Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I got a plain variadic template declaration, just like the classic one:

template <typename... Arguments>
class VariadicTemplate;

What I need to achieve is in by letting the VariadicTemplate class do perform some type checking; the variadic template should check in some iterative form that all the arguments received should be let say of the type <Foo>.

I have seen something similar somewhere but now I can not recognize where it was :P

share|improve this question
3  
See e.g. this reference for type traits. Can be used together with static_assert. –  Joachim Pileborg Nov 18 '13 at 10:38
    
Well the std reference tells me which kind of static assertion to use but it does not supply any reference to how let such type checking being performed on a variadic argument list...there is some kind of for construct to be written before { but I don remember the form. –  user3004291 Nov 18 '13 at 11:08

2 Answers 2

struct Foo {};

#include <type_traits>

template<class T, class...>
struct are_same : std::true_type
{};

template<class T, class U, class... TT>
struct are_same<T, U, TT...>
    : std::integral_constant<bool, std::is_same<T,U>{} && are_same<T, TT...>{}>
{};

template<typename... Arguments>
class VariadicTemplate
{
    static_assert(are_same<Foo, Arguments...>{}, "a meaningful error message");
};

int main()
{
    VariadicTemplate<Foo, Foo, Foo, Foo> v0{}; (void)v0;
    VariadicTemplate<Foo, int, Foo, double> v1{}; (void)v1;
}

But something tells me you want to know if the arguments are all specializations of a class template Foo:

template<class T, class U>
struct Foo {};

#include <type_traits>

template<template<class...> class T, class U>
struct is_template_of
{
    template<class... TT>
    static std::true_type test(T<TT...>*);

    static std::false_type test(...);

    constexpr static bool value = decltype(test((U*)nullptr)){};
};

template<template<class...> class T, class...>
struct is_template_of_N : std::true_type
{};

template<template<class...> class T, class U, class... TT>
struct is_template_of_N<T, U, TT...>
    : std::integral_constant<bool,    is_template_of<T,U>::value
                                   && is_template_of_N<T, TT...>{}>
{};

template<typename... Arguments>
class VariadicTemplate
{
    static_assert(is_template_of_N<Foo, Arguments...>{},
                  "a meaningful error message");
};

int main()
{
    VariadicTemplate<Foo<int, double>, Foo<int, int>> v0; (void)v0;
    VariadicTemplate<Foo<int, double>, int> v1; (void)v1;
}
share|improve this answer
    
N.B. If you really need to, you can do this check in O(1) instantiation depth IIRC -- but it'll get much uglier. –  dyp Nov 18 '13 at 12:21

Here there is anothe solution :P

Here it is:

template <bool... b> struct static_all_of;

// do recursion if the first argument is true
template <bool... tail>
struct static_all_of<true, tail...> : static_all_of<tail...> {};

// end recursion if first argument is false
template <bool... tail>
struct static_all_of<false, tail...> : std::false_type {};

// end recursion if no more arguments need to be processed
template <> struct static_all_of<> : std::true_type {};


// First template argument is given as the type checking for the is_base_of() function

template <typename Type, typename... Requirements>
class CollectionOfCommonBase : public Requirements...
{
  static_assert(static_all_of<std::is_base_of<Type, Requirements>::value...>::value, "One or more template arguments are not base_of the one specified - given template specialization is not allowed.");
};


So you got it working for:

class Foo {};

class AFoo : public Foo {};
class BFoo : public Foo {};

class MyCollection : public CollectionOfCommonBase<Foo, AFoo, BFoo> {};
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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