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//Successful connection to $db

function insert_users($db, $username, $password, $email)
{
    echo "FUNCTION CALLED"; //This is outputted successfully

    $query = "INSERT INTO `users` (`id`, `username`, `password`, `email`) VALUES ('', ?, ?, ?)";
    $stmt = mysqli_stmt_init($db);

    if(mysqli_stmt_prepare($stmt, $query))
    {
        echo "QUERY PREPARED"; // rest of code was snipped (will put up upon request)
    } else {
        echo "QUERY DENIED"; //This is outputted successfully
    }
}


//The $user $pass and $mail are defined and then the function is called

insert_users($db, $user, $pass, $mail);

Database structure:

testdb (database)
    -> users (table)
        -> id            //Primary key, unique key
        -> username      //unique key
        -> password
        -> email

Why doens't the query go through with it's operation? It echoes "Query denied" instead of "Query prepared". The query is invalid I believe. If more information is required, ill be happy to edit this question

EDIT

I added

mysqli_stmt_error($stmt);after the echo "QUERY DENIED"; nothing happens...

EDIT 2

$server = 'localhost';
$user = 'root';
$password = '';
$databse = 'testdb';

$db = @mysqli_connect($server, $user, $password, $database) or die("Could not connect to Database server. Please inform an administrator");

That's my database setup. Do i put the variables in quotes?

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closed as not constructive by Gene T, Ja͢ck, Harsha M V, Ram kiran, Stony Dec 28 '12 at 3:46

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Please show mysqli_stmt_error, when your prepare fails. –  Olaf Dietsche Dec 27 '12 at 23:55
    
You are trying to insert empty string into primary key column. Is it legal in your scenario? is PK autoincrement? –  Hamlet Hakobyan Dec 27 '12 at 23:56
    
@Olaf Dietsche okay, will do :) –  Wulf Dec 27 '12 at 23:57
1  
More information is required. What is the error message? Mysqli provides you error information, you only need (and you really should) get if from $db and / or $stmt. If you have trouble to locate that, let me know, I can pass you the links (hint: it's all in the manual). –  hakre Dec 27 '12 at 23:59
1  
Just echo the string from mysqli_stmt_error(). It will tell you what's wrong. –  Olaf Dietsche Dec 28 '12 at 0:01

2 Answers 2

up vote 2 down vote accepted

If id is an auto_increment column, you can just drop it from your insert

INSERT INTO `users` (`username`, `password`, `email`) VALUES (?, ?, ?)

You have a typo in $databse = 'testdb';. Rename it to $database.

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I'll try this, thanks –  Wulf Dec 28 '12 at 0:00
    
I'm ashamed at my ridiculous mistake :( Thank you very much (everyone). –  Wulf Dec 28 '12 at 0:06
    
from you original query, instead of inserting '', replace it with NULL, eg INSERT INTO users (id, username, password, email) VALUES (NULL, ?, ?, ?) –  John Woo Dec 28 '12 at 0:18

I imagine it is because you are always trying to enter an empty string as your primary key (id). If that field is an auto-incrementing field, you should not even both trying to set a value for it.

$query = "INSERT INTO `users` (`username`, `password`, `email`) VALUES (?, ?, ?)";
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I still get a "QUERY DENIED"... –  Wulf Dec 28 '12 at 0:01

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