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Why should a super method hand out it's this reference as super type instead of own type?

I don't understand the practicality of this behavior. I learned to code against Types/Interfaces and not against classes, but considering this kind of behavior I'm confused about everything I thought OOP was standing for. This breaks possibility of clean code and forces me to fill it with verbose control flow like heavy use of the instanceof operator. Why does that kind of behavior make even sense?

Abstract:
Consider this code:

abstract class A {
    public void visit(Target t) {
         t.method(this);
    }
}

If Target overloads method() with A and different child classes of A in it's signature and these children don't override visit(Target t) themselves then overloaded method(A a) will be choosen by compiler always.

Working example: http://pastebin.com/EGNpY7pF

Code Snip

public class Target {

public static abstract class A {
    void visit(Target t) {
        t.method(this);
    }
}

public static class B extends A {}
public static class C extends A {
    @Override
    void visit(Target t) {
        t.method(this);
    }
}

void method(A a) { System.out.println("A");}
void method(B b) { System.out.println("B");}
void method(C c) { System.out.println("C");}

public static void main(String[] args) {
    Target t = new Target();
    A ab = new B();
    B b = new B();
    A ac = new C();
    C c = new C();

    ab.visit(t);
    b.visit(t);
    ac.visit(t);
    c.visit(t);

}

}

Output A A C C
Which is really akward since ac is referenced to as A-Type but still C's overriden visit() method is called.

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Can you post a more complete code snippet into your question, as your description is somewhat hard to follow. –  Oli Charlesworth Sep 17 '13 at 20:10
    
Having that method in A doesn't mean that implementation gets literally copied into each of its subclasses. There's only one copy of A.visit anywhere, and that one copy refers specifically to the overload t.method(A). –  Louis Wasserman Sep 17 '13 at 20:10
    
here is your code with an output ideone.com/1s14qi –  AVolpe Sep 17 '13 at 20:26
    
I see what you're saying, Louis Wasserman. Since in A's visit it's decided at compile time which method() will be called if no subclass overrides visit() it's static and not dynamic. Weak. –  Alex Goldstein Sep 17 '13 at 20:41
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1 Answer 1

Your question is unclear. When a function is called on an instance of an object the child's method will be called, even if it is referenced as its parent's type; polymorphism. If the child does not override the method then the parent class' implementation of the method will be called; inheritance from hierarchy.

If a class calls its own method prefixing it with super it will find the nearest implementation up the hierarchy which matches the signature.

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