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I've been looking for a method that operates like Arrays.equals(a1, a2), but ignoring the element order. I haven't been able to find it in either Google Collections (something like Iterables.elementsEqual(), but that does account for ordering) and JUnit (assertEquals() obviously just calls equals() on the Collection, which depends on the Collection implementation, and that's not what I want) It would be best if such a method would take Iterables, but I'm also fine with simply taking Collections Such a method would of course take into account any duplicate elements in the collection (so it can't simply test for containsAll()).

Note that I'm not asking how to implement such a thing, I was just wondering if any of the standard Collections libraries have it.

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up vote 30 down vote accepted

Apache commons-collections has CollectionUtils#isEqualCollection:

Returns true iff the given Collections contain exactly the same elements with exactly the same cardinality.

That is, iff the cardinality of e in a is equal to the cardinality of e in b, for each element e in a or b.

Which is, I think, exactly what you're after.

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17  
In case you do not want to use Apache (or you can't) you can always do: collection1.containsAll(collection2) && collection2.containsAll(collection1) – Chris Gonzales Jul 1 '13 at 0:27
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@ChrisGonzales, beware of that solution - it will return true for the following two collections: collection1 = [1, blah, 1, 4], collection2 = [1, blah, blah, 4]. Where those two collections are indeed not the same. – Wesley Porter Jul 24 '14 at 15:59

This is three method calls and uses Google CollectionsGuava, but is possibly as simple as it gets:

HashMultiset.create(c1).equals(HashMultiset.create(c2));

Creating the temporary Multisets may appear wasteful, but to compare the collections efficiently you need to index them somehow.

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This does appear to be the most efficient (and simple) solution I've seen so far. – Jorn Oct 14 '09 at 9:50
    
@Jorn: I thought you said you weren't asking how to implement this ... – Stephen C Oct 14 '09 at 10:03
    
I'm not saying it's the solution I asked for, but I haven't seen an answer that provides me with a single method call to do this. – Jorn Oct 14 '09 at 10:13
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@Jorn: if you want the answer "yes", then you won't get it :-) – Stephen C Oct 14 '09 at 10:22
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Jorn: the fact that you want to do this in the first place is a strong signal that you want one or both of these collections to be represented as Multisets in the first place. They cannot really logically be Lists if you don't care about their order. If you do represent both as Multisets, then guess what? You've got your single-method-call solution! – Kevin Bourrillion Nov 4 '09 at 17:51

If you want to ignore order, then how about testing sets for equality?

new HashSet(c1).equals(new HashSet(c2))
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1  
That doesn't work, because it would throw away duplicate elements. Also, I'd have to create two new HashSets. I'd rather avoid creating new objects for this. – Jorn Oct 14 '09 at 9:44
    
This is fine if you don't care about duplicates, e.g. c1 = Arrays.asList(1, 1, 2), c2 = Arrays.asList(1, 2, 2) will be equal according to this expression. – finnw Oct 14 '09 at 9:46
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True, but I do care about duplicates (as the question now states as well) – Jorn Oct 14 '09 at 9:49

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