HandshakeServer.cpp 17 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/Endian.h>
  9. #include <AK/Random.h>
  10. #include <LibCore/Timer.h>
  11. #include <LibCrypto/ASN1/DER.h>
  12. #include <LibCrypto/Curves/EllipticCurve.h>
  13. #include <LibCrypto/Curves/SECP256r1.h>
  14. #include <LibCrypto/Curves/X25519.h>
  15. #include <LibCrypto/Curves/X448.h>
  16. #include <LibCrypto/PK/Code/EMSA_PKCS1_V1_5.h>
  17. #include <LibCrypto/PK/Code/EMSA_PSS.h>
  18. #include <LibTLS/TLSv12.h>
  19. namespace TLS {
  20. ssize_t TLSv12::handle_server_hello(ReadonlyBytes buffer, WritePacketStage& write_packets)
  21. {
  22. write_packets = WritePacketStage::Initial;
  23. if (m_context.connection_status != ConnectionStatus::Disconnected && m_context.connection_status != ConnectionStatus::Renegotiating) {
  24. dbgln("unexpected hello message");
  25. return (i8)Error::UnexpectedMessage;
  26. }
  27. ssize_t res = 0;
  28. size_t min_hello_size = 41;
  29. if (min_hello_size > buffer.size()) {
  30. dbgln("need more data");
  31. return (i8)Error::NeedMoreData;
  32. }
  33. size_t following_bytes = buffer[0] * 0x10000 + buffer[1] * 0x100 + buffer[2];
  34. res += 3;
  35. if (buffer.size() - res < following_bytes) {
  36. dbgln("not enough data after header: {} < {}", buffer.size() - res, following_bytes);
  37. return (i8)Error::NeedMoreData;
  38. }
  39. if (buffer.size() - res < 2) {
  40. dbgln("not enough data for version");
  41. return (i8)Error::NeedMoreData;
  42. }
  43. auto version = static_cast<ProtocolVersion>(AK::convert_between_host_and_network_endian(ByteReader::load16(buffer.offset_pointer(res))));
  44. res += 2;
  45. if (!supports_version(version))
  46. return (i8)Error::NotSafe;
  47. memcpy(m_context.remote_random, buffer.offset_pointer(res), sizeof(m_context.remote_random));
  48. res += sizeof(m_context.remote_random);
  49. u8 session_length = buffer[res++];
  50. if (buffer.size() - res < session_length) {
  51. dbgln("not enough data for session id");
  52. return (i8)Error::NeedMoreData;
  53. }
  54. if (session_length && session_length <= 32) {
  55. memcpy(m_context.session_id, buffer.offset_pointer(res), session_length);
  56. m_context.session_id_size = session_length;
  57. if constexpr (TLS_DEBUG) {
  58. dbgln("Remote session ID:");
  59. print_buffer(ReadonlyBytes { m_context.session_id, session_length });
  60. }
  61. } else {
  62. m_context.session_id_size = 0;
  63. }
  64. res += session_length;
  65. if (buffer.size() - res < 2) {
  66. dbgln("not enough data for cipher suite listing");
  67. return (i8)Error::NeedMoreData;
  68. }
  69. auto cipher = static_cast<CipherSuite>(AK::convert_between_host_and_network_endian(ByteReader::load16(buffer.offset_pointer(res))));
  70. res += 2;
  71. if (!supports_cipher(cipher)) {
  72. m_context.cipher = CipherSuite::Invalid;
  73. dbgln("No supported cipher could be agreed upon");
  74. return (i8)Error::NoCommonCipher;
  75. }
  76. m_context.cipher = cipher;
  77. dbgln_if(TLS_DEBUG, "Cipher: {}", (u16)cipher);
  78. // Simplification: We only support handshake hash functions via HMAC
  79. m_context.handshake_hash.initialize(hmac_hash());
  80. // Compression method
  81. if (buffer.size() - res < 1)
  82. return (i8)Error::NeedMoreData;
  83. u8 compression = buffer[res++];
  84. if (compression != 0)
  85. return (i8)Error::CompressionNotSupported;
  86. if (m_context.connection_status != ConnectionStatus::Renegotiating)
  87. m_context.connection_status = ConnectionStatus::Negotiating;
  88. if (m_context.is_server) {
  89. dbgln("unsupported: server mode");
