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I have json object with arbitary values inside. And I want to deserialize it in a Map. Everything is ok except converting integers to a doubles. See example:

{"id":1, "inner_obj":{"key":"value","num":666,"map":{"key":"value"}}}

deserializes to this(map.toString()):

{id=1.0, inner_obj={key=value, num=666.0, map={key=value}}}

Is there some easy way to deserialize "id" and "num" as Integers and not as Doubles?

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3 Answers 3

up vote 1 down vote accepted

Jackson does a much better job at detecting types for maps, and it is far easier to configure than GSON: https://github.com/FasterXML/jackson-databind

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Thanks. I think it will be the most suitable solution in my case. –  Moses Jun 14 '13 at 6:58

There are no integer type in JSON. 1 and 1.0 are the same. You need to parse that 1.0 to 1 in your code. Or you need to map the JSON to some VO class and define the type of fields of the class explicitly , so that GSON can understand what you are looking for.

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But in java there are Integers and Doubles. And it's easy to deserialize {"num":1} to Integer if I have a class with Integer field "num", but when gson deserializes json to Map<String, Object> it desides to use Double. So I'am seeking the way to disable this approach. –  Moses Jun 13 '13 at 15:17
    
@Moses define a Map<String, Integer> –  John Vint Jun 13 '13 at 17:28
    
Map should contain not only integers. –  Moses Jun 14 '13 at 6:56

JSON only has a single Number type and there is no way for the parser to automatically tell what type to convert it to.

If you aren't going to use a strongly typed object graph, consider using the JsonElement types:

JsonObject root = new Gson().fromJson(json, JsonObject.class);
int num = root.getAsJsonObject("inner_obj").get("num").getAsInt();
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