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Editorial Team
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Asked: 2026-05-30T22:22:34+00:00

class Base { public: virtual void func() const { cout<<This is constant base <<endl;

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class Base
{
   public:
   virtual void func() const
   {
     cout<<"This is constant base "<<endl;
   }
};

class Derived : public Base
{
   public:
   virtual void func()
   {
     cout<<"This is non constant derived "<<endl;
   }
};


int main()
{
  Base *d = new Derived();
  d->func();
  delete d;

  return 0;
}

Why does the output prints “This is constant base”. However if i remove const in the base version of func(), it prints “This is non constant derived”

d->func() should call the Derived version right, even when the Base func() is const right ?

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1 Answer

  1. Editorial Team
     virtual void func() const  //in Base
 virtual void func()        //in Derived

    const part is actually a part of the function signature, which means the derived class defines a new function rather than overriding the base class function. It is because their signatures don’t match.

    When you remove the const part, then their signature matches, and then compiler sees the derived class definition of func as overridden version of the base class function func, hence the derived class function is called if the runtime type of the object is Derived type. This behavior is called runtime polymorphism.

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