HandshakeClient.cpp 15 KB

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  1. /*
  2. * Copyright (c) 2020, Ali Mohammad Pur <mpfard@serenityos.org>
  3. * Copyright (c) 2022, Michiel Visser <opensource@webmichiel.nl>
  4. *
  5. * SPDX-License-Identifier: BSD-2-Clause
  6. */
  7. #include <AK/Debug.h>
  8. #include <AK/Hex.h>
  9. #include <AK/Random.h>
  10. #include <LibCrypto/ASN1/DER.h>
  11. #include <LibCrypto/BigInt/UnsignedBigInteger.h>
  12. #include <LibCrypto/NumberTheory/ModularFunctions.h>
  13. #include <LibCrypto/PK/Code/EMSA_PSS.h>
  14. #include <LibTLS/TLSv12.h>
  15. namespace TLS {
  16. bool TLSv12::expand_key()
  17. {
  18. u8 key[192]; // soooooooo many constants
  19. auto key_buffer = Bytes { key, sizeof(key) };
  20. auto is_aead = this->is_aead();
  21. if (m_context.master_key.size() == 0) {
  22. dbgln("expand_key() with empty master key");
  23. return false;
  24. }
  25. auto key_size = key_length();
  26. VERIFY(key_size);
  27. auto mac_size = mac_length();
  28. auto iv_size = iv_length();
  29. pseudorandom_function(
  30. key_buffer,
  31. m_context.master_key,
  32. (u8 const*)"key expansion", 13,
  33. ReadonlyBytes { m_context.remote_random, sizeof(m_context.remote_random) },
  34. ReadonlyBytes { m_context.local_random, sizeof(m_context.local_random) });
  35. size_t offset = 0;
  36. if (is_aead) {
  37. iv_size = 4; // Explicit IV size.
  38. } else {
  39. memcpy(m_context.crypto.local_mac, key + offset, mac_size);
  40. offset += mac_size;
  41. memcpy(m_context.crypto.remote_mac, key + offset, mac_size);
  42. offset += mac_size;
  43. }
  44. auto client_key = key + offset;
  45. offset += key_size;
  46. auto server_key = key + offset;
  47. offset += key_size;
  48. auto client_iv = key + offset;
  49. offset += iv_size;
  50. auto server_iv = key + offset;
  51. offset += iv_size;
  52. if constexpr (TLS_DEBUG) {
  53. dbgln("client key");
  54. print_buffer(client_key, key_size);
  55. dbgln("server key");
  56. print_buffer(server_key, key_size);
  57. dbgln("client iv");
  58. print_buffer(client_iv, iv_size);
  59. dbgln("server iv");
  60. print_buffer(server_iv, iv_size);
  61. if (!is_aead) {
  62. dbgln("client mac key");
  63. print_buffer(m_context.crypto.local_mac, mac_size);
  64. dbgln("server mac key");
  65. print_buffer(m_context.crypto.remote_mac, mac_size);
  66. }
  67. }
  68. switch (get_cipher_algorithm(m_context.cipher)) {
  69. case CipherAlgorithm::AES_128_CBC:
  70. case CipherAlgorithm::AES_256_CBC: {
  71. VERIFY(!is_aead);
  72. memcpy(m_context.crypto.local_iv, client_iv, iv_size);
  73. memcpy(m_context.crypto.remote_iv, server_iv, iv_size);
  74. m_cipher_local = Crypto::Cipher::AESCipher::CBCMode(ReadonlyBytes { client_key, key_size }, key_size * 8, Crypto::Cipher::Intent::Encryption, Crypto::Cipher::PaddingMode::RFC5246);
  75. m_cipher_remote = Crypto::Cipher::AESCipher::CBCMode(ReadonlyBytes { server_key, key_size }, key_size * 8, Crypto::Cipher::Intent::Decryption, Crypto::Cipher::PaddingMode::RFC5246);
  76. break;
  77. }
  78. case CipherAlgorithm::AES_128_GCM:
  79. case CipherAlgorithm::AES_256_GCM: {
  80. VERIFY(is_aead);
  81. memcpy(m_context.crypto.local_aead_iv, client_iv, iv_size);
  82. memcpy(m_context.crypto.remote_aead_iv, server_iv, iv_size);
