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i have a db query in php that is not inserting into database. Have used this format lots of times but for some reason its not working now. any ideas please

    $query = "INSERT INTO `databasename`.`member_users` (`id`, `first_name`, `last_name`, `username`, `password`, `address1`, `address2`, `postcode`, `access`, `expires`) VALUES (NULL, '$fname', '$lname', '$email', '', '$add1', '$add2', '$postcode', '0', '')";
$result = mysql_query($query);
if($result){
    echo"query inserted";

}else{

    echo "nope";
}
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3  
What does mysql_error() show? –  Pekka 웃 Mar 2 '11 at 16:35
5  
Holy SQL injection batman! –  Tyler Eaves Mar 2 '11 at 16:37
    
As Pekka says, check mysql_error(). Change your echo "nope"; to echo mysql_error();, which will give you the exact reason the query's failing. Just saying 'nope' is useless. –  Marc B Mar 2 '11 at 16:40
    
$postcode = "abc', '0', ''); DROP TABLE databasename.member_users; --" –  Arthur Mar 2 '11 at 16:40
1  
To clarify @Tyler's comment, the fact that you "Have used this format lots of times" is downright scary. This is wide open to an attack called "SQL Injection" (google it) and is the MOST insecure way to write database statements. It is trivial for someone to write a URL that can destroy your database, or harvest its contents unfiltered. PLEASE read up on SQL Injection and change your ways. –  Jim Garrison Mar 2 '11 at 16:43

3 Answers 3

Instead of echo "nope"; I suggest something like :

echo 'error while inserting : ['.mysql_errno().'] '.mysql_error();
echo 'query : '.$query;

This way you will be able to see the exact error and the query that was executed.

It can be a lot of things :

  1. Constraint error with a foreign key
  2. Data type error
  3. Non-existent field
  4. Wrong database or table name
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think i have solved. If the form uses auto insert from previous data (i.e. chrome save details) it does not work. i have no idea why this is –  nead93 Mar 2 '11 at 16:45

Instead of...

$query = "INSERT INTO `databasename`.`member_users` ..."

do

$query = "INSERT INTO member_users ..."

Hope it works. :)

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If databasename and member_users are variables then, Instead of $query = "INSERT INTO databasename.member_users... do $query = "INSERT INTO $databasename.$member_users...

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