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19 changed files with 915 additions and 67 deletions

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'''
Solution for https://cryptohack.org/courses/symmetric/bean_counter/
'''
import os
import requests
from math import ceil
from Crypto.Cipher import AES
from imp.math.util import xor_bytes
class StepUpCounter(object):
def __init__(self, step_up=False):
self.value = os.urandom(16).hex()
self.step = 1
self.stup = step_up
def increment(self):
if self.stup:
self.newIV = hex(int(self.value, 16) + self.step)
else:
self.newIV = hex(int(self.value, 16) - self.stup)
self.value = self.newIV[2:len(self.newIV)]
return bytes.fromhex(self.value.zfill(32))
def __repr__(self):
self.increment()
return self.value
'''
NOTE: Since step_up is used ONLY as false, we can simplify:
class StepUpCounter(object):
def __init__(self):
self.value = os.urandom(16).hex()
# SAME AS DOING NOTHING
def increment(self):
return self.value()
def __repr__(self):
return self.value
'''
URL = 'https://aes.cryptohack.org/bean_counter'
def get_encrypted() -> bytes:
resp = requests.get(f'{URL}/encrypt/')
encrypted = bytes.fromhex(resp.json()['encrypted'])
return encrypted
PNG_HEADER = [
'89', '50', '4e', '47',
'0d', '0a', '1a', '0a',
'00', '00', '00', '0d',
'49', '48', '44', '52'
]
def main() -> None:
# NOTE: the counter is constant!
ctr = StepUpCounter()
# init = ctr.increment()
# init_val = ctr.value
# for i in range(2560000):
# if ctr.increment() != init:
# print('Counter Changed')
# print(i)
# break
# elif ctr.value != init_val:
# print('valued changed')
# print(i)
# break
# PNGs *should* have a constant header, we will use the first 16 bytes
# to determine what the counter value must be set to
encrypted = get_encrypted()
png_header = bytes.fromhex(''.join(PNG_HEADER))
ctr_value = xor_bytes(encrypted[:16], png_header)
# apply the counter value to the entire encrypted image (in blocks of 16 bytes)
BLOCK_SIZE = 16
with open('bean_flag.png', 'wb') as f:
for i in range(ceil(len(encrypted) / BLOCK_SIZE)):
block = encrypted[i*BLOCK_SIZE : (i+1)*BLOCK_SIZE]
# NOTE: the block we get is not guaranteed to be block size (ie if at end)
plaintext_block = xor_bytes(block, ctr_value[:len(block)])
f.write(plaintext_block)
if __name__ == '__main__':
try:
main()
except (KeyboardInterrupt, EOFError):
print('\n[!] Interrupt')

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'''
Solution to https://cryptohack.org/courses/symmetric/flipping_cookie/
'''
import requests
from datetime import datetime, timedelta
URL = 'https://aes.cryptohack.org/flipping_cookie'
# NOTE: assumes A and B are equal length
def xor_bytes(A: bytes, B: bytes) -> bytes:
return b''.join([(a ^ b).to_bytes() for (a, b) in zip(A, B)])
def xor_str(A: str, B: str) -> str:
return ''.join([chr(ord(a) ^ ord(b)) for (a, b) in zip(A, B)])
def gen_expiry() -> str:
return (datetime.today() + timedelta(days=1)).strftime("%s")
def get_cookie() -> tuple[bytes, bytes]:
resp = requests.get(f'{URL}/get_cookie/')
cookie = resp.json()['cookie']
iv = bytes.fromhex(cookie[:32])
ciphertext = bytes.fromhex(cookie[32:])
return iv, ciphertext
def main() -> None:
# cookie flipping preprocessing step
admin_len = len('admin=')
expiry_len = len(';expiry=') + len(gen_expiry())
admin_mask = '\x00' * admin_len
expiry_mask = '\x00' * expiry_len
# we aim to replace "admin=False;" with "admin=True;;"
# NOTE: double semicolon ("True;;") is intentional
# NOTE: and the server won't ever realise it happened!
deletion = admin_mask + 'False' + expiry_mask
insertion = admin_mask + 'True;' + expiry_mask
# determine the value that replaces deletion with insertion
cookie_flip = xor_str(deletion, insertion)
# get our new cookie and apply the cookie flip!
iv, ciphertext = get_cookie()
flipped_iv = xor_bytes(cookie_flip.encode(), iv)
print('Flipped Cookie:')
print('IV:', flipped_iv.hex())
print('Body:', ciphertext.hex())
if __name__ == '__main__':
main()

