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 may be wrong but for me, we can override equals for an object so that you consider them has being meaningfully equals. All the entry in a map have distinct keys, and all the entries in set have distinct values (not meaningfully equals)

But when using a TreeMap or a TreeSet, you can provide a comparator. I noticed that when a comparator is provided, the object's equals method is bypassed, and two objets are considered equals when the comparator returns 0. Thus, we have 2 objects but inside of a map keyset, or a set, only one is kept.

I'd like to know if it is possible, using a sorted collection, to make a distinction for two different instances.

Here's an easy sample:

public static void main(String[] args) {
    TreeSet<String> set = new TreeSet<String>();
    String s1 = new String("toto");
    String s2 = new String("toto");
    System.out.println(s1 == s2);
    set.add(s1);
    set.add(s2);
    System.out.println(set.size());
}

Notice that using new String("xxx") bypass the use of the String pool, thus s1 != s2. I'd like to know how to implement a comparator so that the set size is 2 and not 1.

The main question is: for two distinct instances of the same String value, how can i return something != 0 in my comparator?

Note that i'd like to have that comparator respect the rules:

Compares its two arguments for order. Returns a negative integer, zero, or a positive integer as the first argument is less than, equal to, or greater than the second. The implementor must ensure that sgn(compare(x, y)) == -sgn(compare(y, x)) for all x and y. (This implies that compare(x, y) must throw an exception if and only if compare(y, x) throws an exception.)

The implementor must also ensure that the relation is transitive: ((compare(x, y)>0) && (compare(y, z)>0)) implies compare(x, z)>0.

Finally, the implementer must ensure that compare(x, y)==0 implies that sgn(compare(x, z))==sgn(compare(y, z)) for all z.

It is generally the case, but not strictly required that (compare(x, y)==0) == (x.equals(y)). Generally speaking, any comparator that violates this condition should clearly indicate this fact. The recommended language is "Note: this comparator imposes orderings that are inconsistent with equals."

I can use a trick like:

public int compare(String s1,String s2) {
  if s1.equals(s2) { return -1 }
  ...
}

It seems to work fine but the rules are not respected since compare(s1,s2) != -compare(s2,s1)

So is there any elegant solution to this problem?


Edit: for those wondering why i ask such a thing. It's more by curiosity than any real life problem.

But i've already been in a situation like that and though about a solution to this problem:

Imagine you have:

class Label {
  String label;
}

For each label you have an associated String value. Now what if you want to have a map, label->value. But now what if you want to be able to have twice the same label as a map key? Ex "label" (ref1) -> value1 "label" (ref2) -> value2 You can implement equals so that two distinct Label instances are not equals -> i think it works for HashMap.

But what if you want to be able to sort these Label objects by alphabetical order? You need to provide a comparator or implement comparable. But how can we make an order distinction between 2 Labels having the same label? We must! compare(ref1,ref2) must not return 0. But should it return -1 or 1 ? We could compare the memory address or something like that to take such a decision but i think it's not possible in Java...

share|improve this question
    
My opinion is that you shouldnot use Strings as identifiers (keys for maps) in your case, since they are not real identifiers. How would you know anyway which one of the two Label Objects you want if you have a String "label"? –  adranale Apr 25 '12 at 15:20
    
this is just an exemple, but actually i don't only have the "label" but i got to separate references –  Sebastien Lorber Apr 25 '12 at 18:57
add comment

6 Answers

up vote 6 down vote accepted

If you're using Guava, you can make use of Ordering.arbitrary(), which will impose an additional order on elements which remains consistent for the life of the VM. You can use this to break ties in your Comparator in a consistent way.

