2.fn(bb);
}
如何從可變種類的模板類包中的每種類型中恢復非類型名模板參數?
[英]How can a recover the non-typename template argument from each type in a variadic pack of template classes?
如何將可變參數模板的參數字段的參數包限制為特定類型
[英]How to restrict a parameter pack for a variadic template's parameter field to be of a specific type
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