39
ctf-solutions/symmetry.py Normal file
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'''
Solution to https://cryptohack.org/courses/symmetric/symmetry/
'''
import os
import requests
from imp.math.util import xor_bytes, xor_str
URL = 'https://aes.cryptohack.org/symmetry'
def get_encrypted_flag() -> tuple[bytes, bytes]:
resp = requests.get(f'{URL}/encrypt_flag/')
ciphertext = resp.json()['ciphertext']
iv = bytes.fromhex(ciphertext[:32])
flag = bytes.fromhex(ciphertext[32:])
return iv, flag
def encrypt(plaintext: bytes, iv: bytes) -> bytes:
plaintext, iv = plaintext.hex(), iv.hex()
resp = requests.get(f'{URL}/encrypt/{plaintext}/{iv}')
return bytes.fromhex(resp.json()['ciphertext'])
def main() -> None:
iv, flag = get_encrypted_flag()
# generate a random plaintext of equal length to the flag
random_plaintext = os.urandom(len(flag))
random_ciphertext = encrypt(random_plaintext, iv)
# XOR random plaintext with corresponding ciphertext to
# get the set generated by IV under the keyed AES permutation
aes_orbit = xor_bytes(random_plaintext, random_ciphertext)
# XOR this orbit with the flag to get the hexed flag plaintext
flag_plaintext = xor_bytes(flag, aes_orbit)
print('Flag:', flag_plaintext.decode())
print('IV:', iv.hex())
if __name__ == '__main__':
main()

10
default.nix Normal file
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let
sources = import ./nix/sources.nix;
pkgs = import sources.nixpkgs {};
# Let all API attributes like "poetry2nix.mkPoetryApplication"
# use the packages and versions (python3, poetry etc.) from our pinned nixpkgs above
# under the hood:
poetry2nix = import sources.poetry2nix {inherit pkgs;};
myPythonApp = poetry2nix.mkPoetryApplication {projectDir = ./.;};
in
myPythonApp

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import requests
from imp.constants import PRINTABLE
from imp.attacks import paddingoracle
from Crypto.Util.Padding import pad
import string
NIBBLESET = [n.to_bytes() for n in range(256)]
HOST = 'https://aes.cryptohack.org'
ENDPOINT = '/ecb_oracle/encrypt/{0}/'
URI = HOST + ENDPOINT
CHARSET = [c.encode() for c in string.printable]
# CHARSET = NIBBLESET # OVERRIDE
FLAG_LEN = 26 # flag length, calculated by hand
SPACER = b'\x0f' # arbitrary spacing character
BLOCK_BYTES = 16
BLOCK_NIBBLES = 32 # measured in nibbles
def mkreq(hextext: str) -> dict[str, str]:
resp = requests.get(URI.format(hextext))
if resp.status_code != 200:
raise Exception(f'[!] resp failed! {resp} : {resp.text}')
return resp.json()
def encrypt(b: bytes) -> bytes:
resp = mkreq(b.hex())
return bytes.fromhex(resp['ciphertext'])
def main() -> None:
paddingoracle.crack(encrypt, pad, CHARSET, 16, batch_size=20, debug=True)
if __name__ == '__main__':
try:
main()
except (KeyboardInterrupt, EOFError):
print('\n[!] Interrupt')

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import string
from imp.attacks import paddingoracle
from Crypto.Cipher import AES
from Crypto.Util.Padding import pad
CHARSET = [c.encode() for c in string.printable]
KEY = b'you wont get me!'
FLAG = b'imbaud{omg_you_catched_me}'
CIPHER = AES.new(KEY, AES.MODE_ECB)
def encrypt(b: bytes, debug=False) -> bytes:
padded = pad(b + FLAG, 16)
if debug:
print(padded)
# print(padded)
return CIPHER.encrypt(padded)
def main() -> None:
paddingoracle.crack(encrypt, pad, CHARSET, 16, batch_size=50, debug=True)
if __name__ == '__main__':
try:
main()
except (KeyboardInterrupt, EOFError):
print('\n[!] Interrupt')

