From c4f6f98836f9f424b0004619fd1084fc304d3652 Mon Sep 17 00:00:00 2001 From: Omar Santos Date: Mon, 11 May 2020 01:59:25 -0400 Subject: [PATCH] Update encrypt.py --- .../challenges/heavy_computation/encrypt.py | 79 ------------------- 1 file changed, 79 deletions(-) diff --git a/capture_the_flag/challenges/heavy_computation/encrypt.py b/capture_the_flag/challenges/heavy_computation/encrypt.py index e78d6a6..640f50b 100644 --- a/capture_the_flag/challenges/heavy_computation/encrypt.py +++ b/capture_the_flag/challenges/heavy_computation/encrypt.py @@ -1,9 +1,3 @@ -Heavy computation(400) -Question: -A friend of mine handed me this script and challenged me to recover the flag. However, I started running it on my school cluster and everything is burning now... Help me please! - -Given files: -encrypt.py from Crypto.Util.number import bytes_to_long, long_to_bytes from Crypto.Cipher import AES from Crypto.Util.Padding import pad @@ -49,76 +43,3 @@ enc = cipher.encrypt(pad(flag,16)) with open("flag.enc","wb") as output_file: output_file.write(enc) -flag.enc(dump) - 0000 f4 d8 e5 a2 ac 80 6c e9 dc c1 ef 1e d5 c4 51 7c ......l.......Q| - 0010 e3 d8 84 1a d7 c0 77 c9 9c b0 f6 f0 ab 13 63 b0 ......w.......c. - 0020 f9 5e 8d cd 87 ce c7 d3 88 7a 4a 68 de a9 6f 96 .^.......zJh..o. - 0030 77 cf 1e a7 95 a0 f8 1c be 3a 66 f0 aa 73 2c 3e w........:f..s,> -Solution: -Outline: -(1) For preparartion, we calcurate Euler's totient of N by FactorDb( http://www.factordb.com/ ): - -N=5*23*61*701*3043975283150884175290138965903193067634156680289693153778518185326633105971710936004483047892546798724665417739250476586249010832824560305913279982496088828053414799963361876618585076997170323631281630177651847 - -(2) First part of the functuon "derive_key": - -for i in range(NB_ITERATIONS): - start = start ** e - start %= N -It is easily simplificated by Euler's theorem. - -start = pow(bytes_to_long(password),pow(e,NB_ITERATIONS,phi_N), N) -where phi_N is the totient of N, - -phi_N=(5-1)* (23-1)* (61-1)* (701-1)* (3043975283150884175290138965903193067634156680289693153778518185326633105971710936004483047892546798724665417739250476586249010832824560305913279982496088828053414799963361876618585076997170323631281630177651847-1) - -(3) Second Part of the functuon "derive_key": - - key = 1 - for i in range(NB_ITERATIONS): - key = key ** e - key %= N - key *= start - key %= N -We can replace it with the following (using "invert" function of gmpy2). - - inv_e = gmpy2.invert(e-1,phi_N) - key = pow(start, (pow(e,NB_ITERATIONS,phi_N)-1) * inv_e, N) -(4) Finally, We brute force the password and get the flag! - -Solver: -solve.py -from Crypto.Util.number import bytes_to_long, long_to_bytes -from Crypto.Cipher import AES -from Crypto.Util.Padding import pad -from hashlib import sha256 -import gmpy2 - -NB_ITERATIONS = 10871177237854734092489348927 -e = 65538 -N = 14968794114523720195251887716913440457986979987674770429103169854116498198112478103466085455257317270930523061714030307370028304505577267672733143013124254253285088080041831478700041394909740024011681885623055622400205 - -#Using FactorDB, we have N=5*23*61*701*3043975283150884175290138965903193067634156680289693153778518185326633105971710936004483047892546798724665417739250476586249010832824560305913279982496088828053414799963361876618585076997170323631281630177651847 -phi_N = (5-1)*(23-1)*(61-1)*(701-1)*(3043975283150884175290138965903193067634156680289693153778518185326633105971710936004483047892546798724665417739250476586249010832824560305913279982496088828053414799963361876618585076997170323631281630177651847-1) - -def derive_key(password): - start = bytes_to_long(password) - start = pow(start,pow(e,NB_ITERATIONS,phi_N), N) - inv_e = gmpy2.invert(e-1,phi_N) - key = pow(start, (pow(e,NB_ITERATIONS,phi_N)-1) * inv_e, N) - return sha256(long_to_bytes(key)).digest() - -with open('flag.enc','rb') as f: - flag_enc = f.read() - for i in range(0x20, 0x100): - for j in range(0x20, 0x100): - password = long_to_bytes(i) + long_to_bytes(j) - key = derive_key(password) - IV = b"random_and_safe!" - cipher = AES.new(key, AES.MODE_CBC,IV) - flag = cipher.decrypt(flag_enc) - if(flag[0:6] == b'shkCTF'): - print(flag.decode('utf-8')[0:flag.decode('utf-8').find('}')+1]) - break -Flag: -shkCTF{M4ths_0v3r_p4t13Nce_b4453d1f9f5386a1846e57a3ec95678f}