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Why does Java specify that the access specifier for an overriding method can allow more, but not less, access than the overridden method? For example, a protected instance method in the superclass can be made public, but not private, in the subclass.

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3  
To use the common description: B extends A if B is-a A. So if A can do action(), and B is-a A, then B should be able to do action() as well. –  davin Jul 27 '11 at 21:52
    
thank you all. I understand now that the declaration of extension (A extends B) creates a one-way access (more open) inheritance scheme as well. –  yesilupper Jul 28 '11 at 16:42

6 Answers 6

up vote 19 down vote accepted

It's a fundamental principle in OOP: the child class is a fully-fledged instance of the parent class, and must therefore present at least the same interface as the parent class. Making protected/public things less visible would violate this idea; you could make child classes unusable as instances of the parent class.

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Imagine these two classes:

public class Animal {
  public String getName() { return this.name; }
}

public class Lion extends Animal {
  private String getName() { return this.name; }
}

I could write this code:

Animal lion = new Lion();
System.out.println( lion.getName() );

And it would have to be valid, since on Animal the method getName() is public, even tho it was made private on Lion. So it is not possible to make things less visible on subclasses as once you have a superclass reference you would be able to access this stuff.

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You're missing an extends Animal :) –  Jeffrey Jul 27 '11 at 22:59
    
seems a better answer. –  Sandeep Pareek Jul 10 at 12:02

Because it would be weird:

class A {
    public void blah() {}
}

class B extends A {
    private void blah() {}
}


B b = new B();
A a = b;
b.blah();  // Can't do it!
a.blah();  // Can do it, even though it's the same object!
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I think before you changed it was a more concrete example, even though this is a little more outrageous, since you could define such a case to throw a runtime exception on accessing a privately extended method (obviously an invented term). But in your previous example one would have to work, and the other have to fail. Maybe include them both? –  davin Jul 27 '11 at 21:56
    
@davin: I haven't changed it! I just improved the code comment... –  Oliver Charlesworth Jul 27 '11 at 21:58
    
Oh, then I imagined that you had A a = new A(); B b = new B(); or A b = new B(); –  davin Jul 27 '11 at 21:59
1  
I get an error when declaring blah( ) in B as private, saying that Cannot reduce the visibility of the inherited method from A –  mangusta Aug 9 '13 at 9:29
    
In c++ it's okay though –  mangusta Aug 10 '13 at 9:32

Take an example given below

 class Person{
 public void display(){
      //some operation
    }
 }

class Employee extends Person{
   private void display(){
       //some operation
   }
 }

Typical overriding happens in the following case

Person p=new Employee();

Here p is the object reference with type Person(super class),when we are calling p.display() as the access modifier is more restrictive the object reference p cannot access child object of type Employee

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Because a subclass is a specialization of the superclass, or in other words, it's an extension of the superclass.

Imagine for instance the toString method. All Java objects have it because the class Object has it. Imagine you could define a class with the method toString private. You then no longer treat all Objects equally. For instance, you would no longer be able to this safely:

for (Object obj : collection) System.out.println(obj);

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Well, in terms of the specific case you mentioned, how exactly would Java handle that? If the subclass made a public/protected method private, then what should the JVM do when that method is invoked on an instance of the subclass? Honor the private and invoke the superclass' implementation? Further, you're breaking the contract specified by the superclass when you suddenly say "no one can access this method, despite what the contract initially said."

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