Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a very simple class with only one field member (e.g. String). Is it OK to implement hashCode() to simply return fieldMember.hashCode()? Or should I manipulate the field's hash code somehow? Also, if I should manipulate it, why is that?

share|improve this question

9 Answers 9

up vote 12 down vote accepted

If fieldMember is a pretty good way to uniquely identify the object, I would say yes.

share|improve this answer

Joshua Bloch lays out how to properly override equals and hashCode in "Effective Java" Chapter 3.

share|improve this answer
    
Thank you. I had read a summary of it, but it didn't answer my question. If I follow his rules, I'll return 37 * field.hashCode() + c, but is this really needed? Is the field's hash code not sufficient? –  Hosam Aly Jan 30 '09 at 19:28
    
Assuming that the field is not a primitive. You didn't say if it was an object or a double, so I thought the reference would be worth having. You also didn't mention overriding equals, and you should. –  duffymo Jan 30 '09 at 19:44
    
The field's hash code should be sufficient. If it's a primitive, for example int: Integer.valueOf(fieldValue).hashCode() –  armandino Jan 30 '09 at 21:50
    
@armandino: This could be a nice way to do it for primitives (except for the cost of creating a new integer for values > 127), but for an int it's sufficient to return its value. That's the implementation of Integer.hashCode(), and it makes sense because it would be perfectly distributed. –  Hosam Aly Jan 31 '09 at 7:17

Multiplying, adding, or xor-ing things will not make it more unique. Mathematically, you'd be applying constant functions to a single variable, which does not increase the number of possible values of the variable.

That sort of technique is useful for combining multiple hashcodes and still keeping the risk of collisions relatively small; it has no bearing whatever on a single hashcode.

share|improve this answer
    
Thank you. I am not particularly strong in mathematics, but couldn't applying a constant function to a value enhance it (or decrease possible collisions)? –  Hosam Aly Jan 30 '09 at 20:41
    
I don't know what you mean by enhancement here (unless it's collision avoidance), but if two hashcodes are the same, and you do the same operation to them, they will still be equal and still collide. –  David Thornley Jan 30 '09 at 20:46
    
@David Thornley: Exactly. –  Michael Myers Jan 30 '09 at 21:41
    
For the sake of learning (regardless of Java), isn't the "static int hash(int h)" function in HashMap doing this? Avoiding collisions by applying a constant function? openjdk.dev.java.net/source/browse/openjdk/jdk/trunk/jdk/src/… –  Hosam Aly Jan 31 '09 at 7:18
1  
@Hosam Aly: HashMap uses the hash as an index to the array of buckets, so it uses its supplemental hash to reduce the risk of collision. This doesn't expand the number of possible hashes, but spreads the existing hash codes further apart in the bit positions that HashMap uses for indexing. –  Michael Myers Jan 31 '09 at 17:01

Yeah, that's pretty standard. And if the class reflects a database row, I just return the primary key.

share|improve this answer

There are only two real requirements for hashCode: one, that equals instances have equal hash codes, and two, that hashCode runs reasonably fast. The first requirement is the most important one in practice; without it, you could put something into a collection but not find it there. The second is simply a performance issue.

If the hash code algorithm of your field meets the above, then its algorithm also works for your class, if your class equals also depends solely on whether those fields are equals.

share|improve this answer
    
You left out one requirement: Objects that are not equal usually have different hash codes. –  Darron Jan 30 '09 at 21:26
    
I thought about that. Thing is, if they have different hash codes, that's great, but if they don't, that's often fine, too (and in practice, always unavoidable). Hash collisions just make searches a tad longer, whereas the other case is an honest-to-god failure. –  Paul Brinkley Feb 2 '09 at 20:05

If 'fieldMember' variable already implements 'hashCode' function then you can use it directly from your parent class. If 'fieldMember' variable is a custom class instance, then you must implement it correctly by yourself. Read java.lang.Object API documentation as guideline to implement 'hashCode'.

share|improve this answer

Ya. It is good programming practice. I normally use:

return var ^ 1;

share|improve this answer
    
That's the heart of my question: do I need to combine it with something else? You're xor-ing it with 1, so does this mean that the field's hash code is not sufficient? –  Hosam Aly Jan 30 '09 at 19:26
1  
The randomness of (var) and (var ^ 1) are the same. I wouldn't bother doing this. –  Peter Lawrey Jan 30 '09 at 20:41

Usually, unless you are using this object as the key for a *HashMap or an element in a *HashSet, hashCode() doesn't need to be overridden.

share|improve this answer
    
I expect it to be used in a HashMap, so I do need to override it. –  Hosam Aly Jan 31 '09 at 7:02

As someone else mentioned, you should follow the advice in Effective Java. If you override the hashCode() method, you should also be overriding the equals() method. Furthermore, the two methods should be consistent.

To simplify writing good equals() and hashCode() methods, I use EqualsBuilder and HashCodeBuilder from Apache Commons Lang

Here are examples:

public boolean equals(Object o) {
    if (this == o) {
        return true;
    }
    if (o == null || getClass() != o.getClass()) {
        return false;
    }
    User other = (User) o;
    return new EqualsBuilder()
            .append(this.getUniqueId(), other.getUniqueId())
            .isEquals();
}

public int hashCode() {
    return new HashCodeBuilder()
            .append(this.getUniqueId())
            .toHashCode();
}
share|improve this answer
    
Thank you @Jeff, but this is probably overkill for my simple object. –  Hosam Aly Feb 2 '09 at 22:01
    
I'm not sure I agree it's overkill; I use this approach on all my domain classes, even the simplest ones. And simple classes have a tendency to become more complicated over time! :) –  Jeff Olson Feb 3 '09 at 19:22

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.