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I have a basic mysqli code below where it performs a query to select Course number and Course Name from database and display it in a drop down menu.

    $sql = "SELECT CourseId, CourseNo, CourseName FROM Course ORDER BY CourseId"; 

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

    $sqlstmt->execute(); 

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

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

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

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

    $outputcourse .= "<p><strong>Course:</strong> " . $courseno .  " - "  . $coursename . "</p>";

    } 

    $courseHTML .= '</select>';  

    ?>

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

    <?php

    if (isset($_POST['moduleSubmit'])) {

    $assessmentform = "<div id='lt-container'>
<form action='".htmlentities($_SERVER['PHP_SELF'])."' method='post' id='assessmentForm'>
{$outputcourse}
</form>
</div>";

echo $assessmentform;

...

?>

Now lets say the drop down menu contains these courses below:

INFO101 - Information Communication Technology
INFO102 - Computing

For some strange reason no matter which course I choose from the drop down menu, when I click on the the submit button, the echo it is suppose to output underneath the drop down menu always outputs the Course Number and Course Name INFO102 - Computing. This is even though I selected the other option INFO101 - Information Communication Technology Why is this happening?

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1 Answer 1

up vote 1 down vote accepted

In your while loop, you are reinitializing $outputcourse on each iteration, rather than accumulating it into a long string. It therefore would only ever show the last item fetched in your loop.

// Initialize $outputcourse outside the loop:
$outputcourse = "";
while($sqlstmt->fetch()) 
{ 
    $course = $dbCourseId;
    $courseno = $dbCourseNo;
    $coursename = $dbCourseName; 
    $courseHTML .= "<option value='".$course."'>" . $courseno . " - " . $coursename . "</option>".PHP_EOL;  

    // Match the course in $_POST with the current fetch iteration and load $outputcourse
    if (isset($_POST['courses']) && $_POST['courses'] == $course)) {
      $outputcourse = "<p><strong>Course:</strong> " . $courseno .  " - "  . $coursename . "</p>";
    }
}

Now, only the selected course will be loaded into $outputcourse. Hopefully you have included some other inputs in your $assessmentform which are not shown above, because as it is now you have just wrapped a <p> inside a <form> with no associated inputs.

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Can I ask you a very quick question, how come that after I have made the change that it displays the $outputcourse twice on the screen? It displays INFO101 .... twice and not once? Code updated –  user1819709 Nov 25 '12 at 13:29
    
@user1819709 I can't say. Unless you have duplicate rows in your database, there's nothing above that would cause it to show twice. Debug by echoing all the values $courseno $coursename as they are fetched in the while loop to see what the DB is producing. Otherwise, I can't see what you have in the ... after echo $assessmentform. –  Michael Berkowski Nov 25 '12 at 13:46
    
There are no statements in your while loop that could cause output, only variable assignments. You need to debug either by putting in little echo statements like echo "Before while loop"; echo "inside while loop";` etc... or view your page source in the browser to see where in your markup the output is happening to narrow it down. –  Michael Berkowski Nov 25 '12 at 14:50
    
It is no duplicate rows in database. It is because that because the $outputcourse .= "<p><strong>Course:</strong> " . $courseno . " - " . $coursename . "</p>"; is in the while loop, it will display both courses for $outputcourse. This is what I found out when echoing $courseno $coursename as it outputted both courses. But if I move that $outputmodule line outside the while loop and change $courseno $coursename to $dbCourseNo $dbCourseName, then Im back to square one where it displays the wrong course –  user1819709 Nov 25 '12 at 14:51
    
@user1819709 Then I am not understanding what output you are supposed to be getting because all along I thought you wanted to accumulate those courses in the while loop. What is it supposed to print? –  Michael Berkowski Nov 25 '12 at 14:56

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