26

How do I write a class template that accepts only numeric types (int, double, float, etc.) as template?

  • @KonradRudolph Do you also want to fix the title? I'm confused if OP really means types or actually means constants of those types. – pmr Jan 12 '13 at 14:33
  • @pmr I didn’t (but I did now), good catch. I’m fairly sure that OP means types, if for no other reason that you cannot use non-integral types as non-type templates, and that the question doesn’t make any sense to begin with when talking about non-type templates. – Konrad Rudolph Jan 12 '13 at 14:34
  • @KonradRudolph Yes, I mean types. – djWann Jan 12 '13 at 14:38
38

You can use the std::is_arithmetic type trait. If you want to only enable instantiation of a class with such a type, use it in conjunction with std::enable_if:

#include <type_traits>

template<
    typename T, //real type
    typename = typename std::enable_if<std::is_arithmetic<T>::value, T>::type
> struct S{};

int main() {
   S<int> s; //compiles
   S<char*> s; //doesn't compile
}

For a version of enable_if that's easier to use, and a free addition of disable_if, I highly recommend reading this wonderful article (or a cached version) on the matter.

p.s. In C++, the technique described above has a name called "Substitution Failure Is Not An Error" (most use the acronym SFINAE). You can read more about this C++ technique on wikipedia or cppreference.com.

  • 2
    You can leave off typename Dummy =. Furthermore I highly recommend using Wheels here, it makes the code vastly simpler: template <typename T, wheels:EnableIf<wheels::IsArithmetic<T>>> – Konrad Rudolph Jan 12 '13 at 14:43
  • @KonradRudolph, You're right, thanks. And I'll add a link to his enable_if post for further reading. – chris Jan 12 '13 at 14:44
  • @KonradRudolph, Removing the Dummy is what made it not compile, but I'm not too experienced with it, so I can't say how it's supposed to be, other than that. I realized I could remove the pointless name, though. – chris Jan 12 '13 at 15:03
  • 1
    My fault, I forgot the parameter pack. Here’s a running example: stacked-crooked.com/view?id=78592aa7213e78a32094dd8f4c929d2e – Notice the trailing ... after the EnableIf. – Konrad Rudolph Jan 12 '13 at 18:33
  • @KonradRudolph, That's quite interesting... – chris Jan 13 '13 at 2:04
11

I found the error messages received from the template<typename T, typename = ...> approach highly cryptic (VS 2015), but found that a static_assert with the same type trait also works and lets me specify an error message:

#include <type_traits>

template <typename NumericType>
struct S
{
    static_assert(std::is_arithmetic<NumericType>::value, "NumericType must be numeric");
};

template <typename NumericType>
NumericType add_one(NumericType n)
{
    static_assert(std::is_arithmetic<NumericType>::value, "NumericType must be numeric");
    return n + 1;
}

int main()
{
    S<int> i;
    S<char*> s; //doesn't compile

    add_one(1.f);
    add_one("hi there"); //doesn't compile
}
  • Sure. It would be nice to add this message here. – kyb Oct 27 '17 at 10:21
  • 1
    this approach 1. makes the API have one less template parameter... and less parameters seems cleaner and 2. static_assert is easier to understand IMO. yet this solution has much less upvotes. Perhaps the other approach is preferred because the function signature explicitly SHOWS what types are supported. – Trevor Boyd Smith Apr 4 '18 at 13:02
  • @TrevorBoydSmith Is the NumericType template parameter really less clear/explicit than the dummy std::enable_if<...> one? – Max Langhof Apr 4 '18 at 13:32
  • 1
    @TrevorBoydSmith Nah, the other answer isn't nearly as preferred as it seems. It just had more than three years worth of a head start! – cmaster Apr 4 '18 at 13:33
  • @TrevorBoydSmith do you all work together or something? This is is a surprising amount of action for this old question (though I appreciate the upvotes :) ) – Ben Apr 4 '18 at 14:02

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