87

I've a problem trying to make my page printing out the JSONObject in the order i want. In my code, I entered this:

JSONObject myObject = new JSONObject();
myObject.put("userid", "User 1");
myObject.put("amount", "24.23");
myObject.put("success", "NO");

However, when I see the display on my page, it gives:

JSON formatted string: [{"success":"NO", "userid":"User 1", "bid":24.23}]

I need it in the order of userid, amount, then success. Already tried re-ordering in the code, but to no avail. I've also tried .append....need some help here thanks!!

6
  • Is this using the org.json stuff?
    – skaffman
    Commented Oct 16, 2010 at 9:07
  • possible duplicate of JSONObject : Why JSONObject changing the order of attributes
    – Leo
    Commented Jan 26, 2014 at 13:19
  • 6
    @Leo This is a possible duplicate of a question that was posted three years later and has an answer that links back to this one? If anything, the other question should be closed as a dupe.
    – Adi Inbar
    Commented Jan 26, 2014 at 21:47
  • do you want me to go to the other question and mark it as dupe instead?
    – Leo
    Commented Jan 27, 2014 at 1:00
  • 2
    Here's my problem... I understand that JSON doesn't have an order and a library is free to generate any order it feels like, but there's a definite human element here. When looking through JSON, maybe to visually check everything, it can be quite difficult to see problems when you expect one order and the library generates another. Sure, as people have suggested, there are work-arounds etc, but when I create JSON, my brain is thinking about it in order and it's hard when its emitted in a differing order. I think a library should use the order you specify, even if a parser doesn't care.
    – The Welder
    Commented Sep 19, 2018 at 5:07

17 Answers 17

120

You cannot and should not rely on the ordering of elements within a JSON object.

From the JSON specification at https://www.json.org/

An object is an unordered set of name/value pairs

As a consequence, JSON libraries are free to rearrange the order of the elements as they see fit. This is not a bug.

8
  • 14
    As a consequence, JSON libraries are free to rearrange the order of the elements as they see fit. This is not a bug. Just curious to know, what is be the benefit in re-arranging elements. Thanks, durai.
    – durai
    Commented Jul 11, 2012 at 12:57
  • 12
    @durai: Some associative containers use a sorting function to arrange their items and thus do not preserve ordering to allow faster element retrieval.
    – ereOn
    Commented Oct 29, 2012 at 18:27
  • Well, they state the following here (if this is indeed gson). google-gson.googlecode.com/svn/tags/1.2.3/docs/javadocs/com/… "The member elements of this object are maintained in order they were added."
    – Ted
    Commented Aug 5, 2014 at 14:47
  • 3
    @Ted that's GSON, a Java library developed by Google for handling JSON. It's up to each library developer if they want to reorder the field or not.
    – Andrew T.
    Commented Oct 20, 2015 at 8:12
  • 4
    @Thomas This is about JSON Object, not JSON Array Commented Feb 1, 2016 at 11:29
16

I agree with the other answers. You cannot rely on the ordering of JSON elements.

However if we need to have an ordered JSON, one solution might be to prepare a LinkedHashMap object with elements and convert it to JSONObject.

@Test
def void testOrdered() {
    Map obj = new LinkedHashMap()
    obj.put("a", "foo1")
    obj.put("b", new Integer(100))
    obj.put("c", new Double(1000.21))
    obj.put("d", new Boolean(true))
    obj.put("e", "foo2")
    obj.put("f", "foo3")
    obj.put("g", "foo4")
    obj.put("h", "foo5")
    obj.put("x", null)

    JSONObject json = (JSONObject) obj
    logger.info("Ordered Json : %s", json.toString())

    String expectedJsonString = """{"a":"foo1","b":100,"c":1000.21,"d":true,"e":"foo2","f":"foo3","g":"foo4","h":"foo5"}"""
    assertEquals(expectedJsonString, json.toString())
    JSONAssert.assertEquals(JSONSerializer.toJSON(expectedJsonString), json)
}

Normally the order is not preserved as below.

