122

So if I have two sets:

Set<int> test1 = new HashSet<Integer>();
test1.add(1);
test1.add(2);
test1.add(3);

Set<int> test2 = new HashSet<Integer>();
test2.add(1);
test2.add(2);
test2.add(3);
test2.add(4);
test2.add(5);

Is there a way to compare them and only have a set of 4 and 5 returned?

159

Try this

test2.removeAll(test1);

Set#removeAll

Removes from this set all of its elements that are contained in the specified collection (optional operation). If the specified collection is also a set, this operation effectively modifies this set so that its value is the asymmetric set difference of the two sets.

  • 30
    This will work but I think it would be a nice feature to have the set operations like union , difference built in java. The above solution will modify the set , in many situations we don't really want that. – Praveen Kumar Jul 18 '14 at 8:09
  • 89
    How can Java have the gall to call this data structure a Set when it doesn't define union, intersection or difference!!! – James Newman Dec 14 '15 at 21:16
  • 8
    This solution is not fully correct. Because the order of test1 and test2 makes a difference. – Bojan Petkovic Nov 1 '16 at 22:34
  • 1
    Would test1.removeAll(test2); return the same result as test2.removeAll(test1); ? – datv Dec 3 '17 at 14:13
  • 2
    @datv The result would be different. test1.removeAll(test2) is an empty set. test2.removeAll(test1) is {4, 5}. – silentwf Dec 10 '17 at 14:11
97

If you use Guava (former Google Collections) library there is a solution:

SetView<Number> difference = com.google.common.collect.Sets.difference(test2, test1);

The returned SetView is a Set, it is a live representation you can either make immutable or copy to another set. test1 and test2 are left intact.

13

Yes:

test2.removeAll(test1)

Although this will mutate test2, so create a copy if you need to preserve it.

Also, you probably meant <Integer> instead of <int>.

4

If you are using Java 8, you could try something like this:

public Set<Number> difference(final Set<Number> set1, final Set<Number> set2){
    final Set<Number> larger = set1.size() > set2.size() ? set1 : set2;
    final Set<Number> smaller = larger.equals(set1) ? set2 : set1;
    return larger.stream().filter(n -> !smaller.contains(n)).collect(Collectors.toSet());
}
  • 4
    @Downvoter: Perhaps you have failed to realize that the other answers don't check to see which Set is larger... Therefore, if you are trying to subtract a a smaller Set from a larger Set, you will receive different results. – Josh M Sep 5 '13 at 20:06
  • 33
    you are assuming that the consumer of that function always wants to subtract the smaller set. Set difference is anticommutative (en.wikipedia.org/wiki/Anticommutativity). A-B != B-A – Simon Feb 12 '15 at 15:09
  • 7
    Regardless which variant of difference you implement, I would use public static <T> Set<T> difference(final Set<T> set1, final Set<T> set2) {as signature, the method is then usable as generic utility function. – kap Jan 12 '16 at 10:18
  • 5
    This will lead to unexpected results as the order of the difference operation may be switched without the user being aware. Subtraction of a larger set from a smaller set is mathematically well-defined and there are plenty of use cases for it. – Joel Cornett Dec 29 '16 at 19:35
  • 2
    downvote: order matters! – Sergio Oct 12 '17 at 9:48
4

Java 8

We can make use of removeIf which takes a predicate to write a utility method as:

// computes the difference without modifying the sets
public static <T> Set<T> differenceJava8(final Set<T> setOne, final Set<T> setTwo) {
     Set<T> result = new HashSet<T>(setOne);
     result.removeIf(setTwo::contains);
     return result;
}

And in case we are still at some prior version then we can use removeAll as:

public static <T> Set<T> difference(final Set<T> setOne, final Set<T> setTwo) {
     Set<T> result = new HashSet<T>(setOne);
     result.removeAll(setTwo);
     return result;
}
2

You can use CollectionUtils.disjunction to get all differences or CollectionUtils.subtract to get the difference in the first collection.

Here is an example of how to do that:

    var collection1 = List.of(1, 2, 3, 4, 5);
    var collection2 = List.of(2, 3, 5, 6);
    System.out.println(StringUtils.join(collection1, " , "));
    System.out.println(StringUtils.join(collection2, " , "));
    System.out.println(StringUtils.join(CollectionUtils.subtract(collection1, collection2), " , "));
    System.out.println(StringUtils.join(CollectionUtils.retainAll(collection1, collection2), " , "));
    System.out.println(StringUtils.join(CollectionUtils.collate(collection1, collection2), " , "));
    System.out.println(StringUtils.join(CollectionUtils.disjunction(collection1, collection2), " , "));
    System.out.println(StringUtils.join(CollectionUtils.intersection(collection1, collection2), " , "));
    System.out.println(StringUtils.join(CollectionUtils.union(collection1, collection2), " , "));
  • From which project does CollectionUtils come from? Does 1 have to assume that it's from Apache Commons Collection? – Buhake Sindi Feb 15 at 13:39
  • yes, org.apache.commons.collections4 – pwipo Feb 18 at 12:52

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