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I want to invoke a protected method of another instance from within a subclass of the class providing this protected method. See the following example:

public class Nano {

    protected void computeSize() {
    }

}

public class NanoContainer extends Nano {

    protected ArrayList<Nano> children;

}

public class SomeOtherNode extends NanoContainer {

    // {Nano} Overrides

    protected void computeSize() {
        for (Nano child: children) {
            child.computeSize();            // << computeSize() has protected access in nanolay.Nano
        }
    }

}

javac tells me that computeSize() has protected access in Nano. I can't see the reason for this (I thought I was already doing this in some other code). I'd like to keep this method being protected, what can I do?

javac version "1.7.0_09"

Edit

I wanted to provide a stripped down version, but I didn't think about the fact, that the classes lie in different packages.

nanolay.Node
nanolay.NanoContainer
nanogui.SomeOtherNode
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1  
Can you also show the packages the classes are in? –  Scorpion Jan 18 '13 at 17:30
    
Ahh, the packages.. didn't think about that. I wanted to provide a stripped down version of the code. I've edited the question. –  Niklas R Jan 18 '13 at 17:30
    
Can you please add package qualification to the question title, since that seems to be relevant? –  Miserable Variable Jan 18 '13 at 18:13
    
@MiserableVariable: This okay? I also replaced the instance-methods with the packages tag. –  Niklas R Jan 18 '13 at 18:18
    
Yes, this is good. BTW the accepted answer needs some corrections. –  Miserable Variable Jan 18 '13 at 18:46

2 Answers 2

up vote 1 down vote accepted

You could access the protected methods either by subclassing and overriding; also when they are available in the same package. I will add some details. You can read details here.

The example that you have is on lines of the protected clone() method available in the Object class in java; you cannot directly call it on any object (although all object implicitly extend from the Object class).

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But I cannot subclass and call the method on another instance of the superclass, as I'm doing above? (Assuming they are in different packages, because it works when they are in the same package) –  Niklas R Jan 18 '13 at 17:41
    
An instance of someothernode object has access to the protected computeSize method but not of some other instance of someothernode - so not in the for loop. –  Scorpion Jan 18 '13 at 17:44
    
@Scorpion that seems incorrect. This compiles without error if they are all in same package. –  Miserable Variable Jan 18 '13 at 18:44
    
clone cannot be called because it is protected in Object, which is in package java.lang and this class is not in that package. –  Miserable Variable Jan 18 '13 at 18:45
    
Yes, it would compile correctly if all the classes are in the same package. The clone example illustrates that - a protected method in a different package cannot be invoked; so you create an employee class outside java.lang, so the clone method on this employee class object cannot be invoked unless it exposes it via public modifier –  Scorpion Jan 18 '13 at 18:51

Don't know the rationale, but JLS confirms this in 6.6.2. Details on protected Access (emphasis mine):

A protected member or constructor of an object may be accessed from outside the package in which it is declared only by code that is responsible for the implementation of that object.

So:

package P2;
public class P2 {
    protected void foo() {}
}

.........

package P2A;    
class P2A extends P2.P2 {
    void bar(P2.P2 other) {
        this.foo(); // OK
        other.foo();  // ERROR
    }

    void bar2(P2A other) { 
        other.foo(); //OK
    }
}   

In P2A.bar a call to this.foo() is accessible because this is responsible for implementation of P2 but other.foo() is not accessible because other may not be a P2A. bar2 on the other hand has a P2A so it is all good.

Now, why all is OK if they are all the same package but not if they are different packages? What is the rationale? I don't know and would like to know.

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Thanks for this summary, I definately agree with you. This behavior does not seem legit to me. –  Niklas R Jan 18 '13 at 18:17
    
Perhaps you can ask another question about the rationale> It may not be suitable for this forum, but programmers likes these types of questions –  Miserable Variable Jan 18 '13 at 18:50

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