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This is my JavaScript function for xmlhttp:

          var params = "a=" + encodeURIComponent(a) 
           + "&b=" + encodeURIComponent(b)
           + "&c=" + encodeURIComponent(c);
var url = "noob.php";

            xmlHttp2.open("POST", url, true);<<<<up till here also no prob,did some testing

            xmlHttp2.onreadystatechange = stateChanged2;
             xmlHttp2.send(params);
            }

This is noob.php

<?php

include('config.inc.php');
include('database.inc.php');
$a = mysql_real_escape_string($_POST['a'], $con); 
$b = mysql_real_escape_string($_POST['b'], $con); 
$c = mysql_real_escape_string($_POST['c'], $con);

mysql_query("INSERT INTO users (inchat,preference)     values('N','$a$b$c');");

echo mysql_insert_id();

mysql_close($con);

?>

All the code of noob.php are working, I tried it with a html form. So the possible error should lie on:

xmlHttp2.onreadystatechange = stateChanged2;
xmlHttp2.send(params);
  1. send parameter failed, I don't know how to test this

  2. the string is sent is not recognised by noob.php (somehow - maybe cause the format sent is wrong?)

The problem is the parameter is not inserted into the table. So which of the possible choice above is true?

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Did you ask this question? stackoverflow.com/questions/6962348/… –  Felix Kling Aug 6 '11 at 22:28
    
api.jquery.com/jQuery.post –  Dejan Marjanovic Aug 6 '11 at 22:29
    
I don't know how to test this Have a look at Firebug: getfirebug.com ... I assume you are the same person who asked the other question. As I said in my comment there we cannot help you much much. You have to do some debugging on your own, we cannot do this for you. –  Felix Kling Aug 6 '11 at 22:32
    
Your query isn't working. Please post example result. –  Phpdna Aug 6 '11 at 23:44

1 Answer 1

All the code of noob.php are working, I tried it with a html form. So the possible error should lie on:

xmlHttp2.onreadystatechange = stateChanged2; 
xmlHttp2.send(params);

This kind of problems most times are easily identified by placing an alert after some suspicious line.

So before you have any doupts about xmlHttp2.send(params); firstly place an alert after xmlHttp2.onreadystatechange = stateChanged2; if the alert does not appear then go where the function stateChanged2; is declared and investigate it again with an alert (most probably the prblem is in that function, there must be an error there);

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