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I myself have been trying at this one for about a week. As you can clearly see by the haphazard code I have below, I'm trying to create an SQL login system. It uses an SQLite file, and when I run the code to trouble shoot, no PHP errors pop up. I'm assuming this means it's a problem with the way I check the results, or my SQL. I, for one, am completely lost. Any help is appreciated, thanks.

session_start();

$user = strtolower(sqlite_escape_string($_POST['username']));
$pass = strtolower(sqlite_escape_string($_POST['password']));

$db = sqlite_open('my DB.sqlite', 0666, $sqlerr);

$query = sqlite_query($db, "SELECT COUNT(*) FROM USERS WHERE USER = '$user' AND PASS = '$pass'", $sqlerr);
$result = sqlite_fetch_all($query, SQLITE_ASSOC);

if (count($result) == 1) {
    $_SESSION['loggedin'] = true;
    $_SESSION['loginFail'] = false;
    $_SESSION['user'] = $_POST['username'];
}

if ($sqlerr != null) {
    $_SESSION['sqlerr'] = $sqlerr;
}

if (!$_SESSION['loggedin']) {
    $_SESSION['loginFail'] = true;
}

sqlite_close($db);
header("Location: index.php");
exit();

(Also, sorry if I forgot any information. I've not posted a StackOverflow question in a while.)

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Be aware that the sqlite_ family of functions is being converted to an optional extension as of PHP 5.4. This could mean that the functions might not be available in places. You should probably switch to PDO or the SQLite3 extension. –  Charles Dec 8 '12 at 5:27
3  
Not directly related to your question, but storing passwords as plain text in the database is a major security concern. Using a key derivation function like PBKDF2, bcrypt, or scrypt is quite easy, and will massively improve the safety of the passwords in case of an information disclosure attack. –  Kitsune Dec 8 '12 at 5:30
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1 Answer 1

up vote 2 down vote accepted

Here is your problem:

$query = sqlite_query($db, "SELECT COUNT(*) FROM USERS WHERE USER = '$user' AND PASS = '$pass'", $sqlerr);
$result = sqlite_fetch_all($query, SQLITE_ASSOC);

if (count($result) == 1) {

You are asking for a count of rows from the database, which will be something like 1, then you retrieve this result and put it into an array ($result), then count the number of entries in $result. The result of count($result) will always be exactly 1.

You need to either compare the value that is returned from the database or use SELECT * instead of SELECT COUNT(*)

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