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I have the following nested structure involving type parameters and type members:

trait B

trait B1 extends B

trait U {
  type _B <: B
}

type U1 = U {
  type _B = B1
}

class Q[_U <: U] {
  override def toString() : String = {
    // print out type information on B here...
  }
}

def test() {
  val q = new Q[U1]()
  println(q.toString())
}

It seems impossible to me gathering the type information on B at runtime because of the way U1 is specified.

Am I wrong? If not, is there a solution with minor changes in the setup?

Thanks to the answer from Kipton Barros I came up with the following setup:

trait B

trait B1 extends B
trait B2 extends B

trait U {
  type _B <: B
  implicit val mfB : Manifest[_B]
}

class U1 extends U {
  type _B = B1
  val mfB : Manifest[_B] = implicitly
}

class U2 extends U {
  type _B = B2
  val mfB : Manifest[_B] = implicitly
}

class Q[_U <: U](u : _U) {
  override def toString() : String = {
    "B: " + u.mfB.erasure.getName()
  }
}

def test() {
  println(new Q(new U1) toString)
  println(new Q(new U2) toString)
}

The only downside of this approach is the need for instantiation of U.

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2 Answers 2

up vote 0 down vote accepted

I would have thought to use a combination of a type refinement and a Manifest. The former allows to surface the abstract type _B as a type parameter B, and the latter instructs the Scala compiler to reify the type of B (edit: the static type from the call context) as a run-time object. Here's my attempt,

trait B
trait B1 extends B
trait B2 extends B
trait U { type _B <: B }
class U1 extends U { type _B = B1 }

class Q[B: Manifest, _U <: U { type _B = B}](u: U) {
  override def toString() : String = {
    implicitly[Manifest[B]].toString // Manifest[B] was an implicit parameter to Q
  }
}

// Four tests:
println(new Q[B1, U1](new U1) toString)        // (1) prints "$line1.$read$$iw$$iw$B1"
// println(new Q[B2, U1](new U1) toString)     // (2) correctly fails to compile
// println(new Q[Nothing, U1](new U1) toString)// (3) correctly fails to compile
println(new Q(new U1) toString)                // (4) prints "Nothing" (why not B1?)

It works in the first case, where explicit type parameters are given. The second case correctly fails to compile, since U1 contains a B1 type, not a B2 type. Similarly for the third case. For some reason, though, the Scala compiler is generating an incorrect manifest in the fourth case, even though the compiler seems to infer type B1. I don't know enough to say whether this is a bug, but it's certainly surprising to me. Can anyone explain why case (4) doesn't print B1's Manifest?

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Just to clear up a misconception: a Manifest does not carry the run-time type of a type parameter. It carries the static type from the context of the call site from which the method or constructor that requires a manifest is called.

scala> def foo[A: Manifest](a: A) = (manifest[A].erasure, a.asInstanceOf[AnyRef].getClass)
foo: [A](a: A)(implicit evidence$1: Manifest[A])(java.lang.Class[_], java.lang.Class[_])

scala> foo("")
res1: (java.lang.Class[_], java.lang.Class[_]) = (class java.lang.String,class java.lang.String)

scala> foo[AnyRef]("")
res2: (java.lang.Class[_], java.lang.Class[_]) = (class java.lang.Object,class java.lang.String)

scala> val a: Any = ""
a: Any = ""

scala> foo(a)
res3: (java.lang.Class[_], java.lang.Class[_]) = (class java.lang.Object,class java.lang.String)
share|improve this answer
    
Thanks, I updated my answer to clarify your point. Do you have thoughts about why case (4) in my example prints Nothing? It surprises me because type inference at the call site determines the type parameter B to be B1, correct? –  Kipton Barros Oct 16 '11 at 17:31

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