Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Assume that we have a package "p1":

package p1;

public class A {
    protected void method() { }
}

... and we also have a package "p2":

package p2;

import p1.A;

public class B extends A { }

class Tester {
    static void run() {
        new B().method(); //compile-time error
    }
}

Now if we try to compile a whole example we'll stuck at the marked line with compile-time error: compiler just doesn't see a target method in B. Why so?

share|improve this question
    
Beacuse method() is protected? docs.oracle.com/javase/tutorial/java/javaOO/accesscontrol.html –  Oliver Charlesworth Sep 25 '13 at 7:21

3 Answers 3

up vote 2 down vote accepted

Since Access Modifier for A.method() is protected and B extends A, there exists protected B.method() but it is to be noted that, for protected method() in class B, method() is like an "Private Entity" for class B and only "Public Entities" can be referenced from any object and thus new B().method() gives compile time error.

To make your code work, you can change the access modifier.

package p2;

import p1.A;

public class B extends A {

    @Override
    public void method() {
        super.method();
    }
 }
share|improve this answer
    
thanks, I've got your idea. Of course I know that if I mark overrided method as public - everyone and everywhere will be able to reference it. But still... I'm just trying to make some logic, let me explain: 1. protected methods are visible for subclasses and for classes inside the same package... 2. class B "IS-A" class A (because it extends one) - so I assume, that "B" also has the method (because "A" has it) and it's visibility can not be narrowed by overriding... So - if "B" has protected "method" - why it can not be accessed from the same package? –  Ilya Gubarev Sep 25 '13 at 15:15
    
@IlyaGubarev make sense but the thing is method() is of class A which is in different package and thus can't be accessed by Tester. –  TheKojuEffect Sep 25 '13 at 15:30
    
@IlyaGubarev Try overriding protected void method() in B which simply calls super.method(), that may allow you to call method() from Tester. –  TheKojuEffect Sep 25 '13 at 15:36
    
ok, now I think that I've got it (the "method" is a part of "A", not "B", even if "B" IS-A "A"). Actually I've already made just an overrided protected version, just like you had commented before. Anyway it was more of theoretical problem for me - it is just a surprising behaviour of javac, though I really love Java inheritance rules. Thanks for interesting point of view. –  Ilya Gubarev Sep 25 '13 at 19:55

Protected method is visible in all classes which extends the base (even in hierarchy) or within the same package. You are trying to use method in other package and in non-extending class.

share|improve this answer
    
but it's called from Tester class which do not extend A (or B) –  Martin Podval Sep 25 '13 at 7:25

A protected method of a superclass, becomes private in the subclass. If you really want to call it from anywhere then make it public OR ,if you still want to keep your superclass method protected, make a public method in the subclass that calls the (private, inherited) method, something in the subclass like:

public class B extends A { 
      public void callTheMethod(){
             method();
      }
}

and that can be easily called by test class with

class Tester {
    static void run() {
        new B().callTheMethod(); //works well
    }
}
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.