3

我正在使用播放框架,并且有一个抽象类:

 abstract class Base{...}

在伴生对象中有自己的隐式 JSON 编写器

object Base {
   implicit val baseWrites: Writes[Base] = (...)(unlift(Base.unapply))
}

我将这个抽象类子类化:

case class SubClass{...}

它的伴生对象中也有自己的隐式 JSON 编写器

object SubClass {
   implicit val subClassWrites: Writes[SubClass] = (...)(unlift(SubClass.unapply))
}

当我尝试使用 Json.toJson(SubClass) 序列化子类对象时,出现错误:

[error]  both value subClassWrites in object SubClass of type => play.api.libs.json.
Writes[models.SubClass]
[error]  and value baseWrites in object Base of type =>        
play.api.libs.json.Writes[models.Base]
[error]  match expected type play.api.libs.json.Writes[models.SubClass]
[error]  Ok(Json.toJson(SubClass.find(id)))

有什么办法可以消除歧义吗?

4

1 回答 1

14

您正在发生冲突,因为Writes有一个逆变类型参数A

trait Writes[-A] extends AnyRef

这意味着它Writes[Base]是的子类Writes[SubClass]- 您可以在需要的Writes[Base]地方Writes[SubClass]使用。

问题在这里:

val base: Base = new SubClass(...)
val jsBase = Json.toJson(base)

所以Writes[Base]应该能够序列化SubClass. 您可以ADT在这种情况下使用:

sealed trait Base
object Base {
  implicit val baseWrites: Writes[Base] = 
    new Writes[Base]{
      def writes(o: Base): JsValue = o match {
        case s: SubClass => SubClass.writes.writes(s)
        case s: SubClass2 => SubClass2.writes.writes(s)
      }
    }
}

case class SubClass(...) extends Base
object SubClass {
  val writes: Writes[SubClass] = (...)(unlift(SubClass.unapply))
}

case class SubClass2(...) extends Base
object SubClass2 {
  val writes: Writes[SubClass2] = (...)(unlift(SubClass2.unapply))
}

使用sealed关键字,您会收到警告,以防万一match不是详尽无遗的。

于 2014-01-10T04:40:58.947 回答