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I am trying to insert into a table with Procedural Mysqli. It is not posting any errors nor is it posting the information to the database. Here is my code:

$query = "INSERT INTO Accounts (FirstName, LastName, Username, Password, Access) VALUES ({$_POST['FirstNameTbx']}, {$_POST['LastNameTbx']}, {$_POST['UsernameTbx']}, {$_POST['PasswordTbx']}, {$_POST['AccessDDL']})";
        mysqli_query($link, $query);
        mysqli_close($link);
        $Error .= "$query";

Update: I changed to prepared statement, now I am getting:

Warning: mysqli_stmt::bind_param() [mysqli-stmt.bind-param]: Number of elements in type definition string doesn't match number of bind variables in /home/bryantrx/public_html/ec/add_user.php on line 19

There are only 5 variables that need to be bound, and the UserID auto increments, so it doesn't need to be bound or referenced in the statement..

if ($stmt = $link->prepare("INSERT INTO Accounts (FirstName, LastName, Username, Password, Access) VALUES (?, ?, ?, ?, ?)")){
            $stmt->bind_param($_POST['FirstNameTbx'], $_POST['LastNameTbx'], $_POST['UsernameTbx'], $_POST['PasswordTbx'], $_POST['AccessDDL']);
            $stmt->execute();   
            $Error .= "success";
            $stmt->close();
        } else {
            echo $link->error;
        }
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You're not asking it for any errors, so it's not giving you any... the reason is the same as in your last post. Do not directly inject POST values into the query string, it's dangerous –  Pekka 웃 Jan 28 '13 at 22:16
    
I could show what you did wrong in this query, but the real solution is to use prepared queries and it will solve the problem better. –  Barmar Jan 28 '13 at 22:20
    
can you please show me what I did wrong here. I have $link declared on another page which I am including in a line above it. –  n_starnes Jan 28 '13 at 22:22
    
You didn't quote the values in the VALUES clause. –  Barmar Jan 28 '13 at 22:43
    
If you use prepared queries, you don't need to worry about quoting. –  Barmar Jan 28 '13 at 22:44
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1 Answer

up vote 0 down vote accepted

To get an error message you need to call mysqli_error:

$error = mysqli_error($link);

You would also make life easier (and more secure) for yourself if you built your queries using prepare and parameters:

$query = "INSERT INTO Accounts (FirstName, LastName, Username, Password, Access) 
            VALUES ( ?, ?, ?, ?, ?)";

if ($stmt = mysqli_stmt_prepare($link, $query)) {

    mysqli_stmt_bind_param($stmt, "sssss", 
                $_POST['FirstNameTbx'], 
                $_POST['LastNameTbx'], 
                $_POST['UsernameTbx'], 
                $_POST['PasswordTbx'], 
                $_POST['AccessDDL']);

    if (!mysqli_stmt_execute($stmt)) {
        $error = mysqli_stmt_error($stmt);
    }

    mysqli_stmt_close($stmt);

} else {
    $error = mysqli_error($link);
}

mysqli_close($link);

UPDATE - ok, you've swapped to OO which is fine. When using bind_param the first parameter describes the data you are binding. In this case if it is five strings, you would put 5 "s" like so:

$stmt->bind_param("sssss", 
           $_POST['FirstNameTbx'], 
           $_POST['LastNameTbx'], 
           $_POST['UsernameTbx'], 
           $_POST['PasswordTbx'], 
           $_POST['AccessDDL']);
share|improve this answer
    
I literally just noticed this. I did need to do a prepared but forgot the "sssss". thank you. –  n_starnes Jan 28 '13 at 23:09
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