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I have the following JSON text that I need to parse to get pageName, pagePic, post_id, etc.

What is the required code?

{
   "pageInfo": {
         "pageName": "abc",
         "pagePic": "http://example.com/content.jpg"
    }
    "posts": [
         {
              "post_id": "123456789012_123456789012",
              "actor_id": "1234567890",
              "picOfPersonWhoPosted": "http://example.com/photo.jpg",
              "nameOfPersonWhoPosted": "Jane Doe",
              "message": "Sounds cool. Can't wait to see it!",
              "likesCount": "2",
              "comments": [],
              "timeOfPost": "1234567890"
         }
    ]
}
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9 Answers 9

The org.json library is easy to use. Example code below:

import org.json.*;


JSONObject obj = new JSONObject(" .... ");
String pageName = obj.getJSONObject("pageInfo").getString("pageName");

JSONArray arr = obj.getJSONArray("posts");
for (int i = 0; i < arr.length(); i++)
{
    String post_id = arr.getJSONObject(i).getString("post_id");
    ......
}

You may find extra examples from: Parse JSON in Java

Downloadable jar: http://mvnrepository.com/artifact/org.json/json

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5  
Where is the jar file for this? –  JohnMerlino Jun 4 '14 at 0:37
6  
org.json jar can be found here: http://mvnrepository.com/artifact/org.json/json –  Dylan Hogg Jun 5 '14 at 4:32
1  
good call. Nice simple Api –  Jonny Leeds Aug 22 '14 at 10:13
25  
You got to be kidding me. Of literally dozens of libraries, this is has pretty much nothing to recommend it for. Vastly better choices include Gson, Genson, Jackson and FlexJson. –  StaxMan Oct 24 '14 at 5:07
3  
I agree with @StaxMan. I just tried org.json and it's horribly cumbersome. It really doesn't play with with standard Java Collection types, for example. –  Ken Williams Nov 12 '14 at 16:55

quick-json parser is very straight forward, flexible, very fast and customizable. Try it

Features:

  • Compliant with JSON specification (RFC4627)
  • High-Performance JSON parser
  • Supports Flexible/Configurable parsing approach
  • Configurable validation of key/value pairs of any JSON Heirarchy
  • Easy to use # Very small footprint
  • Raises developer friendly and easy to trace exceptions
  • Pluggable Custom Validation support - Keys/Values can be validated by configuring custom validators as and when encountered
  • Validating and Non-Validating parser support
  • Support for two types of configuration (JSON/XML) for using quick-json validating parser
  • Requires JDK 1.5
  • No dependency on external libraries
  • Support for Json Generation through object serialization
  • Support for collection type selection during parsing process

It can be used like this:

JsonParserFactory factory=JsonParserFactory.getInstance();
JSONParser parser=factory.newJsonParser();
Map jsonMap=parser.parseJson(jsonString);
share|improve this answer
2  
Is there a javadoc available? –  jboi Sep 10 '13 at 11:38
5  
This package cannot handle empty values when parsing. For example: ... "description":"" ... throws an Exception –  Ivan Oct 25 '13 at 15:45
1  
I've fixed this issue (and many others) in code.google.com/p/quick-json/issues/detail?id=11 I hope the author will give take the time to fix it in the official release. –  noamik Aug 8 '14 at 12:28
3  
Of listed features, nothing is unique compared to other options -- and claim of high-performance is not supported by anything; unlike for more mature libraries (Gson, Jackson, Genson, Boon) which are included in benchmarks like github.com/eishay/jvm-serializers, github.com/novoj/JavaJsonPerformanceTest or developer.com/lang/jscript/… -- I have not seen this library included in tests, or mentions of it being widely used. –  StaxMan Oct 24 '14 at 5:12
1  
I just tried version 1.0.4 and it seems to have quite a few bugs regarding parsing arrays (empty arrays as well as arrays of objects) –  Mene Mar 10 at 17:47
  1. If one wants to create JAVA object from JSON and vice versa, use GSON or JACKSON third party jars etc

    //from object to JSON 
    Gson gson = new Gson();
    gson.toJson(yourObject);
    
    // from JSON to object 
    yourObject o = gson.fromJson(JSONString,yourObject.class);
    
  2. But if one just want to parse a JSON string and get some values, (OR create a JSON string from scratch to send over wire ) just use Jave EE jar which contains JsonReader, JsonArray , JsonObject etc . You may want to download the implementation of that spec like javax.json. With these two jars i am able to parse the json and use the values. These API's actually follow the DOM / SAX parsing model of XML .

