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I know for the case of overriding methods Java follows dynamic binding. But if we call a child only method from the parent reference variable, which is referring to child object, we got compilation error.
Why java follow this design (i.e. why no dynamic binding in second case)?

class A{
    public void sayHi(){ "Hi from A"; }
}


class B extends A{
    public void sayHi(){ "Hi from B"; 
    public void sayGoodBye(){ "Bye from B"; }
}


main(){
  A a = new B();

  //Works because the sayHi() method is declared in A and overridden in B. In this case
  //the B version will execute, but it can be called even if the variable is declared to
  //be type 'A' because sayHi() is part of type A's API and all subTypes will have
  //that method
  a.sayHi(); 

  //Compile error because 'a' is declared to be of type 'A' which doesn't have the
  //sayGoodBye method as part of its API
  a.sayGoodBye(); 

  // Works as long as the object pointed to by the a variable is an instanceof B. This is
  // because the cast explicitly tells the compiler it is a 'B' instance
  ((B)a).sayGoodBye();

}
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3 Answers 3

up vote 1 down vote accepted

Before the dynamic dispatch of method invocation could come into action, the code has to go through the compiler. When you invoke a method using a reference of a class C, compiler looks out for declaration of that method in that class C. Compiler only worries about what the reference type it is. It can only validate a method invocation on that much information. If it can't find the method in class C it will give you compiler error.

So, for the invocation:

a.sayGoodBye(); 

Since a is an reference of class A, compiler will look for the method in class A, and if it cannot find, it will give compiler error.

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But at runtime it follows dynamic binding. Means I can say that for the call a.sayHi() compile try to find sayHi() declaration of sayHi() in A and as it exists there, so no error. Then at runtime things are called on the basis of object (i.e. memory address) and there lies C's definition of sayHi() so it is called. And for method sayGoodbye as you get the error at compile time (as you explained), there should be no question of which definition is getting called at the runtime. –  knoxxs Sep 5 '13 at 16:49
    
@knoxxs. Yeah exactly. There is no question of behaviour at runtime, when the code doesn't even compile. –  Rohit Jain Sep 5 '13 at 16:50

B is a A, but A is not necessarily B. So B's method cannot be invoked on A reference

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but in case of method overriding it is happening. –  knoxxs Sep 5 '13 at 16:39

Think it like that: When B extends A; it means

B = <All non-private stuff of A> + Its own stuff

It means B has all the privilege to use the stuff of A. (Its like A becomes a subset of B)

But A never knew about B here and what B contains; so, it cannot use B's stuff. If someway it is need to force A to behave like B (we use cast) and since here A is not B; the casting will fail at runtime.

To know more about Java casting, please read This thread

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But then why in case of overriding A can access B's method definition? –  knoxxs Sep 5 '13 at 16:43
    
I did not get 'overriding A' thing? Could you please add an example of overriding A and accessing B's method? If you are saying about the second case failure in your example, it is because at the compile time, the reference is of Type A; so only the methods of A is visible. If you knew that A is indeed keep a reference on B, you need to tell the compiler by using Casting. Since B is a child of A, any reference on B does not need a casting, because compiler for sure knows that B is an A (and hence it can behave like A). –  gyan Sep 5 '13 at 16:50
    
See what is get printed when you call a.sayHi(). –  knoxxs Sep 5 '13 at 16:53
1  
This is called runtime binding. Honestly, compiler never knew that it will end us with a B object at runtime. All it knew that the reference is of type A and A has a method called sayHi() .. it is all happy with this. Compiler never knew that there is a class B which is overriding sayHi(); actually it does not care.. it is simply checking if you are calling a method, which belongs to reference type or not. continued.... –  gyan Sep 5 '13 at 16:59
1  
Continued from last comment.... Since At runtime, object got changed and it was holding the method (either inherited or overriden); the method got executed. If B would not have overriden the A's sayHi(); it would end up executing A's method. –  gyan Sep 5 '13 at 17:00

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