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The MySQL query below works well as it is. It replaces the field votes_up in a MySQL database with whatever value there is for the variable $votes_up.

UPDATE submission 
   SET votes_up = $votes_up 
 WHERE submissionid = $id

However, when I try to add a second condition that would simultaneously replace a field called flag1 with the value of a variable called $uflag, I get an error message. The query I'm trying to use for this is below. The error message says Unknown column 'admin' in 'field list' if the value of $uflag is "admin". Also, the value of $uflag is not being put into the database. Any ideas why I am getting this error?

UPDATE submission
   SET votes_up = $votes_up, 
       flag1 = $uflag 
 WHERE submissionid = $id
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3 Answers 3

up vote 3 down vote accepted

You need to add quotes to your string values:

UPDATE submission 
SET votes_up = $votes_up, flag1 = $uflag 
WHERE submissionid = $id

Should be:

UPDATE submission 
SET votes_up = $votes_up, flag1 = '$uflag' 
WHERE submissionid = $id
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You have a problem in the query, first of all try:

UPDATE submission SET votes_up = '$votes_up', flag1 = '$uflag' WHERE submissionid = $id

If that doesn't work try to print the query and run it in the console.

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You have to put quotes around your values and escape them:

$sql = '
    UPDATE submission
    SET votes_up = "'.mysql_real_escape_string($votes_up).'",
        flag1 = "'.mysql_real_escape_string($uflag).'"
    WHERE submissionid = "'.mysql_real_escape_string($id).'"
';

The reason why it works with the other variable is, that for numbers quotes are not needed, however opening a huge security hole.

share|improve this answer
    
you code does not put quotes around the values as you are just concatenating the string with a function(s), you would still need to add a double quote like this: flag1 = "'.mysql_real_escape_string($uflag).'" –  Phill Pafford Nov 16 '10 at 17:02
    
Argh, was distracted. Edited. –  AndreKR Nov 16 '10 at 17:04

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