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I need some one to correct me from my mistake here is the error

Notice: Undefined index: login in C:\xampp\htdocs\bank\index.php on line 10
Notice: Undefined index: password in C:\xampp\htdocs\bank\index.php on line 10
Notice: A session had already been started - ignoring session_start() in C:\xampp\htdocs\bank\header.php on line 2

$result = mysql_query("SELECT * FROM customers WHERE loginid='$_POST[login]' AND accpassword='$_POST[password]'"); if(mysql_num_rows($result) == 1)

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This is very prone to SQL injection. Please, use PDO or MySQLi. –  Francisco Presencia Oct 3 '13 at 11:58
    
Proper session check is if(session_status()==PHP_SESSION_NONE) FYI –  SmokeyPHP Oct 3 '13 at 12:00

4 Answers 4

if(isset($_POST['password'],$_POST['login']))
{
    //Your new, safe, PDO/mysqli query
}

As for the session, if you don't have varying includes, just remove the duplicate session_start(), if the file is sometimes standalone, and sometimes part of the whole project, add the following check:

//PHP >= 5.4
if(session_status()==PHP_SESSION_NONE) session_start();

//PHP < 5.4
if(session_id()=='') session_start();

This checks that sessions are enabled, but none have been started.

Information on safer database handling is covered in this answer, be sure to check the links in that answer

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1  
add a ")" at the end of your first line –  Armage Oct 3 '13 at 12:07
    
@Armage Indeed! Fixed, thanks. –  SmokeyPHP Oct 3 '13 at 12:09
    
if(session_id()=='') session_start(); this worked to solve the session problem –  user2830294 Oct 3 '13 at 13:13

Notice: Undefined index: login means that in your array, there's no entry with "login" as index. So in your case, that means that $_POST does not contain "login" key. You have to verify that these indexes exist.

isset($_POST['login']) is a good way to do that.

array_key_exists('login', $_POST) is another way.

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For Undefined you need to check if the variable is set or not like this

if (isset($_POST[login]) && isset($_POST[password])) {
    // your code here

}

For A session had already been started

You have already use session_start() somewhere else other then header.php. so you need to remove it from either of the page

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Never ever do this. It's prone to SQL injection. –  Francisco Presencia Oct 3 '13 at 11:58
    
@FranciscoPresencia with isset –  zzlalani Oct 3 '13 at 11:59
    
@FranciscoPresencia doesn't make any sense.. –  zzlalani Oct 3 '13 at 12:02
    
Your original code ($result = mysql_query("SELECT * FROM customers WHERE loginid='$_POST[login]' AND accpassword='$_POST[password]'");) was prone to mysql injection, and that's why I unvoted it. –  Francisco Presencia Oct 3 '13 at 12:03
    
@FranciscoPresencia actually this was not the requirement of the person ask this the question. First kindly read the question properly, and then Please go and read the Stack overflow manual. –  zzlalani Oct 3 '13 at 12:06

Session notice

You have a session starting somewhere, and then again in C:\xampp\htdocs\bank\header.php's second line. You should do if PHP >= 5.4.0:

if (session_status() == PHP_SESSION_NONE) {
  session_start();
  }

If PHP < 5.4.0:

if(session_id() == '') {
  session_start();
  }

This can be seen here: Check if PHP session has already started.

Undefined index and other issues

However, your code has the following issues:

  • It is subject to SQL injection.
  • mysql_* is not secure anymore. You should be using PDO or MySQLi for the database handling.
  • Are you seriously storing passwords in the database as plain text? You need to properly hash them.

Fixing it (PHP >= 5.5):

$DB = new PDO(/* CORRECT PARAMETERS HERE */);
if (isset($_POST['login']) && isset($_POST['password'])) {
  $STH = $DB->prepare("SELECT * FROM customers WHERE loginid = ?");
  $STH->execute(array($_POST['login']));
  $Result = $STH->fetch();
  if(password_verify($_POST['password'], $Result['password'])) {
    /* Do what you need to do */
    }
  }

For PHP <= 5.5, you need to add a library for using if(password_verify(...)). Check password_compat library for more info, but it's basically this:

include "password_compat.php";

$DB = new PDO(/* CORRECT PARAMETERS HERE */);
if (isset($_POST['login']) && isset($_POST['password'])) {
  $STH = $DB->prepare("SELECT * FROM customers WHERE loginid = ?");
  $STH->execute(array($_POST['login']));
  $Result = $STH->fetch();
  if(password_verify($_POST['password'], $Result['password'])) {
    /* Do what you need to do */
    }
  }
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