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I need to make million of intersections of ArrayList in java, and for this purpose I use this method:

public static ArrayList<Integer> intersection(ArrayList<Integer> a, ArrayList<Integer> b) {
        Set<Integer> aSet = new HashSet<Integer>(a);
        Set<Integer> bSet = new HashSet<Integer>(b);

        for(Iterator<Integer> it = aSet.iterator(); it.hasNext();) {
            if(!bSet.contains(it.next())) it.remove();
        }
        return new ArrayList<Integer>(aSet);
    }

In terms of time It's performant But I have a lot of memory leaks and I often go out of memory. How can I improve the function in order to be performant both in time and in space?

UPDATE

The arraylists given in input must remain unchanged.

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2  
Why not use removeAll()? –  arshajii May 12 at 18:49
1  
WHy lists to start with and not Sets? And Set has .retainAll() –  fge May 12 at 18:51
    
removeAll() is the best option if you do not want to write the code yourself. –  Puru-- May 12 at 19:01
1  
He wants to do an intersection, not remove all values from one list to another. retainAll() seems to be a good way to do that. Also, if you want to use collections often, I'd suggest you use Guava, with have a lot of useful methods. For example Sets.intersection(set1, set2) –  Alexandre FILLATRE May 12 at 19:07
1  
If there are real optimizations to be made, it's in handling multiple intersections at once. Under what conditions are you doing the intersections? Are you just intersecting every pair of arrays in a list of thousands of arrays or something? Do you know what intersections need done ahead of time? –  Nuclearman May 14 at 5:28

2 Answers 2

One solution (for performance) would be to use a SortedSet like so

public static List<Integer> intersection2(List<Integer> a, List<Integer> b) {
    SortedSet<Integer> aSet = new TreeSet<Integer>(a);
    aSet.retainAll(b);
    return new ArrayList<Integer>(aSet);
}

Another solution (for space) would be use the passed in List(s) like so (EDITED with the "new requirement" that the passed in List(s) be unchanged),

public static List<Integer> intersection3(List<Integer> a, List<Integer> b) {
    List<Integer> c = new ArrayList<Integer>(a); // <-- new requirement.
    c.retainAll(b);
    return c;
}
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Good advices. Sets are indeed better suited for that kind of things –  Alexandre FILLATRE May 12 at 19:09
    
I've tested your method with this code (pastebin.com/j0La75my) but it is performant only with little arraylists. These are the results: pastebin.com/L1RCPqLG .I've also noticed that your second method returns wrong results. –  Ivan Zandonà May 13 at 7:24
    
@IvanZandonà That isn't a robust benchmark. –  Elliott Frisch May 13 at 10:44
    
I had never thought about the robustness of the benchmark. However, I have tried to insert your code in my application and performance plummeted considerably. I have tried the Guava library and would seem to be the solution at a little cost of time performance! –  Ivan Zandonà May 14 at 14:02

First of you do not need to HashSets here , you can do this with a single HashSet.

Add everything from first ArrayList to a HashSet and , iterate through second 'ArrayList' and check if each element contained in the HashSet constructed earlier, if so add it to the result ArrayList.

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