0
imp/attacks/__init__.py Normal file
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from math import inf, ceil
from typing import Callable
from imp.math.util import clamp_max
SPACER = b'\xff' # arbitrary spacing character
class DecryptFailed(Exception):
pass
def round_to_blocks(n: int, block_size: int) -> int:
return ceil(n / block_size)
def crack_secret_len(cipher: Callable[[str], str],
max_iters: int = inf) -> int | None:
# calculate length for i = 1
init_len = len(cipher(SPACER))
secret_len = None
i = 2
while True:
if i - 2 > max_iters:
break
elif len(cipher(SPACER*i)) != init_len:
secret_len = init_len - i
break
i += 1
return secret_len
'''
NOTE: pad_if_perfect exists for PKCS#7 which will add a full block
NOTE: of padding if the input is perfectly alligned to the blocks already.
'''
def crack(cipher: Callable[[str], str],
padfn: Callable[[bytes, int], bytes],
charset: list,
block_size: int,
max_secret_iters: int = inf,
batch_size: int = 1,
pad_if_perfect: bool = True,
debug: bool = False) -> str | None:
if len(charset) % batch_size:
raise ValueError(f'batch_size={batch_size} does not divide len(charset)={len(charset)}')
# calculate the secret length
secret_len = crack_secret_len(cipher, max_iters=max_secret_iters)
if debug:
print(f'[+] Found secret length: {secret_len}')
# calculate how many blocks the secret stretches over
# NOTE: secret_block_len - secret_len represents the number of
# NOTE: bytes required to make the secret fill the blocks with no padding
secret_block_len = round_to_blocks(secret_len, block_size) * block_size
default_push = (secret_block_len - secret_len)
known = b''
while True:
# the "full tail" is all characters we know + the 1 we're cracking (target)
# the "current tail" is the characters in the same block as the target
full_tail_bytes = len(known) + 1
tail_bytes = clamp_max(full_tail_bytes, block_size - 1)
# generate ALL possible tails (avoid padding if no padding required)
tails = [c + known[:tail_bytes] for c in charset]
if len(tails[0]) != block_size:
tails = [padfn(tail, 16) for tail in tails]
# calculate the "push" applied to the secret
push_size = (default_push + full_tail_bytes) % block_size
matched = False
NUM_BATCHES = len(tails) // batch_size
for i in range(NUM_BATCHES):
if debug:
print(f'{int(i/NUM_BATCHES*100)}%', end='\r')
batch = tails[i*batch_size : (i+1)*batch_size]
batch = b''.join(batch) + (SPACER * push_size) # apply spacing
# encrypt batch and split the ciphertext into blocks
ciphertext = cipher(batch)
num_blocks = len(ciphertext)//block_size
blocks = [ciphertext[i*block_size : (i+1)*block_size] for i in range(num_blocks)]
oracle_pos = round_to_blocks(full_tail_bytes, block_size)
if pad_if_perfect and (push_size + secret_len) % block_size == 0:
oracle_pos += 1
for j, cipher_block in enumerate(blocks[:batch_size]):
if cipher_block == blocks[-oracle_pos]:
char = charset[i*batch_size + j]
known = char + known
if debug:
print(f'[*] Found Tail: {known}')
matched = True
break
if matched:
break
if not matched:
break
elif len(known) == secret_len:
if debug:
print('[+] SUCCESS')
return known
# if we reached the end (no return)
# then the attack failed
err_msg = 'Padding oracle attack failed'
if not debug:
raise DecryptFailed(err_msg)
print(f'\n[!] {err_msg}')

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@ -9,6 +9,7 @@ ALPHA_UPPER = 'ABCDEFGHIJKLMNOPQRSTUVWXYZ'
ALPHA = ALPHA_LOWER + ALPHA_UPPER
ALPHANUM = ALPHA + DIGITS
SYMBOLS = '!\"#$%&\'()*+,-./:;<=>?@[\\]^_`{|}~'
PRINTABLE = ALPHANUM + SYMBOLS
# Other
DIGITS_BIN = '01'
DIGITS_OCT = '01234567'

