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I have a Map containing a mixture of types like in this simple example

final Map<String, Object> map = new LinkedHashMap<String, Object>();
map.put("a", 1);
map.put("b", "a");
map.put("c", 2);
final Gson gson = new Gson();
final String string = gson.toJson(map);
final Type type = new TypeToken<LinkedHashMap<String, Object>>(){}.getType();
final Map<Object, Object> map2 = gson.fromJson(string, type);
for (final Entry<Object, Object> entry : map2.entrySet()) {
    System.out.println(entry.getKey() + " : " + entry.getValue());
}

What I get back are plain Objects, no Integers, no Strings. The output looks like

a : java.lang.Object@48d19bc8
b : java.lang.Object@394a8cd1
c : java.lang.Object@4d630ab9

Can I fix it somehow? I'd expect that such simple cases will be handled correctly by default.

I know that the information about the type can't always be preserved, and possibly 1 and "1" means exactly the same in JSON. However, returning plain content-less objects just makes no sense to me.

Update: The serialized version (i.e. the string above) looks fine:

{"a":1,"b":"a","c":2}
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Could you look at what the final String string looks like? I am sure it would help in understanding the problem. –  Jean Hominal Mar 22 '11 at 20:17
    
I've just encountered this as well... That is why I use my JSONer... it might be a bit slower, but it far more generic than Gson: nu-art-infrastructure.blogspot.co.il/2013/03/jsoner.html –  TacB0sS Sep 15 '13 at 8:32
    
@TacB0sS: I've followed the "clear and static data structure" advice instead. However, making Gson handle this should be pretty trivial. Do you care to file an issue? –  maaartinus Sep 15 '13 at 14:52
    
The terrible thing about this, it that I use GSON with Android, and on my phone it works well, while on other phones it creates what you have described... My solution was also the clear and static, but in the JSONer parser you can use maps and lists with nested complex objects, and it is all solved within the annotation! –  TacB0sS Sep 15 '13 at 15:07
    
Care to file an issue about what? they know about this issue don't they? –  TacB0sS Sep 15 '13 at 15:08
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5 Answers 5

up vote 4 down vote accepted

Gson isn't that smart. Rather provide a clear and static data structure in flavor of a Javabean class so that Gson understands what type the separate properties are supposed to be deserialized to.

E.g.

public class Data {
    private Integer a;
    private String b;
    private Integer c;
    // ...
}

in combination with

Data data1 = new Data(1, "a", 2);
String json = gson.toJson(data1);
Data data2 = gson.fromJson(json, Data.class);

Update: as per the comments, the keyset seems to be not fixed (although you seem to be able to convert it manually afterwards without knowing the structure beforehand). You could create a custom deserializer. Here's a quick'n'dirty example.

public class ObjectDeserializer implements JsonDeserializer<Object> {

    @Override
    public Object deserialize(JsonElement element, Type type, JsonDeserializationContext context) throws JsonParseException {
        String value = element.getAsString();
        try {
            return Long.valueOf(value);
        } catch (NumberFormatException e) {
            return value;
        }
    }

}

which you use as follows:

final Gson gson = new GsonBuilder().registerTypeAdapter(Object.class, new ObjectDeserializer()).create();
// ... 
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A Javabean is surely not possible, as the key set is not fixed. As a workaround I can use Map<String, String> and convert the types manually (something like that), I just wonder why GSon behaves that strangely. –  maaartinus Mar 22 '11 at 20:55
    
The ability to convert the types manually suggests that you know the data structure beforehand. So the argument that keyset is not fixed is a non-argument. As to Gson, you could consider a custom deserializer which determines if the value is a number (regex, parser, Long#valueOf(), etc) and returns either Long or String. See also sites.google.com/site/gson/… –  BalusC Mar 22 '11 at 21:03
    
I updated the answer with an example, you may find it useful. –  BalusC Mar 22 '11 at 21:10
    
"So the argument that keyset is not fixed is a non-argument." - This "non-argument" makes the Javabean solution void. But thx for the ObjectDeserializer example, it works nice. –  maaartinus Mar 22 '11 at 21:19
1  
Assuming a Map is a Javabean, yes. ;) –  maaartinus Mar 22 '11 at 21:25
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Gson gson = new GsonBuilder()
    .registerTypeAdapter(Object.class, new JsonDeserializer<Object>() {
      @Override
      public Object deserialize(JsonElement json, Type typeOfT, JsonDeserializationContext context) throws JsonParseException {
        JsonPrimitive value = json.getAsJsonPrimitive();
        if (value.isBoolean()) {
          return value.getAsBoolean();
        } else if (value.isNumber()) {
          return value.getAsNumber();
        } else {
          return value.getAsString();
        }
      }
    }).create();
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Upgrade to Gson 2.1. It prints this:

a : 1.0
b : a
c : 2.0
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You are storing the data in a Map. It looks like you need to cast the object to the type you need.

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For sure not, if the type was String or Integer, it couldn't output java.lang.Object@.... I also double checked it using getClass(). –  maaartinus Mar 22 '11 at 20:27
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If you want a JSON string from Map<Object, Object>, I think json-simple is better choice than Gson.

This is a brief example from http://code.google.com/p/json-simple/wiki/EncodingExamples :

//import java.util.LinkedHashMap;
//import java.util.Map;
//import org.json.simple.JSONValue;

Map obj=new LinkedHashMap();
obj.put("name","foo");
obj.put("num",new Integer(100));
obj.put("balance",new Double(1000.21));
obj.put("is_vip",new Boolean(true));
obj.put("nickname",null);
String jsonText = JSONValue.toJSONString(obj);
System.out.print(jsonText);

Result: {"name":"foo","num":100,"balance":1000.21,"is_vip":true,"nickname":null}

For decoding, refer to http://code.google.com/p/json-simple/wiki/DecodingExamples .

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