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Whats wrong with this piece of code?

$SQL1 = "UPDATE table SET status='".$status."' WHERE email='".$client['email']."'";

I am getting error: Unexpected input field parameter in database query.

here is the full code

$server1 = "localhost";
$user_name1 = "DBUSER";
$passworda2 = "2HGfn5D480#";
$database2 = "DBNAME";
$db_handle1 = mysql_connect($server1, $user_name1, $passworda2);
$db_found = mysql_select_db($database2, $db_handle1);
if ($db_found) {
$status = "6";

$SQL1 = "UPDATE table SET status=".$status." WHERE email='".$client['email']."'";

$result = mysql_query($SQL1);
mysql_close($db_handle1);
}
else {
print "Database NOT Found ";
mysql_close($db_handle1);
}
share|improve this question
    
include the schema of the table to the question – Ray Jan 16 '14 at 22:45
    
should i post all the table? the culomn type is int(11) – user1741397 Jan 16 '14 at 22:54
    
No just the result of Describe tablename – Ray Jan 16 '14 at 22:55
    
its pretty long.. – user1741397 Jan 16 '14 at 22:58
    
What data are you inserting? What is $status in this case? – JeroenJK Jan 16 '14 at 23:16

seems the couse of the error was

mysql_close($db_handle1);

took me 4 hours to figure that out ! :D

share|improve this answer
    
Is it the part where it can't connect to the database and you're still trying to close it at "database not found"? – aaaaahhhhh Jan 17 '14 at 3:13

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