90

How can I get the last element of a stream or list in the following code?

Where data.careas is a List<CArea>:

CArea first = data.careas.stream()
                  .filter(c -> c.bbox.orientationHorizontal).findFirst().get();

CArea last = data.careas.stream()
                 .filter(c -> c.bbox.orientationHorizontal)
                 .collect(Collectors.toList()).; //how to?

As you can see getting the first element, with a certain filter, is not hard.

However getting the last element in a one-liner is a real pain:

  • It seems I cannot obtain it directly from a Stream. (It would only make sense for finite streams)
  • It also seems that you cannot get things like first() and last() from the List interface, which is really a pain.

I do not see any argument for not providing a first() and last() method in the List interface, as the elements in there, are ordered, and moreover the size is known.

But as per the original answer: How to get the last element of a finite Stream?

Personally, this is the closest I could get:

int lastIndex = data.careas.stream()
        .filter(c -> c.bbox.orientationHorizontal)
        .mapToInt(c -> data.careas.indexOf(c)).max().getAsInt();
CArea last = data.careas.get(lastIndex);

However it does involve, using an indexOf on every element, which is most likely not you generally want as it can impair performance.

  • 8
    Guava provides Iterables.getLast which takes Iterable but is optimized to work with List. A pet peeve is that it doesn't have getFirst. The Stream API in general is horribly anal, omitting lots of convenience methods. C#'s LINQ, by constrast, is happy to provide .Last() and even .Last(Func<T,Boolean> predicate), even though it supports infinite Enumerables too. – Aleksandr Dubinsky Feb 5 '14 at 17:54
  • @AleksandrDubinsky upvoted, but one note for readers. Stream API is not fully comparable to LINQ since both done in a very different paradigm. It is not worse or better it is just different. And definitely some methods are absent not because oracle devs are incompetent or mean :) – fasth Mar 23 '15 at 2:49
  • 1
    For a true one-liner, this thread may be of use. – quantum Jun 5 '15 at 16:50
154

It is possible to get the last element with the method Stream::reduce. The following listing contains a minimal example for the general case:

Stream<T> stream = ...; // sequential or parallel stream
Optional<T> last = stream.reduce((first, second) -> second);

This implementations works for all ordered streams (including streams created from Lists). For unordered streams it is for obvious reasons unspecified which element will be returned.

The implementation works for both sequential and parallel streams. That might be surprising at first glance, and unfortunately the documentation doesn't state it explicitly. However, it is an important feature of streams, and I try to clarify it:

  • The Javadoc for the method Stream::reduce states, that it "is not constrained to execute sequentially".
  • The Javadoc also requires that the "accumulator function must be an associative, non-interfering, stateless function for combining two values", which is obviously the case for the lambda expression (first, second) -> second.
  • The Javadoc for reduction operations states: "The streams classes have multiple forms of general reduction operations, called reduce() and collect() [..]" and "a properly constructed reduce operation is inherently parallelizable, so long as the function(s) used to process the elements are associative and stateless."

The documentation for the closely related Collectors is even more explicit: "To ensure that sequential and parallel executions produce equivalent results, the collector functions must satisfy an identity and an associativity constraints."


Back to the original question: The following code stores a reference to the last element in the variable last and throws an exception if the stream is empty. The complexity is linear in the length of the stream.

CArea last = data.careas
                 .stream()
                 .filter(c -> c.bbox.orientationHorizontal)
                 .reduce((first, second) -> second).get();
  • Nice one, thanks! Do you by the way know if it is possibly to omit a name (perhaps by using a _ or similar) in cases where you do not need a parameter? So would be: .reduce((_, current) -> current) if only that aws valid syntax. – skiwi Jan 29 '14 at 20:18
  • 1
    @skiwi you can use any legal variable name, for example: .reduce(($, current) -> current) or .reduce((__, current) -> current) (double underscore). – assylias Jan 30 '14 at 10:52
  • 2
    Technically, it may not work for any streams. The documentation that you point to, as well as for Stream.reduce(BinaryOperator<T>) makes no mention if reduce obeys encounter order, and a terminal operation is free to ignore encounter order even if the stream is ordered. As an aside, the word "commutative" doesn't appear in the Stream javadocs, so its absence does not tell us much. – Aleksandr Dubinsky Feb 5 '14 at 22:06
  • 2
    @AleksandrDubinsky: Exactly, the documentation doesn't mention commutative, because it is not relevant for the reduce operation. The important part is: "[..] A properly constructed reduce operation is inherently parallelizable, so long as the function(s) used to process the elements are associative [..]." – nosid Feb 5 '14 at 22:43
  • 1
    @Aleksandr Dubinsky: of course, it’s not a “theoretical question of the spec”. It makes the difference between reduce((a,b)->b) being a correct solution for getting the last element (of an ordered stream,of course) or not. The statement of Brian Goetz makes a point, further the API documentation states that reduce("", String::concat) is an inefficient but correct solution for string concatenation, which implies maintenance of the encounter order.The intention is well-known,the documentation has to catch up. – Holger Apr 19 '16 at 16:02
36

If you have a Collection (or more general an Iterable) you can use Google Guava's

Iterables.getLast(myIterable)

as handy oneliner.

9

One liner (no need for stream;):

Object lastElement = list.get(list.size()-1);
  • 17
    If list is empty, this code will throw ArrayIndexOutOfBoundsException. – Dragon Jan 17 '18 at 14:14
  • Doesn't work if you have filter. – fastcodejava Dec 17 '18 at 23:03
1

Guava has dedicated method for this case:

Stream<T> stream = ...;
Optional<T> lastItem = Streams.findLast(stream);

It's equivalent to stream.reduce((a, b) -> b) but creators claim it has much better performance.

From documentation:

This method's runtime will be between O(log n) and O(n), performing better on efficiently splittable streams.

It's worth to mention that if stream is unordered this method behaves like findAny().

  • 1
    This should be an accepted answer – ZhekaKozlov 2 days ago
-1

You can also use skip() function as below...

long count = data.careas.count();
CArea last = data.careas.stream().skip(count - 1).findFirst().get();

it's super simple to use.

  • Note: you shouldn't rely on stream's "skip" when dealing with huge collections (millions of entries), because "skip" is implemented by iterating through all elements until the Nth number is reached. Tried it. Was very disappointed by the performance, compared to a simple get-by-index operation. – java.is.for.desktop Dec 1 '18 at 9:11

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.