@Test
def void testUnordered() {
    Map obj = new HashMap()
    obj.put("a", "foo1")
    obj.put("b", new Integer(100))
    obj.put("c", new Double(1000.21))
    obj.put("d", new Boolean(true))
    obj.put("e", "foo2")
    obj.put("f", "foo3")
    obj.put("g", "foo4")
    obj.put("h", "foo5")
    obj.put("x", null)

    JSONObject json = (JSONObject) obj
    logger.info("Unordered Json : %s", json.toString(3, 3))

    String unexpectedJsonString = """{"a":"foo1","b":100,"c":1000.21,"d":true,"e":"foo2","f":"foo3","g":"foo4","h":"foo5"}"""

    // string representation of json objects are different
    assertFalse(unexpectedJsonString.equals(json.toString()))
    // json objects are equal
    JSONAssert.assertEquals(JSONSerializer.toJSON(unexpectedJsonString), json)
}

You may check my post too: http://www.flyingtomoon.com/2011/04/preserving-order-in-json.html

7
  • 4
    This solution is not work for me. Conversion to JSONObject is throwing exception. If I construct JSONObject(map) then order is not preserved. If i leave assignment without conversion then string is assigned instead of object. Commented Dec 25, 2014 at 9:00
  • 1
    This worked for me, but I had to use JSONObject.toJSONString(obj). Otherwise, I was getting a conversion error as @Ernest mentioned above.
    – Tricky12
    Commented Jul 22, 2015 at 17:44
  • @Tricky12 This makes no sense to me: 1.) org.json.JSONObject does not have this method. 2.) The method which seems like it could do the trick org.json.JSONObject.valueToString(obj) does NOT work, since it does this internally: new JSONObject(map).toString() which again uses HashMap and not LinkedHashMap inside: this.map = new HashMap<String, Object>(); Commented Oct 27, 2017 at 10:13
  • 1
    @FredericLeitenberger toJSONString() is a method if you have library org.json.simple. This was available to me in my IDE. I haven't looked at this for a couple of years now, so I'm not sure how else to help.
    – Tricky12
    Commented Oct 27, 2017 at 19:26
  • 2
    @FredericLeitenberger I believe it is Groovy, a scripting language that is based on java.
    – Turtle
    Commented Jan 4, 2018 at 11:18
10

u can retain the order, if u use JsonObject that belongs to com.google.gson :D

JsonObject responseObj = new JsonObject();
responseObj.addProperty("userid", "User 1");
responseObj.addProperty("amount", "24.23");
responseObj.addProperty("success", "NO");

Usage of this JsonObject doesn't even bother using Map<>

CHEERS!!!

4
  • Cool! Even if library specific, this is what I needed for simple ordered JSON output. Just adding a trivial: String myJson = new GsonBuilder().create().toJson(responseObj);
    – Diego1974
    Commented Dec 6, 2019 at 16:06
  • 1
    Thanks. This should be accepted as the right answer. Commented Sep 8, 2021 at 13:34
  • @FaramarzAfzali glad you found this useful for ur quest, bro :D
    – thyzz
    Commented Sep 10, 2021 at 5:28
  • After 7 years, I will say the same, how on earth this is not the accepted answer..? Tried so many other stuff that simply doesn't work, whereas this one works like a charm
    – dZ.
    Commented Nov 10, 2023 at 19:01
6

Real answer can be found in specification, json is unordered. However as a human reader I ordered my elements in order of importance. Not only is it a more logic way, it happened to be easier to read. Maybe the author of the specification never had to read JSON, I do.. So, Here comes a fix:

/**
 * I got really tired of JSON rearranging added properties.
 * Specification states:
 * "An object is an unordered set of name/value pairs"
 * StackOverflow states:
 * As a consequence, JSON libraries are free to rearrange the order of the elements as they see fit.
 * I state:
 * My implementation will freely arrange added properties, IN SEQUENCE ORDER!
 * Why did I do it? Cause of readability of created JSON document!
 */
private static class OrderedJSONObjectFactory {
    private static Logger log = Logger.getLogger(OrderedJSONObjectFactory.class.getName());
    private static boolean setupDone = false;
    private static Field JSONObjectMapField = null;

    private static void setupFieldAccessor() {
        if( !setupDone ) {
            setupDone = true;
            try {
                JSONObjectMapField = JSONObject.class.getDeclaredField("map");
                JSONObjectMapField.setAccessible(true);
            } catch (NoSuchFieldException ignored) {
                log.warning("JSONObject implementation has changed, returning unmodified instance");
            }
        }
    }

    private static JSONObject create() {
        setupFieldAccessor();
        JSONObject result = new JSONObject();
        try {
            if (JSONObjectMapField != null) {
                JSONObjectMapField.set(result, new LinkedHashMap<>());
            }
        }catch (IllegalAccessException ignored) {}
        return result;
    }
}
1
4

from lemiorhan example i can solve with just change some line of lemiorhan's code use:

