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In my header I got a typedef for a external library template together with a function like:

#include "ExternalFancyLib.h"
class Fancy


  typedef FancyClass<int , 3> FancyClassType;

  FancyClassType::Pointer FancyFunction ();

In my *.cpp file I got:

#include "Fancy.h"

FancyClassType::Pointer Fancy::FancyFunction()
  // do and return smth.

My always friendly compiler tells me that "::" must be followed by a class or namespace, referring to FancyClassType.

Any idea to solve this with elegance?

Cheers Usche

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Please post the exact and complete compiler error –  quantdev Jul 25 '14 at 12:06
error C2653: 'FancyClassType' : is not a class or namespace name –  Die Usche Jul 25 '14 at 12:17
You should be quite explicit when you make a question and make sure to add the appropriate code. The initial description did not mention that the typedef is nested inside a class definition, which is the core issue. Writing good questions is more than half the way to getting good answers. –  David Rodríguez - dribeas Jul 25 '14 at 13:21

2 Answers 2

up vote 1 down vote accepted

FancyClassType is defined inside your Fancy class, so you have to specify that, too:

Fancy::FancyClassType::Pointer Fancy::FancyFunction(){}

FancyClassType::Pointer is looked up using the current scope. Inside your class definition, this includes the definitions in Fancy. In your Cpp File, the name is resolved in the global scope, so it would render ::FancyClassType::Pointer (neglecting namespaces here). This is not defined.

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Ah ofc! Thanks! Thats awesome! –  Die Usche Jul 25 '14 at 13:33

I have a strong feeling that your FancyClassType needs to go in place of FancyClass<int , 3> also, you need to reference the Fancy:: when using your typedef

Your code in the cpp file should look like this:

#include "Fancy.h"

Fancy::FancyClassType::Pointer Fancy::FancyFunction (){
// do and return smth

Otherwise you are not actually calling the typedef you made.

Another way I can think of is adding ::Pointer to the typedef you you only need to call

Fancy::FancyClassType Fancy::FancyFunction (){
    // do and return smth

That's the best I can come up with... hope it helps

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