Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

Consider the following classes:

public class Base {

    protected int i = 0;

    public Base(int i) {
        this.i = i;
    }

    public Base(Base b) {
        this(b.i);
    }

    public Base foo() {
        return new Base(this);
    }
}


public class Sub extends Base {

    public Sub(int i) {
        super(i);
    }

    public Sub(Sub s) {
        super(s.i * 2);
    }

    public Base foo() {
        return this;
    }

    @Override
    public boolean equals(Object o) {
        return ((Sub) o).i == this.i;
    }

    public static void main(String[] args) {
        Base b1 = new Base(1);
        Base b2 = b1;
        Base b3 = b2.foo();
        Base b4 = new Sub(1);
        Base b5 = b4.foo();

        System.out.println(b1.equals(b3));
    }
}

The printed result is false. I've noticed the overridden method equals(Object o) never get caught and I suspect of course that this is the problem (Otherwise it would have printed true).

Why is that?

share|improve this question
up vote 10 down vote accepted

You're calling b1.equals(b3) - b1 is an instance of Base, not of Sub, so there's no way your overriding method can be called.

Heck, even b3.equals(b1) won't call anything on Sub, as b3 refers to an instance of Base as well.

Only b4 and b5 refer to instances of Sub, so only b4.equals(...) or b5.equals(...) will call your overridden method. Additionally, because you're unconditionally casting within your equals method, b4.equals(b1) (for example) will throw an exception rather than returning false.

share|improve this answer
    
Thank you! I get it now.. – AngryOliver Jul 4 '14 at 11:34

Let's see how your code (in main method) runs

Base b1 = new Base(1); :- Creates new Base(1) Object and reference is b1. Lets call this Object as first object.

Base b2 = b1; :- Creates a Base type reference variable and assign the value of b1 variable, So both b1 and b2 refers the same object (first object)

Base b3 = b2.foo(); :- Creates a Base type reference variable b3. foo() method in first Base object is called and it returns a new Base object (second object) where it's i attribute value = first object's i attribute value

Base b4 = new Sub(1); :- Creates new Sub(1) Object and reference is b4. Lets call this Object as the Third object.

Base b5 = b4.foo(); :- Creates a Base type reference variable b5. foo() method in third object (Sub) is called and it returns its own reference as a Base type. Sub can return its own reference as Base because Base is its Super Class.

b1.equals(b3) :- now you have called equals method of the object that b1 referes. b1 refers to a Base type object (First object). equals method of Base object is run. It has the default equals method. (overridden method is in the Sub object and this not a Sub Object.) Default equals method checks whether their hash codes are same. b1 is first object, b3 is the third object. so b1 and b3 are not equal.

So Output should be false.

There is no any overriding happening here.

If you changed the code as follows, You can get overridden output

Base b1 = new Sub(1);
Base b3 = b1.foo();
Base b4 = new Sub(1);
Base b5 = b4.foo();

System.out.println(b4.equals(b3));
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.