25

I'm having a problem serializing an object using Gson.

@XmlRootElement
class Foo implements Serializable {
    private int number;
    private String str;

    public Foo() {
        number = 10;
        str = "hello";
    }
}

Gson will serialize this into a JSON

{"number":10,"str":"hello"}.

However, I want it to be

{"Foo":{"number":10,"str":"hello"}},

so basically including the top level element. I tried to google a way to do this in Gson, but no luck. Anyone knows if there is a way to achieve this?

Thanks!

4 Answers 4

23

You need to add the element at the top of the the object tree. Something like this:

Gson gson = new Gson();
JsonElement je = gson.toJsonTree(new Foo());
JsonObject jo = new JsonObject();
jo.add("Foo", je);
System.out.println(jo.toString());
// Prints {"Foo":{"number":10,"str":"hello"}}
2
  • 2
    well, this means i need to hardcode the class type "Foo" into the element though.
    – fei
    Jan 7, 2011 at 21:41
  • @fei yes. Ideally, what You are getting from Gson is correct. The correct representation of Foo object in JSON is {"number":10,"str":"hello"}. If there is a class which has Foo as it's instance variable in that case you should have expected {"foo":{"number":10,"str":"hello"}} -- but if you want to prepend class name explicitly, you will have to add it explicitly.
    – Nishant
    Jan 7, 2011 at 21:49
15

Instead of hardcoding the type you can do:

...
jo.add(Foo.getClass().getSimpleName(), je);
1
  • 2
    I think this should be a comment of the other answer and not an answer by itself. It is actually a good comment though
    – mbritto
    Mar 2, 2015 at 13:48
7

A better way to do this is to create a wrapper class and then create an object of Foo inside it.

Sample code:

public class ResponseWrapper {

   @SerializedName("Foo")
   private Foo foo;

   public Foo getFoo() {
      return foo;
   }

   public void setFoo(Foo foo) {
      this.foo= foo;
   }
 }

Then you can easily parse to JSON using:

new GsonBuilder().create().toJson(responseWrapperObj);

which will give you the desired structure:

{"Foo":{"number":10,"str":"hello"}}
2
  • This is a much better response.
    – Rod Lima
    Jun 30, 2016 at 2:20
  • Not really, you're creating another object… in a small app with 3 models this is ok, but maintain 40+ and write these wrappers … Mar 1, 2017 at 21:46
-3

If you are using Jackson api use the below lines

mapper.configure(SerializationFeature.WRAP_ROOT_VALUE, true); mapper.configure(DeserializationFeature.UNWRAP_ROOT_VALUE, true);

1
  • 2
    The title of the question state's op is using GSON and not jackson
    – dstarh
    Nov 7, 2017 at 15:27

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