Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am using json-lift that is compatible with scala 2.10 from lift-json but I do not seem to have access to the extract method. like this example :

import net.liftweb.json._
object testobject {

case class process(process_id:Int,job_id:Int ,command:String, exception:String)

def main(args: Array[String]) {
val json = parse("""
    { 
        "process_id": "2",
        "job_id": "540",
        "command": "update",
        "exception": "0"
    }
    """)

    json.extract[process] // produces an error


 }

}

now the class has dynamic parsing , for example the following does not produce any error (sweet):

json.process_id // will produce JString(2)

my two questions are :

  1. How can I map a json object to my case class
  2. How to convert JString to a regular string.

Update: the good people at lift have created an upgrade for scala 2.10.0 ... so you can just downloaded from their. No need for any work around.

import net.liftweb.json._
object testobject {

case class process(process_id:Int,job_id:Int ,command:String, exception:String)

def main(args: Array[String]) {
val json = parse("""
    { 
        "process_id": "2",
        "job_id": "540",
        "command": "update",
        "exception": "0"
    }
    """)

    val p = json.extract[process] // maps the json object to the process case class
    println(p.job_id) // will print 540



 }

}
share|improve this question

2 Answers 2

I show you my method to get the proper String, hope helps you:

Suppose a list of tuples with x and y values

val dataSet:List[(Int,Int)] = new List((0,1),(1,3),(2,6))

I make my JObject (net.liftweb.json.JsonAST.JObject):

val jsonTmp:JObject = ("x" -> dataSet.map(k => k._1)) ~ ("y" -> dataSet.map(k => k._2)))

then I get my String like this:

val jsonString:String = compact(render(jsonTmp))

compact(d:Document):String & render(value:JValue):Document are from json package.

And this is the resulting String (triple quotes are just for code formatting):

"""  {"x":[0,1,2],"y":[1,3,6]}  """
share|improve this answer
    
thank you for your help. It certainly gave me some ideas. –  CruncherBigData Jun 3 '13 at 16:53

I got it:

val process_id = json.process_id match { case JString(s) => s.toInt }
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.