10

Given I have that type

template<int ...Is>
struct A {};

Can I "generate" the type A<0, 1, 2, 3, 4, 5,..., d> just from an integer d?

I thought about something like

template<int d>
struct B : A<std::index_sequence<d>...> {}

but it doesn't work.

Other option is to specialize manually:

template<int d>
struct B;

template<>
struct B<0>: A<> {};

template<>
struct B<1>: A<0> {};

template<>
struct B<2>: A<0, 1> {};

template<>
struct B<3>: A<0, 1, 2> {};

but obviously I don't be able to write B<3000> b;

[edit] my actual use-case is a "bit" more complex than that. I don't want to reimplement std::integer_sequence, but something more complex.

6
  • 6
    What you want is std::make_integer_sequence.
    – Evg
    May 24 '19 at 7:49
  • @Evg can you elaborate please? May 24 '19 at 7:53
  • 2
    Your compiler will probably bail out at 3000 template parameters. May 24 '19 at 7:56
  • @n.m. If I'm right, there is a compiler setting for that :) May 24 '19 at 7:56
  • As a stupid lowly Python programmer - why would one ever want to do this? May 24 '19 at 19:36
16

We already have what you want in the Standard library - std::make_integer_sequence. If you want to use your own type A<...> you can do this:

template<int... Is>
struct A {};

template<class>
struct make_A_impl;

template<int... Is>
struct make_A_impl<std::integer_sequence<int, Is...>> {
    using Type = A<Is...>;
};

template<int size>
using make_A = typename make_A_impl<std::make_integer_sequence<int, size>>::Type;

And then for A<0, ..., 2999> write

make_A<3000>
2
  • So the make_A_impl declaration is needed to workaround the fact that you can't have two parameter packs in one template argument list? May 24 '19 at 8:12
  • @StackDanny, I didn't fully get your question. make_A_impl is used to "unpack" std::integer_sequence into int....
    – Evg
    May 24 '19 at 8:28
4

A bit another way to do - use function signature to match the A<...> type:

#include <type_traits>

template<int ...Is>
struct A {};

namespace details
{
template <int ...Is>
auto GenrateAHelper(std::integer_sequence<int, Is...>) -> A<Is...>;
}

template<int I> 
using GenerateA = decltype(details::GenrateAHelper(std::make_integer_sequence<int, I>()));

static_assert(std::is_same<GenerateA<3>, A<0, 1, 2>>::value, "");

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.