7
imp/crypto/hash.py Normal file
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import hashlib
def sha256(data: bytes, as_bytes: bool = False) -> bytes:
hasher = hashlib.sha256()
hasher.update(data)
hash = hasher.digest()
return hash if as_bytes else int.from_bytes(hash)

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imp/crypto/rsa.py Normal file
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'''
Simplification of Euler's Totient function knowing
the prime factorisation for the public key N value.
'''
def _totient(p: int, q: int) -> int:
return (p - 1) * (q - 1)
'''
Implements RSA encryption as modular exponentiation.
'''
def encrypt(plaintext: int, e: int, N: int) -> int:
return pow(plaintext, e, N)
def decrypt(ciphertext: int, d: int, N: int) -> int:
return pow(ciphertext, d, N)
def gen_private_key(e: int, p: int, q: int) -> int:
return pow(e, -1, _totient(p, q))

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from .pftrialdivision import trial_division
from .factordb import DBResult, FType, FCertainty

161
imp/math/factor/factordb.py Normal file
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'''
Simple interface for https://factordb.com inspired by
https://github.com/ihebski/factordb
TODO:
1. Implement primality certificate generation, read this:
https://reference.wolfram.com/language/PrimalityProving/ref/ProvablePrimeQ.html
'''
import requests
from enum import Enum, StrEnum
_FDB_URI = 'https://factordb.com'
# Generated by https://www.asciiart.eu/text-to-ascii-art
# using "ANSI Shadow" font and "Box drawings double" border with 1 H. Padding
_BANNER = '''
cli by imbored
'''.strip()
# Enumeration of number types based on their factorisation
class FType(Enum):
Unit = 1
Composite = 2
Prime = 3
Unknown = 4
class FCertainty(Enum):
Certain = 1
Partial = 2
Unknown = 3
# FactorDB result status codes
class DBStatus(StrEnum):
C = 'C'
CF = 'CF'
FF = 'FF'
P = 'P'
PRP = 'PRP'
U = 'U'
Unit = 'Unit' # just for 1
N = 'N'
Add = '*'
def is_unknown(self) -> bool:
return (self in [DBStatus.U, DBStatus.N, DBStatus.Add])
def classify(self) -> tuple[FType, FCertainty]:
return _STATUS_MAP[self]
def msg_verbose(self) -> str:
return _STATUS_MSG_VERBOSE[self]
# Map of DB Status codes to their factorisation type and certainty
_STATUS_MAP = {
DBStatus.Unit: (FType.Unit, FCertainty.Certain),
DBStatus.C: (FType.Composite, FCertainty.Unknown),
DBStatus.CF: (FType.Composite, FCertainty.Partial),
DBStatus.FF: (FType.Composite, FCertainty.Certain),
DBStatus.P: (FType.Prime, FCertainty.Certain),
DBStatus.PRP: (FType.Prime, FCertainty.Partial),
DBStatus.U: (FType.Unknown, FCertainty.Unknown),
DBStatus.N: (FType.Unknown, FCertainty.Unknown),
DBStatus.Add: (FType.Unknown, FCertainty.Unknown),
}
# Reference: https://factordb.com/status.html
# NOTE: my factor messages differ slightly from the reference
_STATUS_MSG_VERBOSE = {
DBStatus.Unit: 'Unit, trivial factorisation',
DBStatus.C: 'Composite, no factors known',
DBStatus.CF: 'Composite, *partially* factors',
DBStatus.FF: 'Composite, fully factored',
DBStatus.P: 'Prime',
DBStatus.PRP: 'Probable prime',
DBStatus.U: 'Unknown (*but in database)',
DBStatus.N: 'Not in database (-not added due to your settings)',
DBStatus.Add: 'Not in database (+added during request)',
}
# Struct for storing database results with named properties
class DBResult:
def __init__(self,
status: DBStatus,
factors: tuple[tuple[int, int]]) -> None:
self.status = status
self.factors = factors
self.ftype, self.certainty = self.status.classify()
def _make_cookie(fdbuser: str | None) -> dict[str, str]:
return {} if fdbuser is None else {'fdbuser': fdbuser}
def _get_key(by_id: bool):
return 'id' if by_id else 'query'
def _api_query(n: int,
fdbuser: str | None,
by_id: bool = False) -> requests.models.Response:
key = _get_key(by_id)
uri = f'{_FDB_URI}/api?{key}={n}'
return requests.get(uri, cookies=_make_cookie(fdbuser))
def _report_factor(n: int,
factor: int,
fdbuser: str | None,
by_id: bool = False) -> requests.models.Response:
key = _get_key(by_id)
uri = f'{_FDB_URI}/reportfactor.php?{key}={n}&factor={factor}'
return requests.get(uri, cookies=_make_cookie(fdbuser))
'''
Attempts a query to FactorDB, returns a DBResult object
on success, or None if the request failed due to the
get request raising a RequestException.
'''
def query(n: int,
token: str | None = None,
by_id: bool = False,
cli: bool = False) -> DBResult | None:
if cli:
print(_BANNER)
try:
resp = _api_query(n, token, by_id=by_id)
except requests.exceptions.RequestException:
return None
content = resp.json()
result = DBResult(
DBStatus(content['status']),
tuple((int(F[0]), F[1]) for F in content['factors'])
)
if cli:
print(f'Status: {result.status.msg_verbose()}')
print(result.factors)
# ensure the unit has the trivial factorisation (for consistency)
if result.status == DBStatus.Unit:
result.factors = ((1, 1),)
return result
'''
Reports a known factor to FactorDB, also tests it is
actually a factor to avoid wasting FactorDBs resources.
'''
def report(n: int,
factor: int,
by_id: int,
token: str | None = None) -> None:
try:
resp = _report_factor(n, factor, token)
except requests.exceptions.RequestException:
return None
content = resp.json()
print(content)

