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Below is the "Room" table in the database:

   Room          Building            Capacity
    CW5/10        Canalside West        50
    CW4/09        Canalside West        40
    CW2/08        Canalside West        40
    CW4/10        Canalside West        25
    CE1/03        Canalside East        40

Below is the full code:

           <?php

foreach (array('courseid','building') as $varname) {
    $$varname = (isset($_POST[$varname])) ? $_POST[$varname] : '';
  }

if (isset($_POST['submit'])) {
    $query = "
                 SELECT cm.CourseId, cm.ModuleId, 
                 c.CourseName,
                 m.ModuleName
                 FROM Course c
                 INNER JOIN Course_Module cm ON c.CourseId = cm.CourseId
                 JOIN Module m ON cm.ModuleId = m.ModuleId
                 WHERE
                 (c.CourseId = '".mysql_real_escape_string($courseid)."')
                 ORDER BY c.CourseName, m.ModuleId
                 ";

    $num = mysql_num_rows($result = mysql_query($query));

    if($num ==0){
        echo "<p>Sorry, No Course was found with this Course ID '$courseid'</p>";
    } else { 

        $dataArray = array();

        session_start();

        while ($row = mysql_fetch_array($result)) { 
            $dataArray[$row['CourseId']]['CourseName'] = $row['CourseName']; 
            $dataArray[$row['CourseId']]['Modules'][$row['ModuleId']]['ModuleName'] = $row['ModuleName']; 

$_SESSION['idcourse'] = $row['CourseId'];
$_SESSION['namecourse'] = $row['CourseName'];

    }

     foreach ($dataArray as $courseId => $courseData) {

          $output = ""; 

          $output .= "<p><strong>Course:</strong> " . $courseId .  " - "  . $courseData['CourseName'] . "</p>";

       $moduleHTML = ""; 
       $moduleHTML .= '<select name="module" id="modulesDrop">'.PHP_EOL;
       $moduleHTML .= '<option value="">Please Select</option>'.PHP_EOL;      
            foreach ($courseData['Modules'] as $moduleId => $moduleData) {        

            $moduleHTML .= "<option value='".$moduleId.' '.$moduleData['ModuleName']."'>" . $moduleId . " - " . $moduleData['ModuleName'] ."</option>".PHP_EOL;        
  } 
            }
            $moduleHTML .= '</select>';

      echo $output;

//Above is course and module, below is buildings and room (All code is in one <?php?> tag.

 $sql="SELECT Building, Room FROM Room WHERE Building = '".$building."'";

    $sqlresult = mysql_query($sql);

    $buildings = array(); // easier if you don't use generic names for data

    while($sqlrow = mysql_fetch_array($sqlresult))
    {
        // you need to initialise your building array cells
        if (!isset($buildings[$sqlrow['Building']])) {
            $buildings[$sqlrow['Building']] = array('Rooms' => array());
        }

        // you can add the room to the building 'Rooms' array
        $buildings[$sqlrow['Building']]['Rooms'][] = $sqlrow['Room'];
    }


    $buildingHTML = ""; 
    $buildingHTML = "<form action=\"\" method=\"post\">";
    $buildingHTML .= '<select name="buildings" id="buildingssDrop" onchange="document.getElementById(\'dropDownForm\').submit()">'.PHP_EOL;
    $buildingHTML .= '<option value="">Please Select</option>'.PHP_EOL; 

    foreach ($buildings as $building => $buildingData) {      
        $buildingHTML .= "<option value='".$building."'>" . $building . "</option>".PHP_EOL;        
    }
    $buildingHTML .= '</select>';
    $buildingHTML .= '</form>';

    $roomHTML = ""; 
    $roomHTML .= '<select name="rooms" id="roomsDrop">'.PHP_EOL;
    $roomHTML .= '<option value="">Please Select</option>'.PHP_EOL; 

    if(isset($_POST['buildings'])){
        $buildingname = $_POST['buildings'];
    foreach ($buildings[$buildingname]['Rooms'] as $roomId => $roomData) {        
        $roomHTML .= "<option value='".$roomId."'>" . $roomId . "</option>".PHP_EOL;        
    }
}
    $roomHTML .= '</select>';


        ?>

Now in the top half of the script it controls the course and module. The user enters in a CourseId and if it is wrong, it will display a message stating no course if found, if it is correct it will display the course name and then it will display a dropdown menu which contains the list of modules that belongs to that course. This works fine.

