test_pkcs1.py 9.9 KB

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  1. # Copyright 2011 Sybren A. Stüvel <sybren@stuvel.eu>
  2. #
  3. # Licensed under the Apache License, Version 2.0 (the "License");
  4. # you may not use this file except in compliance with the License.
  5. # You may obtain a copy of the License at
  6. #
  7. # https://www.apache.org/licenses/LICENSE-2.0
  8. #
  9. # Unless required by applicable law or agreed to in writing, software
  10. # distributed under the License is distributed on an "AS IS" BASIS,
  11. # WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
  12. # See the License for the specific language governing permissions and
  13. # limitations under the License.
  14. """Tests string operations."""
  15. import struct
  16. import sys
  17. import unittest
  18. import rsa
  19. from rsa import pkcs1
  20. class BinaryTest(unittest.TestCase):
  21. def setUp(self):
  22. (self.pub, self.priv) = rsa.newkeys(256)
  23. def test_enc_dec(self):
  24. message = struct.pack(">IIII", 0, 0, 0, 1)
  25. print("\n\tMessage: %r" % message)
  26. encrypted = pkcs1.encrypt(message, self.pub)
  27. print("\tEncrypted: %r" % encrypted)
  28. decrypted = pkcs1.decrypt(encrypted, self.priv)
  29. print("\tDecrypted: %r" % decrypted)
  30. self.assertEqual(message, decrypted)
  31. def test_decoding_failure(self):
  32. message = struct.pack(">IIII", 0, 0, 0, 1)
  33. encrypted = pkcs1.encrypt(message, self.pub)
  34. # Alter the encrypted stream
  35. a = encrypted[5]
  36. self.assertIsInstance(a, int)
  37. altered_a = (a + 1) % 256
  38. encrypted = encrypted[:5] + bytes([altered_a]) + encrypted[6:]
  39. self.assertRaises(pkcs1.DecryptionError, pkcs1.decrypt, encrypted, self.priv)
  40. def test_randomness(self):
  41. """Encrypting the same message twice should result in different
  42. cryptos.
  43. """
  44. message = struct.pack(">IIII", 0, 0, 0, 1)
  45. encrypted1 = pkcs1.encrypt(message, self.pub)
  46. encrypted2 = pkcs1.encrypt(message, self.pub)
  47. self.assertNotEqual(encrypted1, encrypted2)
  48. class ExtraZeroesTest(unittest.TestCase):
  49. def setUp(self):
  50. # Key, cyphertext, and plaintext taken from https://github.com/sybrenstuvel/python-rsa/issues/146
  51. self.private_key = rsa.PrivateKey.load_pkcs1(
  52. "-----BEGIN RSA PRIVATE KEY-----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\nXVJl32HuKYPJOMIWfc7hIfxLRHnCN+coz2M6tgqMDs0E/OfjuqVZ\n-----END RSA PRIVATE KEY-----",
  53. format="PEM",
  54. )
  55. self.cyphertext = bytes.fromhex(
  56. "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"
  57. )
  58. self.plaintext = bytes.fromhex("54657374")
  59. def test_unmodified(self):
  60. message = rsa.decrypt(self.cyphertext, self.private_key)
  61. self.assertEqual(message, self.plaintext)
  62. def test_prepend_zeroes(self):
  63. cyphertext = bytes.fromhex("0000") + self.cyphertext
  64. with self.assertRaises(rsa.DecryptionError):
  65. rsa.decrypt(cyphertext, self.private_key)
  66. def test_append_zeroes(self):
  67. cyphertext = self.cyphertext + bytes.fromhex("0000")
  68. with self.assertRaises(rsa.DecryptionError):
  69. rsa.decrypt(cyphertext, self.private_key)
  70. class SignatureTest(unittest.TestCase):
  71. def setUp(self):
  72. (self.pub, self.priv) = rsa.newkeys(512)
  73. def test_sign_verify(self):
  74. """Test happy flow of sign and verify"""
  75. message = b"je moeder"
  76. signature = pkcs1.sign(message, self.priv, "SHA-256")
  77. self.assertEqual("SHA-256", pkcs1.verify(message, signature, self.pub))
  78. @unittest.skipIf(sys.version_info < (3, 6), "SHA3 requires Python 3.6+")
  79. def test_sign_verify_sha3(self):
  80. """Test happy flow of sign and verify with SHA3-256"""
  81. message = b"je moeder"
  82. signature = pkcs1.sign(message, self.priv, "SHA3-256")
  83. self.assertEqual("SHA3-256", pkcs1.verify(message, signature, self.pub))
  84. def test_find_signature_hash(self):
  85. """Test happy flow of sign and find_signature_hash"""
  86. message = b"je moeder"
  87. signature = pkcs1.sign(message, self.priv, "SHA-256")
  88. self.assertEqual("SHA-256", pkcs1.find_signature_hash(signature, self.pub))
  89. def test_alter_message(self):
  90. """Altering the message should let the verification fail."""
