5

I have a method that returns a JsArray of a type Foo.

To process the response, I am doing the following:

val foos : List[Foo] = Json.toJson(result).as[List[Foo]]

While debugging, I could see that the result is comming as:

"[]"

and it is generated by the code:

Ok(Json.toJson(foos))

Where foos is a List[Foo]

But I am getting the error:

[JsResultException: JsResultException(errors:List((,List(ValidationError(error.expected.jsarray,WrappedArray())))))]

I've tried many ways, but can't solve this.

What I am doing wrong?

3
  • What does result look like? Also, Object is Java, while the equivalent in Scala is AnyRef.
    – sheunis
    Commented Jul 27, 2017 at 19:46
  • as Object I mean Foo.
    – RafaelTSCS
    Commented Jul 27, 2017 at 19:46
  • and the result of the method is "[]", since it is an empty List
    – RafaelTSCS
    Commented Jul 27, 2017 at 19:48

2 Answers 2

6

You're most likely looking for Json.parse, rather than Json.toJson.

import play.api.libs.json.Json

scala> Json.toJson("[]")
res0: play.api.libs.json.JsValue = "[]"

scala> Json.parse("[]")
res1: play.api.libs.json.JsValue = []

Trying to convert res0 to a List[Foo] doesn't work because you're trying to convert the string "[]" rather than than the same string without quotation marks, [].

4

It seems like you have it the wrong way around. Json.toJson(value) is used to convert from a Scala object to a JSON value. You are using it incorrectly to try and read a JSON body and convert it to a Scala object. You probably want to do something like this:

val foos : JsResult[List[Foo]] = result.validate[List[Foo]]

where result is your JSON value.

Look at this, under the 'JsValue to a model' section:

https://www.playframework.com/documentation/2.6.x/ScalaJson

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