  83. m_cipher_local = Crypto::Cipher::AESCipher::GCMMode(ReadonlyBytes { client_key, key_size }, key_size * 8, Crypto::Cipher::Intent::Encryption, Crypto::Cipher::PaddingMode::RFC5246);
  84. m_cipher_remote = Crypto::Cipher::AESCipher::GCMMode(ReadonlyBytes { server_key, key_size }, key_size * 8, Crypto::Cipher::Intent::Decryption, Crypto::Cipher::PaddingMode::RFC5246);
  85. break;
  86. }
  87. case CipherAlgorithm::AES_128_CCM:
  88. dbgln("Requested unimplemented AES CCM cipher");
  89. TODO();
  90. case CipherAlgorithm::AES_128_CCM_8:
  91. dbgln("Requested unimplemented AES CCM-8 block cipher");
  92. TODO();
  93. default:
  94. dbgln("Requested unknown block cipher");
  95. VERIFY_NOT_REACHED();
  96. }
  97. m_context.crypto.created = 1;
  98. return true;
  99. }
  100. bool TLSv12::compute_master_secret_from_pre_master_secret(size_t length)
  101. {
  102. if (m_context.premaster_key.size() == 0 || length < 48) {
  103. dbgln("there's no way I can make a master secret like this");
  104. dbgln("I'd like to talk to your manager about this length of {}", length);
  105. return false;
  106. }
  107. if (m_context.master_key.try_resize(length).is_error()) {
  108. dbgln("Couldn't allocate enough space for the master key :(");
  109. return false;
  110. }
  111. pseudorandom_function(
  112. m_context.master_key,
  113. m_context.premaster_key,
  114. (u8 const*)"master secret", 13,
  115. ReadonlyBytes { m_context.local_random, sizeof(m_context.local_random) },
  116. ReadonlyBytes { m_context.remote_random, sizeof(m_context.remote_random) });
  117. m_context.premaster_key.clear();
  118. if constexpr (TLS_DEBUG) {
  119. dbgln("master key:");
  120. print_buffer(m_context.master_key);
  121. }
  122. if constexpr (TLS_SSL_KEYLOG_DEBUG) {
  123. auto file = MUST(Core::File::open("/home/anon/ssl_keylog"sv, Core::File::OpenMode::Append | Core::File::OpenMode::Write));
  124. MUST(file->write_until_depleted("CLIENT_RANDOM "sv.bytes()));
  125. MUST(file->write_until_depleted(encode_hex({ m_context.local_random, 32 }).bytes()));
  126. MUST(file->write_until_depleted(" "sv.bytes()));
  127. MUST(file->write_until_depleted(encode_hex(m_context.master_key).bytes()));
  128. MUST(file->write_until_depleted("\n"sv.bytes()));
  129. }
  130. expand_key();
  131. return true;
  132. }
  133. void TLSv12::build_rsa_pre_master_secret(PacketBuilder& builder)
  134. {
  135. u8 random_bytes[48];
  136. size_t bytes = 48;
  137. fill_with_random(random_bytes);
  138. // remove zeros from the random bytes
  139. for (size_t i = 0; i < bytes; ++i) {
  140. if (!random_bytes[i])
  141. random_bytes[i--] = get_random<u8>();
  142. }
  143. if (m_context.is_server) {
  144. dbgln("Server mode not supported");
  145. return;
  146. } else {
  147. *(u16*)random_bytes = AK::convert_between_host_and_network_endian((u16)ProtocolVersion::VERSION_1_2);
  148. }
  149. auto premaster_key_result = ByteBuffer::copy(random_bytes, bytes);
  150. if (premaster_key_result.is_error()) {
  151. dbgln("RSA premaster key generation failed, not enough memory");
  152. return;
  153. }
  154. m_context.premaster_key = premaster_key_result.release_value();
  155. // RFC5246 section 7.4.2: The sender's certificate MUST come first in the list.
