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Gson gson = new Gson();
System.out.println(gson.fromJson("1", Object.class));    //output:1.0
System.out.println(gson.fromJson("1", String.class));    //output:1
System.out.println(gson.fromJson("1", Integer.class));   //output:1

I'm trying to custom a deserializer to fix it,but still not work:

Gson gson = new GsonBuilder().registerTypeAdapter(Object.class,new JsonDeserializer<Object>() {
    @Override
    public Object deserialize(JsonElement json, Type typeOfT,JsonDeserializationContext context)throws JsonParseException {
        return json.getAsInt();
    }
}).create();
System.out.println(gson.fromJson("1", Object.class));   //still 1.0

Am I doing something wrong here?

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Which version of Gson are you using? The latest versions are more permissive about letting you override type adapters for core types. –  Jesse Wilson Sep 6 '12 at 4:21
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4 Answers

up vote 1 down vote accepted

Am I doing something wrong here?

You're doing something you most probably don't need. Moreover, it's really wrong, as it breaks for everything but numbers.

IIRC, Gson deserializers for some build-in types (including Object) don't work.

Whenever you use something like List<Integer>, the json will be read as int, so everything's fine.

There might be some cases where you use Something<Object> and want to get Integer rather than Double there in, however I doubt if such a code makes sense. In case it does, write a deserializer for Something and fix the problem there.

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There are no integers in JSON. 1.0 and 1 are the same thing, except 1.0 is explicit.

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Yes, I understand,Is there a way I can get 1 instead of 1.0? –  Zenofo Sep 5 '12 at 14:37
    
Well, given that JSON doesn't know what an integer is ... it hardly seems likely. –  Stephen C Sep 5 '12 at 14:55
3  
@Zenofo I'd be more concerned about the code on the other end that needs to have a "1" instead of a "1.0" –  matt b Sep 5 '12 at 14:57
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This seriously is a big flaw in GSON.

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I agree. If there is no decimal point then why suddenly add one. Makes no sense. –  Someone Somewhere Dec 12 '13 at 21:10
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If your destination class has int members, it'll deserialize into ints. Otherwise, just cast it to (int) if you're using fromJson w/o parameters.

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