Subject: Re: [Boost-users] [TypeTraits] Is it possible to detect that type is not exist and use default type?
From: Roman Perepelitsa (roman.perepelitsa_at_[hidden])
Date: 2009-06-30 15:32:14
2009/6/30 Sakharuk, Vlad (GMI Development) <Vlad_Sakharuk_at_[hidden]>
> Here is example:
> class one {
> public:
> typedef someclass internal;
> };
>
> class two {
> // No internal class
> };
>
> class default_internal{
> };
>
> I would like to be able to write something if it possible:
>
> template<class T, class B = if_exist(T::internal) T::internal
> else default_internal > class proc {
> };
>
> So I can use proc with both
>
> proc<one> One;
> proc<two> Two;
>
> without specifying derived type?
>
>
#include <iostream>
#include <boost/mpl/has_xxx.hpp>
#include <boost/mpl/eval_if.hpp>
#include <boost/mpl/identity.hpp>
struct someclass {
static void hello() {
std::cout << "someclass" << std::endl;
}
};
struct one {
public:
typedef someclass internal;
};
struct two {};
struct default_internal {
static void hello() {
std::cout << "default_internal" << std::endl;
}
};
BOOST_MPL_HAS_XXX_TRAIT_DEF(internal)
// Here Internal is either T::internal
// if it exists or default_internal.
template <class T, class Internal>
struct proc_impl {
static void hi() {
Internal::hello();
}
};
template <class T>
struct get_internal {
typedef typename T::internal type;
};
template <class T>
struct proc :
proc_impl<
T,
typename boost::mpl::eval_if<
has_internal<T>,
get_internal<T>,
boost::mpl::identity<default_internal>
>::type
> {
};
int main() {
proc<one>::hi();
proc<two>::hi();
}
Roman Perepelitsa.