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This is the java main() method:

    public static void main(String[] args) {

        HashSet set = new HashSet();
        Mapper test = new Mapper("asd", 0);

        System.out.println(new Mapper("asd", 0).equals(test));
        System.out.println(set.contains(new Mapper("asd", 0)));


and my Mapper class is :

class Mapper {

String word;
Integer counter;

Mapper (String word, Integer counter) {

    this.word = word;
    this.counter = counter;


public boolean equals(Object o) {

    if ((o instanceof Mapper) && (((Mapper)o).word == this.word)) {

        return true;


    return false;



and the result is :



From HashSet specifications, at this method I read this : "Returns true if this set contains the specified element. More formally, returns true if and only if this set contains an element e such that (o==null ? e==null : o.equals(e)). "

So, can anyone explain me where i'm wrong? Or ...?


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Just to add something, you should use the String equals() method (instead of the ==, that's reference test) if you want to compare it's values. – Buhake Sindi Apr 20 '11 at 6:54

2 Answers 2

up vote 8 down vote accepted

You need to implement a proper hashCode() function.

public int hashCode() {
  // equal items should return the same hashcode

The Java utilites java.util contain a lot of classes which rely on hashing. To allow one to override equals() as they see fit means that one must also properly override hashCode() to match.

A correct implementation of hashCode() would return the same hash for any two objects where equals() returns true. Hash related functions check the hashes for equality before checking to see if the objects equal (to resolve hash collisions).

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Thank you! Very well! – artaxerxe Apr 20 '11 at 6:47
... and while you are at it, correct (or clearly document) your equals to not use referential equality for the string. In this case, you get away with it because "asd" is used twice in the same class file. But If you had read the string from user input, for example, the first comparison would have failed, too. – Dilum Ranatunga Apr 20 '11 at 6:50
@Dilum : Why that? I know that strings are created in a string's pool of memory created apart when JVM is initialized. – artaxerxe Apr 20 '11 at 6:53
@artaxerxe Strings are Objects. The default implementation of hashCode() is to return a unique number for each instance. If you create two strings ala a1 = new String("a"); a2 = new String("a"); one would probably expect a1 == a2 to be false as they are not the same object (due to the two new calls). This means that for Strings (and other objects) a1.equals(a2) is typically much, much safer. – Edwin Buck Apr 20 '11 at 6:58
@artaxerxe What you said is only true of strings that are explicitly intern'ed. (… ). Lets say you read an XML document, and you get an element with attributes containing 'asd' and '0'. Those are not interned strings. That's one of countless cases where the string is not interned. Try this one to illustrate my point: System.out.println(new Mapper("asd".toUpperCase().toLowerCase(), 0).equals(test)); – Dilum Ranatunga Apr 20 '11 at 6:59

The hashCode contract says that if two objects are equal, they should have the same hash code. Collections like HashSet assume that this is upheld.

Object's implementations of equals and hashCode are based on addresses (or object IDs). If you override equals to do a content comparison, you should override hashCode to generate a hash based on content.

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