  90. write_packets = WritePacketStage::ServerHandshake;
  91. }
  92. // Presence of extensions is determined by availability of bytes after compression_method
  93. if (buffer.size() - res >= 2) {
  94. auto extensions_bytes_total = AK::convert_between_host_and_network_endian(ByteReader::load16(buffer.offset_pointer(res += 2)));
  95. dbgln_if(TLS_DEBUG, "Extensions bytes total: {}", extensions_bytes_total);
  96. }
  97. while (buffer.size() - res >= 4) {
  98. auto extension_type = (ExtensionType)AK::convert_between_host_and_network_endian(ByteReader::load16(buffer.offset_pointer(res)));
  99. res += 2;
  100. u16 extension_length = AK::convert_between_host_and_network_endian(ByteReader::load16(buffer.offset_pointer(res)));
  101. res += 2;
  102. dbgln_if(TLS_DEBUG, "Extension {} with length {}", (u16)extension_type, extension_length);
  103. if (buffer.size() - res < extension_length)
  104. return (i8)Error::NeedMoreData;
  105. if (extension_type == ExtensionType::SERVER_NAME) {
  106. // RFC6066 section 3: SNI extension_data can be empty in the server hello
  107. if (extension_length > 0) {
  108. // ServerNameList total size
  109. if (buffer.size() - res < 2)
  110. return (i8)Error::NeedMoreData;
  111. auto sni_name_list_bytes = AK::convert_between_host_and_network_endian(ByteReader::load16(buffer.offset_pointer(res += 2)));
  112. dbgln_if(TLS_DEBUG, "SNI: expecting ServerNameList of {} bytes", sni_name_list_bytes);
  113. // Exactly one ServerName should be present
  114. if (buffer.size() - res < 3)
  115. return (i8)Error::NeedMoreData;
  116. auto sni_name_type = (NameType)(*(u8 const*)buffer.offset_pointer(res++));
  117. auto sni_name_length = AK::convert_between_host_and_network_endian(ByteReader::load16(buffer.offset_pointer(res += 2)));
  118. if (sni_name_type != NameType::HostName)
  119. return (i8)Error::NotUnderstood;
  120. if (sizeof(sni_name_type) + sizeof(sni_name_length) + sni_name_length != sni_name_list_bytes)
  121. return (i8)Error::BrokenPacket;
  122. // Read out the host_name
  123. if (buffer.size() - res < sni_name_length)
  124. return (i8)Error::NeedMoreData;
  125. m_context.extensions.SNI = DeprecatedString { (char const*)buffer.offset_pointer(res), sni_name_length };
  126. res += sni_name_length;
  127. dbgln("SNI host_name: {}", m_context.extensions.SNI);
  128. }
  129. } else if (extension_type == ExtensionType::APPLICATION_LAYER_PROTOCOL_NEGOTIATION && m_context.alpn.size()) {
  130. if (buffer.size() - res > 2) {
  131. auto alpn_length = AK::convert_between_host_and_network_endian(ByteReader::load16(buffer.offset_pointer(res)));
  132. if (alpn_length && alpn_length <= extension_length - 2) {
  133. u8 const* alpn = buffer.offset_pointer(res + 2);
  134. size_t alpn_position = 0;
  135. while (alpn_position < alpn_length) {
  136. u8 alpn_size = alpn[alpn_position++];
  137. if (alpn_size + alpn_position >= extension_length)
  138. break;
  139. DeprecatedString alpn_str { (char const*)alpn + alpn_position, alpn_length };
  140. if (alpn_size && m_context.alpn.contains_slow(alpn_str)) {
  141. m_context.negotiated_alpn = alpn_str;
  142. dbgln("negotiated alpn: {}", alpn_str);
  143. break;
  144. }
  145. alpn_position += alpn_length;
  146. if (!m_context.is_server) // server hello must contain one ALPN
  147. break;
  148. }
  149. }
  150. }
  151. res += extension_length;
  152. } else if (extension_type == ExtensionType::SIGNATURE_ALGORITHMS) {
  153. dbgln("supported signatures: ");
  154. print_buffer(buffer.slice(res, extension_length));
  155. res += extension_length;
  156. // FIXME: what are we supposed to do here?
