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Does super has higher priority than outer class?

Consider we have three classes:

  1. ClassA
  2. ClassB
  3. Anonymous class in ClassB that extends ClassA

ClassA.java:

public class ClassA {
    protected String var = "A Var";

    public void foo() {
        System.out.println("A foo()");
    }
}

ClassB.java:

public class ClassB {
    private String var = "B Var";

    public void test() {

        new ClassA() {
            public void test() {
                foo();
                System.out.println(var);
            }
        }.test();
    }

    public void foo() {
        System.out.println("B foo()");
    }
}

When I call new ClassB().test(), I get the following output (which is pretty much expected):

A foo()
A Var

Question: Is it defined somewhere that inner class takes (methods and members) first from the super class and then from the outer class or is it JVM compiler implementation dependent? I have looked over the JLS(§15.12.3) but couldn't find any reference for that, maybe it is pointed out there but I misunderstood some of the terms?

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3  
I tried to follow the logic in the JLS but didn't have my coffee yet ;-) From experience I'd say: I'm pretty sure that this is well-specified and not implementation-dependent. And if it were implementation-dependent, then it would depend on the compiler and not on the JVM, as that decision is done at compile-time. –  Joachim Sauer May 3 '11 at 9:11
    
@Joachim - I wrote JVM by mistake, thanks for pointing that out. –  MByD May 3 '11 at 9:17

2 Answers 2

up vote 5 down vote accepted

See 6.3.1 Shadowing Declarations:

A declaration d of a method named n shadows the declarations of any other methods named n that are in an enclosing scope at the point where d occurs throughout the scope of d.

Which may be interpreted as "the declaration of foo (inherited from ClassA) shadows the declaration of any other methods named foo that are in an enclosing scope (ClassB) at the point where foo occurs, throughout the scope of foo."

Also relevant - section 15.12.1:

15.12.1 Compile-Time Step 1: Determine Class or Interface to Search

The first step in processing a method invocation at compile time is to figure out the name of the method to be invoked and which class or interface to check for definitions of methods of that name. There are several cases to consider, depending on the form that precedes the left parenthesis, as follows:

  • If the form is MethodName, then there are three subcases:
    • If it is a simple name, that is, just an Identifier, then the name of the method is the Identifier. If the Identifier appears within the scope (§6.3) of a visible method declaration with that name, then there must be an enclosing type declaration of which that method is a member. Let T be the innermost such type declaration. The class or interface to search is T.
    • If it is a qualified name of the form TypeName.Identifier, then [...]
    • In all other cases, the qualified name has the form FieldName.Identifier; then [...]
share|improve this answer
    
@aioobe - Thanks, but it is still not clear to me, because ClassB methods and members are in the scope of the anonymous class. I might be missing that, but I still see no priority for the super class (ClassA in my example) in what you posted. –  MByD May 3 '11 at 9:34
    
Hmm.. true. I'll see if I can find something more specific. –  aioobe May 3 '11 at 9:35
    
@aioobe - thanks again, I hope you don't think I'm sending you to to the work for me, I just looked it over and over again and couldn't figure it out... –  MByD May 3 '11 at 9:36
3  
Oh no. I enjoy browsing the JLS.. I learn something new every time :-) –  aioobe May 3 '11 at 9:38
    
Also §6.5.6 Meaning of Expression Names (java.sun.com/docs/books/jls/third_edition/html/…) –  Donal Fellows May 3 '11 at 9:43

I think you are always going to get "A var".

This is because your test() method implementation is being defined on an anonymous subclass of A. I don't think you can access the B.var instance variable within your test() method unless you explicitly refer to the outer class using ClassB.this.var.

share|improve this answer
    
@The Captain - if I remove var from ClassA, I do get the var from ClassB. I am trying to understand and get confirmation about what should happen in case I don't remove it. –  MByD May 3 '11 at 9:29
    
sure... I think this is because ClassA.var is shadowing ClassB.var in your example. So while both definitions exist, referencing var from A.test() will always get the ClassA version. –  Captain Spandroid May 3 '11 at 9:53

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