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I'd like to group a sequence into a map of sequences, based on a discriminator of type Option, similar to the result of the groupBy method but where values resulting in None are discarded. Or perhaps, grouping by a PartialFunction discriminator and discarding those for which the partial function is not defined.

Here is a concrete example:

I have a collection of names, and a collection of namespaces. Some, but not all, of the names belong in a valid namespace, and I want to group those that do into a Map, discarding those that don't.

Currently my solution is equivalent to:

val names = List("", "", "ns2.baz", "froznit")
val namespaces = List("ns1", "ns2")

def findNamespace(n: String): Option[String] = namespaces.find(n.startsWith)

val groupedNames = names.groupBy(findNamespace).collect {
  case (Some(ns), name) => (ns, name)
// Map((ns1,List(, (ns2,List(, ns2.baz)))

My concern about this solution is that, using names.groupBy(findNamespace), I'm creating an intermediate Map which contains all the names I don't care about, under the key None. If the number of names which I discard becomes large, this solution becomes less attractive.

My attempt to avoid this is a bit of a trainwreck, though:

val groupedNames =
    map(n => (findNamespace(n), n)).
    collect({ case (Some(ns), n) => (ns, n) }).
    map({ case (ns, names) => (ns, })

If you were to solve this in a smarter way, what would it be?

Edit: ideally, the solution should only call findNamespace(name) once for each name, and build the Map using only the Option[String] values, without calling a separate hasNamespace(name) predicate.

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5 Answers 5

up vote 2 down vote accepted

You can use a foldLeft:

val gn = names.foldLeft(Map[String, List[String]]()){ case (acc, name) =>
  findNamespace(name) match { 
    case Some(ns) => acc + (ns -> (name :: acc.get(ns).getOrElse(Nil)))
    case _ => acc

Assuming order does not matter otherwise you can reverse the values with gn.mapValues(_.reverse).

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I think I prefer the conceptual simplicity of a foldLeft over some of the alternatives. By the way, I don't think it's necessary to use a case, and acc.get(ns).getOrElse(Nil) could be replaced with acc.getOrElse(ns, Nil). But otherwise, thanks :) –  Ben James May 15 '11 at 22:58

One way to avoid collecting the discarded names is to use flatMap:

names.flatMap(n => findNamespace(n) map (ns => (ns, n)))
   .map { case (ns, pairs) => (ns, pairs map (_._2)) }

You can achieve the same thing with a for-comprehension:

(for (n <- names; ns <- findNamespace(n)) yield (ns, n))
   .map { case (ns, pairs) => (ns, pairs map (_._2)) }
share|improve this answer

I'm not sure how efficient toMap is, but putting the option in a for-comprehension at least avoids the gathering of None results:

scala> val m = (for { n <- names; ns <- findNamespace(n) } yield n -> ns).toMap
m: scala.collection.immutable.Map[java.lang.String,String] = Map( -> ns1, -> ns2, ns2.baz -> ns2)

scala> val groupedNames = m.keys.groupBy(m)
groupedNames: scala.collection.immutable.Map[String,Iterable[java.lang.String]] = Map(ns1 -> Set(, ns2 -> Set(, ns2.baz))
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I came up with a variation on huynhjl's answer, replacing the match with a map:

val gn = (Map[String, List[String]]() /: names) { (acc, name) =>
  acc ++ findNamespace(name).map(ns => ns -> (name :: acc.getOrElse(ns, Nil)))
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I would suggest "filter first, then groupBy" method, like this:

scala> val names = List("", "", "ns2.baz", "froznit")
names: List[java.lang.String] = List(,, ns2.baz, froznit)

scala> val namespaces = List("ns1", "ns2")
namespaces: List[java.lang.String] = List(ns1, ns2)

scala> names filter { n => namespaces exists { n startsWith _ } } groupBy { _ take 3 }
res1: scala.collection.immutable.Map[String,List[java.lang.String]] = Map(ns1 -> List(, ns2 -> List(, ns2.baz))
share|improve this answer
Thanks, but I would like a solution which treats findNamespace as a black box - and not use separate operations (to check if the namespace is defined, and then to work out what it is). Sorry for not making this clear! –  Ben James May 15 '11 at 18:24
So why not filter out those namespaces where findNamespace returns None and then group the rest? –  Martin Konicek May 16 '11 at 22:39

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