102

If I have a List[Option[A]] in Scala, what is the idiomatic way to filter out the None values?

One way is to use the following:

val someList: List[Option[String]] = List(Some("Hello"), None, Some("Goodbye"))
someList.filter(_ != None)

Is there a more "idiomatic" way? This does seem pretty simple.

157

If you want to get rid of the options at the same time, you can use flatten:

scala> someList.flatten
res0: List[String] = List(Hello, Goodbye)
  • 23
    I would add that flatMap can be used to process the list elements other than Nones, similar to someList.flatten.map, as one often wants to work with these elements and not just flatten the list out of fun. – Frank Apr 11 '12 at 11:38
  • Yes, I hesitated to ask Raph what he's expecting to do with the filtered list. But there are also a lot of scenarios where you just want to flatten. – Nicolas Apr 11 '12 at 12:32
  • Sometimes I want to retrieve the contents of the Option objects, but other times I need them to remain as Option[A]. I am finding more and more uses for Option[A] -- cool feature. – Ralph Apr 11 '12 at 14:23
  • Is there an equivalent flatForeach type method? – cdmckay Jun 5 '15 at 1:44
  • 1
    If you're collection is immutable, faltmap will do the trick. If you're collection is mutable, no, there is not. – Nicolas Jun 5 '15 at 9:22
16

someList.filter(_.isDefined) if you want to keep the result type as List[Option[A]]

2

The cats library also has flattenOption, which turns any F[Option[A]] into an F[A] (where F[_] is a FunctorFilter)

import cats.implicits._

List(Some(1), Some(2), None).flattenOption == List(1, 2)

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