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java access modifiers and overriding methods

if the super class has two methods :

  • m1() with the default modifier
  • m2() with protected

If I inherit from this class. The methods of the child class have the right to be Public and Protected only.

WHY ?

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marked as duplicate by Don Roby, Jesper, OSryx, Donal Fellows, Linger Jan 23 '13 at 13:44

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.

1  
you are right ! I will delete my own question –  OSryx Jan 23 '13 at 12:21
    
I can't delete my question, it has Answers. –  OSryx Jan 23 '13 at 12:27

4 Answers 4

up vote 4 down vote accepted

In one sentence,

Overriden methods can only have least restrictive access modifiers.

List of access modifier starting with least restrictive at the begining.

  public ---> least restrictive
  protected 
  default 
  private ---> most restrictive

say in your super class method you have a method m1() with public access modifier, now in your sub-class if you make it private(most restrictive), then

From some other class, you create Subclass object using super class reference like below.

Super s = new Sub();
   s.m1(); //calling a private method at run-time whihc isnt legal

as you know in this case sub'class's m1() should be invoked as you have overriden m1() in your sub-class, but if you make it private in your sub-class and try to access this way from another class, you are loosing the concept of private

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Why ? that's my question ??? –  OSryx Jan 23 '13 at 12:20
1  
@ALJIMohamed check my edit :) –  PermGenError Jan 23 '13 at 12:28

Using default, access is restricted to sub classes in same package.If your child class is outside package, you cant access it.

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A subclass is not allowed to reduce the visibility of the methods it overrides. Since Java has a clear hierarchy of visibility modifiers:

  1. public
  2. protected
  3. default
  4. private

the overriding method can only move up this list, never down.

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Read the answer of @GanGnaMStYleOverFlow.

Here are more details.

If you extend class you cannot reduce visibility of its members because client that uses these members must be able to continue doing it. For example:

class Base {
    public void foo() {}
}

Base base = new Base();
base.foo();

Now I extend class Base:

class Child extends Foo { }

And can still invoke its method foo() although it is inherited from base:

Base base = new Child();
base.foo();

Let's modify the implementation of Child:

class Child extends Base {
    @Overrides
    private void foo() {}
}

Is the following code still valid:

Base base = new Child();
base.foo();

We cannot answer this question. Indeed foo() is public in Base and therefore can be invoked by client. But it is private in Child and therefore cannot be accessed. To avoid this ambiguity compiler does not allow you to reduce the visibility of fields and methods.

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