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I have some problems with JSONArray parsing, i'm using the example in Anddev.org. This is my sourcecode:

package net.json.ejemplo;

import java.io.BufferedReader;
import java.io.InputStream;
import java.io.InputStreamReader;
import java.util.ArrayList;

import org.apache.http.HttpEntity;
import org.apache.http.HttpResponse;
import org.apache.http.NameValuePair;
import org.apache.http.client.HttpClient;
import org.apache.http.client.entity.UrlEncodedFormEntity;
import org.apache.http.client.methods.HttpPost;
import org.apache.http.impl.client.DefaultHttpClient;
import org.apache.http.message.BasicNameValuePair;
import org.json.JSONArray;
import org.json.JSONException;
import org.json.JSONObject;

import android.app.Activity;
import android.os.Bundle;
import android.util.Log;
import android.widget.LinearLayout;
import android.widget.TextView;


public class Ejemplo extends Activity {
/** Called when the activity is first created. */

   TextView txt;
@Override
public void onCreate(Bundle savedInstanceState) {
    super.onCreate(savedInstanceState);
    setContentView(R.layout.main);
    // Create a crude view - this should really be set via the layout resources 
    // but since its an example saves declaring them in the XML. 
    LinearLayout rootLayout = new LinearLayout(getApplicationContext()); 
    txt = new TextView(getApplicationContext()); 
    rootLayout.addView(txt); 
    setContentView(rootLayout); 

    // Set the text and call the connect function. 
    txt.setText("Connecting...");
  //call the method to run the data retreival
    txt.setText(getServerData(KEY_121));



}
public static final String KEY_121 = "http://10.0.2.2:8888/conexion2.php"; //i use my real ip here



private String getServerData(String returnString) {
   String result ="";
   InputStream is = null;
    //the year data to send
    ArrayList<NameValuePair> nameValuePairs = new ArrayList<NameValuePair>();
    nameValuePairs.add(new BasicNameValuePair("year","1970"));

    //http post
    try{
            HttpClient httpclient = new DefaultHttpClient();
            HttpPost httppost = new HttpPost(KEY_121);
            httppost.setEntity(new UrlEncodedFormEntity(nameValuePairs));
            HttpResponse response = httpclient.execute(httppost);
            HttpEntity entity = response.getEntity();
            is = entity.getContent();


    }catch(Exception e){
            Log.e("log_tag", "Error in http connection "+e.toString());
    }

    //convert response to string
    try{
            BufferedReader reader = new BufferedReader(new InputStreamReader(is,"iso-8859-1"),8);
            StringBuilder sb = new StringBuilder();
            String line = null;
            while ((line = reader.readLine()) != null) {
                    sb.append(line + "\n");
            }
            is.close();
            result=sb.toString();
            result.trim();
    }catch(Exception e){
            Log.e("log_tag", "Error converting result "+e.toString());
    }
    //parse json data

    try{
            //JSONObject json_data = new JSONObject(result);
            JSONArray jArreglo = new JSONArray(result);
            for(int i=0 ; i<jArreglo.length(); i++)
            {
                JSONObject json_data = jArreglo.getJSONObject(i);
                    Log.i("log_tag","id: "+json_data.getInt("id")+
                            ", name: "+json_data.getString("name")+
                            ", sex: "+json_data.getInt("sex")+
                            ", birthyear: "+json_data.getInt("birthyear")
                    );
                    //Get an output to the screen
                returnString += "\n\t" + jArreglo.getJSONObject(i);
            }

    }catch(JSONException e){
            Log.e("log_tag", "Error parsing data "+e.toString());
    }
    return returnString;
}   

}

and this is my php code

<?php

      mysql_connect("127.0.0.1","root","123456");

      mysql_select_db("PeopleData");

      $q=mysql_query("SELECT * FROM people WHERE birthyear>'".$_REQUEST['year']."'");

      while($e=mysql_fetch_assoc($q))

              $output[]=$e;

           print(json_encode($output));

    mysql_close();
?>

The exception is:

Value "br" from Java.Lang.String cannot be converted to JSONArray What means this?

I'm new in Android and PHP. So, i need some help.

share|improve this question
    
can you log the actual JSON you are trying to convert? –  citizen conn Jul 15 '11 at 22:11
    
I get "br" in results from my PHP server when my PHP code is trying to print out an error message. Instead of trying to parse it to JSON, print it out, read it, and track down the error in your server code. –  Glendon Trullinger Jul 15 '11 at 22:26
    
The idea is: capture the data from MySQL to Android by PHP and JSON, the JSON generated is data extracted from the database in localhost. In the browser, the JSON appears with a notice for a undefined index called "year". This index is from the Android app, in the ListArray. –  Diego Jul 15 '11 at 23:48
    
In the apache errorlog, the PHP generate this error, it says Undefinied index at line 13, the json_encode. –  Diego Jul 16 '11 at 0:33

1 Answer 1

JSON data must start with [ so anything you get starting with any character rather than [ is erroneous. Often <br-bla-bla output is due the host or bad output from your PHP code or zero-row database.

Your JAVA code is fine.

Try testing your PHP code, and see the output by changing it like this. (I assume that you have your SQL database set up and contains table people)

<?php

      mysql_connect("127.0.0.1","root","123456");

      mysql_select_db("PeopleData");

      $q=mysql_query("SELECT * FROM people WHERE birthyear>'1970'");

      while($e=mysql_fetch_assoc($q))

              $output[]=$e;

           print(json_encode($output));

    mysql_close();
?>

This is example how your JSON output should start and look like. This is JSON with one element in the JSON array

07-16 03:23:41.356: INFO/RESULT HTTP(229):

[{"_id":"1","ime":"something","lat_1":"11111111","long_1":"1111111","lat_2":"1111111","long_2":"1111111"}]
share|improve this answer
    
I tried changing the [ in the query, but still doesn't work, the same JSONException appears. I have another question: how to put a value from a EditText to MySql query? Thanks for your help. PD: In the PHP appears a notice about a undefined index "output" –  user849561 Jul 18 '11 at 7:35
    
You send the parameters for the PHP code with the $_GET['name of the variable']. for example you want to send your name to the MySQL db, you do this www.yoursite.com/site.php?name=Diego then in your php code you must have this $namePHP = $_GET['name']; then you do operations with the variable passed via the url. How do you insert in sql? you do it with INSERT INTO tablename (field1, field2, field3) VALUES (your values, your values, your values) –  Nikola Despotoski Jul 18 '11 at 13:04
    
P.S: you dont change [ in the query, JSON output itself must contain [.... –  Nikola Despotoski Jul 18 '11 at 13:15

protected by Community May 28 '12 at 22:49

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