The bottom half of the code is the problem. It is suppose to display 2 drop down menus, one dropdown will show a list a buildings and in second dropdown it will display the list of rooms which belongs to the selected building from the first drop down menu. At the moment this code displays 2 dropdown menus, both only displaying the option "Please Select" and nothing else.

As some of the experts have pointed out, they believe the problem is that the $building variable contains null. How is it suppose to work so that the $building variable is able to retrieve the list of buildings from the query?

You can view the application here Type in 'info101' for the courseId and submit it, you will see all the features appear. Go onto the module dropdown list and you will see the modules associated with the course. If you look at the Building and Room Dropdown menu, they both only display "Please Select".

share|improve this question
    
print_r($buildings) show's something? Maybe your query dont return data... –  Sérgio Michels Jan 27 '12 at 15:55
    
I tested query in mysql (minus the WHERE clause) and it return the data there. I wil try your print method and see what is displays –  user1170029 Jan 27 '12 at 15:59
    
Almost complete duplicate of stackoverflow.com/questions/9032123/… - seems to be my answer from that question with no alterations the code at all. Why not just use that question? –  Hecksa Jan 27 '12 at 16:00
    
It prints out 'Array ()', so I am pretty sure it is not finding the list of buildings, why is this? –  user1170029 Jan 27 '12 at 16:00
    
The where makes a lot of difference. Print $sql to see. –  Sérgio Michels Jan 27 '12 at 16:03

2 Answers 2

up vote 2 down vote accepted

You need to change your PHP code to acheive this scenario. If you want the rooms to be dynamical populated when changing the building name you can user jquery. Include jQUery library in your script.You need to do an ajax call to dynamically populate the list.

I have added only from building part. Rest all above is same. In the foreach loop remove the building from the array.Change your current php code to this.

PHP CODE:

 $sql = "SELECT DISTINCT Building FROM Room";

 $sqlresult = mysql_query($sql);

 $buildings = array(); // easier if you don't use generic names for data

 $buildingHTML = ""; 
 $buildingHTML = "<form action=\"\" method=\"post\">";
 $buildingHTML .= '<select name="buildings" id="buildingssDrop" onchange="getRooms();">'.PHP_EOL;
 $buildingHTML .= '<option value="">Please Select</option>'.PHP_EOL; 

 while($sqlrow = mysql_fetch_array($sqlresult))
 {
     $building = $sqlrow['Building'];
     $buildingHTML .= "<option value='".$building."'>" . $building . "</option>".PHP_EOL; 
  }

  $buildingHTML .= '</select>';
  $buildingHTML .= '</form>';

  $roomHTML = ""; 
  $roomHTML .= '<select name="rooms" id="roomsDrop">'.PHP_EOL;
  $roomHTML .= '<option value="">Please Select</option>'.PHP_EOL; 
  $roomHTML .= '</select>';

  echo $buildingHTML; 
  echo $roomHTML;

You need to add a script for dynamic population.