  157. } else if (extension_type == ExtensionType::EC_POINT_FORMATS) {
  158. // RFC8422 section 5.2: A server that selects an ECC cipher suite in response to a ClientHello message
  159. // including a Supported Point Formats Extension appends this extension (along with others) to its
  160. // ServerHello message, enumerating the point formats it can parse. The Supported Point Formats Extension,
  161. // when used, MUST contain the value 0 (uncompressed) as one of the items in the list of point formats.
  162. //
  163. // The current implementation only supports uncompressed points, and the server is required to support
  164. // uncompressed points. Therefore, this extension can be safely ignored as it should always inform us
  165. // that the server supports uncompressed points.
  166. res += extension_length;
  167. } else {
  168. dbgln("Encountered unknown extension {} with length {}", (u16)extension_type, extension_length);
  169. res += extension_length;
  170. }
  171. }
  172. return res;
  173. }
  174. ssize_t TLSv12::handle_server_hello_done(ReadonlyBytes buffer)
  175. {
  176. if (buffer.size() < 3)
  177. return (i8)Error::NeedMoreData;
  178. size_t size = buffer[0] * 0x10000 + buffer[1] * 0x100 + buffer[2];
  179. if (buffer.size() - 3 < size)
  180. return (i8)Error::NeedMoreData;
  181. return size + 3;
  182. }
  183. ByteBuffer TLSv12::build_server_key_exchange()
  184. {
  185. dbgln("FIXME: build_server_key_exchange");
  186. return {};
  187. }
  188. ssize_t TLSv12::handle_server_key_exchange(ReadonlyBytes buffer)
  189. {
  190. switch (get_key_exchange_algorithm(m_context.cipher)) {
  191. case KeyExchangeAlgorithm::RSA:
  192. case KeyExchangeAlgorithm::DH_DSS:
  193. case KeyExchangeAlgorithm::DH_RSA:
  194. // RFC 5246 section 7.4.3. Server Key Exchange Message
  195. // It is not legal to send the server key exchange message for RSA, DH_DSS, DH_RSA
  196. dbgln("Server key exchange received for RSA, DH_DSS or DH_RSA is not legal");
  197. return (i8)Error::UnexpectedMessage;
  198. case KeyExchangeAlgorithm::DHE_DSS:
  199. dbgln("Server key exchange for DHE_DSS is not implemented");
  200. TODO();
  201. break;
  202. case KeyExchangeAlgorithm::DHE_RSA:
  203. return handle_dhe_rsa_server_key_exchange(buffer);
  204. case KeyExchangeAlgorithm::DH_anon:
  205. dbgln("Server key exchange for DH_anon is not implemented");
  206. TODO();
  207. break;
  208. case KeyExchangeAlgorithm::ECDHE_RSA:
  209. return handle_ecdhe_rsa_server_key_exchange(buffer);
  210. case KeyExchangeAlgorithm::ECDH_ECDSA:
  211. case KeyExchangeAlgorithm::ECDH_RSA:
  212. case KeyExchangeAlgorithm::ECDHE_ECDSA:
  213. case KeyExchangeAlgorithm::ECDH_anon:
  214. dbgln("Server key exchange for ECDHE algorithms is not implemented");
  215. TODO();
  216. break;
  217. default:
  218. dbgln("Unknown server key exchange algorithm");
  219. VERIFY_NOT_REACHED();
  220. break;
  221. }
  222. return 0;
  223. }
  224. ssize_t TLSv12::handle_dhe_rsa_server_key_exchange(ReadonlyBytes buffer)
  225. {
  226. auto dh_p_length = AK::convert_between_host_and_network_endian(ByteReader::load16(buffer.offset_pointer(3)));
  227. auto dh_p = buffer.slice(5, dh_p_length);
  228. auto p_result = ByteBuffer::copy(dh_p);
  229. if (p_result.is_error()) {
  230. dbgln("dhe_rsa_server_key_exchange failed: Not enough memory");
  231. return (i8)Error::OutOfMemory;
