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I'm having troubles to get the intersection of several Lists on Java. What I'm doing is this: I get (lets say) 3 Lists of integer numbers:

list 1: [2, 2, 2, 2, 5, 5]

list 2: [2, 2, 103]

list 3: [2, 431]

I'm applying retainAll to the first one using each of the remaining lists:

list1.retainAll(list2);
list1.retainAll(list3);

And I'm getting this result:

list1: [2, 2, 2, 2]

But I'd expect to get this one:

list1: [2]

...Since the only element all lists share is one 2 and not four 2.

I know this is probably the expected behaviour of the retainAll function, but I need to get the result I mentioned above.

Any help?

Edit: Using a HashSet to disallow duplicates won't do the trick either. In this case, for instance:

list 1: [2, 2, 2, 2, 5, 5]

list 2: [2, 2, 103]

list 3: [2, 2, 2, 431]

I need to get a result of:

list 1: [2, 2] (since all lists have at least a pair of 2's)

Instead of

list 1: [2]

share|improve this question
    
You would first need to state clearly what you expect. DO you want to retain values that are the same and at the same index in both lists? Or do you want to keep the elements that are present in both lists, and only keep the same number as in the second list? Or something else? –  JB Nizet Feb 8 '13 at 23:31

5 Answers 5

up vote 3 down vote accepted

What about this method:

public static <T> Collection <T> intersect (Collection <? extends T> a, Collection <? extends T> b)
{
    Collection <T> result = new ArrayList <T> ();

    for (T t: a)
    {
        if (b.remove (t)) result.add (t);
    }

    return result;
}

public static void main (String [] args)
{
    List <Integer> list1 = new ArrayList <Integer> (Arrays.<Integer>asList (2, 2, 2, 2, 5, 5));
    List <Integer> list2 = new ArrayList <Integer> (Arrays.<Integer>asList (2, 2, 103));
    List <Integer> list3 = new ArrayList <Integer> (Arrays.<Integer>asList (2, 431));

    System.out.println (intersect (list1, intersect (list2, list3)));
}
share|improve this answer
1  
This does exactly what I want. If a pair of numbers appears on each of the arrays, it will be show as a two numbers and not only as one. –  Multitut Feb 9 '13 at 0:23

This problem can be solved easier with a multiset data structure. For example, if you use guava's Multiset, you can use Multisets.retainOccurrences()

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I would use some kind of Set, perhaps a HashSet. They won't add duplicate elements, and they have the retainAll method.

Set<Integer> uniqueNums = new HashSet<Integer>(list1);
uniqueNums.retainAll(list2);
uniqueNums.retainAll(list3);

Here's the javadocs for Set.

share|improve this answer
    
Thanks, but it won't do the trick. -I've updated the question. –  Multitut Feb 8 '13 at 23:59

With retainAll you will get wrong answer as you said. I would recommend you to use HashMap keeping integer/count pairs and scan each other list and narrow down your map.

  1. Populate the map from the values of list1.
  2. Iterate over each other list and take the min(# of intg in other_list, map.get(intg)) and update the map with that value.
  3. Resulting map will be the intersection of all lists.
share|improve this answer

Instead of a list you need a data structure called bag, or multiset. The Apache commons collections library for example includes one:

http://commons.apache.org/collections/apidocs/org/apache/commons/collections/Bag.html#retainAll(java.util.Collection)

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1  
The retainAll method linked doesn't respect cardinality, which is what he's trying to accomplish. –  ataylor Feb 8 '13 at 23:31
    
The implementation in commons bag does. "The behavior specified in many of these methods is not the same as the behavior specified by Collection." –  Joni Feb 8 '13 at 23:35
    
Oh, you refer to Guava's multiset. I'm removing the reference to it then. –  Joni Feb 8 '13 at 23:45

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