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Hi so I have a template class called Body, that takes a single sf::Drawable descendant as a template argument, and i'm trying to overide the Render() function only for the case that the template argument is a sf::Shape.

How do i do this in a non-inline way? The code works when I define the function inside the class, automatically making it inline, but I get link errors (multiple Render symbols detected) when I define the function in a seperate .cpp file.

If it helps here's the code that produces an error:

// in the header file
template<typename drawable= void>
class Body : public sf::Drawable
{
    void Render(){Do_Something();
}

template <> 
class Body<Shape> : public sf::Drawable
{
    void Render();
}

// in the cpp file
void Body<Shape>::Render()
{
    Do_Something_Else();
}
share|improve this question
3  
What link errors? You need to a closing brace in the definition of the first Render(), you need to terminate your class definitions with a ; and your definition of Body<Shape>::Render() should be template<> void Body<Shape>::Render() { Do_Something_Else(); } but those would normally be a compile errors, not a link error. –  Charles Bailey Aug 25 '11 at 7:43
    
There are no linker errors because the code does not compile. After I fix typos and define pieces you have omitted, I don't get any linker errors either. Please post a complete compilable example together with the commands you use to compile and link, and any error messages you are getting, verbatim. –  n.m. Aug 25 '11 at 8:02
    
Apparently it is not an original code. –  Janusz Lenar Aug 25 '11 at 8:03

1 Answer 1

up vote 1 down vote accepted

You mean like this?

template <typename T> 
struct Foo {
    int frob() const;
};

// Note: Member function specializations do not require 
//       full class specializations.

template <typename T> 
int Foo<T>::frob() const { return 42; }

template <> 
int Foo<float>::frob() const { return 0xbeef; }


#include <iostream>
int main () {
    std::cout << Foo<int>().frob() << '\n';
    std::cout << Foo<float>().frob() << '\n';
}

Note that the specializations need to be visible where you use them, so in most cases, you have to put them in the header, too.

share|improve this answer
    
yes, I didn't put the template indication before the definition, Thanks! –  Griffin Aug 25 '11 at 8:14
    
However, next time please post real code, yours was not even syntactically valid. Maybe also update the code in your question. Could have justified a removal of my own question "You mean like this?" ;) –  phresnel Aug 25 '11 at 8:15
    
Oh, and note that my code is different from yours. You define a whole new class template specialization, whereas mine does just specialize a single member function, and keeps the class template untouched. –  phresnel Aug 25 '11 at 8:17
    
You still need to put the declaration of the specialization into the header, otherwise the compiler will just generate a definition from the prime template, as it can not know that somewhere in some other TU there is a specialization lurking. –  PlasmaHH Aug 25 '11 at 9:10
    
@PlasmaHH: Of course it is only used where visible. I'll edit my answer to emphasize this. –  phresnel Aug 25 '11 at 9:27

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