Given:

    List<Integer> integers = new ArrayList<>(Arrays.asList(
            10, 12
    ));

    List<Optional<Integer>> optionalIntegers = Arrays.asList(
            Optional.of(5),
            Optional.empty(),
            Optional.of(3),
            Optional.of(2),
            Optional.empty()
    );

    List<Integer> unwrappedOptionals = optionalIntegers.stream()
            .filter(Optional::isPresent)
            .map(Optional::get)
            .collect(Collectors.toList());

    integers.addAll(unwrappedOptionals);

Is there some better way of unwrapping Optionals, or other way of merging them both into a List<Integer>? It feels extremely wasteful to collect them into a new List before doing addAll().

up vote 2 down vote accepted

You could use the other form of ifPresent

ifPresent(Consumer<T>) void

With a simple forEach one could write:

optionalIntegers.stream().forEach(optional -> optional.ifPresent(integers::add));
  • Thanks! While every answer is correct, I felt this was the solution I prefered and marked it accordingly. Replacing isPresent and get with a ifPresent felt like the most correct way, to me. – Emil Kantis Aug 10 '16 at 21:10

If you don't want to create an intermediate List, add the filtered elements directly to the original integers List using forEach() instead of collect() :

optionalIntegers.stream()
        .filter(Optional::isPresent)
        .map(Optional::get)
        .forEach(integers::add);

Or, as Sergey Lagutin suggested, you can use Optional's map() and orElse() methods with a flatMap() :

optionalIntegers.stream()
                .flatMap(o -> o.map(Stream::of)
                               .orElse(Stream.empty()))
                .forEach(integers::add);
  • 1
    not sure that my idea is good but we combine filter and map to one flatMap operation: flatMap(o -> o.map(Stream::of).orElse(Stream.empty())) – Sergey Lagutin Aug 10 '16 at 10:47
  • 1
    @SergeyLagutin That also works. I'm not sure which is better. Thanks! – Eran Aug 10 '16 at 10:52

With new Java-9 Optional.stream() method it can be written this way:

optionalIntegers.stream()
                .flatMap(Optional::stream)
                .forEach(integers::add);

Prior to Java-9 you can add such method into your own utility class:

public class StreamUtil {
    public static <T> Stream<T> fromOptional(Optional<T> opt) {
        return opt.isEmpty() ? Stream.empty() : Stream.of(opt.get());
    }
}

And use it like this:

optionalIntegers.stream()
                .flatMap(StreamUtil::fromOptional)
                .forEach(integers::add);

If you want to merge them into an independent List<Integer> you can use Stream::concat like:

List<Integer> merged = Stream.concat(
         integers.stream(), 
         optionalIntegers.stream().filter(Optional::isPresent).map(Optional::get)
     ).collect(Collectors.toList());
  • Thank you! We probably have many occurences where both Streams are available straight away and using a concat would be cleaner. – Emil Kantis Aug 10 '16 at 21:12

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