29

For example, I have this Map value in Scala:

val m = Map(
    "name" -> "john doe", 
    "age" -> 18, 
    "hasChild" -> true, 
    "childs" -> List(
        Map("name" -> "dorothy", "age" -> 5, "hasChild" -> false),
        Map("name" -> "bill", "age" -> 8, "hasChild" -> false)
    )
)

I want to convert it to its JSON string representation:

{
    "name": "john doe",
    "age": 18,
    "hasChild": true,
    "childs": [
        {
            "name": "dorothy",
            "age": 5,
            "hasChild": false
        },
        {
            "name": "bill",
            "age": 8,
            "hasChild": false
        }
    ]
}

I'm currenly working on Play framework v2.3, but the solution doesn't need to use Play JSON library, although it will be nice if someone can provide both Play and non-Play solution.

This is what I have done so far without success:

// using jackson library
val mapper = new ObjectMapper()
val res = mapper.writeValueAsString(m)
println(res)

Result:

{"empty":false,"traversableAgain":true}

I don't understand why I got that result.

0

8 Answers 8

30

As a non play solution, you can consider using json4s which provides a wrapper around jackson and its easy to use. If you are using json4s then you can convert map to json just by using:

write(m)                                        
//> res0: String = {"name":"john doe","age":18,"hasChild":true,"childs":[{"name":"dorothy","age":5,"hasChild":false},{"name":"bill","age":8,"hasChild":false}]}

--Updating to include the full example--

import org.json4s._
import org.json4s.native.Serialization._
import org.json4s.native.Serialization
implicit val formats = Serialization.formats(NoTypeHints)

 val m = Map(
  "name" -> "john doe",
  "age" -> 18,
  "hasChild" -> true,
  "childs" -> List(
    Map("name" -> "dorothy", "age" -> 5, "hasChild" -> false),
    Map("name" -> "bill", "age" -> 8, "hasChild" -> false)))

 write(m)

Output:

 res0: String = {"name":"john doe","age":18,"hasChild":true,"childs":[{"name" 
 :"dorothy","age":5,"hasChild":false},{"name":"bill","age":8,"hasChild":false }]}

Alternative way:

import org.json4s.native.Json
import org.json4s.DefaultFormats

Json(DefaultFormats).write(m)
6
  • Hi, mohit, care to give full code example? If I just write write(m), I would get not found compile error on it.
    – null
    Jan 14, 2015 at 18:11
  • @suud - updated. It will work after adding json4s dependency in sbt for jackson.
    – mohit
    Jan 14, 2015 at 18:16
  • Your code didn't work when I tried because I use Lift Json version from Json4s, the imports is different. I already know how to solve it, but I'll give you a chance to wrap the answer :)
    – null
    Jan 14, 2015 at 20:23
  • @suud - I have changed the imports. I am guessing there will not be any more changes. Anyways, if there are any changes, why don't you go ahead and edit the answer, so that it will be helpful to others who are looking for something similar in future :)
    – mohit
    Jan 14, 2015 at 20:41
  • 1
    @suud I am not entirely sure. Both tell json4s how to serialize/deserialize. I use no type hints when I want json4s to take care of everything and defaultFormats when I want to override some fields(like date time format)
    – mohit
    Jan 15, 2015 at 11:19
22
val mapper = new ObjectMapper()
mapper.writeValueAsString(Map("a" -> 1))

result> {"empty":false,"traversableAgain":true}

==============================

import com.fasterxml.jackson.module.scala.DefaultScalaModule

val mapper = new ObjectMapper()
mapper.registerModule(DefaultScalaModule)
mapper.writeValueAsString(Map("a" -> 1))

result> {"a":1}

2
  • 2
    While this code may answer the question, providing additional context regarding how and/or why it solves the problem would improve the answer's long-term value. Jun 23, 2017 at 0:43
  • You should create new object. E.g mapper.registerModule(new DefaultScalaModule())
    – saumilsdk
    Nov 25, 2020 at 9:31
9

You need to tell jackson how to deal with scala objects: mapper.registerModule(DefaultScalaModule)