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'''
The trial division algorithm is essentially the idea that
all factors of an integer n are less than or equal to isqrt(n),
where isqrt is floor(sqrt(n)).
Moreover, if p divides n, then all other factors of n must
be factors of n//p. Hence they must be <= isqrt(n//p).
'''
from math import isqrt # integer square root
# Returns the "multiplicity" of a prime factor
def pf_multiplicity(n: int, p: int) -> int:
mult = 0
while n % p == 0:
n //= p
mult += 1
return n, mult
'''
Trial division prime factorisation algorithm.
Returns a list of tuples (p, m) where p is
a prime factor and m is its multiplicity.
'''
def trial_division(n: int) -> list[tuple[int, int]]:
factors = []
# determine multiplicity of the only even prime (2)
n, mult_2 = pf_multiplicity(n, 2)
if mult_2: factors.append((2, mult_2))
# determine odd factors and their multiplicities
p = 3
mult = 0
limit = isqrt(n)
while p <= limit:
n, mult = pf_multiplicity(n, p)
if mult:
factors.append((p, mult))
limit = isqrt(n) # recalculate limit
mult = 0 # reset
else:
p += 2
# if n is still greater than 1, then n is a prime factor
if n > 1:
factors.append((n, 1))
return factors

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@ -1,67 +0,0 @@
from math import gcd
'''
Euler's Totient (Phi) Function
'''
def totient(n: int) -> int:
phi = int(n > 1 and n)
for p in range(2, int(n ** .5) + 1):
if not n % p:
phi -= phi // p
while not n % p:
n //= p
#if n is > 1 it means it is prime
if n > 1: phi -= phi // n
return phi
'''
Tests the primality of an integer using its totient.
NOTE: If totient(n) has already been calculated
then pass it as the optional phi parameter.
'''
def is_prime(n: int, phi: int = None) -> bool:
return n - 1 == (phi if phi is not None else totient(n))
'''
Prime number generator function.
Returns the tuple (p, phi(p)) where p is prime
and phi is Euler's totient function.
'''
def prime_gen(yield_phi: bool = False) -> int | tuple[int, int]:
n = 1
while True:
n += 1
phi = totient(n)
if is_prime(n, phi=phi):
if yield_phi:
yield (n, phi)
else:
yield n
'''
Returns the prime factorisation of a number.
Returns a list of tuples (p, m) where p is
a prime factor and m is its multiplicity.
NOTE: uses a trial division algorithm
'''
def prime_factors(n: int) -> list[tuple[int, int]]:
phi = totient(n)
if is_prime(n, phi=phi):
return [(n, 1)]
factors = []
for p in prime_gen(yield_phi=False):
if p >= n:
break
# check if divisor
multiplicity = 0
while n % p == 0:
n //= p
multiplicity += 1
if multiplicity:
factors.append((p, multiplicity))
if is_prime(n):
break
if n != 1:
factors.append((n, 1))
return factors

