Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am inserting some form data into a sql database, but i want to insert an account type label aswell which is not part of the form data.

So basically the form data gets inserted into the database fine, but i also have a column in my database called 'account_type' which i want to insert the word 'member' into as standard.

Can i do this because i have tried by adding this to the code but it doesn't insert the 'member' into the account type.

Code i have tried adding:

<? $result = mysql_query("UPDATE ptb_registrations SET account_type=Member"); ?>

Rest of insert code for form data:

<?php
    session_start();
    // other php code here


    $_SESSION['display_name'] = $_POST['display_name'];
    $_SESSION['password'] =  $_POST['password'];

    ?>

    <?php ob_start(); ?>
    <?php
    session_start();
    // GET ACCOUNT INFORMATION FROM FORM AND ASSIGN VARIABLES
    $first_name = $_SESSION['first_name'];
    $last_name = $_SESSION['last_name'];
    $email = $_SESSION['email'];
    $date_of_birth = $_SESSION['date_of_birth'];
    $contact_number = $_SESSION['contact_number'];
    $display_name = $_SESSION['display_name'];
    $password = $_SESSION['password'];
    ?>
    <?php
    /*
    // ECHO ACCOUNT INFORMATION
    echo "<strong> Account Information: </strong>";
    echo "<br />";
    echo First Name: ";
    echo "<br />";
    echo $first_name;
    echo "<br />";
    echo "<br />";
    echo "Last Name: ";
    echo "<br />";
    echo $last_name;
    echo "<br />";
    echo "<br />";
    echo "Email: ";
    echo "<br />";
    echo $email;
    echo "<br />";
    echo "<br />";
    echo "Password: ";
    echo "<br />";
    echo $password;
    echo "<br />";
    echo "<br />";
    echo "date_of_birth: ";
    echo "<br />";
    echo $date_of_birth;
    echo "<br />";
    echo "<br />";
    echo "Contact_number: ";
    echo "<br />";
    echo $contact_number;
    echo "<br />";
    echo "<br />";
    echo "display_name: ";
    echo "<br />";
    echo $display_name;
    echo "<br />";
    echo "<br />";
    */
    ?>

    <?php
    ////// SEND TO DATABASE


    /////////////////////////////////////////////////////////

    // Database Constants
    define("DB_SERVER", "localhost");
    define("DB_USER", "root");
    define("DB_PASS", "");
    define("DB_NAME", "playtime");

    // 1. Create a database connection
    $connection = mysql_connect(DB_SERVER,DB_USER,DB_PASS);
    if (!$connection) {
        die("Database connection failed: " . mysql_error());
    }

    // 2. Select a database to use
    $db_select = mysql_select_db(DB_NAME,$connection);
    if (!$db_select) {
        die("Database selection failed: " . mysql_error());
    }
    //////////////////////////////////////////////////////////////
    $query="INSERT INTO ptb_registrations (ID,
    first_name,
    last_name,
    email,
    display_name,
    date_of_birth,
    contact_number,
    password

     )
    VALUES('NULL',
    '".$first_name."',
    '".$last_name."',
    '".$email."',
    '".$display_name."',
    '".$date_of_birth."',
    '".$contact_number."',
    '".$password."'
    )";
    mysql_query($query) or die ('Error updating database');
    ?>
    <?
    $result = mysql_query("UPDATE ptb_registrations SET account_type=Member");
    ?>
    <?php
    function confirm_query($result_set) {
                    if (!$result_set) {
                        die("Database query failed: " . mysql_error());
                    }
            }
    function get_user_id() {
        global $connection;
        global $email;
        $query = "SELECT *
                    FROM ptb_registrations
                    WHERE email = \"$email\"
                    ";
            $user_id_set = mysql_query($query, $connection);
            confirm_query($user_id_set);
            return $user_id_set;
            }
    ?>
    <?php
    $user_id_set = get_user_id();
    while ($user_id = mysql_fetch_array($user_id_set)) {
        $cookie1 = "{$user_id["id"]}";
        setcookie("ptb_registrations", $cookie1, time()+3600);  /* expire in 1 hour */

    }
    ?>

    <?php include ('includes/send_email/reg_email.php'); ?>

    <? ob_flush(); ?>
share|improve this question
1  
Member must be single-quoted as a string in the UPDATE statment SET account_type = 'Member' –  Michael Berkowski Jan 28 '13 at 17:56
    
Beyond this, your script is vulnerable to SQL injection. At a minimum you must call mhysql_real_escape_string() on each of those $_POST query inputs, and the $_SESSION inputs to protect against second order SQL. injection –  Michael Berkowski Jan 28 '13 at 17:56
    
Note also, that without a WHERE clause on the UPDATE statement, it will modify all rows. –  Michael Berkowski Jan 28 '13 at 17:58

1 Answer 1

Why not insert it at the same time as the registration?

$query="INSERT INTO ptb_registrations (ID,
    first_name,
    last_name,
    email,
    display_name,
    date_of_birth,
    contact_number,
    password,
    account_type
     )
    VALUES('NULL',
    '{$first_name}',
    '{$last_name}',
    '{$email}',
    '{$display_name}',
    '{$date_of_birth}',
    '{$contact_number}',
    '{$password}',
    'Member'
    )";

The following

<? $result = mysql_query("UPDATE ptb_registrations SET account_type='Member'"); ?>

will result in making ALL account_type's equal to 'Member' when you dont have a where clause.

To answer you problem, it is most likely due to the fact you do not have single quotes around member in your update command, see my code.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.