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Using Lift's json parser, how can I output parsed json objects into a template?

The datatypes that net.liftweb.json.JsonParser provides are not standard lists.

package rem.lift_client
package snippet
import net.liftweb._

import util._
import Helpers._
import net.liftweb.json.JsonParser._

class SearchResults {

  def render() = {
    val json_raw = "[ {\"userName\":\"John\"}, {\"userName\":\"Michael\"} ]"
    val json_parsed = parse(input)
    "li *" #> json_parsed.toString <---- NOT CORRECT
   }
 } 

In the above example, I wanted to output a list of users as:

  • John
  • Michael
  • How do I interpret the parsed object? Any ideas are welcome, thanks.

    NOTE: In addition to the accepted answer, lift-json has an excellent documentation on this subject.

    share|improve this question

    1 Answer 1

    up vote 1 down vote accepted

    One way is to extract the data with case classes.

    implicit val formats = DefaultFormats
    case class User(userName: String)
    json_parsed.extract[List[User]]
    
    share|improve this answer
        
    What is the DefaultFormats? –  drozzy May 17 '11 at 13:12
        
    It is used to configure the extraction. For instance date formats, custom serializers etc. In this simple example default is just fine. –  Joni May 17 '11 at 13:13
        
    BTW. A recommended place to put 'formats' is a package object. Then rest of the application gets same configuration without any boilerplate. –  Joni May 17 '11 at 13:14
        
    Cool, but how did you know that "parsed" has a method called "extract"? I tried navigating the api-docs but could not find it. Is it in scala or lift docs? –  drozzy May 17 '11 at 13:18
        
    What about something like: {userId: "23423", links: {self: "api/user/23423";}}, how can I match the "self" element? –  drozzy May 17 '11 at 13:49

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