5

I have a structured Json to be mutable in some fields, how can I parse (deserialize) it correctly in Java using Gson google json api ?

Json example:

{ 
type: 'sometype',
fields: {
    'dynamic-field-1':[{value: '', type: ''},...],
    'dynamic-field-2':[{value: '', type: ''},...],
...
}

The dynamic-fields will change its name depending on the structure sent.

Is there a way ?

8

You can use custom (de)serialization as Raph Levien suggests, however, Gson natively understands maps.

If you run this you will get the output {"A":"B"}

Map<String, String> map = new HashMap<String, String>();
map.put("A", "B");
System.out.println(new Gson().toJson(src));

The map can now contain your dynamic keys. To read that Json again you need to tell Gson about the type information through a TypeToken which is Gson's way of recording the runtime type information that Java erases.

Map fromJson = 
    new Gson().fromJson(
        "{\"A\":\"B\"}", 
        new TypeToken<HashMap<String, String>>() {}.getType());
System.out.println(fromJson.get("A"));

I hope that helps. :)

  • Thanks, this is an easier way :) – Bruno Carvalho Jan 27 '11 at 17:00
3

Using google-gson I do it this way:

JsonElement root = new JsonParser().parse(jsonString);

and then you can work with json. e.g.:

String value = root.getAsJsonObject().get("type").getAsString();
1

Yes, write a custom deserializer that takes a generic JsonElement object. Here's an example:

http://benjii.me/2010/04/deserializing-json-in-android-using-gson/

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.