8

Trying to extract template parameter value in the following code:

template<std::size_t SIZE>
class Foo {};

template <template<std::size_t> class T, std::size_t K>
auto extractSize(const T<K>&) {
    return K;
}

int main() {
    Foo<6> f1;
    Foo<13> f2;
    std::cout << extractSize(f1) << std::endl;
    std::cout << extractSize(f2) << std::endl;
}

(As an answer for the question: Extract C++ template parameters).

However, is there a way to do it without knowing the type of the template parameter. Something like (code below doesn't compile...):

template <template<class SIZE_TYPE> class T, SIZE_TYPE K>
auto extractSize(const T<K>&) {
    return K;
}

Compilation error:

error: unknown type name 'SIZE_TYPE'
template <template<class SIZE_TYPE> class T, SIZE_TYPE K>
                                             ^
  • Did you try to put '''typename SIZE_TYPE''' at the beggining of the list? – Robert Andrzejuk Feb 4 '18 at 18:04
8

auto to the rescue!

template <template<auto> class T, auto K>
auto extractSize(const T<K>&) {
    return K;
}

That way the type of the value you passed in as template parameter is automatically inferred.

  • 1
    Very nice indeed :) – StoryTeller Feb 4 '18 at 14:06
  • 2
    Cool. Works well for C++17, not for C++14. Any suggestion for C++11/14? – Amir Kirsh Feb 4 '18 at 14:08
  • 3
    @AmirKirsh auto template parameter is introduced in C++17, no such solution for C++14. – llllllllll Feb 4 '18 at 14:09
  • 2
    Is there another trick to achieve the same in C++14? – Amir Kirsh Feb 4 '18 at 14:11
  • 1
    There isn't a way in pre-C++17, assuming you are using a standard compliant compiler and not typing from memory (smh). My own attempt fails at timsong-cpp.github.io/cppwp/n4140/temp#deduct.type-5.3 – StoryTeller Feb 4 '18 at 14:28

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