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Does it make a difference to mark methods as public in package-private classes?

class SomePackagePrivateClass
{
    void foo();          // package private method

    public void bar();   // public method
}

Is there any practical difference in visibility between foo and bar here?

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up vote 11 down vote accepted

If the class is not going to be extended by another, more visible subclass*, the only difference is clarity of intent. Declaring all methods package private makes it more difficult for future readers to determine which of the methods are meant to be called by other classes in the same package.

*which would not make much sense as a design solution to me, but technically is possible nevertheless.

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1  
"Declaring all methods private" should be read "Declaring all methods package-private", and "the enclosing class" as "other classes", I guess, but otherwise +1 – Puce Mar 10 '11 at 14:26
    
@Puce, correct, I misread the question slightly. Now fixed, thanks :-) – Péter Török Mar 10 '11 at 16:48

Example using inheritance:

A.java

package pkg1

class A {
  void foo();
  public void bar() {};
}

B.java

package pkg1

public class B extends A{

}

C.java

package pkg2

public class C {
  public void doSomething() {
   B b = new B();
   b.bar(); //ok
   b.foo(); //won't work, since foo() is not visible outside of package 'pkg1'

   A a = new A(); //won't work since A is not visible outside of package 'pkg1'
   a.bar(); //won't work, since a cannot be created
  }
}
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Another case where the method has to be public is when you are creating a package private implementation of some public class or interface. Since you are not allowed to reduce the visibility of overridden methods, these have to be public.

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It makes very little difference, unless the class is extended by a public (or protected nested) class.

As a matter of consistency, I'd go for public. It should be rare for methods to be anything other than public or private.

There are a number of examples of public methods in the package private java.lang.AbstractStringBuilder class. For instance length() is public in AbstractStringBuilder and is exposed in the public class StringBuilder (overridden in StringBuffer to add synchronisation).

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does extending a private class make sense.? – Deepak Mar 10 '11 at 13:53
1  
Extending a package private class can make sense, e.g. when the class provides some internal base which is shared by different implementations in the package (there are some Open Source projects which are doing this). – Thomas Mar 10 '11 at 14:05
    
AbstractStringBuilder (?) is extended by StringBuffer and StringBuilder (it's in the API docs, but that's probably a bug/misfeature in JavaDoc). – Tom Hawtin - tackline Mar 10 '11 at 14:19

Well... i had this doubt also (that's why i searched for this thread). This might be a good question.

But ...

After a second thought, things are really simpler than we thought.

A package-private method, is a package-private method.

Seems nonsense? But ...

A package-private method, even if its class is inherited, it is still a package-private method.

Does it make more sense now? For a more verbose explanation:

A package-private method, even if its class is inherited by a more visible subclass, it is still a package-private method.

If the subclass is of the same package, those package-private methods are also inherited, but they are still package-private.

If the subclass is of the different package (of here, we need the parent class to be public, with some package-private methods), those package-private methods are not inherited (because they are not visible at all).

A point to note, which may be the cause of this doubt, that a package-private method in a public class is not visible outside its package also.


The above explains about the package-private method. And the case of the public-method is just the same.

When a package-private class is inherited by a pubic subclass (of the same package, this is a must), its public methods are inherited as public methods, and thus they become public methods in a pubic class.

In the OP example, as foo() and bar() are both in a package-private class, their visibilities are limited to package-private at this moment, until further codes are added (e.g. inheritance).

Hope this is clear (and simple) enough.

P.S. the Java access control table

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foo has default package visibility where as bar has public visibility

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But bar doesn't really have public visibility because it is in a class that has default access ("package private"). – Tom Hawtin - tackline Mar 10 '11 at 13:52
    
public void bar the modifier used here is public so i guess it has public visibility.please correct me if im wrong – Deepak Mar 10 '11 at 13:56
    
public void bar() has public visibility, but as Tom said, practically you don't have public access to the class and thus no real public access to the method (since you don't even see the class). When inheritance is involved things become different though, just as Tom pointed out in his answer. – Thomas Mar 10 '11 at 14:03
    
@Thomas,I will highly thankful to you if you can give me a working CODE example.im quite confused now. – Deepak Mar 10 '11 at 14:06
    
Please see my answer. – Thomas Mar 10 '11 at 14:15

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