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I was learning hashcode in more depth and figured that:

1. If you override equals(), you must override hashcode() too.

2. To find if 2 objects are same object, use == operator

Given those 2 factors, in Java I was assuming that when == operator is used to compare if 2 instances are same or not,

if(object1 == object2)

is actually doing

if(object1.hashcode() == object2.hashcode())

But it appears I was wrong by running the test below.

public class Main {

    public static void main(String[] args){
        Obj1 one = new Obj1();
        Obj1 two = new Obj1();
        //is this calling hashCode() in backend???
        if(one == two) {
            System.out.println("same");
        }
        else {
            System.out.println("nope");
        }
        //this is of course return true
        if(one == one) {
            System.out.println("one and one is same");
        }
    }
}

class Obj1 {
    @Override
    public int hashCode() {
        System.out.println("hashCode() is called");
        return 111;
    }
    @Override
    public boolean equals(Object another) {
        System.out.println("equals() is called");
        return false;
    }
}

According to the test which uses == operator and see if equals() is called and it wasn't.

So my question is if == operator can used to compare if the object is same or not, what is the point of overriding equals() and hashCode() method for comparison? Isn't == operator do the job already?

reference:

Overriding hashCode() - is this good enough?

http://mindprod.com/jgloss/hashcode.html

http://download.oracle.com/javase/1.4.2/docs/api/java/lang/Object.html#equals(java.lang.Object)

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@All: thanks guys for explanation. That's why I like stackoverflow. Lot of intelligent people who can describe and give good example, far better than official documentation that provides definition only :D –  masato-san Dec 22 '10 at 2:17
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5 Answers

up vote 5 down vote accepted

the == operator determines if 2 references point to the same object.

So

 Object o1 = new Object();
 Object o2 = o1;

 o1 == o2; //true

 o2 = new Object();

 o1 == o2 // false

the Object.equals() method is "how do I determine if 2 references to objects, that are not the same object, are equal?"

If two references point to the same object, both

o1 == o2 
o1.equals(o2) 

should be true.

But if o1 and o2 are not the same object, they still might be equal logically. For any given class, equals depends on the semantics behind the object. For example, consider a class where field1 and field2 are set by the user, but field3 is computed and has a random element to its computation. It might make sense to define equals in this case to only depend on field1 and field2, and not field3. Thats why equals is necessary.

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So when hashcode() will be used? Is it our decision to have hashcode used within equals() method for comparison? –  masato-san Dec 22 '10 at 2:05
2  
hashcode is used by the various hash based collections, like HashSets. It is your decision whether to use hashcode in equals, but be aware that it is not always the case that if 2 objects return the same hashcode, they are equal. I wouldn't. –  hvgotcodes Dec 22 '10 at 2:13
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== is identity.

.equals() is equality.

.equals() defaults to just using == (just like hashCode() defaults to System.identityHashCode() but you can override them if there's a more meaningful way to check for equality. Typically this is a sort of "structural" equality. ie: are all of the pieces of this .equal() to all of the pieces of that?

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If you don't already have a copy; buy a copy of Effective Java by Joshua Bloch.

This is the de facto reference for Java developers and has a lot of information on this (and many other) subject.

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Going to book store this weekend :D that would be my xmas present! –  masato-san Dec 23 '10 at 23:36
    
@Fortyrunner could you tell me which sections explain these things in that book? –  KillBill Jun 6 '12 at 17:18
    
Item 8 and Item 9 in the book. –  Fortyrunner Jun 7 '12 at 6:20
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== (used on objects rather than on primitive values) tests whether 2 objects are actually the same object; it compares whether the pointers are actually pointing to the same memory location.

.equals() is defined by the object itself.

String s1 = new String("Hello");
String s2 = new String("Hello");

boolean b1 = ( s1 == s2 ) ; // false: s1 and s2 point to different objects
boolean b2 = ( s1.equals(s2) ) ; // true: s1 and s2 both represent the same
                                 //       piece of text - "Hello"

.hashCode() is an optimisation trick (in most of its uses, anyway). A lot of code in the standard libraries makes the assumption that if o1.equals(o2)==true then o1.hashCode()==o2.hashCode() and that if o1.hashCode()!=o2.hashCode() then o1.equals(o2)==false in order to work faster.

The most obvious example of such an optimisation is the HashMap class. This makes retrieving objects using a key really fast, but breaks badly if hashCode and equals don't work properly for the key elements. In fact, this is one of the reasons that the String class is immutable: if you were able to modify a String (and so change its hashCode) while that String was the key in a HashMap, then you would never be able to find it, since you would end up looking for it in the wrong place!

Other answers recommend Effective Java by Joshua Bloch. If you are asking such questions, then now is the perfect time in your career to buy the book and read it cover to cover. It'll also be worth re-reading it in a year or two's time, when you'll have forgotten some of it and more of it will make sense...

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Most is already answered, so here's just another enlightening example:

String s1 = "foo";
String s2 = "foo";
System.out.println(s1 == s2); // true, because same reference (string pool)

String s3 = new String("foo");
String s4 = new String("foo");
System.out.println(s3 == s4); // false, because different reference
System.out.println(s3.equals(s4)); // true, because same value
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