JSONObject json = new JSONObject(obj);

instead of this:

JSONObject json = (JSONObject) obj

so in my test code is :

Map item_sub2 = new LinkedHashMap();
item_sub2.put("name", "flare");
item_sub2.put("val1", "val1");
item_sub2.put("val2", "val2");
item_sub2.put("size",102);

JSONArray itemarray2 = new JSONArray();
itemarray2.add(item_sub2);
itemarray2.add(item_sub2);//just for test
itemarray2.add(item_sub2);//just for test


Map item_sub1 = new LinkedHashMap();
item_sub1.put("name", "flare");
item_sub1.put("val1", "val1");
item_sub1.put("val2", "val2");
item_sub1.put("children",itemarray2);

JSONArray itemarray = new JSONArray();
itemarray.add(item_sub1);
itemarray.add(item_sub1);//just for test
itemarray.add(item_sub1);//just for test

Map item_root = new LinkedHashMap();
item_root.put("name", "flare");
item_root.put("children",itemarray);

JSONObject json = new JSONObject(item_root);

System.out.println(json.toJSONString());
1
  • It would be great if the JSONObject could be constructed being backed by a LinkedHashMap. Where should/could such an improvement be posted? Commented Oct 27, 2017 at 11:40
3

JavaScript objects, and JSON, have no way to set the order for the keys. You might get it right in Java (I don't know how Java objects work, really) but if it's going to a web client or another consumer of the JSON, there is no guarantee as to the order of keys.

2
2

Download "json simple 1.1 jar" from this https://code.google.com/p/json-simple/downloads/detail?name=json_simple-1.1.jar&can=2&q=

And add the jar file to your lib folder

using JSONValue you can convert LinkedHashMap to json string

0
1

For those who're using maven, please try com.github.tsohr/json

<!-- https://mvnrepository.com/artifact/com.github.tsohr/json -->
<dependency>
    <groupId>com.github.tsohr</groupId>
    <artifactId>json</artifactId>
    <version>0.0.1</version>
</dependency>

It's forked from JSON-java but switch its map implementation with LinkedHashMap which @lemiorhan noted above.

0

As all are telling you, JSON does not maintain "sequence" but array does, maybe this could convince you: Ordered JSONObject

0

For Java code, Create a POJO class for your object instead of a JSONObject. and use JSONEncapsulator for your POJO class. that way order of elements depends on the order of getter setters in your POJO class. for eg. POJO class will be like

Class myObj{
String userID;
String amount;
String success;
// getter setters in any order that you want

and where you need to send your json object in response

JSONContentEncapsulator<myObj> JSONObject = new JSONEncapsulator<myObj>("myObject");
JSONObject.setObject(myObj);
return Response.status(Status.OK).entity(JSONObject).build();

The response of this line will be

{myObject : {//attributes order same as getter setter order.}}

0

The main intention here is to send an ordered JSON object as response. We don't need javax.json.JsonObject to achieve that. We could create the ordered json as a string. First create a LinkedHashMap with all key value pairs in required order. Then generate the json in string as shown below. Its much easier with Java 8.

public Response getJSONResponse() {
    Map<String, String> linkedHashMap = new LinkedHashMap<>();
    linkedHashMap.put("A", "1");
    linkedHashMap.put("B", "2");
    linkedHashMap.put("C", "3");

    String jsonStr = linkedHashMap.entrySet().stream()
            .map(x -> "\"" + x.getKey() + "\":\"" + x.getValue() + "\"")
            .collect(Collectors.joining(",", "{", "}"));
    return Response.ok(jsonStr).build();
}

The response return by this function would be following: {"A":"1","B":"2","C":"3"}

2
  • Sorry, this is a terrible suggestion. Soo much potential for breakage depending ho what your keys/values contain. In this day and age, rolling your own JSON logic is a bad idea.
    – Madbreaks
    Commented Sep 21, 2018 at 20:30
  • @Madbreaks, I'm not trying to rollout any JSON logic. If the requirement is to have an ordered json then the easier approach would be to convert the linkedHashMap into a json string. The logic would differ for lists (as in JsonArray). Depending on the usage, encoding can also be included. Commented Nov 19, 2018 at 9:33
0

Underscore-java uses linkedhashmap to store key/value for json. I am the maintainer of the project.