  232. }
  233. m_context.server_diffie_hellman_params.p = p_result.release_value();
  234. auto dh_g_length = AK::convert_between_host_and_network_endian(ByteReader::load16(buffer.offset_pointer(5 + dh_p_length)));
  235. auto dh_g = buffer.slice(7 + dh_p_length, dh_g_length);
  236. auto g_result = ByteBuffer::copy(dh_g);
  237. if (g_result.is_error()) {
  238. dbgln("dhe_rsa_server_key_exchange failed: Not enough memory");
  239. return (i8)Error::OutOfMemory;
  240. }
  241. m_context.server_diffie_hellman_params.g = g_result.release_value();
  242. auto dh_Ys_length = AK::convert_between_host_and_network_endian(ByteReader::load16(buffer.offset_pointer(7 + dh_p_length + dh_g_length)));
  243. auto dh_Ys = buffer.slice(9 + dh_p_length + dh_g_length, dh_Ys_length);
  244. auto Ys_result = ByteBuffer::copy(dh_Ys);
  245. if (Ys_result.is_error()) {
  246. dbgln("dhe_rsa_server_key_exchange failed: Not enough memory");
  247. return (i8)Error::OutOfMemory;
  248. }
  249. m_context.server_diffie_hellman_params.Ys = Ys_result.release_value();
  250. if constexpr (TLS_DEBUG) {
  251. dbgln("dh_p: {:hex-dump}", dh_p);
  252. dbgln("dh_g: {:hex-dump}", dh_g);
  253. dbgln("dh_Ys: {:hex-dump}", dh_Ys);
  254. }
  255. auto server_key_info = buffer.slice(3, 6 + dh_p_length + dh_g_length + dh_Ys_length);
  256. auto signature = buffer.slice(9 + dh_p_length + dh_g_length + dh_Ys_length);
  257. return verify_rsa_server_key_exchange(server_key_info, signature);
  258. }
  259. ssize_t TLSv12::handle_ecdhe_rsa_server_key_exchange(ReadonlyBytes buffer)
  260. {
  261. if (buffer.size() < 7)
  262. return (i8)Error::NeedMoreData;
  263. auto curve_type = buffer[3];
  264. if (curve_type != (u8)ECCurveType::NamedCurve)
  265. return (i8)Error::NotUnderstood;
  266. auto curve = static_cast<NamedCurve>(AK::convert_between_host_and_network_endian(ByteReader::load16(buffer.offset_pointer(4))));
  267. if (!m_context.options.elliptic_curves.contains_slow(curve))
  268. return (i8)Error::NotUnderstood;
  269. switch ((NamedCurve)curve) {
  270. case NamedCurve::x25519:
  271. m_context.server_key_exchange_curve = make<Crypto::Curves::X25519>();
  272. break;
  273. case NamedCurve::x448:
  274. m_context.server_key_exchange_curve = make<Crypto::Curves::X448>();
  275. break;
  276. case NamedCurve::secp256r1:
  277. m_context.server_key_exchange_curve = make<Crypto::Curves::SECP256r1>();
  278. break;
  279. default:
  280. return (i8)Error::NotUnderstood;
  281. }
  282. auto server_public_key_length = buffer[6];
  283. if (server_public_key_length != m_context.server_key_exchange_curve->key_size())
  284. return (i8)Error::NotUnderstood;
  285. if (buffer.size() < 7u + server_public_key_length)
  286. return (i8)Error::NeedMoreData;
  287. auto server_public_key = buffer.slice(7, server_public_key_length);
  288. auto server_public_key_copy_result = ByteBuffer::copy(server_public_key);
  289. if (server_public_key_copy_result.is_error()) {
  290. dbgln("ecdhe_rsa_server_key_exchange failed: Not enough memory");
  291. return (i8)Error::OutOfMemory;
  292. }
  293. m_context.server_diffie_hellman_params.p = server_public_key_copy_result.release_value();
  294. if constexpr (TLS_DEBUG) {
  295. dbgln("ECDHE server public key: {:hex-dump}", server_public_key);
  296. }
  297. auto server_key_info = buffer.slice(3, 4 + server_public_key_length);
