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Is it possible to get the type name of a generic class in Scala? I know this isn't possible in Java with type erasure, but I was hoping that Scala would be a different case.

Currently I have to do something similar to this:

trait Model
case class User(id: String) extends Model

def fromMap[M<:Model : Manifest](data: Map[String, String], modelType: String) = {
  modelType match {
    case "user" => User(data.get("id").get)
  }
}

val user = fromMap[User](Map("id" -> "id1"), "user")

Obviously it would be easier if I could work out "user" without having to have it passed in.

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If I understand correctly, Scala compiles to Java bytecode, so at run time it has to work under the constraints of the the Java VM -- which includes that only erased types exist at runtime. –  Henning Makholm Aug 24 '11 at 12:51
    
I made some edit to what I believe were simple mistakes in your code. Change back if I'm wrong –  Didier Dupont Aug 24 '11 at 13:34
    
Cheers, you were nearly right. User should have extended Model, but the modelType is supposed to be a string. –  Ben Smith Aug 24 '11 at 14:27

2 Answers 2

up vote 4 down vote accepted

Class name can be retrieved from a Manifest (or a ClassManifest) with manifest.erasure.getName (erasure is the Class instance). For instance

def className[A : ClassManifest] = classManifest[A].erasure.getName

Edit : Seen Derek's answer, which makes this stuff with erasure.getName look rather stupid. I didn't consider toString. Still I hope what follows may be of interest

The difference between using ClassManifest and Manifest is that in the Manifest for a generic class, the type parameter are guaranteed to be available, while they are best effort in ClassManifest (compare signatures of typeParameters in both classes). The drawback of this guarantee is that a Manifest might not be implicitly available where a ClassManifest would be.

Have you considered using typeclasses instead?

trait BuilderFromMap[A] {def build(data: Map[String, String]): A} 
  // or better, return Option[A], accounting for possible failure
object User {
   implicit val Builder extends BuilderFromMap[User] {...}
}
def fromMap[A](data: Map[String, String])(implicit builder: BuilderFromMap[A])
  = builder.build(data)

This way, calls to fromMap will compile only if a Builder is available for this particular class, rather than fail with a MatchError.

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Yeah, that's about an order of magnitude better than what I trucked out :) –  Derek Wyatt Aug 24 '11 at 13:54
    
Yet thanks for toString. –  Didier Dupont Aug 24 '11 at 14:01
    
@Derek Pity you removed your answer, while I like typeclasses better, it was quite nice as a fix of the OP code. –  Didier Dupont Aug 24 '11 at 14:14
    
Alright, it's back. I like yours a LOT better though :) –  Derek Wyatt Aug 24 '11 at 14:49

This should work (but I had to edit your code in order to guess what you wanted):

trait Model
case class User(id: String) extends Model

object Main extends App {
  def fromMap[M <: Model](data: Map[String, String])(implicit m: reflect.Manifest[M]): Model = {
    m.toString match {
      case "User" => User(data.get("id").get)
    }
  }

  val user = fromMap[User](Map("id" -> "id1"))
  println(user)
}

But based on the trouble I had with it, I'm sure someone could do something better :)

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