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I have that template class that uses a policy for it's output and another template argument to determine the type for it's data members. Furthermore the constructor takes pointers to base classes which are stored in private pointers. Functions of this objects shall take a this pointer to the template class to give them access to the data. In code this looks like this:

class ShapeGenerator;

template <typename PointData, typename OutputPolicy> class ModelCreator {
private:
    OutputPolicy output;
    ShapeGenerator* shape
    std::vector<PointData> data;
public:
    ModelCreator (ShapeGenerator *s) : shape(s) { }
    void createShape() { shape->generateShape(this); }
};

ShapeGenerator is an interface and shall be implemented. It looks like this:

class ShapeGenerator {
public:
    void generateShape (ModelCreator* m) = 0;
};

If I compile this with g++ 4.3.4 (cygwin) I get an error in the ShapeGenerator::generateShape saying 'ModelCreater' is not a type. I put in a forward declaration of ModelCreator but it changed nothing. I played with some combinations of types and parameters, for example passing only the vector and then I got an error message that said something about incomplete types. I guess this is the problem here.

So, is it possible to pass a templated type with without specific arguements? If so, how?

edit: I'm not bound to the ModelCreator typename. If I have to write it more template-like this isn't problem. But I would like not to specify the types of ModelCreator in the ShapeCreator object. Is that possible?

edit2: Ok, I guess I was a bit to optimistic with this "design". It would have been nice to just throw in some ingrediences and get a soup. But now the salt has to know about the kind of water in the pot. I'll change the templates to plain old composition. Thanks you guys.

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4  
Your design needs changing. There is no ModelCreator type, that's a template class. It cannot be a parameter to your function. –  GManNickG Jul 9 '10 at 15:47
    
I figured a template generates all functions it uses for all the given types. So in the end there are a whole bunch of overloaded functions. Therefore I figured it should be the same thing with other function, the compiler knows the type at the time I create an object of it –  DaClown Jul 9 '10 at 15:51
    
I'm not sure I understand what you mean, but template's are what's called instantiated whenever all of the template arguments are provided. The compiler can't possibly get by wasting its time trying to generate every function for every combination of types. –  GManNickG Jul 9 '10 at 15:56
    
Then I was simple wrong. What I'm trying to do is to fixate some behavior through a policy and the rest through previously created objects. But this template idea of mine seems to be more of a burden than being a blessing. –  DaClown Jul 9 '10 at 16:03
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2 Answers

up vote 3 down vote accepted

If you want to use the ModelCreator with "free" template parameters, then you have to make ShapeGenerator a template too:

template <typename PointData, typename OutputPolicy> 
class ShapeGenerator {
public:
    void generateShape (ModelCreator<PointData,OutputPolicy>* m) = 0;
};

or

template <template <typename, typename> class ModelCreator> 
class ShapeGenerator {
public:
    void generateShape (ModelCreator* m) = 0;
};

The second version takes another template as a parameter. You would use it like this:

ShapeGenerator<ModelCreator<PointDataType,OutPutPolicyType> > shapeGenerator; 
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You need to make ShapeGenerate a template class as well:

template <typename PointData, typename OutputPolicy>
class ShapeGenerator;

template <typename PointData, typename OutputPolicy>
class ModelCreator {
private:
    OutputPolicy output;
    ShapeGenerator< PointData, OutputPolicy >* shape;    
    std::vector<PointData> data;
public:
    ModelCreator (ShapeGenerator< PointData, OutputPolicy >* s) : shape(s) { }
    void createShape();
};

template <typename PointData, typename OutputPolicy>
class ShapeGenerator {
public:
    void generateShape (ModelCreator< PointData, OutputPolicy> * m) = 0;
};

template <typename PointData, typename OutputPolicy>
void ModelCreator< PointData, OutputPolicy >::createShape() { shape->generateShape(this); }
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