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Short story:

is it possible to do

class A{};
class B:public virtual A{}; 
class C:public virtual A,private B{};

i.e. "showing" that C is an A and not a B, but making it actually a B without adding the virtual (and the corresponding vptrs)?

Long story: A has several methods. B adds some more. Sometimes I want to forbid the use of one of them. C has this purpose. The program has many B, few Cs. I do not want then to make B a subclass of C.

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1  
What is the motivation behind this? Yes, it atleast compiles, but What are you trying to achieve? –  Alok Save Mar 27 '12 at 17:12
    
It would be nice to hear the motivation for this, but I don't understand the downvotes etc. –  Novelocrat Mar 27 '12 at 17:17
    
Thank you @Novelocrat, I added the motivation –  Fabio Dalla Libera Mar 27 '12 at 17:20
    
When you find yourself fighting this much with your tools, it's time to change either your tools or your approach. –  Caleb Mar 27 '12 at 17:31
1  
Real world example. In Qt, there is QSplitter that inherits QWidget. I want my class to be sublcass of QSplitter privately. And I still want it to be QWidget publicly –  Kirill Gamazkov Mar 16 at 8:06

1 Answer 1

Yes, this will do exactly what you intend it to do. But consider another option: inheriting publicly and hiding the unwanted methods:

class A
{
public:
    int a() {return 0xaa;}
};

class B: public A
{
public:
    int b() {return 0xbb;}
};

class C: public B
{
private:
    using B::b; // makes the method called b private
};

...
B().b(); // OK, using method b in class B
C().b(); // error: b is private in class C
C().B::b(); // OK: calling b in base-class (not sure if you want to prevent this)

This will work with both virtual and non-virtual inheritance.

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thank you. However, yes, I would like to prevent at least the possibility of having void f(B& b){ b.b(); } C c; f(c); I can accept the possibility of casting, at least the programmer knows it is doing something potentially dangerous –  Fabio Dalla Libera Mar 28 '12 at 6:58

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