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In the following example, Scala cannot use the extractor, and it is driving me mad:

trait Sys[S <: Sys[S]]

object Element {
  object Foo {
    def unapply[S <: Sys[S]](foo: Foo[S]): Option[Any] = ???
  }
  trait Foo[S <: Sys[S]] extends Element[S]
}
trait Element[S <: Sys[S]]

This is a test case:

def test[S <: Sys[S]](elem: Element[S]) = elem match {
  case Element.Foo(_) => ???
  case _ => ???
}

Failing with

inferred type arguments [S] do not conform to method unapply's type parameter
  bounds [S <: Sys[S]]

(both in Scala 2.9.2 and 2.10).


If I remove the F-bound it works:

trait Sys

object Element {
  object Foo {
    def unapply[S <: Sys](foo: Foo[S]): Option[Any] = ???
  }
  trait Foo[S <: Sys] extends Element[S]
}
trait Element[S <: Sys]

def test[S <: Sys](elem: Element[S]) = elem match {
  case Element.Foo(_) => ???
  case _ => ???
}

I guess this is one of those "hate Scala days". Can this be so stupid? Basically it is the same as this question, which doesn't have a proper answer.

Thanks.

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1 Answer 1

When trying call a test with null argument and Sys[Any] type parameter, it does said that:

type arguments [Sys[Any]] do not conform to trait Element's type parameter 
  bounds [S <: Sys[S]]

Trying variance:

trait Sys[-S]

object Element {
  object Foo {
    def unapply[S <: Sys[S]](foo: Foo[S]): Option[Any] = ???
  }
  trait Foo[S <: Sys[S]] extends Element[S]
}
trait Element[S <: Sys[S]]

def test[S <: Sys[S]](elem: Element[S]) = elem match {
  case f: Element.Foo[S] => "ok"
  case _ => "smth else"
}

// test
test(new Element.Foo[Sys[Any]](){})  // "smth else"
test(new Element[Sys[Any]](){})      // "ok"
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