问题
I want to convert a simple JSON string such as {"Name":"abc", "age":10} to the corresponding JSON object (not a custom Scala object such as "Person"). Does Scala support any in-built methods to convert a String to a JSON object?
I'm not going to have any complex JSON operations. I just need to convert the String to a JSON object. What is the simplest way to do this? I'm new to Scala, so I apologize if this question sounds very basic.
Thanks.
回答1:
Note: Technically, there is no longer a core Scala "native" way of parsing JSON. You should use an external, supported library like Spray JSON or Play JSON.
As of Scala 2.11 the parser-combinator library is no longer included in the core language jar and needs to be added separately to your project. Further, the JSON parser has since been deprecated in the community supported version of the parser-combinator library. I would not recommend using this library.
You can still add it to your project, if you choose to, by adding the following to your build.sbt:
libraryDependencies += "org.scala-lang.modules" %% "scala-parser-combinators" % "1.0.4"
You can find the source code for the library at https://github.com/scala/scala-parser-combinators.
Since you asked specifically about Scala's native facilities for JSON parsing – the package you are looking for is the scala.utils.parsing.json. Something like the following should work:
import scala.util.parsing.json._
val parsed = JSON.parseFull("""{"Name":"abc", "age":10}""")
parsed will take on the value: Some(Map(Name -> abc, age -> 10.0))
回答2:
You might want to use a library like Spray JSON. It provides a lot of easy to use functionality for converting to and from JSON. If you decide to use Spray JSON you can do this:
import spray.json._
// some code here
val json = "your json string here".parseJson
回答3:
Also you can use Json Library from play framework, but can be used as standalone lib also. This library based on good but abandoned Jerkson project, which is a Scala wrapper around the super-fast Java based JSON library, Jackson. And it has very rich and good documented toolset for working with JSON - transofrmers, validators and etc.
import play.api.libs.json._
val json: JsValue = Json.parse("""{"a":1}""")
To use this lib without play just install it in build.sbt with string
libraryDependencies += "com.typesafe.play" %% "play-json" % "2.3.0"
回答4:
The parseFull returns in-terms of Some(Map), parseRaw returns in terms of Some(JSONObject)
import scala.util.parsing.json._
val parsed = JSON.parseRaw("""{"Name":"abc", "age":10}""").getOrElse(yourDefault)
parsed is the JSONObject
来源:https://stackoverflow.com/questions/30884841/converting-json-string-to-a-json-object-in-scala