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
    Commented May 24, 2019 at 7:49
  • @Evg can you elaborate please? Commented May 24, 2019 at 7:53
  • 2
    Your compiler will probably bail out at 3000 template parameters. Commented May 24, 2019 at 7:56
  • @n.m. If I'm right, there is a compiler setting for that :) Commented May 24, 2019 at 7:56
  • As a stupid lowly Python programmer - why would one ever want to do this? Commented May 24, 2019 at 19:36

2 Answers 2

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? Commented May 24, 2019 at 8:12
  • @StackDanny, I didn't fully get your question. make_A_impl is used to "unpack" std::integer_sequence into int....
    – Evg
    Commented May 24, 2019 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, "");

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