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I am using this code to enter update user permissions on a web app:

$updaters = array();
for ($i = 1; $i <= 24; $i++){    
  if (isset($_POST['permsA['.$i.']']))        
   $updaters[] = '`'.$i.'` = \''.mysqli_real_escape_string($db, $_POST['permsA['.$i.']']).'\'';
  }
$insert = mysqli_query($db,'UPDATE `tbl_perms` SET '.implode(',', $updaters).    'WHERE `userid` = '.$id)or die(mysqli_error($db));

The error I get is from the SQL:

You have an error in your SQL syntax; check the manual that corresponds to your MySQL server version for the right syntax to use near 'WHERE `userid` = 1' at line 1

I can't seem to be able to rewrite the code to remove the error :(

this is the code to generate permsA

<?
while($i = mysqli_fetch_array($get_perms)){
$pname = $i[pname];
$id = $i[id];
?>
<div><input type="checkbox" tabindex="1" name="permsA[<? echo $id;?>]" value="1" <? if($permissionid[$id] == '1') {echo ' checked="checked" ';}?> /><?echo htmlspecialchars($pname);?></div>
<? } ?>

Here is the exact query that produces the error:

$insert = mysqli_query($db,'UPDATE `tbl_perms` '.$updaters.' WHERE `userid` = '.$id) or die(mysqli_error($db));

Here is what this sql generates:

UPDATE `tbl_perms` SET WHERE `userid` = 1

And here's a variable dump from the variables after POST var_dump($_POST['permsA']):

array(22) { [1]=> string(1) "1" [2]=> string(1) "1" [3]=> string(1) "1" [4]=> string(1) "1" [5]=> string(1) "1" [6]=> string(1) "1" [8]=> string(1) "1" [9]=> string(1) "1" [10]=> string(1) "1" [11]=> string(1) "1" [12]=> string(1) "1" [13]=> string(1) "1" [14]=> string(1) "1" [15]=> string(1) "1" [16]=> string(1) "1" [17]=> string(1) "1" [18]=> string(1) "1" [19]=> string(1) "1" [20]=> string(1) "1" [21]=> string(1) "1" [22]=> string(1) "1" [23]=> string(1) "1" }

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6  
echo out the query before it runs, and post that here. –  dnagirl Nov 10 '09 at 19:55
    
What does this return? echo 'UPDATE tbl_perms SET '.implode(',', $updaters). ' WHERE userid = '.$id; –  Robert H. Nov 10 '09 at 20:27
    
Warning: implode() [function.implode]: Invalid arguments passed in /home/bsraf/public_html/control/useredit.php on line 21 UPDATE tbl_perms SET WHERE userid = 4 –  Shamil Nov 10 '09 at 21:05
    
Why don't you try to format your code a bit first? –  Svante Nov 10 '09 at 23:01
    
Wat do you mean Svante? –  Shamil Nov 10 '09 at 23:34
show 6 more comments

7 Answers

up vote 1 down vote accepted

I see 2 potential issues:

  • Put a space before WHERE
  • your implode function may be leaving a trailing comma which will throw off the query. rtrim(implode(...), ',') to correct
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1  
implode() does not leave a trailing join character. ca.php.net/manual/en/function.implode.php –  dnagirl Nov 10 '09 at 19:58
    
It does if you have an empty item at the end and why I used qualifiers like potential and may :) –  Mike B Nov 10 '09 at 20:28
add comment

Add a space before your WHERE clause but after the apostrophe ' WHERE

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nope, same error –  Shamil Nov 10 '09 at 20:01
add comment

I'm not certain if it's the problem, but you have no space before the WHERE keyword.

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nope, same error –  Shamil Nov 10 '09 at 20:00
add comment

Add a space before WHERE

And be sure that $updaters is filled.


Try this:

$updaters = array();
for ($i = 1; $i <= 24; $i++){    
  if (isset($_POST['permsA['.$i.']']))        
   $updaters[] = '`'.$i.'` = \''.mysqli_real_escape_string($db, $_POST['permsA['.$i.']']).'\'';
}
$updaters = (count($updaters) > 0) ? ' Set '.implode (',', $updaters).' ' : '';
$insert = mysqli_query($db,'UPDATE `tbl_perms` '.$updaters.' WHERE `userid` = '.$id)or die(mysqli_error($db));
share|improve this answer
    
nope, same error –  Shamil Nov 10 '09 at 20:02
add comment

THe answer is already said i guess, but i would advise you to you parameterised queries since they're safer and spare you the trouble of string debugging.

Apperently it is not fixed. Can you post the whole query that is executed?

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add comment

If you declared your post field name like so: name="permsA[$i]" then you have to access it this way: $_POST['permsA'][$i].

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add comment

There looks to be a logic error with how you reference $_POST values. When you name input variables with a square brace suffix (e.g. "permsA[]", "permsA[3]"), PHP parses them as arrays. Try:

for ($i = 1; $i <= 24; $i++){    
    if (isset($_POST['permsA'][$i])) {
       $updaters[] = "`$i`='".mysqli_real_escape_string($db, $_POST['permsA'][$i])."'";
    }
}

Or, better yet, use PDO and prepared queries:

// keys of $permsAFields are keys we want to allow for input array 'permsA' 
static $permsAFields = array_fill(1, 24, 1);
...
// filter permsA
$permsA = array_intersect_key($_POST['permsA'], $permsAFields);
if (count($permsA)) {
    $query = $db->prepare("UPDATE `tbl_perms` SET `" . implode('`=?, `', array_keys($permsA)) . "`=? WHERE `userid`=?");
    $permsA[]=$id;
    $query->execute($permsA);
} else { // invalid input
    ...
}
share|improve this answer
    
You have an error in your SQL syntax; check the manual that corresponds to your MySQL server version for the right syntax to use near 'WHERE userid = 4' at line 1 –  Shamil Nov 10 '09 at 21:08
    
I'm not certain what the point of your comment is. Why don't you try what others have suggested and post the query and contents of $_POST['permsA'] in your question? –  outis Nov 10 '09 at 21:52
    
that is the query of $_POST['permsA'][$i] in the question, or do you want the query that generates the permsA ? –  Shamil Nov 10 '09 at 22:33
    
We want to see the query that produces the error you're asking about. –  outis Nov 10 '09 at 22:43
    
Edited OP to reflect. –  Shamil Nov 10 '09 at 23:35
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