Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them, it only takes a minute:

I was trying out this ajax example on my local machine running windows 7 home premium, apache, php and mysql, but it wont return any results to the browser. After reading a few articles here, I downloaded firebug, and from the firebug console->All what I get is this:

GET http://localhost/dev/ajax/ajax-example.php?age=100&wpm=100&sex=m 200 OK 1.01s


Query: SELECT * FROM ajax_example WHERE sex = 'm' AND age <= 100 AND wpm <= 100
<br /><table><tr><th>Name</th><th>Age</th><th>Sex</th><th>WPM</th>

This thing above is what should be going to the broswer. The script seems to be working fine then, except the div wont refresh with new content.

Is this a broswer issue or windows/javascript issue. What do I need to do to get this working? Could you please help.

Here's the tutorial page I got all this from.

This page is ajax.html

<script language="javascript" type="text/javascript">
//Browser Support Code
function ajaxFunction(){
 var ajaxRequest;  // The variable that makes Ajax possible!

   // Opera 8.0+, Firefox, Safari
   ajaxRequest = new XMLHttpRequest();
 }catch (e){
   // Internet Explorer Browsers
      ajaxRequest = new ActiveXObject("Msxml2.XMLHTTP");
   }catch (e) {
         ajaxRequest = new ActiveXObject("Microsoft.XMLHTTP");
      }catch (e){
         // Something went wrong
         alert("Your browser broke!");
         return false;
 // Create a function that will receive data 
 // sent from the server and will update
 // div section in the same page.
 ajaxRequest.onreadystatechange = function(){
   if(ajaxRequest.readyState == 4){
      var ajaxDisplay = document.getElementById('ajaxDiv');
      ajaxDisplay.value = ajaxRequest.responseText;
 // Now get the value from user and pass it to
 // server script.
 var age = document.getElementById('age').value;
 var wpm = document.getElementById('wpm').value;
 var sex = document.getElementById('sex').value;
 var queryString = "?age=" + age ;
 queryString +=  "&wpm=" + wpm + "&sex=" + sex;"GET", "ajax-example.php" + queryString, true);
<form name="myForm">
Max Age: <input type="text" id="age" /> <br />
Max WPM: <input type="text" id="wpm" />
<br />
Sex: <select id="sex">
<option value="m">m</option>
<option value="f">f</option>
<input type="button" onclick="ajaxFunction()" value="Query MySQL"/>
<div id="ajaxDiv">Your result will display here</div>

This page is ajax-example.php

$dbhost = "localhost";
$dbuser = "root";
$dbpass = "norman";
$dbname = "test";
    //Connect to MySQL Server
mysql_connect($dbhost, $dbuser, $dbpass);
    //Select Database
mysql_select_db($dbname) or die(mysql_error());
    // Retrieve data from Query String
$age = $_GET['age'];
$sex = $_GET['sex'];
$wpm = $_GET['wpm'];
    // Escape User Input to help prevent SQL Injection
$age = mysql_real_escape_string($age);
$sex = mysql_real_escape_string($sex);
$wpm = mysql_real_escape_string($wpm);
    //build query
$query = "SELECT * FROM ajax_example WHERE sex = '$sex'";
    $query .= " AND age <= $age";
    $query .= " AND wpm <= $wpm";
    //Execute query
$qry_result = mysql_query($query) or die(mysql_error());

    //Build Result String
$display_string = "<table>";
$display_string .= "<tr>";
$display_string .= "<th>Name</th>";
$display_string .= "<th>Age</th>";
$display_string .= "<th>Sex</th>";
$display_string .= "<th>WPM</th>";
$display_string .= "</tr>";

// Insert a new row in the table for each person returned
while($row = mysql_fetch_array($qry_result)){
    $display_string .= "<tr>";
    $display_string .= "<td>$row[name]</td>";
    $display_string .= "<td>$row[age]</td>";
    $display_string .= "<td>$row[sex]</td>";
    $display_string .= "<td>$row[wpm]</td>";
    $display_string .= "</tr>";

echo "Query: " . $query . "<br />";
$display_string .= "</table>";
echo $display_string;
share|improve this question

2 Answers 2

up vote 1 down vote accepted

ajaxDisplay.value = ajaxRequest.responseText; here is mistake, change it for example to ajaxDisplay.innerHTML = ajaxRequest.responseText; and mb use jquery or other framework for such trivial task?

share|improve this answer
If it is trivial, why use jQuery? Sort of like opening a walnut is easy, so use a sledge hammer to make it easier. –  epascarello Jul 19 '12 at 12:11
Your suggestion worked. Thanks for helping. Its actually the site's mistake. Its ajaxDisplay.value = ajaxRequest.responseText; in the example, but ajaxDisplay.innerHTML = ajaxRequest.responseText; in the code which their site actually uses. –  Norman Jul 19 '12 at 12:17
2 epascarello yse it is trivial, but for author is not, with jquery he could done this 3 time less code, for end user it is not problem to wait more 0.01s –  dark_gf Jul 19 '12 at 12:22

In the callback function

ajaxRequest.onreadystatechange = function(){
   if(ajaxRequest.readyState == 4){
      var ajaxDisplay = document.getElementById('ajaxDiv');
      ajaxDisplay.value = ajaxRequest.responseText;

I dont think ajaxDisplay.value will work!

instead use

ajaxDisplay.innerHTML = ajaxRequest.responseText;

share|improve this answer
:( took some time to type ;) –  Nannakuhtum Jul 19 '12 at 12:22

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.