Map<String, Object> myObject = new LinkedHashMap<>();
myObject.put("userid", "User 1");
myObject.put("amount", "24.23");
myObject.put("success", "NO");

System.out.println(U.toJson(myObject));
0

I found a "neat" reflection tweak on "the interwebs" that I like to share. (origin: https://towardsdatascience.com/create-an-ordered-jsonobject-in-java-fb9629247d76)

It is about to change underlying collection in org.json.JSONObject to an un-ordering one (LinkedHashMap) by reflection API.

I tested succesfully:

import java.lang.reflect.Field;
import java.util.LinkedHashMap;
import org.json.JSONObject;

private static void makeJSONObjLinear(JSONObject jsonObject) {
    try {
            Field changeMap = jsonObject.getClass().getDeclaredField("map");
            changeMap.setAccessible(true);
            changeMap.set(jsonObject, new LinkedHashMap<>());
            changeMap.setAccessible(false);
        } catch (IllegalAccessException | NoSuchFieldException e) {
            e.printStackTrace();
        }
}

[...]
JSONObject requestBody = new JSONObject();
makeJSONObjLinear(requestBody);

requestBody.put("username", login);
requestBody.put("password", password);
[...]
// returned   '{"username": "billy_778", "password": "********"}' == unordered
// instead of '{"password": "********", "username": "billy_778"}' == ordered (by key)
1
  • It doesn't work when you have already JSON as string and you create JSONObject with parse(jsonString) method and back to string with toString or serialize method. Commented Jun 3 at 18:44
0

Just add the order with this tag

@JsonPropertyOrder({ "property1", "property2"})
0

Not sure if I am late to the party but I found this nice example that overrides the JSONObject constructor and makes sure that the JSON data are output in the same way as they are added. Behind the scenes JSONObject uses the MAP and MAP does not guarantee the order hence we need to override it to make sure we are receiving our JSON as per our order.

If you add this to your JSONObject then the resulting JSON would be in the same order as you have created it.

import java.io.IOException;
import java.lang.reflect.Field;
import java.util.LinkedHashMap;
import org.json.JSONObject;
import lombok.extern.java.Log;

@Log
public class JSONOrder {

    public static void main(String[] args) throws IOException {

        JSONObject jsontest = new JSONObject();
        try {
            Field changeMap = jsonEvent.getClass().getDeclaredField("map");
            changeMap.setAccessible(true);
            changeMap.set(jsonEvent, new LinkedHashMap<>());
            changeMap.setAccessible(false);
        } catch (IllegalAccessException | NoSuchFieldException e) {
            log.info(e.getMessage());
        }
        jsontest.put("one", "I should be first");
        jsonEvent.put("two", "I should be second");
        jsonEvent.put("third", "I should be third");
        System.out.println(jsonEvent);
    }
}
1
  • But how do you use this method to get data from a json text file and maintain the order in the file?
    – Hasen
    Commented Oct 22, 2021 at 7:23
0

Just use LinkedHashMap to keep de order and transform it to json with jackson

import com.fasterxml.jackson.databind.ObjectMapper;
import java.util.LinkedHashMap;

LinkedHashMap<String, Object> obj = new LinkedHashMap<String, Object>();
stats.put("aaa", "aaa");
stats.put("bbb", "bbb");
stats.put("ccc", "ccc");

ObjectMapper mapper = new ObjectMapper();
String json = mapper.writerWithDefaultPrettyPrinter().writeValueAsString(obj);
System.out.println(json);

maven dependency

<dependency>
  <groupId>com.fasterxml.jackson.core</groupId>
  <artifactId>jackson-databind</artifactId>
  <version>2.9.10.7</version>
</dependency>
0

I just want the order for android unit tests that are somehow randomly changing overtime with this cool org.json.JSONObject, even thou it looks like it uses linked map but probably depends on api you compile it with or something, so it has different impl. with different android api probably.

I would suggest something like this:

object Json {
    @SuppressLint("DiscouragedPrivateApi")
    fun Object() = org.json.JSONObject().apply {
        runCatching {
            val nameValuePairs: Field = javaClass.getDeclaredField("nameValuePairs")
            nameValuePairs.isAccessible = true
            nameValuePairs.set(this, LinkedHashMap<String, Any?>())
        }.onFailure { it.printStackTrace() }
    }
}

Usage:

val jsonObject = Json.Object()
...

This is just some possibility I use it little differently so I modified it to post here. Sure gson or other lib is another option. Suggestions that specification is bla bla are so shortsighted here, why you guys even post it, who cares about 15 years old json spec, everyone wants it ordered anyway.

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