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If I implement java.lang.Comparable for a class, do I still have to override the equals() method? Or will the Comparable work for equals as well?

If the answer is no, then what if some discrepancy arises? Let's say the way I term two objects as equal within the equals() method is different from the way I term two objects of the same class as equal within the compareTo() of the Comparable.

Moreover, if I implement Comparable, do I also have to override equals()?

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4 Answers 4

up vote 17 down vote accepted

While it is recommended (and pretty sensible) that having a.compareTo(b) == 0 imply that a.equals(b) (and visa versa), it is not required. Comparable is intended to be used when performing an ordering on a series of objects, whereas equals() just tests for straight equality.

This link has some good information on implementing compareTo properly.

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+1 here's a link to the relevant Effective Java's chapters (see item 11) java.sun.com/developer/Books/effectivejava/Chapter3.pdf –  MByD Aug 7 '11 at 5:22
    
@MByD Thanks for the link. It (unsurprisingly) says it better than I do! –  dlev Aug 7 '11 at 5:24
    
@MbyD thanks for the link. Is it ok to call a.compareTo(b) or compare() directly? –  aps Aug 7 '11 at 5:28
    
@aps - why wouldn't it be? please note - if you override the equals() method, you should also must override the hashCode() method. –  MByD Aug 7 '11 at 5:31
    
@aps If at some point in your code you would like to know how a compares to b, then you can go right ahead. –  dlev Aug 7 '11 at 5:31

From Javadoc of java.lang.Comparable:

It is strongly recommended (though not required) that natural orderings be consistent with equals.

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While it is recommended, it is not required that .equals() and .compareTo() have the same behaviour.

Just look at the BigDecimal API: http://download.oracle.com/javase/1,5.0/docs/api/java/math/BigDecimal.html#equals(java.lang.Object)

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Let's say the way I term two objects as equal within the equals() method is different from the way I term two objects of the same class as equal within the toCompare() of the Comparable?

If you do this, and you put those objects into a sorted set, the set will misbehave. From the docs on SortedSet:

Note that the ordering maintained by a sorted set (whether or not an explicit comparator is provided) must be consistent with equals if the sorted set is to correctly implement the Set interface.

For example, a TreeSet may (erroneously) contain two objects where

a.compareTo(b) != 0

even though

a.equals(b) == true
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All TreeSet operations are performed using compareTo - so objects that the comparison returns != 0 are considered distinct, and objects that the comparison returns == 0 are identical (and thus only the first one added to the set is actually retained). As the Javadoc says: The behavior of a sorted set is well-defined even if its ordering is inconsistent with equals; it just fails to obey the general contract of the Set interface. –  Greg Kopff Jan 17 '14 at 6:23

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