3

I'm using Gson to extraxt some fields. By the way I don't want to create a class due to the fact that I need only one value in all JSON response. Here's my response:

{
    "result": {
        "name1": "value1",
        "name2": "value2",
    },
    "wantedName": "wantedValue"
}

I need wantedValue but I don't want to create the entire class for deserialization. Is it possible to achieve this using Gson?

  • You can probably parse the JSON yourself to find the "wantedName" value. – Cruncher Oct 23 '13 at 18:17
  • @Cruncher I was thinking about regex but I would like to avoid using it if possible. – Angelo Oct 23 '13 at 18:18
  • you may create a ExclusionStrategy, see here : stackoverflow.com/questions/4802887/… – Amar Oct 23 '13 at 18:19
4

If you need one field only, use JSONObject.

import org.json.JSONException;
import org.json.JSONObject;


public class Main { 
public static void main(String[] args) throws JSONException  {

    String str = "{" + 
            "    \"result\": {" + 
            "        \"name1\": \"value1\"," + 
            "        \"name2\": \"value2\"," + 
            "    }," + 
            "    \"wantedName\": \"wantedValue\"" + 
            "}";

    JSONObject jsonObject = new JSONObject(str);

    System.out.println(jsonObject.getString("wantedName"));
}

Output:

wantedValue
1

If you don't have to use Gson, I would use https://github.com/douglascrockford/JSON-java. You can easily extract single fields. I could not find a way to do something this simple using Gson.

You would just do

String wantedName = new JSONObject(jsonString).getString("wantedName");
0

Can use just a portion of gson, using it just to parse the json:

Reader reader = /* create reader from source */
Streams.parse(new JsonReader(reader)).getAsJsonObject().get("wantedValue").getAsString();

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.