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C++ equivalent of “super”?

Is it possible to call a base class member function in a sub class, without knowing name of base class? (something like use super keyword in java)

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marked as duplicate by jogojapan, templatetypedef, Robᵩ, Mark B, talonmies Jul 11 '12 at 5:32

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3  
How would you not know the name of the base class? –  templatetypedef Jul 11 '12 at 4:23
    
No, C++ doesn't have an equivalent of super. Since it supports multiple inheritance, a super could refer to several different classes, not just one like in Java. –  Jerry Coffin Jul 11 '12 at 4:28
2  
Since you must name the base class to define the derived class, you must know the name (or, at least, a name) for the base class. Then, there's nothing stopping you from typedef base_class_name super;. –  James McNellis Jul 11 '12 at 4:32
    
@JamesMcNellis: Nothing except decency, good taste, common sense, etc. –  Jerry Coffin Jul 11 '12 at 4:33
2  
@JerryCoffin: Sometimes this is a useful technique. Consider a base class with a very, very long name, e.g. std::conditional<expression, B1, B2>::type, where B1 and B2 are long type names, the expression may be complex, and everything might be dependent. I can recall having done this a few times, though I usually name the typedef base_type or something similar, rather than super (since I've never used this "Java" thing). –  James McNellis Jul 11 '12 at 5:11

1 Answer 1

C++ doesn't have a standard equivalent for super keyword. But there is a microsoft specific one __super which I think achieves the same thing if you are using visual studio.

// deriv_super.cpp
// compile with: /c
struct B1 {
   void mf(int) {}
};

struct B2 {
   void mf(short) {}

   void mf(char) {}
};

struct D : B1, B2 {
   void mf(short) {
      __super::mf(1);   // Calls B1::mf(int)
      __super::mf('s');   // Calls B2::mf(char)
   }
};

Refer: msdn

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Wouldn't that do the same without the __super::? –  steffen Jul 11 '12 at 5:30
    
@steffen It does work if there is only single inheritance and a different function name for struct D. In current case, first call of mf itself cause infinite recursion as the calling function also matches the same. if the struct D's function name is not mf, it will generate a compiler error: reference to 'mf' is ambiguous. –  Ragesh Chakkadath Jul 11 '12 at 5:49

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