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Ex:

class A {
    protected Integer x;

    class A () {
       x = new Integer(0);
    }

    public setX(Integer m) {
       x = m;
    }
}

class B extends A {

    public class B () {
       super();
    }

    public static void main () {
       B b = new B();
       b.setX(69);
       System.out.println("Value of x is: " + b.x);  // expect to be 69. Is it correct?      
    }
}
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5  
By the way, you could have tried it on your own:) –  Petar Minchev Mar 30 '11 at 8:52
    
I bet it took you as long to ask this question as it would have done to try it. Perhaps you had a different result on your local machine? Please don't take that as an attack, you have asked a perfectly valid question :) –  Rich Mar 30 '11 at 8:53
    
Thank you all. I actually just wanna verify my thoughts because Im in middle of a debugging a big project. Thanks again! –  tsubasa Mar 30 '11 at 9:03
    
BTW: I would use an int rather than an Integer here. –  Peter Lawrey Mar 30 '11 at 9:12

3 Answers 3

up vote 3 down vote accepted

Yes, this is what is protected for:)

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i just edited my codes. can you pls take a look? –  tsubasa Mar 30 '11 at 8:52
1  
@tsubasa - Yes, I see no problem with your code:) By the way, we are not a compiler here:) –  Petar Minchev Mar 30 '11 at 8:55
    
i understand :) –  tsubasa Mar 30 '11 at 9:03

Protected access means that the member (or method) is visible from within the same package and within the class hierarchy. So yes, your code does have the expected result.

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It's not considered a good practice to use protected variables with inheritance.

The right way to do this (without violating encapsulation) is using private accesors for the variables and public (or protected) getters and setters.

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