5

I am trying to write a macro which assists in building an enum class with various helper functions, e.g. for conversion to string. It would be natural to provide access to all values of the enum in some kind of collection:

DEFINE_ENUM(Foo, Value1, Value2);

for (Foo v : enum_traits<Foo>::all_values) {
    // ...
}

It seems like this could be accomplished by making the DEFINE_ENUM() macro specialize a common enum_traits class:

// globally:
template<typename T> struct enum_traits {};

// inside the macro:
#define DEFINE_ENUM(Name, ...) \
    /* define "enum class Name" ... */ \
    template<> struct my_enum_traits<Name> { \
        /* define all_values member */ \
    };

However, if the expansion of DEFINE_ENUM(Foo, Value1, Value2); occurs inside a namespace, then it appears impossible for it to specialize a template from outside that namespace:

template<typename T> struct enum_traits {};

namespace foo {
    // imagine DEFINE_ENUM is invoked here:

    enum class Foo { Value1, Value2 };

    // error: class template specialization of 'enum_traits'
    //   must occur at global scope
    template<> struct ::enum_traits<Foo> { /* ... */ };
}

Is there any way to achieve this, i.e. for the macro to "escape" the namespace enclosing its invocation and specialize a template from a different namespace (even the global namespace)?

5

Well, I cannot directly help in this traits template specialization problem, I suspect this is not possible.

But it is possible to achieve your real goal with ADL

See the trick:

// globally:
template<typename T> 
using enum_traits = decltype(get_enum_traits(T{}));

The trick is to define function get_enum_traits in namespace of T. This function shall have return type - the type that should be your traits. This function does not need an implementation - it is only ADL way to get type from within namespace of newly define enum type.

// inside the macro:
#define DEFINE_ENUM(Name, ...) \
    /* define "enum class Name" ... */ \
    enum class Name { __VA_ARGS__ }; \
    struct Name##_type_traits { \  
       /* define all_values member */ \
    }; \  
    Name##_type_traits get_enum_traits(Name); 

Some demo that it really works.

#include <array>

// globally:
template<typename T> 
using enum_traits = decltype(get_enum_traits(T{}));

// inside the macro:
#define DEFINE_ENUM(Name, ...) \
    /* define "enum class Name" ... */ \
    enum class Name { __VA_ARGS__ }; \
    struct Name##_type_traits { \
         static constexpr std::array<Name,1> values{{ Name{} }}; \
    }; \
    Name##_type_traits get_enum_traits(Name); // does not need implementation


namespace foo {
    DEFINE_ENUM(Foo, Value1, Value2);
}

int main( ) {
    for (auto e: enum_traits<foo::Foo>::values)
    {}
}
4
  • You could avoid the local class by defining, say, struct Name ## Traits_ in the namespace and have get_enum_traits(Name) just return that.
    – aschepler
    Apr 24 '18 at 0:13
  • @aschepler That's true. Probably even better solution.
    – PiotrNycz
    Apr 24 '18 at 0:19
  • This seems to cause a linker error when you actually use e in the for loop cpp.sh/3glgj
    – Drew
    Apr 24 '18 at 4:59
  • @Drew this is because you use C++11 and constexpr variable are not inline by default as in C++17. But this problem is is not related to OP question.
    – PiotrNycz
    Apr 24 '18 at 6:43

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.