  91. signature = pkcs1.sign(b"je moeder", self.priv, "SHA-256")
  92. self.assertRaises(
  93. pkcs1.VerificationError, pkcs1.verify, b"mijn moeder", signature, self.pub
  94. )
  95. def test_sign_different_key(self):
  96. """Signing with another key should let the verification fail."""
  97. (otherpub, _) = rsa.newkeys(512)
  98. message = b"je moeder"
  99. signature = pkcs1.sign(message, self.priv, "SHA-256")
  100. self.assertRaises(pkcs1.VerificationError, pkcs1.verify, message, signature, otherpub)
  101. def test_multiple_signings(self):
  102. """Signing the same message twice should return the same signatures."""
  103. message = struct.pack(">IIII", 0, 0, 0, 1)
  104. signature1 = pkcs1.sign(message, self.priv, "SHA-1")
  105. signature2 = pkcs1.sign(message, self.priv, "SHA-1")
  106. self.assertEqual(signature1, signature2)
  107. def test_split_hash_sign(self):
  108. """Hashing and then signing should match with directly signing the message."""
  109. message = b"je moeder"
  110. msg_hash = pkcs1.compute_hash(message, "SHA-256")
  111. signature1 = pkcs1.sign_hash(msg_hash, self.priv, "SHA-256")
  112. # Calculate the signature using the unified method
  113. signature2 = pkcs1.sign(message, self.priv, "SHA-256")
  114. self.assertEqual(signature1, signature2)
  115. def test_hash_sign_verify(self):
  116. """Test happy flow of hash, sign, and verify"""
  117. message = b"je moeder"
  118. msg_hash = pkcs1.compute_hash(message, "SHA-224")
  119. signature = pkcs1.sign_hash(msg_hash, self.priv, "SHA-224")
  120. self.assertTrue(pkcs1.verify(message, signature, self.pub))
  121. def test_prepend_zeroes(self):
  122. """Prepending the signature with zeroes should be detected."""
  123. message = b"je moeder"
  124. signature = pkcs1.sign(message, self.priv, "SHA-256")
  125. signature = bytes.fromhex("0000") + signature
  126. with self.assertRaises(rsa.VerificationError):
  127. pkcs1.verify(message, signature, self.pub)
  128. def test_apppend_zeroes(self):
  129. """Apppending the signature with zeroes should be detected."""
  130. message = b"je moeder"
  131. signature = pkcs1.sign(message, self.priv, "SHA-256")
  132. signature = signature + bytes.fromhex("0000")
  133. with self.assertRaises(rsa.VerificationError):
  134. pkcs1.verify(message, signature, self.pub)
  135. class PaddingSizeTest(unittest.TestCase):
  136. def test_too_little_padding(self):
  137. """Padding less than 8 bytes should be rejected."""
  138. # Construct key that will be small enough to need only 7 bytes of padding.
  139. # This key is 168 bit long, and was generated with rsa.newkeys(nbits=168).
  140. self.private_key = rsa.PrivateKey.load_pkcs1(
  141. b"""
  142. -----BEGIN RSA PRIVATE KEY-----
  143. MHkCAQACFgCIGbbNSkIRLtprxka9NgOf5UxgxCMCAwEAAQIVQqymO0gHubdEVS68
  144. CdCiWmOJxVfRAgwBQM+e1JJwMKmxSF0CCmya6CFxO8Evdn8CDACMM3AlVC4FhlN8
  145. 3QIKC9cjoam/swMirwIMAR7Br9tdouoH7jAE
  146. -----END RSA PRIVATE KEY-----
  147. """
  148. )
  149. self.public_key = rsa.PublicKey(n=self.private_key.n, e=self.private_key.e)
  150. cyphertext = self.encrypt_with_short_padding(b"op je hoofd")
  151. with self.assertRaises(rsa.DecryptionError):
  152. rsa.decrypt(cyphertext, self.private_key)
  153. def encrypt_with_short_padding(self, message: bytes) -> bytes:
  154. # This is a copy of rsa.pkcs1.encrypt() adjusted to use the wrong padding length.
  155. keylength = rsa.common.byte_size(self.public_key.n)
  156. # The word 'padding' has 7 letters, so is one byte short of a valid padding length.
  157. padded = b"\x00\x02padding\x00" + message
  158. payload = rsa.transform.bytes2int(padded)
  159. encrypted_value = rsa.core.encrypt_int(payload, self.public_key.e, self.public_key.n)
  160. cyphertext = rsa.transform.int2bytes(encrypted_value, keylength)
  161. return cyphertext