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I am trying to retrieve the details of the course selected from the Course drop down module and then display a modules drop down menu listing all of the modules which belong to that course.

The problem I having though is that lets say I have these 2 options in my courses drop down menu:

INFO101 - Business
INFO102 - ICT

For some strange reason, everytime I select the top option (INFO101) from the drop down menu and click on the submit button, it always displays the other course details (INFO102) and thus shows the modules which belong to that course and not the other course.

My question is that when I submit the (INFO101) option from the drop down menu, why does it display the information of the other course?

Below is the mysqli code

     $sql = "SELECT CourseId, CourseName FROM Course"; 

$sqlstmt=$mysqli->prepare($sql);

$sqlstmt->execute(); 

$sqlstmt->bind_result($dbCourseId, $dbCourseName);

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

$courseHTML = "";  
$courseHTML .= '<select name="courses" id="coursesDrop">'.PHP_EOL; 
$courseHTML .= '<option value="">Please Select</option>'.PHP_EOL;  

while($sqlstmt->fetch()) 
{ 
$course = $dbCourseId;
$coursename = $dbCourseName; 
$courseHTML .= '<option value="'.$course.'">' . $course . ' - ' . $coursename . '</option>'.PHP_EOL;  
} 

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

?>

<?php
include('noscript.php');
?>

<h1>CREATING A NEW ASSESSMENT</h1>

<form action="<?php echo htmlentities($_SERVER['PHP_SELF']); ?>" method="post">
<table>
<tr>
<th>Course: <?php echo $courseHTML; ?><input id="courseSubmit" type="submit" value="Submit" name="submit" /></th>
</tr>
</table>
</form>

<?php
if (isset($_POST['submit'])) {

$submittedCourseId = (isset($_POST['courses']));

$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 = ?)
ORDER BY c.CourseName, m.ModuleId
";

$qrystmt=$mysqli->prepare($query);
// You only need to call bind_param once
$qrystmt->bind_param("s",$submittedCourseId);
// get result and assign variables (prefix with db)

$qrystmt->execute(); 

$qrystmt->bind_result($dbCourseId,$dbModuleId,$dbCourseName,$dbModuleName);

$qrystmt->store_result();

$num = $qrystmt->num_rows();

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

$dataArray = array();

while ( $qrystmt->fetch() ) { 
// data array
$dataArray[$dbCourseId]['CourseName'] = $dbCourseName; 
$dataArray[$dbCourseId]['Modules'][$dbModuleId]['ModuleName'] = $dbModuleName; 
// session data
$_SESSION['idcourse'] = $dbCourseId;
$_SESSION['namecourse'] = $dbCourseName;

}

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

$output = ""; 

$output .= "<p><strong>Course:</strong> " . $foundCourse .  " - "  . $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'>" . $moduleId . " - " . $moduleData['ModuleName'] ."</option>".PHP_EOL;        
} 
}
$moduleHTML .= '</select>';

echo $output;

UPDATE:

Below is what the view page source is showing:

        <form action="/u0000000/Mobile_app/create_session.php" method="post">
        <table>
        <tr>
        <th>Course: <select name="courses" id="coursesDrop">
<option value="">Please Select</option>
<option value='INFO101'>INFO101 - Bsc Information Communication Technology</option>
<option value='INFO102'>INFO102 - Bsc Computing</option>
</select></form><input id="courseSubmit" type="submit" value="Submit" name="submit" /></th>
        </tr>
        </table>
        </form>

        <p>Sorry, No Course was found with this Course ID 'INFO102'</p>  
share|improve this question
    
First step of debugging should be to echo out the value that's going into that query (the bind), then trace it backwards until you find the issue. Is the query doing the right thing with the wrong data, or the wrong thing with the right data? Seems probable it's the latter. –  Martin Lyne Oct 25 '12 at 17:13
    
I am not sure the query is the problem, the top query is displaying all of the courses, it is this line here (I will comment in code above $output .= "<p><strong>Course:</strong> " . $course . " - " . $courseData['CourseName'] . "</p>"; It is displaying INFO102 - ICT rather than INFO101 - Business –  user1723710 Oct 25 '12 at 17:16
    
@MartinLyne what should I echo in order to start debugging this? –  user1723710 Oct 25 '12 at 17:18
    
I was just looking for that value to echo, but realised it's not there, I'll expand my answer below.. –  Martin Lyne Oct 25 '12 at 17:21

1 Answer 1

up vote 0 down vote accepted

Try swapping: foreach ($dataArray as $course => $courseData) for foreach ($dataArray as $foundCourse => $courseData)

and then all the $courses in the foreach should be renamed also. You use the variable $course at the top of your page, even if it doesn't fix the problem it will make the code more understandable.

You should also look into using PDO to abstract your database provider away http://www.php.net/manual/en/faq.databases.php#faq.databases.mysql.deprecated

Edit:

The code says "here are all the courses, now if you are submitting use $course and get it's details"

But at no point do you get the course that was posted, so it will (just so happen) to be using the same named variable that was "leftover" from the foreach at the top of the script.

I'd recommend doing as I say above then after if(isset($_POST['submit'])) add $submittedCourseId = $_POST['coursesDrop'];

Then add THAT to your bind $qrystmt->bind_param("s",$submittedCourseId);

I think that should sort things out.

share|improve this answer
    
Hi, I will do this and get back to you, I can't use PDO (even tho I wish I could) because of the version of the university server –  user1723710 Oct 25 '12 at 17:21
    
Hi, I tried your answer and edit and only problem I am getting now is that it is not able to find a course after I have submitted the drop down menu, is there anything you can see I have done incorrectly or missed out? –  user1723710 Oct 25 '12 at 17:35
    
I'd have a little look at the source and the POST values (Press F12 in browser and look for network tab (or use Firebug), then submit the form and look for the values it actually posted, then put that echo in just before the query and make sure $submittedCourseId matches that value. –  Martin Lyne Oct 25 '12 at 17:40
    
Actually, first, try to give the select tag a name="coursesDrop" –  Martin Lyne Oct 25 '12 at 17:41
    
I changed the $_POST to $_POST['courses']; but no change. I will get on firebug and see what it's posting, and I will comment back on what its posting –  user1723710 Oct 25 '12 at 17:49

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