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Possible Duplicate:
C++: rationale behind hiding rule

Recently, I learned that redefining, in derived class, non-virtual base class member functions would hide these functions in base class. e.g

class base
{
public:
    virtual ~base() {}
    void process(int x);
    void process(double d);
    virtual base& id();
};

class derived1 : public base
{
public:
    void process();         // hides base process functions
    derived1& id();
    //using base::process;  // this will unhide both base process members
};

int main(){
derived1 d1;
    d1.id().process();
    //d1.id().process(3);
    //d1.id().process(3.5);
    //  won't compile because process() hides base::process(int)
    //  unless we uncomment using base::process; statement in class declaration.
}

This example show that we can make the base functions unhiding, by "using base::xxx" statement. But I have two questions:

  1. Why C++ make hiding overloaded base functions?
  2. How to understand the statement "using base::process;"
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marked as duplicate by Jeff Atwood Mar 20 '11 at 5:33

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
Possible duplicate –  peoro Mar 4 '11 at 4:15

1 Answer 1

The rationale behind the hiding rule was discussed on this question.

using, informally speaking, is a keyword that imports a namespace into another. In your context it just tells the compiler to unhide members (ie: forcing a lookup of ancestor classes).

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