I have two sets, A and B, of the same type.

I have to find if A contains any element from the set B.

What would be the best way to do that without iterating over the sets? The Set library has contains(object) and containsAll(collection), but not containsAny(collection).

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    Are you trying to avoid iterating for efficiency reasons, or for code cleanliness? – yshavit Jan 3 '12 at 6:19
up vote 417 down vote accepted

Wouldn't Collections.disjoint(A, B) work? From the documentation:

Returns true if the two specified collections have no elements in common.

Thus, the method returns false if the collections contains any common elements.

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    Prefer this to the other solutions because it does not modify either of the sets or creates a new one. – devconsole Sep 20 '12 at 10:37
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    And is standard JRE, and works with any Collections, not just set. – Pierre Henry Jun 26 '16 at 15:32
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    I don't think this is speediest, it won't short-circuit when the first element of the intersection is found. – Ben Horner Jul 14 '16 at 4:16
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    Actually it will short-circuit as soon as it finds the first common element – Xipo Dec 15 '16 at 10:54
  • 1

Since Java 8: setA.stream().anyMatch(setB::contains)

  • This is exactly what I was looking for! Thanks :-) I also didn't know you could use variables with the :: syntax! – dantiston Apr 15 '16 at 23:15
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    @blevert, could you explain what happen inside anyMatch ? – Cristiano Jun 4 '16 at 22:41
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    @Cristiano here, anyMatch will stream all of the elements from setA and call setB.contains() on all of them. If "true" is returned for any of the elements, the expression as a whole will evaluate to true. Hope this helped. – Alex Vulaj Jul 11 '16 at 18:12
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A good way to implement containsAny for sets is using the Guava Sets.intersection().

containsAny would return a boolean, so the call looks like:

Sets.intersection(set1, set2).isEmpty()

This returns true iff the sets are disjoint, otherwise false. The time complexity of this is likely slightly better than retainAll because you dont have to do any cloning to avoid modifying your original set.

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    The only disadvantage of using this approach is you have to include guava libraries. Which I think is not disadvantage because google collection APIs are very strong. – Mohammad Adnan Jan 11 '14 at 15:27
  • @DidierL most of the Guava Collections utility functions, including this one, return views of the data structures. So there is no "building the set" to worry about in this case. The implementation is interesting to read here, and/or see the javadoc: google.github.io/guava/releases/21.0/api/docs/com/google/common/… – chut Sep 29 at 23:14
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    @chut indeed, my bad. I removed my comment. – Didier L Sep 29 at 23:27

Apache Commons has a method CollectionUtils.containsAny().

I use org.apache.commons.collections.CollectionUtils

CollectionUtils.containsAny(someCollection1, someCollection2)

That is All! Returns true if at least one element is in both collections.

Simple to use, and the name of the function is more suggestive.

Use retainAll() in the Set interface. This method provides an intersection of elements common in both sets. See the API docs for more information.

  • If the point of avoiding the iteration is for efficiency, retainAll probably won't help. Its implementation in AbstractCollection iterates. – yshavit Jan 3 '12 at 6:17
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    yshavit is correct. Given that the O.P. is looking to see if any element exists in both sets, a proper algorithm would have an O(1) running time in the best case, whereas retainAll would have something along the lines of an O(N) (it would depend on the size of only 1 set) best-case running time. – Zéychin Jan 3 '12 at 6:27

You can use retainAll method and get the intersection of your two sets.

  • In most cases one needs to keep the original set, so in order to use retainAll it's necessary to make a copy of the original set. Then it's more efficient to use HashSet as suggested by Zéychin . – Petr Pudlák Sep 7 '12 at 14:54

I would recommend creating a HashMap from set A, and then iterating through set B and checking if any element of B is in A. This would run in O(|A|+|B|) time (as there would be no collisions), whereas retainAll(Collection<?> c) must run in O(|A|*|B|) time.

There's a bit rough method to do that. If and only if the A set contains some B's element than the call

A.removeAll(B)

will modify the A set. In this situation removeAll will return true (As stated at removeAll docs). But probably you don't want to modify the A set so you may think to act on a copy, like this way:

new HashSet(A).removeAll(B)

and the returning value will be true if the sets are not distinct, that is they have non-empty intersection.

Also see Apache Commons Collections

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