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As an example:

public class Foo {
    private Foo() {}
}

public class Bar extends Foo {
    private Bar() {}

    static public doSomething() {
    }
}

That's a compilation error right there. A class needs to, at least, implicitly call its superclass's default constructor, which in this case is isn't visible in Foo.

Can I call Object's constructor from Bar instead?

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Is there a reason for Foo(){} being private instead of being protected? –  Sven Lilienthal Jan 20 '09 at 16:49
1  
@svelil: Let's say it's in a third party library, or otherwise outside my control, and I want to subclass it. –  Hans Sjunnesson Jan 20 '09 at 17:08

4 Answers 4

up vote 10 down vote accepted

You can't. You need to make Foo's constructor package private at the very least (Though I'd probably just make it protected.

(Edit - Comments in this post make a good point)

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Package-private is sufficient, if both are put in the same package. –  starblue Jan 20 '09 at 16:59
    
@starblue - I believe that's why he said 'at the very least'. –  Ryan Thames Jan 20 '09 at 17:02
    
package is more restrictive that protected, so 'at the very least' is wrong. If both were in the same outer class, I think the private construct would be accessible. –  Tom Hawtin - tackline Jan 20 '09 at 17:06
    
@Tom - Whoops, my bad :P –  Ryan Thames Jan 20 '09 at 18:22

This is actually a symptom of a bad form of inheritance, called implementation inheritance. Either the original class wasn't designed to be inherited, and thus chose to use a private constructor, or that the entire API is poorly designed.

The fix for this isn't to figure out a way to inherit, but to see if you can compose the object instead of inheriting, and do so via interfaces. I.e., class Foo is now interface Foo, with a FooImpl. Then interface bar can extend Foo, with a BarImpl, which has no relation to FooImpl.

Inside BarImpl, you could if you wish to do some code reuse, have a FooImpl inside as a member, but that's entirely up to the implementation, and will not be exposed.

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You won't be able to create an instance of Bar for as long as Foo has a private constructor. The only way you would be able to do it is if Foo had a protected constructor.

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2  
If a superclass has a private constructor, then the subclass won't even compile. –  Rob Williams Jan 20 '09 at 17:04

You can't call Object's constructor directly from Bar while it's a subclass of Foo, it would have to through Foo's constructor, which is private in this case.

When you declare Foo's constructor private, it does not create a default public constructor. Since Bar has to invoke Foo's constructor, it is not possible to leave it private. I would suggest, as others have, on using protected instead of private.

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