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I understand that protected access means that one can access the member within the package and any subclass, regardless of the package. What I find hard to understand is that, in a subclass, when I create an object of the class which has the protected member, I get a "not visible" error? This is demonstrated by the following code (which is an expanded version based on an answer by YiFan Wu). Note that I have the same lines of code inside and outside of the package. Thus I have two questions:

  1. Why does using the object change everything?
  2. This object access difference does not happen within the package i.e. see test() in class A1.

    package a;
    public class A{
        protected int a;
    }
    class A1{
        public void test(){
            A ref = new A();
            ref.a=8;    // no issue
        }
    }
    
    package b;
    public class B extends A{
    }
    
    package c;
    public class C extends B{
        public void accessField(){
            a = 2;   //That works.
    
    
            A ref = new A();
            ref.a=8;   // not visible!!
        }
    

    }

Any help much appreciated...

Thanks, Sean.

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2 Answers 2

Because C is in another package, and you're creating an A, not a subclass of A.

Flip the question on its head: why should it be visible? You already know the packaging rules, and you already know the field access rules.

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In fact this is compiler laziness: if you did C ref = new C(); you would have access to ref (I guess). Many criticize just that. –  Joop Eggen Feb 6 '13 at 17:29
    
Hi Dave, that first line really explains it. My confusion arose because I expected to be able to access a protected member once inside a subclass (regardless of package). However, as you explained, once inside a different package, only the subclasses have access and thus I need to create an object of the subclass (or be inside a method of the subclass itself)... Many thanks, Sean. –  Sean Kennedy Feb 6 '13 at 17:56
    
Thanks @JoopEggen. What you suggested worked fine... –  Sean Kennedy Feb 6 '13 at 18:00

In the last case you're making a new instance of an A object. This is completely different from using an instance of the subclass to access its parent class's members.

When you create a subclass, it creates a parent class first. The only subclass that has access to protected members in the parent instance is that subclass that the parent class was created with.

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Thanks. Your comment ties in with what @DaveNewton said above... –  Sean Kennedy Feb 6 '13 at 18:07

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