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How to check if two types are same at compiletime(bonus points if it works with Boost strong typedef)

I was wondering if it is possible to check if 2 types are same at compile time. What I came up with is(idk if it works because it feels hackish and IDK standard that good so IDK what to look for when testing).

#include <boost/strong_typedef.hpp>
BOOST_STRONG_TYPEDEF(double, cm);
BOOST_STRONG_TYPEDEF(double, inch);
template<typename T, typename U>
static constexpr void __help() 
{
}
template<typename T, typename U>
class AreSameType
{
    public:
    constexpr operator bool()
    {
     return &__help<T,U> == &__help<U,T>;
    };
};

usage :

int main()
{
        static_assert(AreSameType<double,float>()== false, "oh noes1");
        static_assert(AreSameType<double,double>()== true, "oh noes2");
        static_assert(AreSameType<int*,double*>()== false, "oh noes3");
        static_assert(AreSameType<double*,double>()== false, "oh noes4");
        static_assert(AreSameType<const double,double>()== false, "oh noes5");
        static_assert(AreSameType<inch,cm>()== true, "oh expected"); //fires
}

So

1) is there a better way to it?
2) is this address of a function hack guaranteed to work by standard(I would bet not :))?

like image 299
NoSenseEtAl Avatar asked Oct 25 '12 14:10

NoSenseEtAl


1 Answers

Use std::is_same. std::is_same<T,U>::value will be true if T and U are the same type, false otherwise.

If you don't have C++11, it's easy to implement as this

template<class T, class U>
struct is_same {
    enum { value = 0 };
};

template<class T>
struct is_same<T, T> {
    enum { value = 1 };
};
like image 177
Dirk Holsopple Avatar answered Nov 10 '22 03:11

Dirk Holsopple