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Please advice how to convert a String to JsonObject using gson library.

What I unsuccesfully do:

String string = "abcde";
Gson gson = new Gson();
JsonObject json = new JsonObject();
json = gson.toJson(string); // Can't convert String to JsonObject
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3 Answers 3

up vote 2 down vote accepted

You don't need to use JsonObject. You should be using Gson to convert to/from JSON strings and your own Java objects.

See the Gson User Guide:

(Serialization)

Gson gson = new Gson();
gson.toJson(1);                   // prints 1
gson.toJson("abcd");              // prints "abcd"
gson.toJson(new Long(10));        // prints 10
int[] values = { 1 };
gson.toJson(values);              // prints [1]

(Deserialization)

int one = gson.fromJson("1", int.class);
Integer one = gson.fromJson("1", Integer.class);
Long one = gson.fromJson("1", Long.class);
Boolean false = gson.fromJson("false", Boolean.class);
String str = gson.fromJson("\"abc\"", String.class);
String anotherStr = gson.fromJson("[\"abc\"]", String.class)
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1  
But I need to use JsonObject. –  Eugene Feb 26 '11 at 17:41
    
@Android: why do you think so? –  Matt Ball Feb 26 '11 at 17:42
    
because a method of my class should return JsonObject. –  Eugene Feb 26 '11 at 17:44
2  
@Android: ...why? JsonObject is an intermediate representation. In 99% of the use cases, you should really only care about representing your data as a Java object, or as a string containing JSON. –  Matt Ball Feb 26 '11 at 17:46
12  
You do not answer the question :) There are of course cases when you actually need to convert a String to a JsonObject. –  Olof Larsson Apr 3 '12 at 12:37

You can convert it to a JavaBean if you want using:

 Gson gson = new GsonBuilder().setPrettyPrinting().create();
 gson.fromJson(jsonString, JavaBean.class)

To use JsonObject, which is more flexible, use the following:

String json = "{\"Success\":true,\"Message\":\"Invalid access token.\"}";
JsonParser jsonParser = new JsonParser();
JsonObject jo = (JsonObject)jsonParser.parse(json);
Assert.assertNotNull(jo);
Assert.assertTrue(jo.get("Success").getAsString());

Which is equivalent to the following:

JsonElement jelem = gson.fromJson(json, JsonElement.class);
JsonObject jobj = jelem.getAsJsonObject();
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"Assert" are the extra stuffs, it's for testing purpose. –  Paresh Mayani Jun 24 at 13:16
    
This answer actually answers the question as asked. –  Janik Zikovsky Jul 2 at 20:25
    
jsonParser.parse(json).getAsJsonObject(); –  Mike Oct 11 at 19:31

Looks like the above answer did not answer the question completely.

I think you are looking for something like below:

class TransactionResponse {

   String Success, Message;
   List<Response> Response;

}

TransactionResponse = new Gson().fromJson(response, TransactionResponse.class);

where my response is something like this:

{"Success":false,"Message":"Invalid access token.","Response":null}

As you can see, the variable name should be same as the Json string representation of the key in the key value pair. This will automatically convert your gson string to JsonObject.

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Why do you use uppercase on member variables? Why do you use default access modifier? If you want uppercase in the response then use @SerializedName("Success") for instance instead. –  Simon Zettervall Oct 30 '13 at 9:41

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