12

I have a String object containing some arbitrary json. I want to wrap it inside another json object, like this:

{
   version: 1,
   content: >>arbitrary_json_string_object<<
}

How can I reliably add my json string as an attribute to it without having to build it manually (ie avoiding tedious string concatenation)?

class Wrapper {
   int version = 1;
}

gson.toJson(new Wrapper())
// Then what?

Note that the added json should not be escaped, but a be part of the wrapper as a valid json entity, like this:

{
   version: 1,
   content: ["the content", {name:"from the String"}, "object"]
}

given

String arbitraryJson = "[\"the content\", {name:\"from the String\"}, \"object\"]";
  • Have you tried adding a content String field? I'm curious to see the result. – everton Dec 11 '13 at 15:09
  • Probably the content will be escaped. – user1907906 Dec 11 '13 at 15:09
  • Did you solve your problem? – giampaolo Dec 14 '13 at 12:48
5

This is my solution:

  Gson gson = new Gson();
  Object object = gson.fromJson(arbitraryJson, Object.class);

  Wrapper w = new Wrapper();
  w.content = object;

  System.out.println(gson.toJson(w));

where I changed your Wrapper class in:

// setter and getters omitted
public class Wrapper {
  public int version = 1;
  public Object content;
}

You can also write a custom serializer for your Wrapper if you want to hide the details of the deserialization/serialization.

10

For those venturing on this topic, consider this.

A a = getYourAInstanceHere();
Gson gson = new Gson();
JsonElement jsonElement = gson.toJsonTree(a);
jsonElement.getAsJsonObject().addProperty("url_to_user", url);
return gson.toJson(jsonElement);
  • This should be accepted answer! Also, if you wish to add a custom object make another JsonElement like JsonElement jsonElement2 = gson.toJsonTree(b); and add to the existing one, using: jsonElement.getAsJsonObject().add("other", jsonElement2); – Sava Dimitrijević Apr 19 '19 at 10:48
7

Simple, convert your bean to a JsonObject and add a property.

Gson gson = new Gson();
JsonObject object = (JsonObject) gson.toJsonTree(new Wrapper());
object.addProperty("content", "arbitrary_json_string");
System.out.println(object);

prints

{"version":1,"content":"arbitrary_json_string"}
  • Does this work if the "arbitrary_json_string" is a JSON object? – user1907906 Dec 11 '13 at 15:14
  • 1
    @LutzHorn You can use JsonObject#add(JsonElement) for that. – Sotirios Delimanolis Dec 11 '13 at 15:15
2

You will need to deserialize it first, then add it to your structure and re-serialize the whole thing. Otherwise, the wrapper will just contain the wrapped JSON in a fully escaped string.

This is assuming you have the following in a string:

{"foo": "bar"}

and want it wrapped in your Wrapper object, resulting in a JSON that looks like this:

{
    "version": 1,
    "content": {"foo": "bar"}
}

If you did not deserialize first, it would result in the following:

{
    "version": 1,
    "content": "{\"foo\": \"bar\"}"
}
  • No, you won't have to. You can use the intermediary JsonObject that uses a LinkedTreeMap underneath. – Sotirios Delimanolis Dec 11 '13 at 15:18
  • @SotiriosDelimanolis: I do not think that does what I think OP is trying to achieve. I edited my answer to make my intentions more obvious. – jwueller Dec 11 '13 at 15:23
1

If you don't care about the whole JSON structure, you don't need to use a wrapper. You can deserialize it to a generic json object, and also add new elements after that.

JsonParser parser = new JsonParser();
JsonObject obj = parser.parse(jsonStr).getAsJsonObject();
obj.get("version"); // Version field

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.