However you could be using the wrong data structure. Have you considered using a Multiset (e.g. TreeMultiset), which allows multiple instances to be added?

share|improve this answer
    
Thanks this seams interesting, do you know how it really works on the inside to be able to produce an order ( -1 or +1 ) between two equals but != strings? –  Sebastien Lorber Apr 25 '12 at 12:57
2  
It's quite interesting. It uses System.identityHashCode() as a first pass, and then if there are collisions, it maintains a list of UIDs for each new instance seen. See guava-libraries.googlecode.com/svn-history/r311/trunk/javadoc/… –  Simon Nickerson Apr 25 '12 at 13:00
    
Very funny. I already used hashcode to make the distinction (return hash1 - hash2) but was not satisfied because of (unprobable) collisions. –  Sebastien Lorber Apr 25 '12 at 13:04
    
hashCode by itself won't be enough, because hashCode() is typically consistent with equals(). You need to go back to the one on Object; hence identityHashCode(). –  Simon Nickerson Apr 25 '12 at 13:07
    
@Sebastien Lorber: Using return hash1 - hash2 is a common mistake. Because of overflow the resulting relation is not transitive. –  maaartinus May 17 '12 at 12:51
show 2 more comments

Try using the following Comparator (for your example):

Comparator<String> comp = Ordering.natural().compound(Ordering.arbitrary());

This will sort things according to their natural Comparable ordering, but when the natural ordering is equal it will fall back to an arbitrary ordering so that distinct objects remain distinct.

share|improve this answer
    
thanks, i needed that guava arbitrary method. But +1 because you make obvious the use of such a feature –  Sebastien Lorber Apr 25 '12 at 19:05
add comment

I'm not sure it's a great idea to do that. From the javadoc for Comparator:

Caution should be exercised when using a comparator capable of imposing an ordering inconsistent with equals to order a sorted set (or sorted map). Suppose a sorted set (or sorted map) with an explicit comparator c is used with elements (or keys) drawn from a set S. If the ordering imposed by c on S is inconsistent with equals, the sorted set (or sorted map) will behave "strangely." In particular the sorted set (or sorted map) will violate the general contract for set (or map), which is defined in terms of equals.

share|improve this answer
    
I understand what you mean and see some dangerous behavior that could happen (for exemple, havinga map with key1, retrieving the key1 entry with key2, but finally having !key1.equals(k2)). In my exemple it can be a problem, but i could have an equals method that make a distinction between two different instances. –  Sebastien Lorber Apr 25 '12 at 13:02
add comment

if you want a sorted collection with equal objects, you can put all your objects in a List and use Collections.sort().

share|improve this answer
    
I know but what about maps? –  Sebastien Lorber Apr 25 '12 at 12:55
    
@SebastienLorber - how would you retrieve something from a map if it contained multiple equal keys? –  jtahlborn Apr 25 '12 at 12:57
    
Basically the keys won't be equals because of different instances (my exemple with Strings is perhaps not appropriate because we can't edit that String equals) –  Sebastien Lorber Apr 25 '12 at 13:39
add comment

You might want to use a SortedSet<Collection<String>> or similar, since - as you mentioned - a sorted doesn't allow you to add multiple equal entries.

Altenatively you can use Guava's MultiSet.

From the JavaDoc 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.

However, one question still remains: why do you want to have two distinct instances that are logically equal (that's what equals() actually means).

share|improve this answer
add comment

The comparator should actualy return 0 only when the two references refer to the same object, like this:

public int compare(String s1,String s2) {
   if (s1!=s2) { 
      int result = s1.compareTo(s2);
      if (result == 0) {
          return -1;
      } else {
          return result;
      }
   } else {
      return 0;
   } 
}
share|improve this answer
    
We do not have compare(s1,s2) = -compare(s2,s1) there. –  Sebastien Lorber Apr 25 '12 at 13:06
    
I have edited my answer –  adranale Apr 25 '12 at 13:47
    
still, no compare(s1,s2) = -compare(s2,s1) –  Sebastien Lorber Apr 25 '12 at 14:11
    
This happens only when s1 is actually the same string as s2. Do you also need that? –  adranale Apr 25 '12 at 15:15
    
YES! basically my question is to provide a code for this specific case :) but the answer has already been provided –  Sebastien Lorber Apr 25 '12 at 19:03
show 1 more comment

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.