27

I am wondering is there an alternative to

List<X> lastN = all.subList(Math.max(0, all.size() - n), all.size());

with stream usage?

  • 1
    I don't think this is generally possible with streams, as a stream's size may not be known a priori, or it may even be infinite. And if you create the stream from a list, just use sublist, as you did. – tobias_k May 27 '15 at 8:04
  • 1
    @tobias_k the OP seems to have a finite list however... – Puce May 27 '15 at 8:06
  • 1
    If you already have a list, then subList is the way to go. You can then copy it, stream it, whatever else you want. – Brian Goetz May 27 '15 at 16:28
22

A custom collector can be written like this:

public static <T> Collector<T, ?, List<T>> lastN(int n) {
    return Collector.<T, Deque<T>, List<T>>of(ArrayDeque::new, (acc, t) -> {
        if(acc.size() == n)
            acc.pollFirst();
        acc.add(t);
    }, (acc1, acc2) -> {
        while(acc2.size() < n && !acc1.isEmpty()) {
            acc2.addFirst(acc1.pollLast());
        }
        return acc2;
    }, ArrayList::new);
}

And use it like this:

List<String> lastTen = input.stream().collect(lastN(10));
  • 2
    You don’t need to write ArrayList<T>::new, just ArrayList::new is enough as method references always use type inference rather than raw types (like if the “diamond operator” was always present when using ::new). You already use it with ArrayDeque::new. Btw. I’d prefer removeFirst/removeLast over pollFirst/pollLast here… – Holger May 27 '15 at 13:05
  • 2
    @Holger, first I wrote ArrayList::new, but Eclipse displayed a warning about unchecked constructor. Well, probably that's an ECJ-specific problem. – Tagir Valeev May 27 '15 at 13:10
  • Interestingly, the ArrayDeque::new would benefit from a type witness, as using ArrayDeque<T>::new would make the type witness at the Collector.of call obsolete (and <T> is simpler than <T, Deque<T>, List<T>>) whereas the type witness at ArrayList<T>::new is not necessary as its type can be inferred from the target type. – Holger Oct 20 '16 at 8:27
16

Use Stream.skip()

Returns a stream consisting of the remaining elements of this stream after discarding the first n elements of the stream. If this stream contains fewer than n elements then an empty stream will be returned.

all.stream().skip(Math.max(0, all.size() - n)).forEach(doSomething);
  • This doesn't return the last n elements. It skips the first n. not what OP asked for. – Bohemian May 27 '15 at 8:00
  • @Bohemian skip(all.size() - n) gives you the last n elements... – Puce May 27 '15 at 8:03
  • @puce yeah OK. I'll edit that in. – Bohemian May 27 '15 at 8:06
  • 1
    what if we do not know about stream size (assume worst case)? – ytterrr May 27 '15 at 8:11
  • 3
    This throws IllegalArgumentException if all.size() < n. The Math.max(0, all.size() - n) from the original question will be necessary here as well. – Jan Zyka May 27 '15 at 8:20
3

In case the stream has unknown size, there's probably no way around consuming the entire stream and buffering the last n elements encountered so far. You can do this using some kind of deque, or a specialized ring-buffer automatically maintaining its maximum size (see this related question for some implementations).

public static <T> List<T> lastN(Stream<T> stream, int n) {
    Deque<T> result = new ArrayDeque<>(n);
    stream.forEachOrdered(x -> {
        if (result.size() == n) {
            result.pop();
        }
        result.add(x);
    });
    return new ArrayList<>(result);
}

All of those operations (size, pop, add) should have complexity of O(1), so the overall complexity for a stream with (unknown) length n would be O(n).

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