26

Why does there seem to be no map()/flatMap() methods on OptionalInt or other primitive optional flavors?

The stream() map operations allow conversion between objects and primitives. But why does Optional not exploit this?

OptionalInt profileId = OptionalInt.of(124);

Optional<Profile> profile = profileId.map(i -> getProfile(i));  //no such valid map() method!
7
  • 1
    For whatever reason, they decided not to include those operations in the primitive flavors of Optional. – Louis Wasserman Mar 17 '15 at 16:57
  • But what would stop from implementing a method that converts over an OptionalInt to an Optional? Stream does something similar I imagine. – tmn Mar 17 '15 at 17:03
  • Maybe it was left out to keep it lightweight since that is the point of primitives? There would have to be several variants of map and flatmap methods to accommodate the other primitive optional flavors as well as the standard object Optional. – tmn Mar 17 '15 at 17:13
  • 3
    The return value of map would be another kind of optional, not a Profile wouldn't it? – a better oliver Mar 17 '15 at 17:28
  • 2
    I don't know the rationale but you can just wrap your OptionalInt in an Optional: Profile profile = Optional.of(profileId).filter(OptionalInt::isPresent).map(opt -> getProfile(opt.getAsInt())).orElseThrow(...);. Otherwise use an Optional<Integer>. – Alexis C. Mar 17 '15 at 17:49
9

Primitive optionals haven't map, flatMap and filter methods by design.

Moreover, according to Java8 in Action p.305 you shouldn't use them. The justification of use primitive on streams are the performance reasons. In case of huge number of elements, boxing/unboxing overhead is significant. But this is senselessly since there is only one element in Optional.

Besides, consider example:

public class Foo {
    public Optional<Integer> someMethod() {
        return Optional.of(42);
    }
}

And usage as method reference:

.stream()
.map(Foo::someMethod)

If you change return type of someMethod to OptionalInt:

public OptionalInt someMethod() {
    return OptionalInt.of(42);
}

You cannot use it as method reference and code will not compile on:

.map(Foo::someMethod)
3
  • 17
    I don't see the point of your example. with someMethod returning OptionalInt, you can map it, it will transform a Stream<Foo> into a Stream<OptionalInt> (as opposed to a Stream<Optional<Integer>> in the first case). And the performance argument does not hold either. The operations on Stream and Optional are also about composition. I can stream.reduce(binOp).map(fun) on a Stream, but I cannot do it on an IntStream. The lack of consistency is annoying. At least there could have been a Optional<Integer> boxed() as there is on IntStream... – Xavier Mar 10 '16 at 13:34
  • maybe 'map' from one OptionalInt to another isn't that useful. But 'mapToObject' is. OptionalInt x = ...; x.mapToObject(Integer::toString).orElse(""); would be useful. Or any number of other cases where you want to take an OptionalInt into an Option<A> – Scott Carey May 31 '20 at 21:25
  • "you shouldn't use them" but the Java API has methods that return them, like IntStream.max() – herman Mar 5 at 21:37
6

It seems in Java 9 OptionalInt will have a stream method that gives you an IntStream with either 0 or 1 element in it. On this stream you can of course use map(), flatMap() or filter(), etc.

For Java 8 I have nothing to add to user2138356’s answer.

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