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Here is a JSON list I want to process:

scala> jsonStructure \ "response" \ "docs"
res4: play.api.libs.json.JsValue = [{"title":"the very first document"},{"title":"on brick walls"}]

I tried converting it to a list, but I got something with different semantics, a list whose only element is that list:

scala> jsonStructure \ "response" \\ "docs"
res3: Seq[play.api.libs.json.JsValue] = List([{"title":"the very first document"},{"title":"on brick walls"}])

scala> res3.size
res4: Int = 1

I tried this kludge, which does the trick:

scala> (jsonStructure \ "response" \ "docs").as[Seq[play.api.libs.json.JsValue]]
res9: Seq[play.api.libs.json.JsValue] = List({"title":"the very first document"}, {"title":"on brick walls"})

scala> res9 size
res10: Int = 2

Why did the \\ not work? What is the idiomatic way to understand a JsValue into a JsArray? While still maintaining the "navigating using and \ never fails" philosophy? I want to parse deeper structures, like a list of obj inside an obj which was a list element; I want a method that wont become unwieldy for deeply nested structures.

Feel free to correct my approach if you find it complicated, brittle etc.

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1 Answer 1

If you wanted just the list of title entries, you probably would want to write something like:

json \\ "title"

Which returns:

List("the very first document", "on brick walls")

The \\ works by listing any element matching your path selector (at current level and all the descendants). Since there is essentially one docs element, it returns a list with one element. Only when you ask for a title, it will return a list of titles.

But from you approach you probably wanted to pattern-match a JsValue on JsArray:

  def convert(json : JsValue) : Option[Seq[JsValue]] = json match {
    case JsArray(arr) => Some(arr)
    case _ => None
  }

It returns exactly what you wanted:

List({"title":"the very first document"}, {"title":"on brick walls"})
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