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Whenever I override hashcode() using eclipse 'source' menu it generates following code in the class

final int prime = 31;
int result = 1;
result = prime * result + ((fieldName1== null) ? 0 : fieldName1.hashCode());
result = prime * result + ((fieldName2== null) ? 0 : fieldName2.hashCode());

Could anyone please explain why it is doing all this calculation(multiplication and then addition), why it is not returning simply

fieldName.hashCode();
or
fieldName2.hashCode();

?

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marked as duplicate by The New Idiot, madth3, bivoc, greedybuddha, Achrome Jun 15 '13 at 1:00

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
Try having two or more fields in your class and then generate and see what happens. –  darijan Jun 14 '13 at 12:02
1  
@Zavior this is no duplicate as in the oter question it is asked why not XOR is used. Here it is asked why the calculation is used to create the hashCode. –  Uwe Plonus Jun 14 '13 at 12:02
    
fair enough, the first answer there does answer this one as well :P –  Zavior Jun 14 '13 at 12:05
    
@darijan I have 15 fields in my class I put just a section of code here coz of readability purpose, although I put Two fields here. –  HappyDev Jun 14 '13 at 12:06
    
See also stackoverflow.com/questions/11795104/… –  Raedwald Jun 14 '13 at 12:27

3 Answers 3

Multiplying reduces collisions.

Please read Joshua Bloch

The value 31 was chosen because it is an odd prime. If it were even and the multiplication overflowed, information would be lost, as multiplication by 2 is equivalent to shifting. The advantage of using a prime is less clear, but it is traditional. A nice property of 31 is that the multiplication can be replaced by a shift and a subtraction for better performance: 31 * i == (i << 5) - i. Modern VMs do this sort of optimization automatically.

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2  
This doesnt answer his question though –  Zavior Jun 14 '13 at 11:59
    
ok I get that y '31' is chosen but I am asking why we need to do(or y IDE generates) 'all' of this calculation. Please read question for reference. –  HappyDev Jun 14 '13 at 12:01
    
By multiplying, bits are left shifted which uses more of the available space of hash codes, reducing collisions. –  The New Idiot Jun 14 '13 at 12:02
    
As The New Idiot says: it reduces collisions –  Puce Jun 14 '13 at 12:03

It is explained here.

Basically you use primes in multiplication to have a better distribution of the hash values. Then HashSet and HashMap work better because they distibute according to the hash value. And badly distributed hash values lead to many collisions.

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why it is not returning simply fieldName.hashCode(); or fieldName2.hashCode();

To understand why, you must also examine the implementation of equals() and understand the constraints placed on the hashCode() implementation.

  1. A hashCode() implementation must return equal values for objects that compare as equal: if x.equals(y) then x.hashCode() == y.hashCode().

  2. A good hashCode() implementation should rarely return the same hash code for objects that do not compare as equal: if !x.equals(y) then often x.hashCode() != y.hashCode().

  3. The equals() implementation that Eclipse generated examines both fileName1 and filename2. If either are different for two objects, the method will consider them the two objects to be not equivalent.

  4. Therefore a corresponding good hashCode() implementation should produce different hash code values if either fileName1 or fileName2 are different.

  5. Therefore a corresponding good hashCode() implementation should use fileName1.hashCode() and fileName2.hashCode().

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