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I want to send a simple JSON object to PHP server,but when i try to retrieve that object on the server side,there is nothing i mean my $_POST variable is empty. The server side is PHP 5.2 and I'm using android emulator 10...Could someone have a look on my code and tell me what is going wrong? Thanks a lot

public void uploadJSon() throws ClientProtocolException, IOException, JSONException{
       HttpClient httpclient = new DefaultHttpClient();
       String url = "";
       HttpPost httppost = new HttpPost(url);
       JSONObject json = new JSONObject();

       json.put("username", "bob");
       json.put("email", "");
       List  nvps = new ArrayList ();

       nvps.add(new BasicNameValuePair("value", json.toString()));
       httppost.setEntity(new UrlEncodedFormEntity(nvps, HTTP.UTF_8));                 

       URL test_url = new URL(url);
       URLConnection connection = test_url.openConnection();

       HttpResponse response;
       response = httpclient.execute(httppost);
       Log.i("response", response.getEntity().getContent().toString());
       Log.i("response status",response.getStatusLine().toString());

       BufferedReader in = new BufferedReader(
             new InputStreamReader(

       String decodedString;

       while ((decodedString = in.readLine()) != null) {
          Log.i("info 10",decodedString);


The server side test.php is :

    $tmp = json_decode($_POST['value']); 
share|improve this question
i don't know why it is not shown correctly in my code but this line must be added List <NameValuePair> nvps = new ArrayList <NameValuePair>(); instead of what it is actually displayed....Thx –  user683831 Jun 1 '11 at 15:39

3 Answers 3

I usually take this approach for generating a JSON object in Java code:

StringWriter writer = new StringWriter();
JSONWriter jsonWriter = new JSONWriter(writer);
String toSend = writer.toString();
share|improve this answer
Thx,i used your snippet in my code to generate the JSON object but i still have nothing on my server side....any thought?? –  user683831 Jun 1 '11 at 15:41

I'm no expert in PHP, However, a project I worked on decoded the json that I submitted like this.

$jsonData = file_get_contents("php://input");

if(isset($jsonData) && !empty($jsonData)) { $this->data = json_decode($jsonData,true); }

share|improve this answer
I've just tried this one but there is nothing in jsonData... –  user683831 Jun 2 '11 at 10:28
All I can suggest is you check your json code on the client. Here is a sample that I use. It wont let me add any code so I shall add another answer –  Bear Jun 2 '11 at 12:01
public static String login(Context context, String email, String pwd) {

    HttpClient client = new DefaultHttpClient();

    HttpConnectionParams.setConnectionTimeout(client.getParams(), 10000); // Timeout
    // Limit
    HttpResponse response;
    JSONObject json = new JSONObject();
    try {

        Log.d("Debug","Login Url:" + context.getResources().getString(
                R.string.url) + context.getResources().getString(

        HttpPost post = new HttpPost(context.getResources().getString(
                R.string.url) + context.getResources().getString(

        post.setHeader("Accept", "application/json");
        post.setHeader("Content-type", "application/json");

        json.put("email", email);
        json.put("password", pwd);

        StringEntity se = new StringEntity("{\"User\":" + json.toString()
                + "}");
        response = client.execute(post);

        if (response != null) {
            json = getResult(response);

                return new String(json.getString("token")); 
    } catch (Exception e) {
        Log.e("Error", "Error Login", e);
    //  printJSON(json);

    return "ERROR";

Note I wrap the JSON in the User as the server required this for my case.

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