3

Suposse we have an integral value wrapper. For example, a boolean wrapper like std::true_type and std::false_type:

template<typename T , T VALUE>
struct integral_value_wrapper
{
    static const T value = VALUE;
};

template<bool VALUE>
using boolean_wrapper = integral_value_wrapper<bool,VALUE>;

using true_wrapper  = boolean_wrapper<true>;
using false_wrapper = boolean_wrapper<false>;

We use that boolean wrappers for our own classes. For example, an int checker:

template<typename T>
struct is_int : public false_wrapper {};

template<>
struct is_int<int> : public true_wrapper {};


using type = int;

int main()
{
    if( is_int<type>::value ) cout << "type is int" << endl;
}

My question is: Is there any way to make a type (The class that inherits from a bool wrapper in this case) to implicit cast to an integral value?

This allows me to avoid the use of the ::value member in boolean expressions, like in the example below:

using type = int;

int main()
{
    if( is_int<type> ) cout << "type is int" << endl;  //How I can do that?
}
0

1 Answer 1

2

You cannot provide a type where an expression is expected. But if you add a conversion operator to your wrapper, like so:

template<typename T , T VALUE>
struct integral_value_wrapper
{
    static constexpr T value = VALUE;
    constexpr operator T () const { return value; }
};

You can then write:

if ( is_int<type>() )
//               ^^

Which is what standard type traits do.

8
  • I know the conversion operator, to use the integral wrapper like a functor. But I wanted an implicit cast, to use that wrappers like integral values. What do you think about this proposal?: open-std.org/JTC1/SC22/WG21/docs/papers/2013/n3545.pdf Could help me with this problem?
    – Manu343726
    Jun 15, 2013 at 22:41
  • @Manu343726: I know the conversion operator, to use the integral wrapper like a functor. No, you are confused. First of all, the point is that those wrappers are types. You cannot use a type like a value. It is just non-sense (sorry if this sounds harsh). The proposal is about introducing a new call operator, and that would allow using that as a functor. But it would still mean that you first have to create instances of that type, so: is_int<type>()(). Either use ::value or instantiate the wrapper as shown in the answer
    – Andy Prowl
    Jun 15, 2013 at 22:49
  • Ok, thanks. Really use a wrapper of a value to use it like a value sounds a bit... cyclic?. I was looking for a clearer syntax. Thanks a lot.
    – Manu343726
    Jun 15, 2013 at 22:56
  • @Manu343726: No problem, glad I could help - at least partly
    – Andy Prowl
    Jun 15, 2013 at 22:56
  • I was reading this again. Hopefully now we have C++14 template aliases!
    – Manu343726
    Aug 31, 2014 at 18:32

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