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I'm playing with inheritance to try and fully understand it:

I've created a parent class with a private method and overridden it in the child class and made it public. I have also overriden the toString method differently for each class. Looks like this:

public class testparent {
    public String toString(){
        return ("One and two boobaloo");
    }
    private void hitMe(){
        System.out.println("BAM");
    }
}

public class testbaby extends testparent{
    public String toString() {
        return "Bananas";
    }
    public void hitMe(){
        System.out.println("BAMBAM");
    }
    public static void main(String[] args){
        testbaby testy = new testbaby();
        testparent test2 = testy;
        System.out.println(test2);
        //test2.hitMe(); //????? not allowed
        System.out.println(testy);
        testy.hitMe();
    }
}

Now, why is it that printing both objects produces "Bananas", but I can't use both classes' hitMe() methods?

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1  
I think that hitMe in testParent is supposed to be private. –  Louis Wasserman Apr 19 '12 at 20:20
    
oops, you're right-- fixed it –  mavix Apr 19 '12 at 20:22
    
You should follow the java coding convention, which among others say: a class name should start with upper case letter, so you should rename testbaby to something like TestBaby, and same goes for testparent. –  amit Apr 19 '12 at 20:22

2 Answers 2

up vote 5 down vote accepted

This because of dynamic binding of methods and static typing of the language itself.

What happens is that Java is statically typed AND has dynamic binding, so:

  • the method hitMe can be called only on testbaby declared variables because it's private in testparent and, because of static typing, Java must ensure that method can be surely called at runtime
  • the method toString can be called on both objects (since it's even inherited from Object) and which one will be effectively called at runtime it's chosen according to the runtime instance and NOT according to the variable declaration (because of dynamic binding)

According to dynamic binding methodology, the correct and runtime implementation of a method is chosen at run time according to the real instance of the object, not on the declared one.

This means that, even if you declare test2 as a testparent, it is still a testbaby object (since you are assigning to it a testbaby instance). At runtime the correct implementation will be the one of the child.

This is perfectly legal though, because a testbaby is a testparent.

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Not in this case. The call from the testparent type can't be compiled (and wouldn't pass verification if it did compile) because the testparent method is private. –  Hot Licks Apr 19 '12 at 20:24
    
I'm not talking about the hitMe method, I'm talking about both printing "Bananas" –  Jack Apr 19 '12 at 20:25
    
+1 for terminology: using both dynamic binding and static typing to explain the 2 issues at hand. You should also link to the wikipedia page explaining those concepts to make the answer even better. –  amit Apr 19 '12 at 20:35
    
Let me edit, since you are right.. –  Jack Apr 19 '12 at 20:41

Basically, because when you declare test2 to be a variable of type testparent, you're deliberately throwing away your knowledge that test2 is "actually" a testbaby.

That's part of the point of inheritance -- any code that uses test2 is only allowed to assume that it's a testparent or a subclass of testparent, and that code has to work for all testparent objects, even the ones that aren't testbaby objects.

FYI, as far anything outside testParent is concerned, the testParent.hitMe() method doesn't even exist (with the exception of some evil reflection-based things, which you shouldn't worry about at this stage). Even testbaby doesn't know about the testParent.hitMe() method.

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1  
Important key word: static typing –  amit Apr 19 '12 at 20:24

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