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i have an XMLHttpRequest.The request passes a parameter to my php server code in /var/www. But i cannot seem to be able to extract the parameter back at the server side. below i have pasted both the codes:

javascript:

function getUsers(u)
{ 
 alert(u);//here u is 'http://start.ubuntu.com/9.10'
 xmlhttp=new XMLHttpRequest();
 var url="http://localhost/servercode.php"+"?q="+u;

 xmlhttp.onreadystatechange= useHttpResponse;
 xmlhttp.open("GET",url,true);
 xmlhttp.send(null);
}

function useHttpResponse() 
{

 if (xmlhttp.readyState==4 )
 {
 var response = eval('('+xmlhttp.responseText+')');
  for(i=0;i<response.Users.length;i++)
        alert(response.Users[i].UserId);

 }
}

servercode.php:

 <?php
$q=$_GET["q"];
//$q="http://start.ubuntu.com/9.10";
$con=mysql_connect("localhost","root","blaze");
if(!$con)
{die('could not connect to database'.mysql.error());
}
mysql_select_db("BLAZE",$con) or die("No such Db");
$result=mysql_query("SELECT * FROM USERURL WHERE URL='$q'");

 if($result == null)
 echo 'nobody online';
 else
  {
  header('Content-type: text/html');
  echo "{\"Users\":[";
  while($row=mysql_fetch_array($result))
  {
   echo '{"UserId":"'.$row[UsrID].'"},';
  }
  echo "]}";
  }
mysql_close($con);
?> 

this is not giving the required result...although the commented statement , where the variable is assigned explicitly the value of the argument works...it alerts me the required output...but somehow the GET method's parameter is not reaching my php or thats how i think it is....pls help....

share|improve this question
    
You should use formating for the code portion of your questions by following the conventions here: stackoverflow.com/editing-help – jessegavin Mar 19 '10 at 18:47
    
Use firebug to see exactly what URL is being sent up by xmlhttprequest. My guess is that the URL that you have as a querystring value is being URL encoded in a way that's messing you up. – Jacob Mattison Mar 19 '10 at 18:54

If u is http://start.ubuntu.com/9.10 as you write, the URL gets garbled because : is a forbidden character in a URL.

You need to escape the URL using encodeURIComponent() in Javascript, and urldecode() it back in PHP. Docs here and here.

The JavaScript part would look like so:

 var url="http://localhost/servercode.php"+"?q="+encodeURIComponent(u);

and the PHP part:

 $q=urldecode($_GET["q"]);

your mySQL query is also vulnerable to a SQL injection, which is highly dangerous. You should at least sanitize $q using mysql_real_escape_string(). See this question for an overview on the problem, and possible solutions.

share|improve this answer
    
i changed the statements like u said... but i still din get any output....am going through the sql injection part....but changing those 2 statements is supposed to give me the output right? – Neethusha 0 secs ago – Neethusha Mar 19 '10 at 19:08
    
@Neethusha you need to make test outputs of $_GET["u"] on PHP side and look what they contain. – Pekka 웃 Mar 19 '10 at 19:09
    
i echoed $q as the 2nd statement, in localhost...it was blank output.. – Neethusha Mar 19 '10 at 19:23
    
Strange, I don't know. Can you try a simple value for q, for example "123" (instead of the complex URL)? – Pekka 웃 Mar 19 '10 at 19:45
    
i tried something simple like 'hai' including entries for all that in my db....somehow unless expliciltly given value for $q, the php code does not give op...is anything else necessary for the GET XMLHttpRequest n response to work? – Neethusha Mar 20 '10 at 6:15

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