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Does anyone knows how you can trick the C++ compiler to compile something like that (with the condition that TheObservedObject remains inside MyClass ):

template< typename Type >
class Observabile
{
public:
   typename typedef Type::TheObservedObject TheObject;

   void Observe( TheObject& obj ) {}
};

class MyClass : public Observabile< MyClass >
{
public:
   class TheObservedObject
   {
   };
}
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What error are you getting? –  Karl Knechtel Jun 28 '11 at 4:02
    
Did you intend to write typedef Type::TheObservedObject TheObject instead of typename typedef Type::TheObservedObject TheObject? –  Purnima Jun 28 '11 at 4:04
    
The error is that TheObservedObject is not defined. I expect this is happening due to circular compile dependence MyClass->Observabile< MyClass >->Type::TheObservedObject TheObject->MyClass::TheObject. Looks like it can't figure out how to compile it. –  Sasha Jun 28 '11 at 4:10
    
@Purnima no, the typename is required to specify that T::Member is a type, not a static variable. Some compilers don't strictly require it, but gcc does and the standard does (iirc?) –  totowtwo Jun 28 '11 at 19:02

3 Answers 3

up vote 1 down vote accepted

Sadly, that is not directly possible, as MyClass, at the point of instantiation of Observable, is not yet complete and as such you can't access any typedefs. You can work around this by adding a small wrapper:

template< typename Type, typename Wrapper >
class Observable
{
public:
   typename typedef Wrapper::TheObservedObject TheObject;

   void Observe( TheObject& obj ) {}
};

struct MyClassWrapper{
   class TheObservedObject
   {
   };
};

class MyClass : public Observable< MyClass, MyClassWrapper>
{
public:
    typedef MyClassWrapper::TheObservedObject TheObservedObject;
};

Or generelly just put TheObservedObject outside of MyClass(Wrapper).

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Well I know about wrapper solution but I was hooping that you can do it somehow by keeping TheObservedObject defined inside the MyClass. It is unfortunate that you can't forward declare inner classes in C++ :-(. –  Sasha Jun 28 '11 at 4:15

Neither you can forward declare the inner class nor you can access them as incomplete type from the template Observable. However, in such case, you can have one trick.

// make inner class external
class TheObservedObject
{
  private: // make everything private
  friend class MyClass;  // make friends with original outer class
};

Thus, effectively TheObservedObject is accessible only for MyClass.

Now you can change class Observabile<> accepting 2 parameters and pass the above class also. This might impose certain limitations, but it can be a close match.

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As others have said, MyClass is incomplete at the point where Observable is instantiated. However, you could use a traits class. Something like this might work:

template<class T>
struct ObservedObject {};

template<class T>
class Observable
{
public:
    typedef typename ObservedObject<T>::type TheObject;

    void Observe(TheObject& obj) {}
};

class MyClass;  // forward decl

class MyClassObservedObject
{
    // define outside of MyClass
};

template<> struct ObservedObject<MyClass>
{
    typedef MyClassObservedObject type;
};

class MyClass : public Observable<MyClass>
{
    //
    // ...
    //

private:
    friend class MyClassObservedObject;
};
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