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My problem is that my script won't insert the new user info into my Database table. I have no clue why, I've been looking at this for nearly 3 hours on end, trying to find the problem, but I can't seem to locate it. Here's my script(SQLITE 3, by the way):

    $db = sqlite_open("../../kinz/kinz-db.sqlite", 0666, $sqlerr);

$query_login = sqlite_query($db, "SELECT * FROM USERS WHERE USER = '$user'");
$result = sqlite_fetch_all($query_login, SQLITE_ASSOC);

$query_setId = sqlite_query($db, "SELECT * FROM USERS WHERE ID = (SELECT MAX(ID) FROM USERS)", $sqlerr);
$result2 = sqlite_fetch_all($query_setId, SQLITE_ASSOC);
$ID = $result2[0][ID] + 1;

if (count($result) >= 1) {
    $_SESSION['regErr'] = "Username already in use";
    header("Location: register.php");
    exit();
} else {
    /*This is the registration query*/$query_register = sqlite_query($db, "INSERT INTO USERS (ID, USER, DISPLAY_NAME, PASS_ENC1, PASS_ENC2) VALUES ($ID, '$user', '$displayName', '$pass_enc1', '$pass_enc2')", $sqlerr);
}

if (!$query_register) {
    $_SESSION['regErr'] = $sqlerr;
    header("Location: register.php");
    exit();
} else {
    $_SESSION['regSuccess'] = true;
}
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closed as not a real question by GolezTrol, Jocelyn, Praveen Kumar, Leo, Denys Séguret Dec 9 '12 at 19:45

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center. If this question can be reworded to fit the rules in the help center, please edit the question.

    
Any errors? I assume sqlite3 has error reporting features as well? –  GolezTrol Dec 8 '12 at 23:52
    
It does, and I have the errors being printed. But there's none; it's just an empty variable –  Kinz Dec 8 '12 at 23:53
2  
you really should be able to narrow that down to a line or 2. –  Dagon Dec 9 '12 at 0:04
    
Doesn't PHP have function to get the last errors for sqlite3? Just like mysql_error or something? I don't see any of these in your code. –  GolezTrol Dec 9 '12 at 0:12
    
@Kinz: you have very little error checking going on... does $db = sqlitee_open(...) fail? does $query_login = sqlite_query(...) fail? You have to do error checking; we can't do it for you. –  cegfault Dec 9 '12 at 0:12

1 Answer 1

Since INSERT is a resultless SQL statement, you should probably use sqlite_exec() instead of sqlite_query().

You should also report what error occurred if sqlite_query() or sqlite_exec() return FALSE. You don't have to output to the user, but output to someplace where you can read it. Currently you only store it in $_SESSION, which is probably hard to access.

Here's how I would write it:

$query_register = sqlite_exec($db, "INSERT INTO USERS 
    (ID, USER, DISPLAY_NAME, PASS_ENC1, PASS_ENC2) VALUES 
    ($ID, '$user', '$displayName', '$pass_enc1', '$pass_enc2')", $sqlerr);

if ($query_register === false) {
    error_log("Sqlite error in file ".__FILE__." on line ".__LINE__.": "
    . $sqlerr);
}

Also, I don't see that you're escaping variables before interpolating them into your INSERT statement. You need to be careful to avoid SQL injection vulnerabilities.

Or else upgrade to the SQLite3 API, which supports prepared statements with parameters. That's much safer for protecting against SQL injection when writing dynamic queries.

PDO_sqlite also supports prepared statements, I would recommend using PDO.

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