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How can I return true if list1 and list2 share at least 1 item?

Example: list1 = (1,2,3) ... list2 = (2,3,4)

someFunction(list1, list2); // returns true

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3  
possible duplicate of Java Compare Two Lists –  RC. Apr 16 '13 at 5:06
    
Have you tried anything? –  chris Apr 16 '13 at 5:07
    
@chris, what user loki below said, but it seemed non-optimal. –  Kevin Meredith Apr 16 '13 at 5:10

5 Answers 5

up vote 7 down vote accepted

Take a look at the Collections.disjoint method. If it is true there are no items in common.

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+1 Looks like that method attempts to optimize by deciding which collection to iterate and which to check with contains, based on a few factors. [source] –  Paul Bellora Apr 16 '13 at 5:23

Like TofuBeer said, take a look at Collections.disjoint (I'd upvote his if I had any reputation...):

public void main() {
    List<Integer> list1 = Arrays.asList(1,2,3);
    List<Integer> list2 = Arrays.asList(2,3,4); 
    someFunction(list1, list2);
}

private boolean someFunction(List<Integer> list1, List<Integer> list2) {
    return ! Collections.disjoint(list1, list2);
}
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Now you have some :-), welcome to SO! –  TofuBeer Apr 17 '13 at 19:36

Iterate over one list using "Iterator" and use contains method of other list to check the element. Isn't it?

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I thought of doing that, but figured there must be a better way. –  Kevin Meredith Apr 16 '13 at 5:10
public boolean someFunction(List<T> l1,List<T> l2)
{
    Iterator<T> i = l1.iterator();
    while(i.hasNext())
    {
        if(l2.contains(i.next())
            return true;
    }
    return false;
}
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2  
-1 for the unwanted comment . –  NINCOMPOOP Apr 16 '13 at 5:17

If space is not an issue, why not just use a HashMap?

Iterator it1 = list1.iterator(), it2 = list2.iterator();
Map <K, Integer> listmap = new HashMap <K, Integer> ();

while (it1.hasNext() && it2.hasNext()) {
    K elem1 = it1.next(), elem2 = it2.next();
    if ((listmap.get(elem1) != null && listmap.get(elem1) == 2) || 
        (listmap.get(elem2) != null && listmap.get(elem2) == 1)) {
        return false;
    }
    else {
        listmap.put(elem1, 1);
        listmap.put(elem2, 2);
    }

}
return true

This way, you don't have to loop through the entire second array to check each element of the first one, since adding elements to a hash table happens in amortized constant time.

By the way, a faster solution would be to use IntHashMap from Apache commons (or SparseArray on Android).

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