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I have two sets. (from Guava HashMultimap.values()). I need to quickly find, if the intersection of the two set is a non-empty set. I do not need to know about the common elements, just if there is a common element. I was thinking of using Sets.intersection, but it's o(m+n),we can bail if we find a common element without having to create the entire intersection (something like set.intersection(set2).any()). (The data set is pretty big and this operation happens within a loop and hence performance is paramount.)

Any suggestion is welcome. Thank you.

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With the normal JDK, this is just

!Collections.disjoint(set1, set2)

This bails immediately if an element is found in common.

(Although -- for what it's worth -- Sets.intersection is lazier than you realize. It returns a view in constant time, and its isEmpty() method would also bail immediately upon finding the first element in common, so it'd be just as efficient.)

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Thank you. Sets.intersection().isEmpty seems to work fine. – doc_180 Sep 17 '13 at 17:35

You may use Collection#retainAll().

Retains only the elements in this collection that are contained in the specified collection (optional operation). In other words, removes from this collection all of its elements that are not contained in the specified collection.

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1  
But this is similar to Sets.intersection() right. This operation still creates the complete intersection. – doc_180 Sep 17 '13 at 17:25
    
@doc_180:- Yes thats right. You may try to go with Louis Wasserman idea. That is what you want probably!! – Rahul Tripathi Sep 17 '13 at 17:34
    
I am going to use his idea. Sets.intersection might just work since it is lazy. Thank you for answering. – doc_180 Sep 17 '13 at 17:35
    
You are welcome!!! – Rahul Tripathi Sep 17 '13 at 17:35

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