        Response response = request.get(); // REST call 
        JsonReader jsonReader = Json.createReader(new StringReader(response.readEntity(String.class)));
        JsonArray jsonArray = jsonReader.readArray();
        ListIterator l = jsonArray.listIterator();
        while ( l.hasNext() ) {
              JsonObject j = (JsonObject)l.next();
              JsonObject ciAttr = j.getJsonObject("ciAttributes") ;
    
share|improve this answer
    
why the downvote ? what is wrong ?? please enlighten me ! :-) –  nondescript Feb 26 at 19:21
    
I, too, would like to know why this was downvoted. It seems like a sensible suggestion, at least in the context of JEE environments that run Java 7. –  pglezen Feb 28 at 23:34
    
thanks pglezen! –  nondescript Mar 3 at 18:44
    
@nondescript If I had to guess I'd say it was downvoted because it doesn't answer the original poster's question: "What is the required code?" The answers that were upvoted provided code snippets. –  axle123 Apr 27 at 21:40
1  
Note: Jackson and GSON both support tree-style and/or Maps/Lists binding, so there is no need to use Java EE (javax.json) package. javax.json has little to offer beyond either Jackson or GSON. –  StaxMan Jun 1 at 23:10

I believe the best practice should be to go through the official java JSON API: http://json-processing-spec.java.net/ which are still work in progress.

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3  
Since I replied, I started using Jackson and I think it's one of the best libraries out there for JSON de-serialization. –  Giovanni Botta Sep 11 '14 at 14:26
2  
Why do they re-use JSONP to mean something different than JSON with Padding?... –  Chris Wesseling May 14 at 5:53
    
@ChrisWesseling What do you mean? –  Giovanni Botta May 14 at 18:43
    
"Java API for JSON Processing (JSON-P)" is the title of the document you link to. And it confused me, because I knew JSONP to mean something else. –  Chris Wesseling May 14 at 18:48
1  
@ChrisWesseling oh that is confusing. That's what they chose for the specification. However as I said, I would go straight to Jackson. –  Giovanni Botta May 14 at 18:50

This blew my mind with how easy it was. You can just pass a String holding your JSON to the constructor of a JSONObject in the default org.json package.

JSONArray rootOfPage =  new JSONArray(JSONString);

Done. (drops microphone) This works with JSONObjects as well. After that, you can just look through your hierarchy of Objects using the get() methods on your objects.

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1  
The JSONArray type is not part of the J2SE JDK API and you don't say which API or third-party library provides this type. –  Bobulous Apr 24 at 22:22
    
Not that I would recommend using it, but I think this refers to the "org.json" package from json.org/java. It used to be used before good Java libraries became available, but this was years ago (2008 or before) –  StaxMan Jun 1 at 23:11

For the sake of the example lets assume you have a class Person with just a name.

private class Person {
    public String name;

    public Person(String name) {
        this.name = name;
    }
}

Google GSON (Maven)

My personal favourite as to the great JSON serialisation / de-serialisation of objects.

Gson g = new Gson();

Person person = g.fromJson("{\"name\": \"John\"}", Person.class);
System.out.println(person.name); //John

System.out.println(g.toJson(person)); // {"name":"John"}

Org.JSON (Maven)

If you don't need object de-serialisation but to simply get an attribute, you can try org.json.

JSONObject obj = new JSONObject("{\"name\": \"John\"}");

System.out.println(obj.getString("name")); //John

Jackson (Maven)

ObjectMapper mapper = new ObjectMapper();
Person user = mapper.readValue("{\"name\": \"John\"}", Person.class);

System.out.println(user.name); //John
share|improve this answer

Please do something like this:

JSONParser jsonParser = new JSONParser();
JSONObject obj = (JSONObject) jsonParser.parse(contentString);
String product = (String) jsonObject.get("productId");
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{
   "pageInfo": {
         "pageName": "abc",
         "pagePic": "http://example.com/content.jpg"
    },
    "posts": [
         {
              "post_id": "123456789012_123456789012",
              "actor_id": "1234567890",
              "picOfPersonWhoPosted": "http://example.com/photo.jpg",
              "nameOfPersonWhoPosted": "Jane Doe",
              "message": "Sounds cool. Can't wait to see it!",
              "likesCount": "2",
              "comments": [],
              "timeOfPost": "1234567890"
         }
    ]
}

Java code :

JSONObject obj = new JSONObject(responsejsonobj);
String pageName = obj.getJSONObject("pageInfo").getString("pageName");

JSONArray arr = obj.getJSONArray("posts");
for (int i = 0; i < arr.length(); i++)
{
    String post_id = arr.getJSONObject(i).getString("post_id");
    ......etc
}
share|improve this answer
    
Please explain your answer as code-only answers help others far less than well documented code. See "give a man a fish and you feed him for a day; teach a man to fish and you feed him for a lifetime". –  Wai Ha Lee Jul 28 at 15:04
static Object jsonParser(String jsonStr, String key) throws JSONException {
    int i = 0;
    Object temp = null;
    Object json = new JSONObject(jsonStr);
    String[] keys = key.split("[.]");
    while (i < keys.length) {

        if (json instanceof JSONArray) {
            int index = Integer.parseInt(keys[i]);
            temp = ((JSONArray) json).get(index);
        } else if (json instanceof JSONObject) {
            temp = ((JSONObject) json).get(keys[i]);
        }
        json = temp;
        i++;
    }
    return temp;
}
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23  
It's generally a good idea to explain why your code answers the question. –  Tutti Frutti Jacuzzi Jan 14 '14 at 20:38

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