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In C++ primer plus it is written that

"If you redefine just one version of function in derived class, the other functions of base class become hidden and cannot be used by objects of the derived class."

Then why does this code call fun1() ,as it should be hidden for the derived class object i.e. obj.

#include<iostream>
using namespace std;
class base
{
    public:
      void fun1()
    {
    cout<<"base"<<endl;

       }
        void fun2(int a)
       {
           cout<<"function2";
       }
};
class derived :public base
{
public:
 void fun2()
       {
           cout<<"fun2";
       }

   };

int main()
{
 derived obj;
 obj.fun1();
 }
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1  
Please learn to type code here...its hard to read your code this way and there are syntax error in your code (like the missing ; at the end of your derived class etc.). And can you quote the place from where you read it if its online? – mtahmed Aug 12 '11 at 6:03
    
@mtahmed:I am sorry.Actually I have just copied and posted. – Gautam Kumar Aug 12 '11 at 6:11
    
No worries man, was just pointing you to the right way to do it in the future... – mtahmed Aug 12 '11 at 6:12

When it says "the other functions of the base class become hidden" it actually means "the base class functions with the same name become hidden in the derived class".

So, if you declare two overloaded versions of fun1 in the base class (say, fun1(void) and fun1(int)), and then declare another version of fun1 in the derived class (say, fun1(double)), the function in the derived class will hide both fun1 functions inherited from the base class.

In your example, the derived fun2 hides the base fun2, but it doesn't hide base fun1. This is why you can successfully call fun1 in your example.

You can observe the fact that derived fun2 has hidden the base fun2 by trying to call

obj.fun2(42);

Since the fun2(int) from the base class is hidden by fun2(void) from the derived class, the call will fail to compile.

share|improve this answer
    
Nice answer. The answer will be complete if you would add how to enable access to the hidden Base class member functions by using the using declaration. – Alok Save Aug 12 '11 at 6:45
    
@Als: Well, it appears that OP is reading a book. The book will probably cover this in due course. – AnT Aug 12 '11 at 6:48
    
Please, no fun1(void) in C++. It only serves to confuse. – dascandy Aug 12 '11 at 7:08
    
@dascandy: I wanted to emphasize that was talking about a parameter-less function. – AnT Aug 12 '11 at 7:25

In the above example you have not redefined fun1, but redefined fun2. so if you call fun1 it would still call the base class function. but if you call obj.fun2() it will class derived class function.

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You haven't redefined any version of fun1; you have only overloaded fun2. This doesn't hide everything in the base class; it hides the other overloads of the same function.

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if you want a function in a derived class do something different to the parent class then you need to make the parent function virtual.

virtual void fun1() { ... }
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