Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

peace be with you All, i am new to using Ajax , the issue is, i am having 3 drop down lists connected to a database, the first one is "name" and the second one is "age" and the third one is "country"! so, i have connected to the database, and retrieved data from it in the first list "name" and then using Ajax, i have successfully retrieved matching data after selecting any option of first list and put them into the second list called "age", the problem is that when i use a very exact same way with the second list called "age" to retrieve matching data into third list called "country" it doesn't work! so please help me cuz, i am using this example to learn Ajax and then apply on a larger real project! here is the code :- firstly, the home.php page:-

<?php
include "config.php";
?>
<html> 
<head> 
<script type="text/javascript">
function agematch() {
 if (window.XMLHttpRequest) {
  xmlhttp = new XMLHttpRequest();
} 
 else {
 xmlhttp = new ActiveXObject('Microsoft.XMLHTTP');
 }

xmlhttp.onreadystatechange = function() {
  if(xmlhttp.readyState == 4 && xmlhttp.status == 200) {

  document.getElementById('age').innerHTML = xmlhttp.responseText;
  }

} 
xmlhttp.open('GET', 'connection.inc.php?name='+document.ajax.name.value, true );
xmlhttp.send();

}

function countrymatch() {
 if (window.XMLHttpRequest) {
  xmlhttp = new XMLHttpRequest();
} 
 else {
 xmlhttp = new ActiveXObject('Microsoft.XMLHTTP');
 }

xmlhttp.onreadystatechange = function() {
  if(xmlhttp.readyState == 4 && xmlhttp.status == 200) {

  document.getElementById('country').innerHTML = xmlhttp.responseText;
  }

} 
xmlhttp.open('GET', 'country.inc.php?age='+document.ajax.age.value, true );
xmlhttp.send();

}

</script>
</head>
<body> 
<form id="ajax" name="ajax" > 
Choose your name : <select name="name" id="name" select="selected"  onchange="agematch();"> <option>  </option> 
 <?php

   $query = "SELECT DISTINCT name FROM info";
   $result = mysql_query($query);
   while($row = mysql_fetch_array($result)){
   echo"<option  value ='".$row[0]."'> '".@$row[0]."'</option>";
                                }   
 ?>
</select>
Age : <select id="age" name="age" onchange="countrymatch();">  </select>
country : <select id="country" name="country"> <option> </option> </select>

</form>
</body>
</html>

now, the page for first Ajax call :-

<?php
include "config.php";
echo " <option>  </option> " ;
if(isset( $_GET['name']) ) {
  @$name = $_GET['name'];
  }

  $query = "SELECT age FROM info WHERE name = '".@$name."' "; 
  $result = mysql_query($query);
    while ($query_row = mysql_fetch_array($result)) {

      echo " <option  value ='".$query_row[0]."'> $query_row[0]</option> ";
      }

 ?>

Now, with the page for the second Ajax call for the third drop menu :-

<?php
include "config.php"; 

  if (isset( $_GET['age']) ) {
     @$age=$_GET['age'];
   }     

  $query = "SELECT country FROM info WHERE name='".@$name."' AND age='".@$age."'  ";
  $result= mysql_query($query);
  while  ($query_row = mysql_fetch_array($result)) {

   echo " <option value = '".$query_row[0]."'> $query_row[0] </option> ";

  }

 ?>

so as you see, here is the code, and of course i am connected to the database through a page called "config.php", so i want you to help me to solve this issue and retrieve the data from database into the third drop down list "country". Thanks in Advance!

Ok, Musa here is the edit :-

function countrymatch() {
 if (window.XMLHttpRequest) {
  xmlhttp = new XMLHttpRequest();
} 
 else {
 xmlhttp = new ActiveXObject('Microsoft.XMLHTTP');
 }

xmlhttp.onreadystatechange = function() {
  if(xmlhttp.readyState == 4 && xmlhttp.status == 200) {

  document.getElementById('country').innerHTML = xmlhttp.responseText;
  }

} 
var age = encodeUriComponent(document.ajax.age.value),
var name = encodeUriComponent(document.ajax.name.value),
xmlhttp.open('GET', 'country.inc.php?age='+age+'&name'+name, true );
xmlhttp.send();

}

and also :-

<?php
include "config.php";
  if (isset($_GET['age'], $_GET['name']) ) {
     @$age=$_GET['age'];
     @$name = $_GET['name'];
   }     

  $query = "SELECT country from info where name='".@$name."' AND age='".@$age."'  ";
  $result= mysql_query($query);
  while  ($query_row = mysql_fetch_array($result)) {

   echo " <option value = '".$query_row[0]."'> $query_row[0] </option> ";

  }

 ?>

I don't get any error messages, i am sure your point is right but this solution didn't work unfortunately! thank you so much for helping me :)

share|improve this question

1 Answer 1

You didn't send the name in the second ajax request but you need it for your database query, so you'll need to send the name as well as the age in the ajax request. Also you aren't sanitizing your input, you must always validate user input, I'd also suggest not using mysql_*

This extension is deprecated as of PHP 5.5.0, and will be removed in the future. Instead, the MySQLi or PDO_MySQL extension should be used. See also MySQL: choosing an API guide and related FAQ for more information.

var age = encodeURIComponent(document.ajax.age.value),
var name = encodeURIComponent(document.ajax.name.value),
xmlhttp.open('GET', 'country.inc.php?age='+age+'&name'+name, true );
if (isset($_GET['age'], $_GET['name']) ) {
    $age = $_GET['age'];
    $name = $_GET['name'];
    ...
}     
share|improve this answer
    
unfortunately, it is not working, Musa! thank you ! –  Mohammad99 Jan 27 '13 at 22:22
    
@Mohammad99 Do you get any error messages? edit your question with your new code –  Musa Jan 27 '13 at 22:52
    
i have changed it, dear! –  Mohammad99 Jan 27 '13 at 23:03
    
@Mohammad99 I had a typo encodeUriComponent should be encodeURIComponent. Also why did you change the sql query? –  Musa Jan 27 '13 at 23:07
    
this is the query i want man, i edited it cuz i copied it wrongly at the first time, unfortunately it still doesnt work –  Mohammad99 Jan 27 '13 at 23:27

Your Answer

 
discard

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.