问题
Is there a technique / best style to group class template specializations for certain types ?
An example : Lets say I have a class template Foo and I need to have it specialized the same for the typeset
A = { Line, Ray }
and in another way for the typeset B
B = { Linestring, Curve }
What I'm doing so far : (the technique is also presented here for functions)
#include <iostream>
#include <type_traits>
using namespace std;
// 1st group
struct Line {};
struct Ray {};
// 2nd group
struct Curve {};
struct Linestring {};
template<typename T, typename Groupper=void>
struct Foo
{ enum { val = 0 }; };
// specialization for the 1st group
template<typename T>
struct Foo<T, typename enable_if<
is_same<T, Line>::value ||
is_same<T, Ray>::value
>::type>
{
enum { val = 1 };
};
// specialization for the 2nd group
template<typename T>
struct Foo<T, typename enable_if<
is_same<T, Curve>::value ||
is_same<T, Linestring>::value
>::type>
{
enum { val = 2 };
};
int main()
{
cout << Foo<Line>::val << endl;
cout << Foo<Curve>::val << endl;
return 0;
}
An extra helper struct enable_for would shorten the code (and allow to write the accepted types directly). Any other suggestions, corrections? Shouldn't this involve less effort?
回答1:
You can also do this with your own traits and without enable_if:
// Traits
template <class T>
struct group_number : std::integral_constant<int, 0> {};
template <>
struct group_number<Line> : std::integral_constant<int, 1> {};
template <>
struct group_number<Ray> : std::integral_constant<int, 1> {};
template <>
struct group_number<Linestring> : std::integral_constant<int, 2> {};
template <>
struct group_number<Curve> : std::integral_constant<int, 2> {};
// Foo
template <class T, int Group = group_number<T>::value>
class Foo
{
//::: whatever
};
template <class T>
class Foo<T, 1>
{
//::: whatever for group 1
};
template <class T>
class Foo<T, 2>
{
//::: whatever for group 2
};
This has the advantage of automatically ensuring that each type is in at most one group.
回答2:
Extra level of indirection by using two new type traits:
template<class T>
struct is_from_group1: std::false_type {};
template<>
struct is_from_group1<Line>: std::true_type {};
template<>
struct is_from_group1<Ray>: std::true_type {};
template<class T>
struct is_from_group2: std::false_type {};
template<>
struct is_from_group2<Curve>: std::true_type {};
template<>
struct is_from_group2<Linestring>: std::true_type {};
and then do the enable_if on these type traits
// specialization for the 1st group
template<typename T>
struct Foo<T, typename enable_if<
is_from_group1<T>::value
>::type>
{
enum { val = 1 };
};
// specialization for the 2nd group
template<typename T>
struct Foo<T, typename enable_if<
is_from_group2<T>::value
>::type>
{
enum { val = 2 };
};
Note that you still need to make sure that no user-defined class is added to both groups, or you will get an ambiguity. You can either use @Angew's solution to derive from a numbered group using std::integral_constant<int, N> for group number N. Or, if these groups are not logically exclusive, you could add an extra condition inside the enable_if that guards against this.
来源:https://stackoverflow.com/questions/24628099/group-class-template-specializations