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This is what I'm doing now. Is there a better way to access the super class?

public class SearchWidget {
    private void addWishlistButton() {
        final SearchWidget thisWidget = this;
        button.addClickHandler(new ClickHandler() {
            public void onClick(ClickEvent event) {
                // A better way to access the super class?
                // something like "this.super" ...?
                workWithWidget(thisWidget);
            }
        }
    }
}

I'm programming with Google Web Toolkit, but I think this is really a generic Java question.

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1  
"super" refers to the class one level up the inheritance hierarchy, which is misleading since inheritance has nothing to do with what you want. You want access to the containing class. –  Thomas Lötzer May 18 '10 at 15:24
1  
Agree! Question is phrased incorrectly and I am wondering why/who up voted this. Martijn Courteaux has given the answer you are looking for –  ring bearer May 18 '10 at 15:36
    
Out of curiosity, why do you need to interact with the super class? All static methods declared in the super class also appear in its children, as well as any non-overridden public/protected methods... and one must assume methods are overridden for a reason. –  Powerlord May 18 '10 at 15:40

3 Answers 3

up vote 15 down vote accepted

You can use what is called the qualified this.

JLS 15.8.4. Qualified This

Any lexically enclosing instance can be referred to by explicitly qualifying the keyword this.

Let C be the class denoted by ClassName. Let n be an integer such that C is the n-th lexically enclosing class of the class in which the qualified this expression appears. The value of an expression of the form ClassName.this is the n-th lexically enclosing instance of this (§8.1.3). The type of the expression is C. It is a compile-time error if the current class is not an inner class of class C or C itself.

In this case, you can do what Martijn suggests, and use:

workWithWidget(SearchWidget.this);

References

Related questions

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The JLS links don't go to the spec itself now, but rather a containing page. Suggest updating the links. –  Platinum Azure May 17 '12 at 17:32

You can write the name of the outer class and then .this. So:

workWithWidget(SearchWidget.this);
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2  
@Gerdemb: Start accepting answers on your questions. You have only 24% accepted answers. If you never accept answers, people are going to left your question for what it is, because you will not accept them. –  Martijn Courteaux May 19 '10 at 11:40

To access super of the object that contains an object of an anonymous class from that object, try, in your case SearchWidget.super


Example:(see the third call Child.super.print())

public class Test1 {
public static void main(String[] args) {
    new Child().doOperation();
}
}

class Parent {
protected void print() {
    System.out.println("parent");
}
}

class Child extends Parent {
@Override
protected void print() {
    super.print();
    System.out.println("child");
}

void doOperation() {
    new Runnable() {
        public void run() {
            print();              // prints parent child
            Child.this.print();   // prints parent child
            Child.super.print();  // prints parent
        }
    }.run();

}
}
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2  
How did you come up with this syntax? –  ring bearer May 18 '10 at 15:37
    
in my case, per accident. I used methods from the container class and eclipse added the qualifier. –  Sean Patrick Floyd May 18 '10 at 15:57
    
@ring bearer: I added an example. –  True Soft May 18 '10 at 16:09
    
Alright, can you use this as a variable? for example can you call a testMethod(Parent p) as testMethod(Child.super) - I guess NO? –  ring bearer May 18 '10 at 16:45
    
Yes, it does not make sense to call testMethod(Child.super), since there is only one object, calling super does not give you another object. However, the OP didn't specify in the title correctly what he wanted (the original title was "Accessing the super of this...") and first I understood something else. –  True Soft May 18 '10 at 17:31

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