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Why are protected members allowed in final classes?

Shouldn't this be a compile-time error?

Edit: as people have pointed out, you can get same package access by using the default modifier instead. It should behave in exactly the same manner, because protected is just default + sub-classes, and the final modifier explicitly denies subclassing, so I think the answer is more than just to provide same package access.

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A variant of the question is still valid: Why can we have private static final methods? "Private" implies "final" as well as "static", right? Isn't it redundant? –  gawi Sep 7 '10 at 18:11
    
@gawi: I am not sure how to interpret your comment, but private certainly doesn't imply static/final. –  BalusC Sep 7 '10 at 18:38
    
@gawi: Private implies non-virtual, not static, and it makes no sense to say that "private implies final" since "final" only has meaning in regards to inherited methods. I agree inasmuch as I can't find a valid reason to use "final" in a private method declaration though. –  Mark Peters Sep 7 '10 at 18:51
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You can also have public constructors in abstract classes, which is a commonly used pattern. Just because its not very useful, doesn't make it an error. –  Peter Lawrey Sep 7 '10 at 19:08
    
On methods, "static" is incompatible with final/non-final aspect since static methods cannot be overridden. Having a final static method x() in base class B won't prevent a derived class D to have its own x() method. The final keyword on static methods don't have any signification whatsoever. –  gawi Sep 7 '10 at 19:28

6 Answers 6

up vote 15 down vote accepted

The protected modifier is necessary on methods that override protected methods from a base class, without exposing those members to the public.

In general, you could introduce a lot of unnecessary rules to outlaw implausible combinations (such as protected static), but it wouldn't help much. You can't outlaw stupidity.

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Ah, ok. Because you can't reduce the visibility to make them default or private (which is probably what is intended in a final class), so you can leave them protected or expose them as public. Although in this case making them default does NOT reduce the visibility (since no subclassing is possible), so IMHO the compiler should stop whining. –  Tom Tresansky Sep 7 '10 at 18:23
    
Yes. I should have said you could make them public but you wouldn't want to. Actually protected behaves peculiarly if you override in a different package. I'm not a fan of protected. –  Tom Hawtin - tackline Sep 7 '10 at 18:29
    
Good point, methods are members too! Solid counter-example. –  Mark Peters Sep 7 '10 at 18:40
    
Behaves peculiarly how? Do you just mean it's not intuitive that protected would have package access? –  orbfish Nov 5 '11 at 3:12
    
@orbfish If you have a class with a protected method then a class in the same package can access it. So far so good (well bad, but you know). Now consider a derived class that overrides that method, keeping it protected. Now classes in the original package can't access it unless they assign the object to a variable with type of the base class. That "breaks LSP" and is just ugly. But avoid protected and you wont see it. –  Tom Hawtin - tackline Nov 5 '11 at 9:52

Because protected members can be accessed by other classes in the same package, as well as subclasses.

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Certainly true, though if that's the case you get the same result using the default (package) access, so it could still be a compile error. I think this is just more evidence that they should have kept subclass visibility and package/inner-class visibility as completely separate concepts. Who are they to tell me that if a subclass has visibility, the package must also? –  Mark Peters Sep 7 '10 at 18:06
    
@Mark: Yeah, it clearly wasn't thought through as well as it could be. –  skaffman Sep 7 '10 at 18:08
    
"protected members can be accessed by other classes in the same package" :O really?! I thought that's what package-private was for? –  Amy B Sep 7 '10 at 18:11
    
@Coronatus, see the JLS 6.6.1, java.sun.com/docs/books/jls/third_edition/html/names.html#6.6.1 . \ @Mark Peters, agreed, and package access should not be the default. –  Andy Thomas Sep 7 '10 at 18:14
    
@Coronatus: It is. But so is protected. –  skaffman Sep 7 '10 at 18:22

The protected modifier also allows access within the same package, not just to subclasses. So it's not completely meaningless on a final class.

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30 seconds too sloooooooow :( –  Affe Sep 7 '10 at 18:01

The argument stated here that protected members can be accessed by classes of the same package is valid, but in this case protected becomes equal to the default visibility (package-private), and the question remains - why are both allowed.

I'd guess two things:

  • no need to forbid it
  • a class may be made final temporarily, until a design decision is made. One should not go and change all visibility modifiers each time he adds or removes final
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+1: I was however surprised how quick the "incorrect" answers got upvoted. Does it tell something about the average knowledge? –  BalusC Sep 7 '10 at 18:14

You can argue that, but there's no real harm anyway. A non-final class may also have a protected member, but no subclass, it won't bother anybody either.

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Things that can be proven useless are good candidates for compile errors (warnings would be better) not because they directly "bother" or "hurt" anybody/anything, but rather because there's a very high likelihood of it being a programmer mistake/typo. –  Mark Peters Sep 7 '10 at 18:42
    
how can you prove it's useless? change a final class to a non final class does not even break binary compatibility. –  irreputable Sep 7 '10 at 19:55
package p;

import java.sql.Connection;

public final class ProtectedTest {
    String currentUser;
    Connection con = null;

    protected Object ProtectedMethod(){
        return new Object();
    }
    public ProtectedTest(){
    }
    public ProtectedTest(String currentUser){
        this.currentUser = currentUser;
    }
}

package p;

public class CallProtectedTest {
    public void CallProtectedTestMethod() {
        System.out.println("CallProtectedTestMethod called :::::::::::::::::");
        ProtectedTest p = new ProtectedTest();
        Object obj = p.ProtectedMethod();
        System.out.println("obj >>>>>>>>>>>>>>>>>>>>>>>"+obj);
    }
}

package p1;

import p.CallProtectedTest;

public class CallProtectedTestFromp2 {
    public void CallProtectedTestFromp2Method(){
        CallProtectedTest cpt = new CallProtectedTest();
        cpt.CallProtectedTestMethod();
    }

    public static void main(String[] args) {
        CallProtectedTestFromp2 cptf2 = new CallProtectedTestFromp2();
        cptf2.CallProtectedTestFromp2Method();
    }
}
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2  
Some explanation maybe? –  cheesemacfly Apr 4 '13 at 19:14

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