  298. auto signature = buffer.slice(7 + server_public_key_length);
  299. return verify_rsa_server_key_exchange(server_key_info, signature);
  300. }
  301. ssize_t TLSv12::verify_rsa_server_key_exchange(ReadonlyBytes server_key_info_buffer, ReadonlyBytes signature_buffer)
  302. {
  303. auto signature_hash = signature_buffer[0];
  304. auto signature_algorithm = signature_buffer[1];
  305. if (signature_algorithm != (u8)SignatureAlgorithm::RSA) {
  306. dbgln("verify_rsa_server_key_exchange failed: Signature algorithm is not RSA, instead {}", signature_algorithm);
  307. return (i8)Error::NotUnderstood;
  308. }
  309. auto signature_length = AK::convert_between_host_and_network_endian(ByteReader::load16(signature_buffer.offset_pointer(2)));
  310. auto signature = signature_buffer.slice(4, signature_length);
  311. if (m_context.certificates.is_empty()) {
  312. dbgln("verify_rsa_server_key_exchange failed: Attempting to verify signature without certificates");
  313. return (i8)Error::NotSafe;
  314. }
  315. // RFC5246 section 7.4.2: The sender's certificate MUST come first in the list.
  316. auto certificate_public_key = m_context.certificates.first().public_key;
  317. Crypto::PK::RSAPrivateKey dummy_private_key;
  318. auto rsa = Crypto::PK::RSA(certificate_public_key.rsa, dummy_private_key);
  319. auto signature_verify_buffer_result = ByteBuffer::create_uninitialized(signature_length);
  320. if (signature_verify_buffer_result.is_error()) {
  321. dbgln("verify_rsa_server_key_exchange failed: Not enough memory");
  322. return (i8)Error::OutOfMemory;
  323. }
  324. auto signature_verify_buffer = signature_verify_buffer_result.release_value();
  325. auto signature_verify_bytes = signature_verify_buffer.bytes();
  326. rsa.verify(signature, signature_verify_bytes);
  327. auto message_result = ByteBuffer::create_uninitialized(64 + server_key_info_buffer.size());
  328. if (message_result.is_error()) {
  329. dbgln("verify_rsa_server_key_exchange failed: Not enough memory");
  330. return (i8)Error::OutOfMemory;
  331. }
  332. auto message = message_result.release_value();
  333. message.overwrite(0, m_context.local_random, 32);
  334. message.overwrite(32, m_context.remote_random, 32);
  335. message.overwrite(64, server_key_info_buffer.data(), server_key_info_buffer.size());
  336. Crypto::Hash::HashKind hash_kind;
  337. switch ((HashAlgorithm)signature_hash) {
  338. case HashAlgorithm::SHA1:
  339. hash_kind = Crypto::Hash::HashKind::SHA1;
  340. break;
  341. case HashAlgorithm::SHA256:
  342. hash_kind = Crypto::Hash::HashKind::SHA256;
  343. break;
  344. case HashAlgorithm::SHA384:
  345. hash_kind = Crypto::Hash::HashKind::SHA384;
  346. break;
  347. case HashAlgorithm::SHA512:
  348. hash_kind = Crypto::Hash::HashKind::SHA512;
  349. break;
  350. default:
  351. dbgln("verify_rsa_server_key_exchange failed: Hash algorithm is not SHA1/256/384/512, instead {}", signature_hash);
  352. return (i8)Error::NotUnderstood;
  353. }
  354. auto pkcs1 = Crypto::PK::EMSA_PKCS1_V1_5<Crypto::Hash::Manager>(hash_kind);
  355. auto verification = pkcs1.verify(message, signature_verify_bytes, signature_length * 8);
  356. if (verification == Crypto::VerificationConsistency::Inconsistent) {
  357. dbgln("verify_rsa_server_key_exchange failed: Verification of signature inconsistent");
  358. return (i8)Error::NotSafe;
  359. }
  360. return 0;
  361. }
  362. }