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Given a Scala collection containing items of variable types, I can filter by type.

trait X
case class Y(y:Int) extends X
case class Z(z:Int) extends X
val l = List(Y(1), Y(2), Z(3), Z(4))
l.collect{case e: Y=>e} // returns List[Y] = List(Y(1), Y(2))
l.collect{case e: Z=>e} // returns List[Z] = List(Z(3), Z(4))

I need to parameterize the filtering.

val f = Y
l.collect{case e: f=>e} // should return List[Y] = List(Y(1), Y(2))

The last line returns error: not found: type f. Parameterization of Scala types is not permitted in that case syntax.

Is there Scala-esque way to parameterize this filtering operation? (Perhaps using something other than the collect function.) Is reflection required?

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2 Answers 2

In val f = Y Y is not a type, but companion object.

You could use type like this:

type T = Y
l.collect{case e: T=>e} // returns List[Y] = List(Y(1), Y(2))

Or you could use companion object, but only for certain parameters count:

val t = Y
l.collect{case e @ t(_)=>e} // returns List[Y] = List(Y(1), Y(2))

In this case you should use e @ t(_, _) for case class Y(y1:Int, y2:Int), e @ t(_, _, _) for case class Y(y1:Int, y2:Int, y3:Int) and so on.

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You cannot assign a type itself to a val, but you can parametrize using a method type parameter:

def filterOnType[T : ClassTag](c: Traversable[Any]): Traversable[T] = {
  val tag = implicitly[ClassTag[T]];
  c.collect { case tag(t) => t } 
}

The ClassTag is used as a way to keep, at runtime, class information about T. Otherwise T would be erased, and .collect { case t: T => t } would be the same as .collect { case t: AnyRef => t }.

scala> filterOnType[Y](l)
res7: Traversable[Y] = List(Y(1), Y(2))

scala> filterOnType[Z](l)
res8: Traversable[Z] = List(Z(3), Z(4))

If you absolutely need to keep some representation of the type in a val, then keeping a ClassTag would work here. The val would have to be implicit for it to be picked up by filterOnlyType, or you could give it directly: filterOnlyType[X](l)(myClassTagForX).

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