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Based on the tutorial

// Example 2: Explicit specialization 
// 
template<class T> // (a) a base template 
void f( T ){;}

template<class T> // (b) a second base template, overloads (a) 
void f( T* ){;}     //     (function templates can't be partially 
//     specialized; they overload instead)

template<>        // (c) explicit specialization of (b) 
void f<>(int*){;} // ===> Method one

I also test the following with VS2010 SP1 without any warning.

template<>        // (c) alternative
void f<int>(int*){;} // ==> Method two

Question> Which way is recommended way based on the C++ standard? Method one or Method two?

As you can see the key different between Method one and Method two is as follows:

template<>        
void f<>(int*){;}    // ===> Method one

template<>        
void f<int>(int*){;} // ===> Method two
       ^^^

Based on the tutorial, we should write the following plain old function instead:

void f(int*){;}

But that is NOT the question I am asking:)

Thank you

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What is the question? –  Seth Carnegie Apr 14 '12 at 18:41
    
I have updated my question. –  q0987 Apr 14 '12 at 18:43
    
Method one as template<> void f<>(int *) vs method two as template<> void f<int>(int *)? –  Griwes Apr 14 '12 at 18:45
    
I have updated my question again. –  q0987 Apr 14 '12 at 18:59
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1 Answer 1

The full specialization declaration can omit explicit template arguments when template being specialized can be determined via argument deduction (using as argument types the parameter types provided in the declaration) and partial ordering.[from "C++ Templates" by Vandervoode, Josuttis]

This it the case in your example so you can write:

template<>
void f(int){;}

to specialize (a) and

template<>
void f(int*){;}

to specialize (b).

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