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I wrote some class with template:

 template <class T, class Allocator = ::std::allocator<T> >
 class my_list;

I should write ::std::hash specializtion for this class. How can I do that? Simple partial specialization:

namespace std {
  template <class T, class Allocator>
      class hash<my_list<T, Allocator> >{
      public :
      size_t operator()(const my_list<T, Allocator> &x ) const{
          return ...;
      }
  };
}

But I can't write simple partial specialization, because it forbidden by C++ ISO:

ISO/IEC 14882 Third edition 2011-09-01

17.6.4.2.1 Namespace std [namespace.std]

2 The behavior of a C++ program is undefined if it declares ... an explicit or partial specialization of any member class template of a standard library class or class template.

What can I do?

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1 Answer 1

up vote 8 down vote accepted

The paragraph you're quoting does not apply. You're partialy specialising a class template (std::hash), not a member class template of a standard library class or class template. std::hash is not a member of any class or class template.

For your case, paragraph 1 of the same section applies, and that allows specialisation when at least one user-defined type is involved (emphasis mine):

The behavior of a C++ program is undefined if it adds declarations or definitions to namespace std or to a namespace within namespace std unless otherwise specified. A program may add a template specialization for any standard library template to namespace std only if the declaration depends on a user-defined type and the specialization meets the standard library requirements for the original template and is not explicitly prohibited.

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I remember that C++ user can't define partial specialization for "::std::swap(T<A,B>&, T<A,B>&)". He should define new swap function at namespace with class "template <class A, class B> class T;". I thought this is same situation. –  user3098730 Apr 28 '14 at 12:05
3  
@user3098730 std::swap is a function template, not a class template. Function templates cannot be partially specialised at all; this follows from the rules of the language and has nothing to do with std. –  Angew Apr 28 '14 at 12:29

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