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I'm trying to load and update the content of a entire table. I have no problem loading the data but it won't update.. Can someone tell me what I'm doing wrong here:

while($show_table   = mysql_fetch_array($result_table)){
    echo "<tr><td><input type='text' name='table_id' value='" . 
        $show_table["id"] . "'/><input type='text' name='table_date' value='" . $show_table["date"] . "'/>
        </td><td>&euro; <input type='text' name='table_week' value='" . $show_table["week"] . "'/>
        </td><td>&euro; <input type='text' name='table_midweek' value='" . $show_table["midweek"] . "'/>
        </td><td>&euro; <input type='text' name='table_weekend' value='" . $show_table["weekend"] . "'/>
        </td><td><input type='text' name='table_type' value='" . $show_table["type"] . "'/>
        </td><td><input type='text' name='table_information' value='" . $show_table["information"] . "'/></td></tr>";
}

echo "</table>
<p><input type='submit' id='form_submit' name='update_confirm' value='Tarieven bijwerken'></p>
</form>";

if ($_POST['update_confirm'] == 'Tarieven bijwerken') {
    $id = $_POST['table_id'];
    $date = $_POST['table_date'];
    $week = $_POST['table_week'];
    $midweek = $_POST['table_midweek'];
    $weekend = $_POST['table_weekend'];
    $type = $_POST['table_type'];
    $information = $_POST['table_information'];

    $update_table = "UPDATE tarieven SET date='$date', week='$week', midweek='$midweek', weekend='$weekend', type='$type', information='$information' WHERE id='$id';";
    $confirm_table  = mysql_query($update_table);

} else {
}
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Did you try printing the query?Check what the query is after printing and try running it in the mysql admin SQL prompt.Any specific error would be highlighted there!Try and add more details! –  KillABug Feb 12 '13 at 14:10
1  
are you receiving any error?, are you sure that update_confirm=='Tarieven bijwerken'? what is the table structure? you need to be more specific –  jcho360 Feb 12 '13 at 14:11
    
You should read up on sql injection. –  jeroen Feb 12 '13 at 14:14
    
Not that it matters but you should escape the post data because of sql injections, mysql structure plz –  s.lenders Feb 12 '13 at 14:15
    
Do you have specified method="post" in form open tag? –  Leonov Mikhail Feb 12 '13 at 14:16
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1 Answer

up vote 0 down vote accepted

Your query updates only 1 row, as specified by UPDATE tarieven SET ... WHERE id='$id' - although you are looping through all the records and displaying them, the update is outside the loop.

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1  
You could specify in the form that id is 1' OR '1 :-) –  jeroen Feb 12 '13 at 14:15
    
Indeed - I was quoting the original text. Perhaps PHP/MySQL questions should get an auto-comment pointing towards sql-injection best practices... –  Raad Feb 12 '13 at 14:18
    
Hi Raad, I think you are right! With the update in the loop it works the way I want! Thanks you all for the help. (I want to show you the results after fix but I have to wait for 8 hours..) –  user2064816 Feb 12 '13 at 15:02
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