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@ -0,0 +1,48 @@
from math import inf, isqrt # integer square root
from itertools import takewhile, compress
SMALL_PRIMES = (2,3,5,7,11,13,17,19,23,29,31,37,41,43,47,53,59)
'''
Euler's Totient (Phi) Function
Implemented in O(nloglog(n)) using the Sieve of Eratosthenes.
'''
def eulertotient(n: int) -> int:
phi = int(n > 1 and n)
for p in range(2, isqrt(n) + 1):
if not n % p:
phi -= phi // p
while not n % p:
n //= p
#if n is > 1 it means it is prime
if n > 1: phi -= phi // n
return phi
'''
Tests the primality of an integer using its totient.
NOTE: If totient(n) has already been calculated
then pass it as the optional phi parameter.
'''
def is_prime(n: int, phi: int = None) -> bool:
return n - 1 == (phi if phi is not None else eulertotient(n))
# Taken from Lucas A. Brown's primefac.py (some variables renamed)
def primegen(limit=inf) -> int:
ltlim = lambda x: x < limit
yield from takewhile(ltlim, SMALL_PRIMES)
pl, prime = [3,5,7], primegen()
for p in pl: next(prime)
n = next(prime); nn = n*n
while True:
n = next(prime); ll, nn = nn, n*n
delta = nn - ll
sieve = bytearray([True]) * delta
for p in pl:
k = (-ll) % p
sieve[k::p] = bytearray([False]) * ((delta-k)//p + 1)
if nn > limit: break
yield from compress(range(ll,ll+delta,2), sieve[::2])
pl.append(n)
yield from takewhile(ltlim, compress(range(ll,ll+delta,2), sieve[::2]))

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@ -1,2 +1,22 @@
def clamp(n: int, min: int, max: int) -> int:
if n < min:
return min
elif n > max:
return max
return n
def clamp_max(n: int, max: int) -> int:
return max if n > max else n
def clamp_min(n: int, max: int) -> int:
return min if n < min else n
def digits(n: int) -> int:
return len(str(n))
# NOTE: assumes A and B are equal length
def xor_bytes(A: bytes, B: bytes) -> bytes:
return b''.join([(a ^ b).to_bytes() for (a, b) in zip(A, B)])
def xor_str(A: str, B: str) -> str:
return ''.join([chr(ord(a) ^ ord(b)) for (a, b) in zip(A, B)])

220
poetry.lock generated Normal file
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# This file is automatically @generated by Poetry 1.8.4 and should not be changed by hand.
[[package]]
name = "certifi"
version = "2025.6.15"
description = "Python package for providing Mozilla's CA Bundle."
optional = false
python-versions = ">=3.7"
files = [
{file = "certifi-2025.6.15-py3-none-any.whl", hash = "sha256:2e0c7ce7cb5d8f8634ca55d2ba7e6ec2689a2fd6537d8dec1296a477a4910057"},
{file = "certifi-2025.6.15.tar.gz", hash = "sha256:d747aa5a8b9bbbb1bb8c22bb13e22bd1f18e9796defa16bab421f7f7a317323b"},
]
[[package]]
name = "charset-normalizer"
version = "3.4.2"
description = "The Real First Universal Charset Detector. Open, modern and actively maintained alternative to Chardet."
optional = false
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16
pyproject.toml Normal file
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@ -0,0 +1,16 @@
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readme = "README.md"
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pycryptodome = "^3.23.0"
requests = "^2.32.4"
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build-backend = "poetry.core.masonry.api"