17

I understand that if I have:

case class Person(name: String)

I can use

object PersonJsonImplicits extends DefaultJsonProtocol {
  implicit val impPerson = jsonFormat1(Person)
}

and thus serialize it with:

import com.example.PersonJsonImplicits._
import spray.json._
new Person("somename").toJson

however what If i have

trait Animal
case class Person(name: String) extends Animal

and I have somewhere in my code

val animal = ???

and I need to serialize it and I want to use json spray

which serializer should I add I was hoping to have something like:

object AnimalJsonImplicits extends DefaultJsonProtocol {
  implicit val impAnimal = jsonFormat???(Animal)
}

where maybe I needed to add some matcher in order to check of what type is Animal so that if its a person I would direct it to person but found nothing... was reading https://github.com/spray/spray-json and don't understand how to do that..

so how can I serialize the set of

trait Animal
case class Person(name: String) extends Animal

with json spray?

  • If you're not bound to JSON spray, you can use uPickle which will handle this case automatically for you. – Matthias Braun Dec 31 '16 at 13:31
26

You have a couple options:

Option 1

Extend RootJsonFormat[Animal] and put your custom logic for matching different types of Animal:

import spray.json._
import DefaultJsonProtocol._

trait Animal   
case class Person(name: String, kind: String = "person") extends Animal

implicit val personFormat = jsonFormat2(Person.apply)   
implicit object AnimalJsonFormat extends RootJsonFormat[Animal] {
  def write(a: Animal) = a match {
    case p: Person => p.toJson
  }
  def read(value: JsValue) = 
    // If you need to read, you will need something in the 
    // JSON that will tell you which subclass to use
    value.asJsObject.fields("kind") match {
      case JsString("person") => value.convertTo[Person]
    }
}

val a: Animal = Person("Bob")
val j = a.toJson
val a2 = j.convertTo[Animal]

If you paste this code into the Scala REPL you get this output:

a: Animal = Person(Bob,person)
j: spray.json.JsValue = {"name":"Bob","kind":"person"}
a2: Animal = Person(Bob,person)

Source

Option 2

Another option is to supply implicit jsonFormats for Person and any other subclasses of Animal and then write your serialize code like so:

def write(a: Animal) = a match {
  case p: Person => p.toJson
  case c: Cat => c.toJson
  case d: Dog => d.toJson
}

Source

  • 1
    trait Animal "{" is missing – Mikhail Zaretsky Apr 5 '16 at 16:06
  • 2
    @MikhailZaretsky - it is valid Scala syntax to omit trait and class bodies when they are not required. This code compiles, no '{' required. – theon Apr 5 '16 at 16:09
0

It can be done with extending RootJsonFormat. An examples can be found from here.

-1

You can add some extra field eq. typewhen serializing and use it to determine trait implementation when deserializing:

trait Animal
case class Person(name: String) extends Animal
case class Lion(age: Int) extends Animal

implicit def personFormat = jsonFormat1(Person)
implicit def lionFormat = jsonFormat1(Lion)

implicit def animalFormat = 
  new RootJsonFormat[Animal] {
    override def read(json: JsValue): Animal = 
      json.asJsObject.fields.get("type") match {
        case Some(JsString("person")) => json.convertTo[Person]
        case Some(JsString("lion")) => json.convertTo[Lion]
        case t => deserializationError(s"Unable to deserialize Animal of type $t")
      }

    override def write(obj: Animal): JsValue =
      obj match {
        case e: Person => toJson(e, "person")
        case e: Lion => toJson(e, "lion")
      }

    def toJson[T](obj: T, objType: String)(implicit w: JsonWriter[T]): JsObject = {
      val o = obj.toJson.asJsObject
      o.copy(fields = o.fields + ("type" -> JsString(objType)))
    }
  }

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