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The following code:

using namespace std;

template <typename X>
class Goo {};


template <typename X>
class Hoo {};


template <class A, template <typename> class B = Goo >
struct Foo {
  B<A> data;
  void foo1();
  void foo2();

};


template <typename A>
void Foo<A>::foo1() { cout << "foo1 for Goo" << endl;}


int main() {
  Foo<int> a;
  a.foo1();

}

gives me a compiler error:

test.cc:18: error: invalid use of incomplete type 'struct Foo<A, Goo>'
test.cc:11: error: declaration of 'struct Foo<A, Goo>'

Why can't I partially specialize foo1() ? If this is not the way, how do I do this?

I have another question: what if I want foo2() to be defined only for A=int, B=Hoo and not for any other combination, how do I do that?

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1  
This isn't a partial specialization, Foo takes two parameters and you only specify one in Foo<A>::foo1. –  Bo Persson Jan 3 '12 at 21:30
    
@BoPersson: I think I am partially specializing. The second template parameter is by default Goo. –  user231536 Jan 3 '12 at 21:38
    
And what is X in Goo<X>. Goo is template taking a parameter X. Where is it specified? –  jmucchiello Jan 3 '12 at 21:44
    
@jmucchiello: By the Goo<A> data member in Foo<A>. –  user231536 Jan 3 '12 at 21:52
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2 Answers 2

up vote 3 down vote accepted

Function templates may only be fully specialized, not partially.

Member functions of class templates are automatically function templates, and they may indeed be specialized, but only fully:

template <>
void Foo<int, Goo>::foo1() { }  // OK

You can partially specialise the entire class and then define it anew:

template <typename A>
struct Foo<A, Goo>
{
  // ...
};

(See 14.7.3 for details.)

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I don't think he's even trying to specialize. Edit: Ah right, by "partial specialization" he wants to omit one of the parameters. –  someguy Jan 3 '12 at 21:31
    
So there is no way to partially specialize a member method of a template class, without specializing the whole class itself? –  user231536 Jan 3 '12 at 21:40
    
@user231536: No, indeed. Here's a similar, previous answer. –  Kerrek SB Jan 3 '12 at 21:54
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The template still has two parameters, and you must write something like this:

template <typename A, template <typename> class B>
void Foo<A,B>::foo1() { cout << "foo1" << endl;}

The default has been specified, and only needs to be specified once. From then on, it's just like any other two-parameter template. This code will apply no matter what B is (defaulted or otherwise). If you then wish to specify different behaviour for a particular B, then you do specialization of the class, not just of a method.

(Heavily edited)

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I think that some combination of @KerreckSB's answer, and maybe mine, might be correct. I'm not sure what the ultimate goal is. Ultimately, I think a totally-unspecialized foo1() will need to be implemented sooner or later, like the one I have written. –  Aaron McDaid Jan 3 '12 at 23:30
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