10
interface Int {
    public void show();
}

public class Test {     
    public static void main(String[] args) {
        Int t1 = new Int() {
            public void show() {
                System.out.println("message");
            }
        };

        t1.show();
    }
}
18

You're defining an anonymous class that implements the interface Int, and immediately creating an object of type thatAnonymousClassYouJustMade.

  • 2
    This is really useful for event handlers (such as those that use the ActionListener interface). – user166390 Oct 16 '10 at 4:49
8

This notation is shorthand for

Int t1 = new MyIntClass();

// Plus this class declaration added to class Test
private static class MyIntClass implements Int
    public void show() {
        System.out.println("message");
    }
}

So in the end you're creating an instance of a concrete class, whose behavior you defined inline.

You can do this with abstract classes too, by providing implementations for all the abstract methods inline.

4

What this special syntax for anonymous inner classes does under the hood is create a class called Test$1. You can find that class file in your class folder next to the Test class, and if you printed t1.getClass().getName() you could also see that.

0

i think your object has nothing to do with the interface. If you comment out the whole interface, still you will get the same output. Its just anonymous class created. I think, unless you use the class "implements" you cant implement the interface. But i dunno how naming collision doesn't happen in your case.

  • The anonymous class definitely implements the interface, and t1 instanceof Int will be true. – Thilo Oct 17 '10 at 1:37

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