103

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

10 Answers 10

185

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();
4
  • "Assert" are the extra stuffs, it's for testing purpose. Jun 24, 2014 at 13:16
  • 5
    jsonParser.parse(json).getAsJsonObject();
    – Mike
    Oct 11, 2014 at 19:31
  • JsonObject jo = jsonParser.parse(json).getAsJsonObject(); and Assert.assertTrue(jo.get("Success").getAsBoolean());
    – smac89
    Feb 12, 2018 at 23:29
  • JsonParser has been restructured since this answer. You should now use the one-liner JsonObject jsonObj = JsonParser.parseString(json).getAsJsonObject(); Mar 17 at 18:17
47

To do it in a simpler way, consider below:

JsonObject jsonObject = (new JsonParser()).parse(json).getAsJsonObject();
0
34
String string = "abcde"; // The String which Need To Be Converted
JsonObject convertedObject = new Gson().fromJson(string, JsonObject.class);

I do this, and it worked.

0
29

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)
6
  • 38
    But I need to use JsonObject.
    – Eugene
    Feb 26, 2011 at 17:41
  • 3
    because a method of my class should return JsonObject.
    – Eugene
    Feb 26, 2011 at 17:44
  • 3
    @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, 2011 at 17:46
  • 95
    You do not answer the question :) There are of course cases when you actually need to convert a String to a JsonObject. Apr 3, 2012 at 12:37
  • 3
    @MattBall In the Ion http library (github.com/koush/ion) there's a function to set the body of an http request to a JsonObject.
    – Gagege
    Sep 25, 2015 at 20:26
8

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.

1
  • 1
    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. Oct 30, 2013 at 9:41
8
String emailData = {"to": "abc@abctest.com","subject":"User details","body": "The user has completed his training"
}

// Java model class
public class EmailData {
    public String to;
    public String subject;
    public String body;
}

//Final Data
Gson gson = new Gson();  
EmailData emaildata = gson.fromJson(emailData, EmailData.class);
4
Gson gson = new Gson();
YourClass yourClassObject = new YourClass();
String jsonString = gson.toJson(yourClassObject);
4

Note that as of Gson 2.8.6, instance method JsonParser.parse has been deprecated and replaced by static method JsonParser.parseString:

JsonObject jsonObject = JsonParser.parseString(json).getAsJsonObject();
3
JsonObject jsonObject = (JsonObject) new JsonParser().parse("YourJsonString");
0

if you just want to convert string to json then use:

use org.json: https://mvnrepository.com/artifact/org.json/json/20210307

<!-- https://mvnrepository.com/artifact/org.json/json -->
<dependency>
    <groupId>org.json</groupId>
    <artifactId>json</artifactId>
    <version>20210307</version>
</dependency>

import these

import org.json.JSONException;
import org.json.JSONObject;
import org.json.JSONArray;

Now convert it as

//now you can convert string to array and object without having complicated maps and objects
 
try {
 JSONArray jsonArray = new JSONArray("[1,2,3,4,5]");
 //you can give entire jsonObject here 
 JSONObject jsonObject= new JSONObject("{\"name\":\"test\"}") ;
             System.out.println("outputarray: "+ jsonArray.toString(2));
             System.out.println("outputObject: "+ jsonObject.toString(2));
        }catch (JSONException err){
            System.out.println("Error: "+ err.toString());
        }

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