关于请求头中注入问题的演示,这里我写了一些测试案例,用来测试请求头中存在的问题。我们常见的会发生注入的点有 Referer、X-Forwarded-For、Cookie、X-Real-IP、Accept-Language、Authorization,User-Agent
HTTP Referer:是header的一部分,当浏览器请求网页时,会自动携带一个请求来源,如果后端存在交互,则会引发注入问题的产生。
User-Agent 请求头,该请求头携带的是用户浏览器的标识信息,如果此时带入数据库查询,则同样会触发注入问题的产生。
X-Forwarded-For:简称XFF头,它代表客户端,用于记录代理信息的,每经过一级代理(匿名代理除外),代理服务器都会把这次请求的来源IP追加在X-Forwarded-For中
Cookie:指某些网站为了辨别用户身份、进行 session 跟踪而储存在用户本地终端上的数据(通常经过加密)
X-Real-IP:只记录真实发出请求的客户端IP。
Accept-Language:请求头允许客户端声明它可以理解的自然语言,以及优先选择的区域方言
HTTP_CLIENT_IP:该属性是PHP内置属性,同样取得的是客户端的IP,同样可控,如果带入数据库,则会产生注入问题。
Cookie 注入: 该注入的产生原因是因为程序员没有将COOKIE进行合法化检测,并将其代入到了数据库中查询了且查询变量是可控的,当用户登录成功后会产生COOKIE,每次页面刷新后端都会拿着这个COOKIE带入数据库查找,这是非常危险的.
<!DOCTYPE html>
<html lang="en">
<head>
<meta charset="utf8">
</head>
<body>
<form action="" method="post">
账号: <input type="text" name="uname" value=""/><br>
密码: <input type="password" name="passwd" value=""/>
<input type="submit" name="submit" value="Submit" />
</form>
<?php
header("Content-type: text/html;charset=utf8");
error_reporting(0);
$connect = mysqli_connect("localhost","root","12345678","lyshark");
if($connect)
{
$cookee = $_COOKIE['uname'];
if($cookee)
{
$sql="SELECT username,password FROM local_user WHERE username='$cookee' LIMIT 0,1";
$query = mysqli_query($connect,$sql);
echo "执行SQL: " . $sql . "<br>";
if($query)
{
$row = mysqli_fetch_array($query);
if($row)
{
echo "<br> COOKIE 已登录 <br>";
echo "您的账号: " . $row['username'] . "<br>";
echo "您的密码: " . $row['password'] . "<br>";
}
}
}
if(isset($_POST['uname']) && isset($_POST['passwd']))
{
$uname=$_POST['uname'];
$passwd=$_POST['passwd'];
$passwd = md5($passwd);
$sql="select username,password FROM local_user WHERE username='$uname' and password='$passwd' LIMIT 0,1";
$query = mysqli_query($connect,$sql);
if($query)
{
$row = mysqli_fetch_array($query);
$cookee = $row['username'];
if($row)
{
setcookie('uname', $cookee, time() + 3600);
$format = 'D d M Y - H:i:s';
$timestamp = time() + 3600;
echo "COOKIE已设置: " . date($format, $timestamp);
}
}
}
}
?>
</body>
</html>
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当登录成功后,再次刷新页面,就会将cookie带入数据中查询,此时观察cookie,可以闭合,则就会产生注入问题。
执行payload Cookie: uname=admin' and 0 union select database(),2--+ 可爆出数据库名称。
查询数据库同样可以爆出,数据库的版本号。
稍微修改一下代码,当代码中设置COOKIE的位置上增加了Base64编码后,该如何注入呢?
