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For some reason I seem not to be able to implement an abstract class outside of the package within which it is defined. An abstract class in package1 cannot be implemented in a class in package2. Why is this not legal Java?

package com.stackoverflow.abstraction.package1;

abstract public class BaseClass {
    abstract Long foo();
}

package com.stackoverflow.abstraction.package1;

public class Implement1 extends BaseClass {
    @Override
    Long foo() {
        return null;
    }
}


package com.stackoverflow.abstraction.package2;

import com.stackoverflow.abstraction.package1.BaseClass;

/** Compiling this class will output
* - Implement2 is not abstract and does not override abstract method foo() in BaseClass
* - error: method does not override or implement a method from a supertype
*/

public class Implement2 extends BaseClass {
    @Override
    Long foo() {
        return null;
    }
}

Running: OS X 10.6.8 - Java(TM) SE Runtime Environment (build 1.6.0_31-b04-415-10M3646) - OpenJDK Runtime Environment (build 1.7.0-u4-b13-20120301) Tried both Java versions. Not at the same time, of course :)

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3 Answers 3

up vote 5 down vote accepted

Your two foo methods have the default "package" access. Your Implementation2 class couldn't even call the method - so it doesn't make much sense to be able to override it.

It's not clear what level of access you want them to have, but the simplest approach is probably to make them both public. At the moment, you're saying that only callers in package1 can call BaseClass.foo(), but only callers in package2 can call Implement2.foo(). That clearly doesn't make much sense. Who do you want to be able to access the method? If you only want callers within the class or a subclass to be able to call it, then make it protected - otherwise make it public.

See section 6.6 of the Java Language Specification (and the Java tutorial) for more details of access modifiers. In particular, after going through the various access modifiers:

Otherwise, we say there is default access, which is permitted only when the access occurs from within the package in which the type is declared.

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@brimborium: Fixed, thanks. –  Jon Skeet May 29 '12 at 12:39
    
You sure are quick to expand your answer. Funny to see how it evolves from a single line :) –  oligofren May 29 '12 at 12:39
    
@oligofren: I don't think this particular one was ever a single line, but yes - I start off with the bare bones, then add more context, suggestions, links etc. –  Jon Skeet May 29 '12 at 12:40

That method is package level visibility, so you cant override it at other package.

abstract Long foo();

If a method has no modifier (the default, also known as package-private), it is visible only within its own package

If you really need to override it, make it as protected instead.

protected abstract Long foo();

Info

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1  
+1 it needs to be protected or public –  Peter Lawrey May 29 '12 at 12:34
    
You "can" or you "can't"? –  Edwin Dalorzo May 29 '12 at 12:36
    
@edalorzo it is typo, see updated answer. –  Pau Kiat Wee May 29 '12 at 12:36
    
Thanks, added some info to clear up your answer. Was not entirely clear as it was, but I got the little bit of info I needed, and hopefully it should make sense to others as well :) –  oligofren May 29 '12 at 12:37
    
@oligofren Add explanation. –  Pau Kiat Wee May 29 '12 at 12:40

You have four access modificators:
- public - you can use it everywhere
- private - you can use it only inside class
- protected - you can use only inside class and classes which inherit it
- package access (default, without modificator) - you can use it only in package, which the class belong to

In this case you have no modificator, which in general is treated like package access.

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