65

I'm pretty used to Grails converters, where you can convert any object to a JSON representation just like this (http://grails.org/Converters+Reference)

return foo as JSON

But in plain groovy, I cannot find an easy way to do this (http://groovy-lang.org/json.html)

JSONObject.fromObject(this)

return empty json strings...

Am I missing an obvious Groovy converter ? Or should I go for jackson or gson library ?

  • 1
    native "groovy properties" are not known to pure java libraries (i.e. libraries working on java reflection / java beans) – Jacek Cz Nov 24 '16 at 16:40
123

Do you mean like:

import groovy.json.*

class Me {
    String name
}

def o = new Me( name: 'tim' )

println new JsonBuilder( o ).toPrettyString()
  • 1
    This is indeed working. But the crazy thing, is if you specify "public String name". If you use public accessor, JsonBuilder seems to ignore them... – Wavyx Jan 8 '14 at 15:28
  • @Wavyx Yeah, then it doesn't make it into metaClass.properties, so isn't picked up by the builder :-/ – tim_yates Jan 8 '14 at 15:29
  • Ok.. only other ugly solutions was def toJsonString(Boolean prettyPrint = false) { Map props = [:] def outObject = Publication.declaredFields.findAll { !it.synthetic && it.name != 'props' }.collectEntries { v -> [ (v.name):this[v.name] ] } outObject << props String json = JsonOutput.toJson(outObject) prettyPrint ? JsonOutput.prettyPrint(json) : json } – Wavyx Jan 8 '14 at 15:32
  • Or maybe: new JsonBuilder( this.getClass().declaredFields.findAll { !it.synthetic }.collectEntries { [ (it.name):this[ it.name ] ] } ).toString() – tim_yates Jan 8 '14 at 15:40
15

I couldn't get the other answers to work within the evaluate console in Intellij so...

groovy.json.JsonOutput.toJson(myObject)

This works quite well, but unfortunately

groovy.json.JsonOutput.prettyString(myObject)

didn't work for me.

To get it pretty printed I had to do this...

groovy.json.JsonOutput.prettyPrint(groovy.json.JsonOutput.toJson(myObject))
6

You can use JsonBuilder for that.

Example Code:

import groovy.json.JsonBuilder

class Person {
    String name
    String address
}

def o = new Person( name: 'John Doe', address: 'Texas' )

println new JsonBuilder( o ).toPrettyString()
  • 6
    Please consider providing a full answer as it is more helpful than a link to another site. This link no longer works. – antonyh Feb 28 '17 at 15:53
  • 1
    Link works perfect – user2988257 Apr 17 at 13:51

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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