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I'm trying to wrap my head around inheritance in java. So far I understood that if i declare an object in the following fashion: Superclass object = new Subclass() the created child object is restricted to the methods of the parent object. If I want to access the additional methods of the child i would have to cast to the child. But why are methods still overridden in the child class.

Here's my example

public class Parent {

    public Parent() {       

    }

    public void whoAmI(){       
        System.out.println("I'm a parent");
    }

}
public class Child extends Parent { 

public Child() {        

}

public void whoAmI(){       
    System.out.println("I'm a child");
}

public void childMethode() {
    System.out.println("Foo");

}
}

public class Test {

/**
 * @param args
 */
public static void main(String[] args) {
    // TODO Auto-generated method stub

    List<Parent> list = new ArrayList<>();      

    Child c = new Child();  
    Parent p = new Parent();
    Parent pc = new Child();

    c.whoAmI();
    p.whoAmI();
    pc.whoAmI();

    // Access child methodess
    ((Child) pc).childMethode();

    list.add(c);    
    list.add(p);
    list.add(pc);

    System.out.println(list.size());

}

}

pc.whoAmI() prints "I'm a child". Why doesn't it print "I'm a parent"?

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This article may be helpfull –  Pshemo Dec 2 '12 at 15:12
    
also logically it makes sense to call actual object methods. see my example below –  Narendra Pathai Dec 2 '12 at 15:25
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5 Answers

To avoid confusion, be sure to understand that the subclass object you create always contains all the methods. Downcasting is a no-op; you just treat the very same object as an instance of the subtype.

Corollary: you can never change the behavior of an object by downcasting. It directly follows from this that you always access the same overriding method and never a method from the superclass.

This kind of behavior allows you to substitute different behaviors for the same declared supertype. It's called polymorphism and is the workhorse of Java programming, and OOP in general. Without it there would be no point in having a class hierarchy in the first place. At least, it would be much, much less useful.

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Thanks your for the explanation. So by declaring Parent pc = new Child(); pc would still have the additonal child methode but i couldn't access it, right? The whoAmI methode is always overridden because that's how java creators imagined it to be. –  user1870482 Dec 2 '12 at 15:18
    
It's a little bit more than java creators imagining it to be since it is the cornerstone of all OOP all the way back to Smalltalk. Yes, all the methods are there, and it is only the compiler that will refuse compiling code that calls a method not declared on the variable type. –  Marko Topolnik Dec 2 '12 at 15:33
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You can imagine inheritance as creating hidden member named super.

Each object instance in Java has it's own constant type. You don't change it while casting. While casting you just say to Java that you are sure this object is of subtype.

Overrided methods remain overriden, this is Java's ideology. If you know C++, you can say that all functions in Java are virtual.

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Why is a difficult question to answer, it was a design decision taken by the Java team a long time ago.

They decided that all methods are virtual unless they're explicitly marked as static. In some languages it's the other way around (methods are static by default unless declared virtual), it makes no real difference.

The important thing is to understand how static and virtual methods work. (Or as they are sometimes called in Java: instance and class/static methods.)

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class Person{

   public void run(){
       //running

   }

}

class OneLeggedPerson extends Person{
    @Override
    public void run(){
        //cant run have only one leg
   }
}


Person p = new OneLeggedPerson();
p.run();    //cannot as it is actually a one legged person


Hope that makes sense now..
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Let's say you're Apple, and you're selling iPods.

There might be subtle differences in the way the iPods are built between one factory and another one, or between the first release of a model of iPod and the last one, because the process has changed.

You, Apple, know what kind of iPod you build:

IPodWithFirstWayOfBuildingIt ipod = new IPodWithFirstWayOfBuildingIt();

or

IPodWithSecondWayOfBuildingIt ipod = new IPodWithSecondWayOfBuildingIt();

But the end customer (i.e., the rest of the code) doesn't give a shit about the way the iPod is built. What matters for him is that the iPod works and behaves like an iPod (the way it has been shown in the commercials, or in the end user manual, or in the javadoc of the Ipod class). He doesn't ask the store "give me an iPod with the first way of building it". But the fact is that he gets an iPod with either the first way of building it, or the second way of building it. And the fact that he calls it "an iPod" doesn't change how the iPod has been built, hence :

IPod iPod = new IPodWithFirstWayOfBuildingIt();

is the way to say that. I build an iPod, with the first way of building it, but I'm going to use it like any other iPod, without caring how it has been built.

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