  156. auto& certificate = m_context.certificates.first();
  157. if constexpr (TLS_DEBUG) {
  158. dbgln("PreMaster secret");
  159. print_buffer(m_context.premaster_key);
  160. }
  161. Crypto::PK::RSA_PKCS1_EME rsa(certificate.public_key.rsa.modulus(), 0, certificate.public_key.rsa.public_exponent());
  162. Vector<u8, 32> out;
  163. out.resize(rsa.output_size());
  164. auto outbuf = out.span();
  165. rsa.encrypt(m_context.premaster_key, outbuf);
  166. if constexpr (TLS_DEBUG) {
  167. dbgln("Encrypted: ");
  168. print_buffer(outbuf);
  169. }
  170. if (!compute_master_secret_from_pre_master_secret(bytes)) {
  171. dbgln("oh noes we could not derive a master key :(");
  172. return;
  173. }
  174. builder.append_u24(outbuf.size() + 2);
  175. builder.append((u16)outbuf.size());
  176. builder.append(outbuf);
  177. }
  178. void TLSv12::build_dhe_rsa_pre_master_secret(PacketBuilder& builder)
  179. {
  180. auto& dh = m_context.server_diffie_hellman_params;
  181. auto dh_p = Crypto::UnsignedBigInteger::import_data(dh.p.data(), dh.p.size());
  182. auto dh_g = Crypto::UnsignedBigInteger::import_data(dh.g.data(), dh.g.size());
  183. auto dh_Ys = Crypto::UnsignedBigInteger::import_data(dh.Ys.data(), dh.Ys.size());
  184. auto dh_key_size = dh.p.size();
  185. auto dh_random = Crypto::NumberTheory::random_number(0, dh_p);
  186. auto dh_Yc = Crypto::NumberTheory::ModularPower(dh_g, dh_random, dh_p);
  187. auto dh_Yc_bytes_result = ByteBuffer::create_uninitialized(dh_key_size);
  188. if (dh_Yc_bytes_result.is_error()) {
  189. dbgln("Failed to build DHE_RSA premaster secret: not enough memory");
  190. return;
  191. }
  192. auto dh_Yc_bytes = dh_Yc_bytes_result.release_value();
  193. dh_Yc.export_data(dh_Yc_bytes);
  194. auto premaster_key = Crypto::NumberTheory::ModularPower(dh_Ys, dh_random, dh_p);
  195. auto premaster_key_result = ByteBuffer::create_uninitialized(dh_key_size);
  196. if (premaster_key_result.is_error()) {
  197. dbgln("Failed to build DHE_RSA premaster secret: not enough memory");
  198. return;
  199. }
  200. m_context.premaster_key = premaster_key_result.release_value();
  201. premaster_key.export_data(m_context.premaster_key, true);
  202. dh.p.clear();
  203. dh.g.clear();
  204. dh.Ys.clear();
  205. if constexpr (TLS_DEBUG) {
  206. dbgln("dh_random: {}", dh_random.to_base_deprecated(16));
  207. dbgln("dh_Yc: {:hex-dump}", (ReadonlyBytes)dh_Yc_bytes);
  208. dbgln("premaster key: {:hex-dump}", (ReadonlyBytes)m_context.premaster_key);
  209. }
  210. if (!compute_master_secret_from_pre_master_secret(48)) {
  211. dbgln("oh noes we could not derive a master key :(");
  212. return;
  213. }
  214. builder.append_u24(dh_key_size + 2);
  215. builder.append((u16)dh_key_size);
  216. builder.append(dh_Yc_bytes);
  217. }
  218. void TLSv12::build_ecdhe_rsa_pre_master_secret(PacketBuilder& builder)
  219. {
  220. // Create a random private key
  221. auto private_key_result = m_context.server_key_exchange_curve->generate_private_key();
  222. if (private_key_result.is_error()) {
  223. dbgln("Failed to build ECDHE_RSA premaster secret: not enough memory");
  224. return;
  225. }
  226. auto private_key = private_key_result.release_value();
  227. // Calculate the public key from the private key
  228. auto public_key_result = m_context.server_key_exchange_curve->generate_public_key(private_key);
  229. if (public_key_result.is_error()) {
  230. dbgln("Failed to build ECDHE_RSA premaster secret: not enough memory");
  231. return;
  232. }
  233. auto public_key = public_key_result.release_value();
  234. // Calculate the shared point by multiplying the client private key and the server public key
  235. ReadonlyBytes server_public_key_bytes = m_context.server_diffie_hellman_params.p;
  236. auto shared_point_result = m_context.server_key_exchange_curve->compute_coordinate(private_key, server_public_key_bytes);
  237. if (shared_point_result.is_error()) {
  238. dbgln("Failed to build ECDHE_RSA premaster secret: not enough memory");
  239. return;
  240. }
  241. auto shared_point = shared_point_result.release_value();
  242. // Derive the premaster key from the shared point
  243. auto premaster_key_result = m_context.server_key_exchange_curve->derive_premaster_key(shared_point);
  244. if (premaster_key_result.is_error()) {
  245. dbgln("Failed to build ECDHE_RSA premaster secret: not enough memory");
  246. return;
  247. }
  248. m_context.premaster_key = premaster_key_result.release_value();
  249. if constexpr (TLS_DEBUG) {
  250. dbgln("Build ECDHE_RSA pre master secret");
  251. dbgln("client private key: {:hex-dump}", (ReadonlyBytes)private_key);
  252. dbgln("client public key: {:hex-dump}", (ReadonlyBytes)public_key);
  253. dbgln("premaster key: {:hex-dump}", (ReadonlyBytes)m_context.premaster_key);
  254. }
  255. if (!compute_master_secret_from_pre_master_secret(48)) {
  256. dbgln("oh noes we could not derive a master key :(");
  257. return;
  258. }
  259. builder.append_u24(public_key.size() + 1);
  260. builder.append((u8)public_key.size());
  261. builder.append(public_key);
  262. }
  263. ByteBuffer TLSv12::build_certificate()
  264. {
  265. PacketBuilder builder { ContentType::HANDSHAKE, m_context.options.version };
  266. Vector<Certificate const&> certificates;
  267. Vector<Certificate>* local_certificates = nullptr;
  268. if (m_context.is_server) {
  269. dbgln("Unsupported: Server mode");
  270. VERIFY_NOT_REACHED();
  271. } else {
  272. local_certificates = &m_context.client_certificates;
  273. }
  274. constexpr size_t der_length_delta = 3;
  275. constexpr size_t certificate_vector_header_size = 3;
  276. size_t total_certificate_size = 0;
  277. for (size_t i = 0; i < local_certificates->size(); ++i) {
  278. auto& certificate = local_certificates->at(i);
  279. if (!certificate.der.is_empty()) {
  280. total_certificate_size += certificate.der.size() + der_length_delta;
  281. // FIXME: Check for and respond with only the requested certificate types.
