40

Suppose I have a list like this :

[1, 2, 3, 4, 5, 6, 7, 8, 9, 10]

Is it possible to use a Java 8 stream to take every second element from this list to obtain the following?

[1, 3, 5, 7, 9]

Or maybe even every third element?

[1, 4, 7, 10]

Basically, I'm looking for a function to take every nth element of a stream:

List<Integer> list = Arrays.asList(1, 2, 3, 4, 5, 6, 7, 8, 9, 10);
List<Integer> list2 = list.stream().takenth(3).collect(Collectors.toList());
System.out.println(list2);
// => [1, 4, 7, 10]
  • 1
    if this is a simplified scenario then maybe the actual scenario would be useful to come up with the solution. in the unlikely case it isn't: you can just filter by modulo 2 or 3. – the8472 Jul 24 '15 at 8:55
  • Why a stream? Is the source a stream? Is the result always ending up in a list? Then transform the stream to an iterator and use an external int to keep track of the item number. If the source isn't a stream, use a for-loop. The only reason to use a stream here would be if the result should be a stream or the source is a stream... – Erk May 31 '18 at 17:27
36

One of the prime motivations for the introduction of Java streams was to allow parallel operations. This led to a requirement that operations on Java streams such as map and filter be independent of the position of the item in the stream or the items around it. This has the advantage of making it easy to split streams for parallel processing. It has the disadvantage of making certain operations more complex.

So the simple answer is that there is no easy way to do things such as take every nth item or map each item to the sum of all previous items.

The most straightforward way to implement your requirement is to use the index of the list you are streaming from:

List<String> list = ...;
return IntStream.range(0, list.size())
    .filter(n -> n % 3 == 0)
    .mapToObj(list::get)
    .collect(Collectors.toList());

A more complicated solution would be to create a custom collector that collects every nth item into a list.

class EveryNth<C> {

    private final int nth;
    private final List<List<C>> lists = new ArrayList<>();
    private int next = 0;

    private EveryNth(int nth) {
        this.nth = nth;
        IntStream.range(0, nth).forEach(i -> lists.add(new ArrayList<>()));
    }

    private void accept(C item) {
        lists.get(next++ % nth).add(item);
    }

    private EveryNth<C> combine(EveryNth<C> other) {
        other.lists.forEach(l -> lists.get(next++ % nth).addAll(l));
        next += other.next;
        return this;
    }

    private List<C> getResult() {
        return lists.get(0);
    }

    public static Collector<Integer, ?, List<Integer>> collector(int nth) {
        return Collector.of(() -> new EveryNth(nth), 
            EveryNth::accept, EveryNth::combine, EveryNth::getResult));
}

This could be used as follows:

List<String> list = Arrays.asList("Anne", "Bill", "Chris", "Dean", "Eve", "Fred", "George");
list.stream().parallel().collect(EveryNth.collector(3)).forEach(System.out::println);

Which returns the result you would expect.

This is a very inefficient algorithm even with parallel processing. It splits all items it accepts into n lists and then just returns the first. Unfortunately it has to keep all items through the accumulation process because it's not until they are combined that it knows which list is the nth one. Given its complexity and inefficiency I would definitely recommending sticking with the indices based solution above in preference to this.

  • 4
    It's not very difficult to create such collector for sequential streams, but correct parallel implementation would be very ineffective. So imho better to forget about collector-based solutions and use indices. – Tagir Valeev Jul 24 '15 at 7:59
  • 2
    I think an efficient parallel implementation would be conditional on ORDERED, SIZED and SUBSIZED spliterator characteristics. – the8472 Jul 24 '15 at 10:21
  • 2
    @TagirValeev I'll add a collector just for possible interest of readers. I agree that it's pretty ineffective - using indices is much more straightforward. – sprinter Jul 24 '15 at 14:50
  • The indices solution solves my problem. Thanks! I'll accept this answer because you put the additional effort into creating the collector-based solution as well. – Michel Krämer Jul 26 '15 at 8:33
  • 1
    for (int i = 0; i < list.size(); i += 3) ...? – Erk May 31 '18 at 17:24
10

EDIT - Nov 28, 2017

As user @Emiel suggests in the comments, the best way to do this would be to use Stream.itearate to drive the list through a sequence of indices:

List<Integer> list = Arrays.asList(1, 2, 3, 4, 5, 6, 7, 8, 9, 10);

int skip = 3;
int size = list.size();
// Limit to carefully avoid IndexOutOfBoundsException
int limit = size / skip + Math.min(size % skip, 1);

List<Integer> result = Stream.iterate(0, i -> i + skip)
    .limit(limit)
    .map(list::get)
    .collect(Collectors.toList());

System.out.println(result); // [1, 4, 7, 10]

This approach doesn't have the drawbacks of my previous answer, which comes below (I've decided to keep it for historical reasons).


