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I have to insert: name, surname, email, username and password passed by an user by an HTML form to a PHP page that do this:

$name = $_POST["nm"];
$surname = $_POST["cgn"];
$email = $_POST["ml"];
$username = $_POST["nkn"];
$password = $_POST["psw1"];

// Connection to DB Server
$conn = mysqli_connect("localhost","root","","mydb");
// Check
if (!$conn){
  echo "connection to database failed";
$query = "SELECT username FROM users WHERE username = '".$username."'";
$result = mysqli_query($conn,$query);
$row = mysqli_fetch_array($result,MYSQLI_NUM);
$n = mysqli_affected_rows($conn);
if($n >= 1){
    echo "Username already exist";
    $insert = "INSERT INTO users (name,surname,email,username,password) VALUES ('$name','$surname','$email','$username','$password')";
<p>User: <?php echo $username ?> successfully added.</p>

The problem is that this piece of code doesn't work always. There are times where it write "User: ** successfully added" but in the database's table it doesn't appear. I don't know why. Thank you very much for the help. By


Use mysqli_real_escape_string(connection,string)

Thank you again

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closed as too localized by deceze, andrewsi, Mario Sannum, Roman C, Stony Jun 19 '13 at 21:40

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What do you mean by "doesn't work always"? Maybe the insert statement query fails. The error is not checked, so it ouputs "User: XY successfully added". Also your code is vulnerable against sql injection. – Fracsi Jun 19 '13 at 8:39
Of course you are always getting the success message - because you have not checked whether or not your statement was executed successfully. And for the "sometimes" that it fails, I'd suspect that's in those cases where the user name contains special chars like f.e. ' - and since you also completely neglected to escape your data before putting it into the query, it'll fail. – CBroe Jun 19 '13 at 8:41
I have see now that if name or surname contain ' it does't work: the data doesn't appear in the table – user2467899 Jun 19 '13 at 8:41
Perfect! Thank you very much deceze! – user2467899 Jun 19 '13 at 8:46

1 Answer 1

Escape string before doing insert SQL.

You can try mysql_real_escape_string() function.

Or mysqli_real_escape_string() in your case.

Also, you should check return value to see if insert SQL is really succeed.

$name = mysqli_real_escape_string($name);
$surname = mysqli_real_escape_string($surname);
$email = mysqli_real_escape_string($email);
$username = mysqli_real_escape_string($username);
$password = mysqli_real_escape_string($password);
$insert = "INSERT INTO users (name,surname,email,username,password) VALUES ('$name','$surname','$email','$username','$password')";
share|improve this answer
He's using mysqli, not mysql. Besides, mysql is deprecated as of 5.5. – The Serenin Jun 19 '13 at 8:46
Thank you very much! – user2467899 Jun 19 '13 at 8:49
Sorry :-( but it doesn't work! the "mysqli_query" method fails – user2467899 Jun 19 '13 at 9:26
$conn = mysqli_connect("localhost","root","","mydb"); $nome = mysqli_real_escape_string($conn,trim($nome)); $cognome = mysqli_real_escape_string($conn,trim($cognome)); $email = mysqli_real_escape_string($conn,trim($email)); $username = mysqli_real_escape_string($conn,trim($username)); $password = mysqli_real_escape_string($conn,trim($password)); $query = "SELECT username FROM utenti WHERE username = '".$username."'"; – user2467899 Jun 19 '13 at 9:29

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