Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have been using GSON library to parse all the json string and get a JSON object. But now I need to parse is like this:

{
   "status":1,
   "info":[
      {
         "\u5a31\u4e50":"\u51b7\u76d8,\u9ad8\u811a\u676f,\u6211\u7684\u7cd6\u679c\u5c4b,\u670d\u52a1\u4e1a\u6d88\u8d39\u52b5"
      },
      {
         "\u7f8e\u5986":"\u4e2a\u62a4|\u5316\u5986#\u9762\u90e8\u62a4\u7406,\u4e2a\u4eba\u536b\u751f,\u8eab\u4f53\u62a4\u7406,\u9999\u6c34\u9999\u6c1b,\u6c90\u6d74|\u7f8e\u53d1\u7528\u54c1,\u5f69\u5986,\u7cbe\u6cb9SPA,\u773c\u90e8\u62a4\u7406,\u78e8\u7802\u53bb"
      },
      {
         "\u8863\u670d":"\u670d|\u9970|\u978b|\u5e3d#\u670d\u88c5,\u978b\u9774,\u5185\u8863,\u914d\u9970,\u536b\u8863,\u4f11\u95f2\u88e4,T\u6064,\u88d9\u5b50,\u886c\u886b,\u9488\u7ec7\u886b,\u5a74\u5e7c\u513f\u670d\u9970"
      }
   ],
   "total":3
}

The key fields are dynamic, so I don't know how to write a model class to read this.

share|improve this question
    
how come the keys are dynamic ? i thought content of keys can be dynamic... are you generating json string manually yourself...? –  waqaslam Apr 22 '12 at 12:06

1 Answer 1

up vote 4 down vote accepted

How would you like your model class to look?

status and total would probably be int, so that only leaves info.

As an experiment, just add a field Object info and see how Gson would set it to an ArrayList<LinkedHashMap<String, String>> -- ugly and hard to access by key, but all the data is there. Given that information, the fastest way to model a class would be:

class Something {
  int status;
  List<Map<String, String> info;
  int total;
}

If you have control over how that JSON is generated, I suggest changing the structure of info from an array of objects [{a:b},{c:d},{e:f}] to just an object {a:b,c:d,e:f}. With this, you could just map it to a Map<String, String> with all the benefits like access by key, keys() and values():

class Something {
  int status;
  Map<String, String> info;
  int total;
}

If you want the latter model class without changing the JSON format, you'll have to write a TypeAdapter (or JsonDeserializer if you're only interested in parsing JSON, not generating it from your model class).

Here's a JsonDeserializer hat would map your original info JSON property to a plain Map<String, String>.

class ArrayOfObjectsToMapDeserializer
    implements JsonDeserializer<Map<String, String>> {

  public Map<String, String> deserialize(JsonElement json, Type typeOfT,
      JsonDeserializationContext context) throws JsonParseException {
    Map<String, String> result = new HashMap<String, String>();

    JsonArray array = json.getAsJsonArray();
    for (JsonElement element : array) {
      JsonObject object = element.getAsJsonObject();
      // This does not check if the objects only have one property, so JSON
      // like [{a:b,c:d}{e:f}] will become a Map like {a:b,c:d,e:f} as well.
      for (Entry<String, JsonElement> entry : object.entrySet()) {
        String key = entry.getKey();
        String value = entry.getValue().getAsString();
        result.put(key, value);
      }
    }
    return result;
  }
}

You need to register this custom JsonDeserializer similar to this:

GsonBuilder builder = new GsonBuilder();
builder.registerTypeAdapter(
    new TypeToken<Map<String, String>>() {}.getType(),
    new ArrayOfObjectsToMapDeserializer());
Gson gson = builder.create();

Note that this registers the custom deserializer for any Map<String, String> regardless in what class it is encountered. If you don't want this, you'll need to create a custom TypeAdapterFactory as well and check the declaring class before returning and instance of the deserializer.

share|improve this answer
    
that's work! thanks! –  gulin Apr 22 '12 at 12:46
    
You're welcome :) I just added a JsonDeserializer that allows you to use a much nicer Map<String, String> without changing the JSON format. –  Philipp Reichart Apr 22 '12 at 12:48

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.