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I'm running into trouble when I'm trying to insert something into my database using $_POST variables.

Currently this is how I have it setup. When I pass these variables to it, it works. Notice I set everything to 1 in the working example.

$video_id = 1;
$user_id = 1;
$session_id = 1;
$user_rating = 1;

$conn = new PDO("mysql:host=$hostname;dbname=db_name", $username, $password);
    $q = $conn->prepare('INSERT INTO video_rating (rating, video_id, user_id, sessionid) VALUES (?, ?, ?, ?)');

$q->execute(array($user_rating, $video_id, $user_id, $user_rating));

However, when I use my POST variables

$video_id = $_POST['video_id'];
$user_id = $_POST['user_id'];
$session_id = $_POST['session_id'];
$user_rating = $_POST['user_rating'];

and run the same PDO execute, it doesn't work.

My form looks like this.

<form id="rate-form" method="post" enctype="multipart/form-data">
<input class="auto-submit-star" type="radio" name="user-rating" value="1" title="Very poor"/>
<input class="auto-submit-star" type="radio" name="user-rating" value="2" title="Poor"/>
<input class="auto-submit-star" type="radio" name="user-rating" value="3" title="OK"/>
<input class="auto-submit-star" type="radio" name="user-rating" value="4" title="Good"/>
<input class="auto-submit-star" type="radio" name="user-rating" value="5" title="Very Good"/>
<span id="hover-test" style="margin:0 0 0 15px;" class="rate-text"></span>
<input type="hidden" name="video_id" value="251"/>
<input type="hidden" name="user_id" value="3"/>
<input type="hidden" name="session_id" value="1"/>
<input type="hidden" name="rate_form" />  
</form>

Can you see something I might be overlooking as to why it's not working.

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1  
What does a var_dump() of $_POST produce? –  Matt Aug 27 '12 at 15:20
    
Please , stop using emulated prepares. –  tereško Aug 27 '12 at 15:54
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1 Answer

up vote 2 down vote accepted

Your SQL is looking for:

 $user_rating = $_POST['user_rating'];

Your HTML includes:

 <input class="auto-submit-star" type="radio" name="user-rating" ...

I assume one or the other is a typo - when your SQL is being generated, $user_rating is coming through as NULL, and your table doesn't allow null entries in that field.

share|improve this answer
    
That was a typo, thanks for catching that. But that still didn't fix the problem of nothing is showing up in the db. –  Jako Aug 27 '12 at 15:14
    
In that case, have you tried checking to see if the database is returning an error when you make the insert? –  andrewsi Aug 27 '12 at 15:15
    
I'd probably also lose the ` enctype="multipart/form-data"` from the form, too. –  andrewsi Aug 27 '12 at 15:16
    
I didn't have that initially, only added it when trying to figure out this issue. –  Jako Aug 27 '12 at 15:17
    
I also have, catch(PDOException $e) { echo $e->getMessage(); } and nothing is showing up there –  Jako Aug 27 '12 at 15:19
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