JS CODE:

function getRooms() {
    var building = jQuery("#buildingssDrop").val();
    jQuery('#roomsDrop').empty();
    jQuery('#roomsDrop').html('<option value="">Please Select</option>');
    jQuery.ajax({
          type: "post",
          url:  "rooms.php",
          data: "building="+building,
          success: function(response){
              jQuery('#roomsDrop').append(response);
          }
        });
 }

Here the rooms.php is the ajax file you need to call for dynamic population of data:

rooms.php

$building = isset($_POST['building']) ? $_POST['building'] : '';
$sql = "SELECT Room FROM Room WHERE Building ='".$building."'";

$sqlresult = mysql_query($sql);


$roomHTML  = ""; 

while($sqlrow = mysql_fetch_array($sqlresult))
{
     $room = $sqlrow['Room'];
     $roomHTML .= "<option value='".$room."'>" . $room . "</option>".PHP_EOL; 
}


echo $roomHTML;

Hope this helps for you

share|improve this answer
    
I will test this and get back to you, I really do appreciate the effort and help you are giving me btw :) –  user1170029 Jan 27 '12 at 18:21
    
Hi, This has worked great :). You said you have only added building part so in php do I just set the roomsHtml coding to be similar like the buildingHtml coding so that the rooms list will appear in the dropdown. Upvoted and best answer :) –  user1170029 Jan 27 '12 at 18:35
    
I just meant that i am doing the part from the building HTML. All the codes above it are correct. Sorry if my words were misleading. The current code is correct no need of any changes. –  Sabari Jan 27 '12 at 18:42
    
+1 for taking the time to write the whole thing out, wish I'd done that at the start rather than trying to get a quick fix for the question. –  Hecksa Jan 27 '12 at 19:04

Are you sure the post value for the building is set.

since you told that the sql output shows no value for the building parameter, it is sure that $building will be null. You need to pass the post value to the $building

You need to change your code like this:

if(isset($_POST['buildings'])){
    $building = $_POST['buildings'];
} else {
   $building = '';
}

$sql="SELECT Building, Room FROM Room WHERE Building = '".$building."'";

$sqlresult = mysql_query($sql);

$buildings = array(); // easier if you don't use generic names for data

while($sqlrow = mysql_fetch_array($sqlresult))
{
    // you need to initialise your building array cells
    if (!isset($buildings[$sqlrow['Building']])) {
        $buildings[$sqlrow['Building']] = array('Rooms' => array());
    }

    // you can add the room to the building 'Rooms' array
    $buildings[$sqlrow['Building']]['Rooms'][] = $sqlrow['Room'];
}


$buildingHTML = ""; 
$buildingHTML = "<form action=\"\" method=\"post\">";
$buildingHTML .= '<select name="buildings" id="buildingssDrop" onchange="document.getElementById(\'dropDownForm\').submit()">'.PHP_EOL;
$buildingHTML .= '<option value="">Please Select</option>'.PHP_EOL; 

foreach ($buildings as $building => $buildingData) {      
    $buildingHTML .= "<option value='".$building."'>" . $building . "</option>".PHP_EOL;        
}
$buildingHTML .= '</select>';
$buildingHTML .= '</form>';

$roomHTML = ""; 
$roomHTML .= '<select name="rooms" id="roomsDrop">'.PHP_EOL;
$roomHTML .= '<option value="">Please Select</option>'.PHP_EOL; 

if(isset($_POST['buildings'])){
    $buildingname = $_POST['buildings'];
     foreach ($buildings[$buildingname]['Rooms'] as $roomId => $roomData) {        
           $roomHTML .= "<option value='".$roomId."'>" . $roomId . "</option>".PHP_EOL;        
     }
}
$roomHTML .= '</select>';


echo $buildingHTML;

echo $roomHTML;
share|improve this answer
    
Still the same, no difference, still shows 2 dropdown menus that only options in both is "Please Select and that is all –  user1170029 Jan 27 '12 at 16:37
    
Are you sure the $_POST['buildings'] has some value inside it. Try printing . print_r($_POST); –  Sabari Jan 27 '12 at 16:49
    
I did your print and this is what it prints: Array ( [courseid] => info101 [submit] => Submit ) , it doesn't print anything from Buildings? –  user1170029 Jan 27 '12 at 16:58
    
So your post does not contain the value of the building. So only you were getting only Please Select output. Can you tell me how are you passing the building value to the page. –  Sabari Jan 27 '12 at 17:00
    
How are you getting the $building variable in your sql –  Sabari Jan 27 '12 at 17:03

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