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I have the following:

abstract class Super(val m0: Member) {
  def toJson: JsValue = Json.toJson(Map(("m0", m0.toJson)))
}

class Sub(m0: Member, m1: Member) extends Super(m0) {
  def toJson: JsValue = ??? // should use super.toJson
}

How would Sub.toJson be defined such that it can reuse Super.toJson and produces:

// assuming m0.toJson is "member0" and m1.toJson is "member1"
{
  "m0": "member0",
  "m1": "member1"
}
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2  
You can merge two JsObject with the ++ operator. Maybe you can use this. –  Sonson123 Nov 17 '12 at 17:14
    
Your types dont make sense. is it supposed to be class Sub(m0: Member, m1: Member) extends Super(m0) ? –  Ivan Meredith Nov 18 '12 at 1:29
    
I'm close to understanding what you're trying to ask, but not quite close enough. Please try to clean up the question. –  maackle Nov 18 '12 at 5:49
    
@IvanMeredith, yes; I've fixed the code. Thanks. –  Noel Yap Nov 20 '12 at 4:06

1 Answer 1

This assumes that super.toJson returns a JsObject because we don't know the key for the member otherwise.

class Sub(m0: Member, m1: Member) extends Super(m0){
  def toJson: JsValue = {
    (super.toJson, Json.toJson(Map(("m1", m1.toJson)))) match {
      case (mm0: JsObject, mm1: JsObject) => mm0 ++ mm1
      case _ => JsNull
    }
  }
}
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This doesn't reuse the superclass's toJson function. –  Noel Yap Nov 18 '12 at 0:27

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