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Ok so I have this form that send his values to a PHP file, the PHP file get the values in $_POST method. for example:

$min = $_POST['time_min'];

Now I want to take this varibale, to multiply it by 60, and than to sent it to a SQL function.

I tried to do something like this:

$time = ($min * 60) + $sec;
$result = update_video($time);

And in the SQL:

$query = "UPDATE video SET  
time='".$time."'
WHERE video_id='".$video_id."'  
";

But it just won't updated. Any suggestions?

share|improve this question
    
Can you please edit you post and add the complete form and php code here? – EhsanT Oct 10 '13 at 1:24

First of all, you end up with something like

UPDATE video SET
time='600000'
WHERE video_id='17'

However, I assume both time and video_id are defined as INTEGER, so quotes are messing you up.

Also, http://bobby-tables.com/.

share|improve this answer
    
Robert'); DROP TABLE Students;-- ... great! :-) – Mr. B. Oct 10 '13 at 1:07
    
I treid to remove the quotes but what I get is: Notice: Array to string conversion – assaf Oct 10 '13 at 1:10
    
I have no idea where you're getting an array. Can you do a print_r($time) and print_r($video_id)? – Amadan Oct 10 '13 at 1:17
    
thank you.. when I did the print_r I understood my error – assaf Oct 10 '13 at 11:03

It seems the $_POST value is a String. You've to cast it to an Integer first.

Try intval():

$time = (intval($min) * 60) + $sec); // make sure $sec is an Integer as well.

By the way: Take a look at PDO. Your SQL doesn't look secure.

Good luck!

share|improve this answer
    
PHP has as one of its design goals (silly in my opinion, but goals nonetheless) that the programmer should rarely feel the distinction between strings and numbers, and that they autoconvert at a drop of a hat; so I doubt that lack of casting is the problem. – Amadan Oct 10 '13 at 13:35

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