<!DOCTYPE html>
<html lang="en">
<head>
<meta charset="utf8">
</head>
<body>
<form action="" method="post">
账号: <input type="text" name="uname" value=""/><br>
密码: <input type="password" name="passwd" value=""/>
<input type="submit" name="submit" value="Submit" />
</form>
<?php
header("Content-type: text/html;charset=utf8");
error_reporting(0);
$connect = mysqli_connect("localhost","root","12345678","lyshark");
if($connect)
{
$cookee = base64_decode($_COOKIE['uname']);
if($cookee)
{
$sql="SELECT username,password FROM local_user WHERE username='$cookee' LIMIT 0,1";
$query = mysqli_query($connect,$sql);
echo "执行SQL: " . $sql . "<br>";
if($query)
{
$row = mysqli_fetch_array($query);
if($row)
{
echo "<br> COOKIE 已登录 <br>";
echo "您的账号: " . $row['username'] . "<br>";
echo "您的密码: " . $row['password'] . "<br>";
}
}
}
if(isset($_POST['uname']) && isset($_POST['passwd']))
{
$uname=$_POST['uname'];
$passwd=$_POST['passwd'];
$passwd = md5($passwd);
$sql="select username,password FROM local_user WHERE username='$uname' and password='$passwd' LIMIT 0,1";
$query = mysqli_query($connect,$sql);
if($query)
{
$row = mysqli_fetch_array($query);
$cookee = $row['username'];
if($row)
{
setcookie('uname', base64_encode($cookee), time() + 3600);
$format = 'D d M Y - H:i:s';
$timestamp = time() + 3600;
echo "COOKIE已设置: " . date($format, $timestamp);
}
}
}
}
?>
</body>
</html>
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直接将Payload加密在线https://base64.us/加密后,放入COOKIE中
Cookie: uname=admin' and 0 union select database(),2--+
Cookie: uname=YWRtaW4nIGFuZCAwIHVuaW9uIHNlbGVjdCBkYXRhYmFzZSgpLDItLSs=
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Usage-Agent 注入问题: Usagen-Agent是客户请求时携带的请求头,该头部是客户端可控,如果有带入数据库的相关操作,则可能会产生SQL注入问题.
create table User_Agent(u_name varchar(20),u_addr varchar(20),u_agent varchar(256));
<!DOCTYPE html>
<html lang="en">
<head>
<meta charset="utf8">
<title>SQL 注入测试代码</title>
</head>
<body>
<form action="" method="post">
账号: <input style="width:1000px;height:20px;" type="text" name="uname" value=""/><br>
密码: <input style="width:1000px;height:20px;" type="password" name="passwd" value=""/>
<input type="submit" name="submit" value="Submit" />
</form>
<?php
header("Content-type: text/html;charset=utf8");
error_reporting(0);
$connect = mysqli_connect("localhost","root","12345678","lyshark");
if($connect)
{
if(isset($_POST['uname']) && isset($_POST['passwd']))
{
$uname=$_POST['uname'];
$passwd=$_POST['passwd'];
$passwd = md5($passwd);
$sql="select username,password FROM local_user WHERE username='$uname' and password='$passwd' LIMIT 0,1";
$query = mysqli_query($connect,$sql);
if($query)
{
$row = mysqli_fetch_array($query);
if($row)
{
$Uagent = $_SERVER['HTTP_USER_AGENT'];
$IP = $_SERVER['REMOTE_ADDR'];
echo "<br>欢迎用户: {$row['username']} 密码: {$row['password']} <br><br>";
echo "您的IP地址是: {$IP} <br>";
$insert_sql = "insert into User_Agent(u_name,u_addr,u_agent) values('$uname','$IP','$Uagent')";
mysqli_query($connect,$insert_sql);
echo "User_Agent请求头: {$Uagent} <br>";
}
}
}
}
?>
</body>
</html>
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登录成功后,才可以显示你的客户端数据,也就是先要完成登录。
登录成功后,会自动获取客户端的user_agent信息,HTTP_USER_AGENT 属性对我们来说可控,且通过insert语句带入到了数据库,此时我们可以构建注入语句。首先我们通过burp提交登录请求。
然后再登陆成功后,我们继续增加注入语句,将其写道user-agent上完成报错注入。
修改agent验证,可被绕过,此处的语句带入数据库变为了insert into User_Agent values('1)','u_addr','u_agent')有时,不存在回显的地方即使存在注入也无法得到结果.,但却是一个安全隐患,需要引起重视.
IP来路引发的注入问题: 这里我又写了一段代码,看似没有任何注入问题,原因是目标主机IP地址是可控的。
<?php
function GetIP(){
static $retIP;
if(isset($_SERVER)){
if(isset($_SERVER['HTTP_X_FORWARDED_FOR'])){
$retIP = $_SERVER['HTTP_X_FORWARDED_FOR'];
}else if(isset($_SERVER['HTTP_CLIENT_IP'])){
$retIP = $_SERVER['HTTP_CLIENT_IP'];
}else{
$retIP = $_SERVER['REMOTE_ADDR'];
}
}
return $retIP;
}
$connect = mysqli_connect("127.0.0.1","root","123","lyshark");
if($connect)
{
$addr = GetIP();
$sql = "select * from ip where address='$addr' limit 0,1";
$query = mysqli_query($connect,$sql);
$row = mysqli_fetch_array($query);
echo '本机IP:' . $row['address'];
if ($row['address'] == $addr)
{
echo "注册过了..";
}
}
?>
<?php echo '<hr><b> 后端执行SQL语句: </b>' . $sql;?>
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