4
  • I got compile error: DefaultScalaModule is not found. I googled up and found out I have to add import com.fasterxml.jackson.module.scala.DefaultScalaModule, but the class is not found.
    – null
    Jan 14, 2015 at 17:16
  • You can download it from may usual places. Like here
    – Dima
    Jan 14, 2015 at 17:22
  • 1
    libraryDependencies += "com.fasterxml.jackson.module" % "jackson-module-scala" % "2.4.4"
    – Dima
    Jan 14, 2015 at 18:37
  • I also got same error. Fix is mapper.registerModule(new DefaultScalaModule())
    – saumilsdk
    Nov 25, 2020 at 9:18
7
val mymap = array.map {
  case 1 => ("A", 1)
  case 2 => ("B", 2)
  case 3 => ("C", 3)
}
  .toMap

Using scala.util.parsing.json.JSONObject, you only need 1 line:

import scala.util.parsing.json.JSONObject

JSONObject(mymap).toString()
2
  • 2
    Beware, it does not recurse, and will translate nested objects to their string representation!
    – seb
    Aug 1, 2019 at 14:14
  • 2
    Also, it's deprecated (using Scala 2.11.12). I'm not doing something that requires me to worry about that right now but I thought I'd mention it. Feb 4, 2021 at 16:58
3

If you're working with a well-defined data model, why not define case classes and use Play JSON macros to handle conversion? i.e.

case class Person(name: String, age: Int, hasChild: Boolean, childs: List[Person])

implicit val fmt = Json.format[Person]

val person = Person(...)

val jsonStr = Json.toJson(person)
1
  • Hi, thanks for the information. In my case, there is no POJO (or POSO perhaps) involved.
    – null
    Jan 16, 2015 at 13:33
1

One thing you can do using the Jackson library is to use a java HashMap object, instead of a Scala one. Then you can basically use the same "without success" code you already wrote.

import org.codehaus.jackson.map.ObjectMapper
val mapper = new ObjectMapper()
val jmap = new java.util.HashMap[String, Int]()
jmap.put("dog", 4)
jmap.put("cat", 1)
// convert to json formatted string
val jstring  = mapper.writeValueAsString(jmap)
println(jstring)

returns

jstring: String = {"dog":4,"cat":1}    
2
  • Is it ok in term of scala's good practice to use java class in scala code?
    – null
    Jan 21, 2015 at 14:12
  • 1
    When using java objects in scala, I recommend not importing at the top of your code, instead instantiating java objects like in the example: "val jmap = new java.util.HashMap(...)" etc. That way your namespace won't get mixed up between java and scala types.
    – bill_e
    Jan 21, 2015 at 15:58
0

In case somebody is looking for a solution using standard libraries.

def toJson(query: Any): String = query match {
  case m: Map[String, Any] => s"{${m.map(toJson(_)).mkString(",")}}"
  case t: (String, Any) => s""""${t._1}":${toJson(t._2)}"""
  case ss: Seq[Any] => s"""[${ss.map(toJson(_)).mkString(",")}]"""
  case s: String => s""""$s""""
  case null => "null"
  case _ => query.toString
}
1
  • 1
    What happens when a string contains a backslash or a literal quote mark?
    – LexH
    May 17, 2019 at 7:22
-1

The following snippet extracted from the official scala site worked well for me. It uses uPickle library.

val map: Map[String, Int] =
  Map("Toolkitty" -> 3, "Scaniel" -> 5)
val jsonString: String = upickle.default.write(map)
println(jsonString)
// prints: {"Toolkitty":3,"Scaniel":5}

https://docs.scala-lang.org/toolkit/json-serialize.html

2
  • While this link may answer the question, it is better to include the essential parts of the answer here and provide the link for reference. Link-only answers can become invalid if the linked page changes. - From Review
    – XMehdi01
    Jul 12, 2023 at 23:10
  • @XMehdi01, I made the suggested fix. May I kindly know does this meet the expectations? I still see one downvote. Or else I can delete the answer. - Thanks
    – Tharaka
    Mar 6 at 1:27

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