  282. if (true) {
  283. certificates.append(certificate);
  284. }
  285. }
  286. }
  287. builder.append((u8)HandshakeType::CERTIFICATE);
  288. if (!total_certificate_size) {
  289. dbgln_if(TLS_DEBUG, "No certificates, sending empty certificate message");
  290. builder.append_u24(certificate_vector_header_size);
  291. builder.append_u24(total_certificate_size);
  292. } else {
  293. builder.append_u24(total_certificate_size + certificate_vector_header_size); // 3 bytes for header
  294. builder.append_u24(total_certificate_size);
  295. for (auto& certificate : certificates) {
  296. if (!certificate.der.is_empty()) {
  297. builder.append_u24(certificate.der.size());
  298. builder.append(certificate.der.bytes());
  299. }
  300. }
  301. }
  302. auto packet = builder.build();
  303. update_packet(packet);
  304. return packet;
  305. }
  306. ByteBuffer TLSv12::build_client_key_exchange()
  307. {
  308. bool chain_verified = m_context.verify_chain(m_context.extensions.SNI);
  309. if (!chain_verified) {
  310. dbgln("certificate verification failed :(");
  311. alert(AlertLevel::FATAL, AlertDescription::BAD_CERTIFICATE);
  312. return {};
  313. }
  314. PacketBuilder builder { ContentType::HANDSHAKE, m_context.options.version };
  315. builder.append((u8)HandshakeType::CLIENT_KEY_EXCHANGE_RESERVED);
  316. switch (get_key_exchange_algorithm(m_context.cipher)) {
  317. case KeyExchangeAlgorithm::RSA:
  318. build_rsa_pre_master_secret(builder);
  319. break;
  320. case KeyExchangeAlgorithm::DHE_DSS:
  321. dbgln("Client key exchange for DHE_DSS is not implemented");
  322. TODO();
  323. break;
  324. case KeyExchangeAlgorithm::DH_DSS:
  325. case KeyExchangeAlgorithm::DH_RSA:
  326. dbgln("Client key exchange for DH algorithms is not implemented");
  327. TODO();
  328. break;
  329. case KeyExchangeAlgorithm::DHE_RSA:
  330. build_dhe_rsa_pre_master_secret(builder);
  331. break;
  332. case KeyExchangeAlgorithm::DH_anon:
  333. dbgln("Client key exchange for DH_anon is not implemented");
  334. TODO();
  335. break;
  336. case KeyExchangeAlgorithm::ECDHE_RSA:
  337. build_ecdhe_rsa_pre_master_secret(builder);
  338. break;
  339. case KeyExchangeAlgorithm::ECDH_ECDSA:
  340. case KeyExchangeAlgorithm::ECDH_RSA:
  341. case KeyExchangeAlgorithm::ECDHE_ECDSA:
  342. case KeyExchangeAlgorithm::ECDH_anon:
  343. dbgln("Client key exchange for ECDHE algorithms is not implemented");
  344. TODO();
  345. break;
  346. default:
  347. dbgln("Unknown client key exchange algorithm");
  348. VERIFY_NOT_REACHED();
  349. break;
  350. }
  351. m_context.connection_status = ConnectionStatus::KeyExchange;
  352. auto packet = builder.build();
  353. update_packet(packet);
  354. return packet;
  355. }
  356. }