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I'm having an issue in passing a value from a dropdown list that is in a separate PHP file that is being used by jquery.

I ended up getting the values from the dropdown list that isn't posting correctly by using jquery based on the value selected in the first dropdown list. The dropdown list in question is populating correctly, but with the way I have it setup I cannot post the value to the submit PHP page.

I'm pretty sure it has to do with the way I have it setup; however, I'm very new to jquery and was looking for some guidance.

The main PHP Page (the small areas in question)

<select name="department_list" id="department_list" onchange="$('#singleUser').load('get_users.php?nid='+this.value);">

...

<div id="singleUser" class="singleUser">
</div>

The PHP page (get_users) used to fill the values (only the area in question)

echo '<p style="text-align:center">';
echo "    
    <br />
    Select a person to receive the form
<br />";

echo "<select id='userSelect' class='userSelect'>";
if ($id == '50') {
    echo "<option value='Done'>Done</option>";
    echo "</select>";
}else {
echo "<option value='none'>Select user</option>";

try {
$db = new PDO("mysql:host=$hostname;dbname=$dbname", $username, $password);

        $stmt = $db->prepare("SELECT dm.empid AS empid, u.name AS name FROM mytable dm
                    JOIN mytable2 u ON dm.empid = u.id 
                    WHERE dm.deptid = :id
                    ORDER BY u.name");
        $stmt->bindParam(':id', $id);
        $stmt->execute();
        while ($r = $stmt->fetch()) {
        $empid = $r['empid'];
                $userName = $r['name'];

               echo "<option value='".$empid."'>".$userName."</option>"; 

    }
echo "</select>";
echo "</p>";
    $db = null;
    }
    catch (PDOException $ex) {
        echo "An Error occurred!";
        }
}//end else

In the submit page:

if(isset($_POST['userSelect'])){
$givenID = $_POST['userSelect'];
//the rest of my code

I do have the div code above within the form tags and have method="post". All of my other inputs post correctly, so I'm thinking it has to do with the way I have only the div tags within the main page. Again, I'm pretty new to all of this so any ideas or changes that I should make so it posts correctly would be greatly appreciated.

share|improve this question
    
I only posted small chunks of the code. I stated in the last paragraph that it is located within the form tags. –  wiscWeb Aug 13 '13 at 16:10
    
I noticed too late, and removed the comment. ma bad –  Hanlet Escaño Aug 13 '13 at 16:10

2 Answers 2

up vote 1 down vote accepted

You forgot the name of the select when you write it with php:

change this:

echo "<select id='userSelect' class='userSelect'>";

to

echo "<select id='userSelect' name='userSelect' class='userSelect'>";
share|improve this answer
1  
Wow do I feel like an idiot... Thanks. –  wiscWeb Aug 13 '13 at 16:14
1  
Will mark as answer when available in a few minutes. –  wiscWeb Aug 13 '13 at 16:17

i think the error is in the PHP file generating the user select it is missing the name attribute name="userSelect"

echo "<select id='userSelect' class='userSelect'>";

it should be

echo '<select id="userSelect" name="userSelect" class="userSelect">';

every form element with the name attribute gets posted with its value. if you do not enter the name attribute, the value can not be retrieved from the $_POST array. Also have in mind that disabled form inputs also do not get posted.

Edited the PHP quotes. Use Single qutes everyt time you do not need to insert PHP variable into the string. It is ~9 times faster than double quotes ;)

share|improve this answer
    
You have a syntax error in your answer :p –  Hanlet Escaño Aug 13 '13 at 16:18
    
I noticed it too. Ha, oh well. It also would've gotten the point across. –  wiscWeb Aug 13 '13 at 16:19
1  
Sorry for that :) edited the answer regarding the PHP quotes :) –  Laurynas Mališauskas Aug 13 '13 at 16:27

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