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I have a template function which is explicitly instantiated for Base class, but not for Derived class. How can I force the uses that pass a Derived class (or other derived classes) to match against the Base class?

Header file:

class Base {
};
class Derived : public Base {
};
class Derived2 : public Base {
};

template <typename Example> void function(Example &arg);

Implementation file:

// Explicitly instantiate Base class:
template void function<Base>(Base &arg);

// Define the template function:
template <typename Example> void function(Example &arg) {
  // Do something.
}

Because I have not explicitly instantiated function for Derived or Derived2, I get undefined references, however, I would like to bind against the Base class which is explicitly defined.

How can I force the template to resolve to the Base class for all objects derived from Base using C++-03?

Can I do it somehow with a specialization of the Derived class to the Base class definition?

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6  
Instead of using a template, why not using a set of overloaded functions? That way the compiler knows which set is available and can choose accordingly. If you want to share implementation, have those functions forward to a template. –  Sjoerd Jan 30 '13 at 19:53
    
If the argument to function should always be Base&, then function should not use a template parameter in its parameter list, and probably should not be a template at all. –  aschepler Jan 30 '13 at 19:56
    
@Sjoerd because there are around 20 overloadings, I'd rather not have those in the header file and instead move them to the implementation as explicit instantiations and further, I now only have the definition showing up once instead of twenty times for each overloading. –  WilliamKF Jan 30 '13 at 19:57
1  
You can always cast the arg to a (Base&)derived when you call the function... :) –  Alex Jan 30 '13 at 19:57
    
@Alex I'd prefer to not do this at the caller as that seems messy to me. I'd like to tell compiler in the header file to do this. –  WilliamKF Jan 30 '13 at 19:58

1 Answer 1

up vote 4 down vote accepted

How about:

template <> void function(Derived &arg)
{
     function<Base>( arg );
}

EDIT: You can also do this with function overloading, as aschepler has suggested:

void function(Derived &arg)
{
     function<Base>( arg );
}

It's conceptually the same, although, I agree, slightly better :)

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1  
Prefer function overloading to explicit specialization of a function template: inline void function(Derived& arg) { function<Base>(arg); } –  aschepler Jan 30 '13 at 20:10
    
@aschepler I think the compiler would match the template definition before matching the overloading you give here. –  WilliamKF Jan 30 '13 at 20:43
1  
When a non-template function and a function template specialization have the same function type, overload resolution always picks the non-template. –  aschepler Jan 30 '13 at 20:50

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