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A very simple question, a lot of examples out there, but none of them worked for me.

I need to parse the simplest form of a json string :

{"id" : "5" , "name" : "John"}

How do I turn this into an array, list, map whatever, so that I can get something like this ?

myArray["id"] = 5
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closed as off-topic by Pankaj Kumar, Toto, Blackbelt, laalto, gustavohenke Nov 5 '13 at 12:30

This question appears to be off-topic. The users who voted to close gave this specific reason:

  • "Questions asking for code must demonstrate a minimal understanding of the problem being solved. Include attempted solutions, why they didn't work, and the expected results. See also: Stack Overflow question checklist" – Pankaj Kumar, Toto, laalto, gustavohenke
If this question can be reworded to fit the rules in the help center, please edit the question.

    
In which language (for android) you pass string as index of array? –  Pankaj Kumar Nov 5 '13 at 10:18
3  
to parse in android JSONObject jsonobject = new JSONObject("mystring"); String id = jsonobject.getString("id"); String anem = jsonobject.getString("name"); –  Raghunandan Nov 5 '13 at 10:19
    
@Raghunandan your solution worked for me. Thanks for this. Please post this as an answer so I can give you credit. –  mobilGelistirici Nov 5 '13 at 11:09

4 Answers 4

up vote 2 down vote accepted

To parse json

JSONObject jsonobject = new JSONObject("mystring");
String id = jsonobject.getString("id");
String anem = jsonobject.getString("name");

Once you parser and get the data add it to array or a list or use a DataHolder like blackbelt suggested

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how did you understand that he wants to know how to parse a json? –  Blackbelt Nov 5 '13 at 11:14
    
@blackbelt i was confused as you were so i posted it as a comment. now he left me a comment to post it as an answer and said it helped. should i delete this answer now? –  Raghunandan Nov 5 '13 at 11:16
    
no no, you should leave since it fixes the po issue.. my comment was only to point out that sometimes, in the android tag, answer a question is only wild guess or, at least, I feel this way –  Blackbelt Nov 5 '13 at 11:19
    
@blackbelt i agree i made a guess as i was not sure what he wanted. that's why i left it as a comment at the start. only after he mentioned it helped and asked me to post it as answer i did. –  Raghunandan Nov 5 '13 at 11:21
    
cool dude, it was just to share some kind of awkward feeling :D –  Blackbelt Nov 5 '13 at 11:30

A simple solution could be

  public class DataHolder {
      String id;
      String name;
    }

    ArrayList<DataHolder> dataHolder = new ArrayList<DataHolder>();

    while (parsing) {
      holder = new DataHolder();
      holder.name = name;
      holder.id = id;
      dataHolder.add(holder);
    }
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Try this

JSONObject rawData = new JSONObject("{\"id\" : \"5\" , \"name\" : \"John\"}");
        Iterator<String> keys = rawData.keys();
        HashMap<String, String> mappedData = new HashMap<String, String>();
        while (keys.hasNext())
        {
            String key = (String) keys.next();

            if(rawData.getString(key) != null && rawData.getString(key)!= null)
            {
                mappedData.put(key, rawData.getString(key));
            }
        }

Now you can get data as

mappedData.get("id"); // 5
mappedData.get("name") // John
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//URL to get JSON Array
    private static String url = "http://x.x.x.x/JSON/";


//JSON Node Names
private static final String TAG_USER = "user";
private static final String TAG_ID = "id";
 private static final String TAG_NAME = "name";

JSONArray user = null;

 // Creating new JSON Parser
        JSONParser jParser = new JSONParser();

        // Getting JSON from URL
        JSONObject json = jParser.getJSONFromUrl(url);

        try {
            // Getting JSON Array
            user = json.getJSONArray(TAG_USER);
            JSONObject c = user.getJSONObject(0);

            // Storing  JSON item in a Variable
            String id = c.getString(TAG_ID);
            String name = c.getString(TAG_NAME);

           }
        catch(Exception e)
          { System.out.println(e.getMessage()); }
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