13

How should I deserialize following JSON to skip root element and parse just the inner part of this JSON. I'd like to avoid creating additional, 3rd class Root, which would include only MapWrapper field.

{
    "root": {
        "language": "en",
        "map": {
            "k1": {
                "name": "n1",
            },
            "k2": {
                "name": "n2",
            }
        }
    }
}

So I'd like to have only these two classes:

class MapWrapper {
    private String language;
    private Map<String, MyMapEntry> map;
}

class MyMapEntry {
    String name;
}
10

you can use GSON Library for this.

Below code will solve your problem.

public class ConvertJsonToObject {

    private static Gson gson = new GsonBuilder().create();

    public static final <T> T getFromJSON(String json, Class<T> clazz) {
        return gson.fromJson(json, clazz);
    }

    public static final <T> String toJSON(T clazz) {
        return gson.toJson(clazz);
    }
}

String json; // your jsonString
Map<String,Object> r = ConvertJsonToObject.getFromJSON(json,Map.class);
String innerJson = ConvertJsonToObject.toJson(r.get("root"));
MapWrapper _r = ConvertJsonToObject.getFromJSON(innerJson,MapWrapper.class);
  • yes it is possible to do it by writing a custom JsonDeserializer and registering it to GSON. – Byter Aug 17 '12 at 11:30
  • any example would be appreciated – Mateusz Chromiński Aug 17 '12 at 11:33
3

Consider the following JSON:

{"authorization":{"username":"userabc", "password":"passabc"}}

The DTO for this JSON without the root element

public class Authorization {
    private String username;
    private String password;

    public String getUsername() {
        return username;
    }

    public void setUsername(String username) {
        this.username = username;
    }

    public String getPassword() {
        return password;
    }

    public void setPassword(String password) {
        this.password = password;
    }

    // Add a container for the root element
    public static class Container {
        public Authorization authorization;
    }
}

Convert from/to JSON using the following methods (you can either keep this within DTO or some other help class)

public String toJson(Authorization authorization) {
    Gson gson = new Gson();
    Authorization.Container container = new Authorization.Container();
    container.authorization = authorization;
    return gson.toJson(container);
}

public Authorization fromJson(String json) {
    Gson gson = new Gson();
    Authorization.Container container = gson.fromJson(json, Authorization.Container.class);
    return container.authorization;
}
  • Good Solution wrt me – Riskhan Feb 22 '18 at 6:04
2

This is the optimal code to do it in one pass.

MapWrapper class

public class MapWrapper {
    private String language;
    private Map<String, MyMapEntry> map;

    public MapWrapper(String language, Map<String, MyMapEntry> map) {
        this.language = language;
        this.map = map;
    }
}

MyMapEntry class

public class MyMapEntry {

    String name;

    public MyMapEntry(String name) {
        this.name = name;
    }
}

The Custom Deserializer

public class MyDeserialiser  implements JsonDeserializer<MapWrapper>
{

    @Override
    public MapWrapper deserialize(JsonElement json, Type typeOfT,
        JsonDeserializationContext ctx) throws JsonParseException {

        JsonObject _global = json.getAsJsonObject();
        _global = _global.get("root").getAsJsonObject();

        JsonPrimitive lang = (JsonPrimitive) _global.get("language");
        JsonElement map = _global.get("map");
        Map<String, MyMapEntry> inMap = new LinkedHashMap<String, MyMapEntry>();
        for (Entry<String, JsonElement> entry : map.getAsJsonObject()
                .entrySet()) {
            MyMapEntry _m = new MyMapEntry(entry.getValue().toString());
            inMap.put(entry.getKey(), _m);
        }
        return new MapWrapper(lang.getAsString(), inMap);
    }   
}

Register it with GSON

new GsonBuilder().registerTypeAdapter(MapWrapper.class,new MyDeserialiser()).create()

Now deserialise with following code

String json; // your jsonString
MapWrapper result = ConvertJsonToObject.getFromJSON(json,MapWrapper.class);
  • this makes me create additional class, which was the problem from the beggining. Doing so, its better to create Wraper class with one field of type MapWrapper called root. – Mateusz Chromiński Aug 17 '12 at 11:59
  • @Mathew No Need of Wrapper class at all actually – Byter Aug 17 '12 at 12:02
  • without wrapper it creates null object, cause ctx.deserialize would call MyDeserializer.deserialize method to create MapWrapper object – Mateusz Chromiński Aug 17 '12 at 12:06
  • After all I think that in this particular case creating additional wrapper class for root element is the cleanest solution. The internal structure can be hidden inside data provider class, so it isn't any problem for code quality (very simple data-holder class with very specified function). Thanks for your effort - I'm accepting your's another solution cause it is the shortest, and besides little overhead on processing - the best alternative. – Mateusz Chromiński Aug 19 '12 at 18:39
2

My answer is late to this party.

Once we parse the Json, the container is always going to be a JsonObject subclass of JsonElement. Thus, if we want to skip it, we just need to cast it to its subclass and grab the field holding our inner class.

    String response = ....;

    Gson gson = new Gson();

    JsonParser p = new JsonParser();
    JsonElement jsonContainer = p.parse(response);
    JsonElement jsonQuery = ((JsonObject) jsonContainer).get("query");

    MyQuery query = gson.fromJson(jsonQuery, MyQuery.class);

Note: JsonObject and JSONObject are different classes (use the com.google.Json import).

You could generalize this answer more such that you wouldn't need to know the name of the inner class. You would do this by simply getting the one-and-only field of the container object. However, I see no way to do this other than starting up the iterator, there is no getValue(atIndex) method I can see, and I think starting an iterator is probably less efficient than simply looking up the field by name (but could be wrong).

The iterator method looks like:

    JsonElement jsonQuery = ((JsonObject) jsonContainer).entrySet().iterator()
                            .next().getValue();
0

You could deserialize it into a Map<String, MapWrapper>.

  • How are you deserializing the data (or planning to)? (Any particular framework?) – Gustav Barkefors Aug 17 '12 at 11:14
0

Inspired by Gustav Carlson's idea I decided to expand it to a concrete sample. Here's a junit test that tests parsing this JSON as Map.

public static class MapWrapper {
    private String language;
    private Map<String, MyMapEntry> map;
}

public static class MyMapEntry {
    String name;
}

@Test
public void testParsing() {
    String json = "{\n" +
            "    \"root\": {\n" +
            "        \"language\": \"en\",\n" +
            "        \"map\": {\n" +
            "            \"k1\": {\n" +
            "                \"name\": \"n1\"\n" +
            "            },\n" +
            "            \"k2\": {\n" +
            "                \"name\": \"n2\"\n" +
            "            }\n" +
            "        }\n" +
            "    }\n" +
            "}";
    Gson gson = new GsonBuilder().setFieldNamingPolicy(FieldNamingPolicy.LOWER_CASE_WITH_UNDERSCORES).create();
    Type type = new TypeToken<Map<String, MapWrapper>>(){}.getType();
    Map<String, MapWrapper> parsed = gson.fromJson(json, type);
    MapWrapper mapWrapper = parsed.get("root");
    Assert.assertEquals("en", mapWrapper.language);
    Assert.assertEquals("n2", mapWrapper.map.get("k2").name);
}

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.