Another approach would be to use Stream.iterate() the following way:

List<Integer> list = Arrays.asList(1, 2, 3, 4, 5, 6, 7, 8, 9, 10);

int skip = 3;
int size = list.size();
// Limit to carefully avoid IndexOutOfBoundsException
int limit = size / skip + Math.min(size % skip, 1);

List<Integer> result = Stream.iterate(list, l -> l.subList(skip, l.size()))
    .limit(limit)
    .map(l -> l.get(0))
    .collect(Collectors.toList());

System.out.println(result); // [1, 4, 7, 10]

The idea is to create a stream of sublists, each one skipping the first N elements of the previous one (N=3 in the example).

We have to limit the number of iterations so that we don't try to get a sublist whose bounds are out of range.

Then, we map our sublists to their first element and collect our results. Keeping the first element of every sublist works as expected because every sublist's begin index is shifted N elements to the right, according to the source list.

This is also efficient, because the List.sublist() method returns a view of the original list, meaning that it doesn't create a new List for each iteration.


EDIT: After a while, I've learnt that it's much better to take either one of @sprinter's approachs, since subList() creates a wrapper around the original list. This means that the second list of the stream would be a wrapper of the first list, the third list of the stream would be a wrapper of the second list (which is already a wrapper!), and so on...

While this might work for small to medium-sized lists, it should be noted that for a very large source list, many wrappers would be created. And this might end up being expensive, or even generating a StackOverflowError.

  • Really interesting solution. Thanks! – Michel Krämer Jul 26 '15 at 8:32
  • 1
    Wouldn't Stream.iterate(0, i -> i + skip).limit(limit).map(list::get).collect(Collectors.toList()); bypass your wrapping problem? This would also be an optimization of @sprinter's answer since it wouldn't initialize and and filter all skipped values. – Emiel Nov 28 '17 at 11:47
  • @Emiel Done the edit, thanks for pointing this out – Federico Peralta Schaffner Nov 28 '17 at 14:19
7

If you're willing to use a third party library, then jOOλ offers useful features like zipWithIndex():

Every second element

System.out.println(
Seq.of(1, 2, 3, 4, 5, 6, 7, 8, 9, 10)
   .zipWithIndex()             // This produces a Tuple2(yourvalue, index)
   .filter(t -> t.v2 % 2 == 0) // Filter by the index
   .map(t -> t.v1)             // Remove the index again
   .toList()
);
[1, 3, 5, 7, 9]

Every third element

System.out.println(
Seq.of(1, 2, 3, 4, 5, 6, 7, 8, 9, 10)
   .zipWithIndex()
   .filter(t -> t.v2 % 3 == 0)
   .map(t -> t.v1)
   .toList()
);
[1, 4, 7, 10]

Disclaimer: I work for the company behind jOOλ

2

You could also use flatMap with a custom function that skips items:

private <T> Function<T, Stream<T>> everyNth(int n) {
  return new Function<T, Stream<T>>() {
    int i = 0;

    @Override
    public Stream<T> apply(T t) {
      if (i++ % n == 0) {
        return Stream.of(t);
      }
      return Stream.empty();
    }
  };
}

@Test
public void everyNth() {
  assertEquals(
    Arrays.asList(1, 4, 7, 10),
    IntStream.rangeClosed(1, 10).boxed()
      .flatMap(everyNth(3))
      .collect(Collectors.toList())
  );
}

It has the advantage of working with non-indexed streams. But it's not a good idea to use it with parallel streams (maybe switch to an atomic integer for i).

1

Try this.

    List<Integer> list = Arrays.asList(1, 2, 3, 4, 5, 6, 7, 8, 9, 10);
    int[] n = {0};
    List<Integer> result = list.stream()
        .filter(x -> n[0]++ % 3 == 0)
        .collect(Collectors.toList());
    System.out.println(result);
    // -> [1, 4, 7, 10]
  • 1
    This looks like it will break on parallel implementations. Others have solved this by using an AtomicInteger and getAndIncrement(). – MikaelF Mar 12 '17 at 1:52
1

Use Guava:

Streams
    .mapWithIndex(stream, SimpleImmutableEntry::new)
    .filter(entry -> entry.getValue() % 3 == 0)
    .map(Entry::getKey)
    .collect(Collectors.toList());
1

Here is code by AbacusUtil

Stream.of(1, 2, 3, 4, 5, 6, 7, 8, 9, 10)
        .filter(MutableInt.of(0), (e, idx) -> idx.getAndDecrement() % 2 == 0)
        .println();
// output: 1, 3, 5, 7, 9

Or if index required:

Stream.of(1, 2, 3, 4, 5, 6, 7, 8, 9, 10)
      .indexed().filter(i -> i.index() % 2 == 0).println();
// output: [0]=1, [2]=3, [4]=5, [6]=7, [8]=9

Declaration: I'm the developer of AbacusUtil.

0

Can you try this

employees.stream()
.filter(e -> e.getName().charAt(0) == 's')
.skip(n-1)
.findFirst()

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