8

I want to add an object to a specific position in JSonArray. My Current JsonArray look like this

{
    "imgs": [
        "String1",
        "String2",
        "String3",
        "String4"
    ]
}

I need to insert one more item in jsonarray at 1st position like this-

jsonArray.put(1,"String5")

this is replacing item at first position But I need below result

{
    "imgs": [
        "String1",
        "String5",
        "String2",
        "String3",
        "String4"
    ]
}

Please suggest

  • Did one of the answers solve your problem? If yes, then please accept that answer. – Johannes Jander Jan 11 '16 at 19:28
4

Android JSONArray is not meant as a general-purpose data structure, but to (de)serialize data to and from JSON. Therefore, you should do all add/remove/mutate operations on a java.util.List or something and only if you want to send it over the wire convert to a JSONArray.

Java EE 7 also has a JsonArray class, in their API description they make abundantly clear that they want to prevent people from using it as a replacement for a java.util.list: JsonArray instances are list objects that provide read-only access to the values in the JSON array. Any attempt to modify the list, whether directly or using its collection views, results in an UnsupportedOperationException.

See also this answer

| improve this answer | |
14

Seem too old but you can do like this:

public void addToPos(int pos, JSONObject jsonObj, JSONArray jsonArr){
   for (int i = jsonArr.length(); i > pos; i--){
      jsonArr.put(i, jsonArr.get(i-1));
   }
   jsonArr.put(pos, jsonObj);
}
| improve this answer | |
  • saved a lot of headache. +1 – Bawa Jan 5 '17 at 8:14
6

Try this:

String myString = jsonArray.getString(1);
jsonArray.put(1,"String5");
jsonArray.put(myString);
| improve this answer | |
  • This will add previous 1st position to last position . but If want previous 1st position to shift on 2nd position and previous 3rd to 4th and so on.... Is there any optimised solution expect full iteration ? – Atul Bhardwaj Jan 11 '16 at 10:08
  • 1
    @XYZ with the methods provided in JSONArray class, i think full iteration is the only way. – Eric B. Jan 11 '16 at 10:26
1

call this function like this

String changed_json_string= changeJson(jsonString,2,"hai")

  public String changeJson(String json,int index,String add_string){

            try {
                JSONObject job=new JSONObject(json);
                JSONArray jsonArray=job.getJSONArray("imgs");

                ArrayList<String> arrayList=new ArrayList<>();
                for (int i=0;i<jsonArray.length();i++){
                    String abc= (String) jsonArray.get(i);
                    arrayList.add(abc);


                 }


                arrayList.add(index,add_string);

                JSONObject a=new JSONObject();
                JSONArray jar=new JSONArray();


                for (String str:
                arrayList) {
                    jar.put(str);

                }
                a.put("imgs",jar);

               return a.toString();






            } catch (JSONException e) {
                e.printStackTrace();

            }

            return "";
        }

output

{"imgs":["String1","String2","hai","String3","String4"]}
| improve this answer | |
1

Use array shifting logic or create copy of new json array with newly inserted element and insert into original json ojbect.

| improve this answer | |
0

Use a JsonArrayBuilder object.

private JsonArray insertAt(int index, String value, JsonArray origArray) {

    JsonArrayBuilder resultBuilder = Json.createBuilderFactory(null).createArrayBuilder();

    // Insert elements before the position
    for (JsonValue elemValue : origArray.subList(0, index)) {
        resultBuilder.add(elemValue);
    }

    // Insert your element
    resultBuilder.add(value);

    // Insert the rest of elements.
    for (JsonValue elemValue : origArray.subList(index, origArray.size())) {
        resultBuilder.add(elemValue);
    }

    return resultBuilder.build();
}

Note that the arguments check is not done here. Also instead of having a string as value to insert you can have a JsonValue to be more generic.

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