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Java code like this:

public class A {
        private static int a;

        public static class B {
                static void funcc() {
                        a = 3;
                }
        }
}


public class C extends A.B {
        public void func() {
                a = 1;
        }
}

When I try to compile it, an error occurs:

C.java:3: error: cannot find symbol
                a = 1;
                ^
  symbol:   variable a
  location: class C
1 error

Why this happens?

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You have a lot of answers already, but you can learn more by compiling your code and then running the commands javap A, javap A$B, and javap C. Also experiment by making B non-static and trying again. –  Ray Toal Nov 25 '12 at 1:33

3 Answers 3

B is static. This makes it equivalent to declaring it at top level. It is not a nested class and does not have access to anything private in its lexically containing class.

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I have changed my code, then, why funcc() in class B can access a directly, and class A can be compiled successfully? –  Yishu Fang Nov 25 '12 at 1:34
    
Being static has nothing to do with it. Class C would not have access to A.a even if B were not static. –  Ted Hopp Nov 25 '12 at 1:38
    
@UniMouS Because it's allowed to "peak" at A's variables; this is a power given to internal classes. However, in this case this is just syntactic-sugar for A.a; the java compiler is smart enough to realize it, so it lets you do it. –  Cory Kendall Nov 25 '12 at 1:45

Nested class B has access to all of the fields and methods of it's enclosing because it is a member of A. Subclasses of B (that are not members of A) do not have that access.

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I think I can understand this problem using your approach now. But think about this: subclass stands for a is-a relation, so class C is-a class B, and class B is a member of class A, so class c is a member of class A, what's wrong with my reasoning? –  Yishu Fang Nov 25 '12 at 1:57
    
@UniMouS - You're mixing up lexical scoping with class hierarchy. These are different things. Class C is not a member of class A because it is not defined within A. There's an analogous issue with package scoping. Consider packages a and b with classes a.A and b.B. Now suppose that b.B extends a.A; this would not make b.B a member of package a. Class b.B will have no access to package-private members of a.A (or any other package-private items in package a). –  Ted Hopp Nov 25 '12 at 3:13

Internal classes don't extend their containing class; they are a class in their own right.

In your example, B is a class which has no methods and no fields. It doesn't have a variable a.

However you could access the variable a inside of the B class, but this is only because a is in its closure; it can peak at A's variables, which is the power of an internal class.

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