key_manager.cpp 43 KB

12345678910111213141516171819202122232425262728293031323334353637383940414243444546474849505152535455565758596061626364656667686970717273747576777879808182838485868788899091929394959697989910010110210310410510610710810911011111211311411511611711811912012112212312412512612712812913013113213313413513613713813914014114214314414514614714814915015115215315415515615715815916016116216316416516616716816917017117217317417517617717817918018118218318418518618718818919019119219319419519619719819920020120220320420520620720820921021121221321421521621721821922022122222322422522622722822923023123223323423523623723823924024124224324424524624724824925025125225325425525625725825926026126226326426526626726826927027127227327427527627727827928028128228328428528628728828929029129229329429529629729829930030130230330430530630730830931031131231331431531631731831932032132232332432532632732832933033133233333433533633733833934034134234334434534634734834935035135235335435535635735835936036136236336436536636736836937037137237337437537637737837938038138238338438538638738838939039139239339439539639739839940040140240340440540640740840941041141241341441541641741841942042142242342442542642742842943043143243343443543643743843944044144244344444544644744844945045145245345445545645745845946046146246346446546646746846947047147247347447547647747847948048148248348448548648748848949049149249349449549649749849950050150250350450550650750850951051151251351451551651751851952052152252352452552652752852953053153253353453553653753853954054154254354454554654754854955055155255355455555655755855956056156256356456556656756856957057157257357457557657757857958058158258358458558658758858959059159259359459559659759859960060160260360460560660760860961061161261361461561661761861962062162262362462562662762862963063163263363463563663763863964064164264364464564664764864965065165265365465565665765865966066166266366466566666766866967067167267367467567667767867968068168268368468568668768868969069169269369469569669769869970070170270370470570670770870971071171271371471571671771871972072172272372472572672772872973073173273373473573673773873974074174274374474574674774874975075175275375475575675775875976076176276376476576676776876977077177277377477577677777877978078178278378478578678778878979079179279379479579679779879980080180280380480580680780880981081181281381481581681781881982082182282382482582682782882983083183283383483583683783883984084184284384484584684784884985085185285385485585685785885986086186286386486586686786886987087187287387487587687787887988088188288388488588688788888989089189289389489589689789889990090190290390490590690790890991091191291391491591691791891992092192292392492592692792892993093193293393493593693793893994094194294394494594694794894995095195295395495595695795895996096196296396496596696796896997097197297397497597697797897998098198298398498598698798898999099199299399499599699799899910001001100210031004100510061007100810091010101110121013101410151016101710181019102010211022102310241025102610271028102910301031103210331034103510361037103810391040104110421043104410451046104710481049105010511052
  1. // Copyright 2018 yuzu emulator team
  2. // Licensed under GPLv2 or any later version
  3. // Refer to the license.txt file included.
  4. #include <algorithm>
  5. #include <array>
  6. #include <bitset>
  7. #include <cctype>
  8. #include <fstream>
  9. #include <locale>
  10. #include <map>
  11. #include <sstream>
  12. #include <string_view>
  13. #include <tuple>
  14. #include <vector>
  15. #include <mbedtls/bignum.h>
  16. #include <mbedtls/cipher.h>
  17. #include <mbedtls/cmac.h>
  18. #include <mbedtls/sha256.h>
  19. #include "common/common_funcs.h"
  20. #include "common/common_paths.h"
  21. #include "common/file_util.h"
  22. #include "common/hex_util.h"
  23. #include "common/logging/log.h"
  24. #include "core/core.h"
  25. #include "core/crypto/aes_util.h"
  26. #include "core/crypto/key_manager.h"
  27. #include "core/crypto/partition_data_manager.h"
  28. #include "core/file_sys/content_archive.h"
  29. #include "core/file_sys/nca_metadata.h"
  30. #include "core/file_sys/partition_filesystem.h"
  31. #include "core/file_sys/registered_cache.h"
  32. #include "core/hle/service/filesystem/filesystem.h"
  33. #include "core/loader/loader.h"
  34. #include "core/settings.h"
  35. namespace Core::Crypto {
  36. constexpr u64 CURRENT_CRYPTO_REVISION = 0x5;
  37. using namespace Common;
  38. const std::array<SHA256Hash, 2> eticket_source_hashes{
  39. "B71DB271DC338DF380AA2C4335EF8873B1AFD408E80B3582D8719FC81C5E511C"_array32, // eticket_rsa_kek_source
  40. "E8965A187D30E57869F562D04383C996DE487BBA5761363D2D4D32391866A85C"_array32, // eticket_rsa_kekek_source
  41. };
  42. const std::map<std::pair<S128KeyType, u64>, std::string> KEYS_VARIABLE_LENGTH{
  43. {{S128KeyType::Master, 0}, "master_key_"},
  44. {{S128KeyType::Package1, 0}, "package1_key_"},
  45. {{S128KeyType::Package2, 0}, "package2_key_"},
  46. {{S128KeyType::Titlekek, 0}, "titlekek_"},
  47. {{S128KeyType::Source, static_cast<u64>(SourceKeyType::Keyblob)}, "keyblob_key_source_"},
  48. {{S128KeyType::Keyblob, 0}, "keyblob_key_"},
  49. {{S128KeyType::KeyblobMAC, 0}, "keyblob_mac_key_"},
  50. };
  51. Key128 GenerateKeyEncryptionKey(Key128 source, Key128 master, Key128 kek_seed, Key128 key_seed) {
  52. Key128 out{};
  53. AESCipher<Key128> cipher1(master, Mode::ECB);
  54. cipher1.Transcode(kek_seed.data(), kek_seed.size(), out.data(), Op::Decrypt);
  55. AESCipher<Key128> cipher2(out, Mode::ECB);
  56. cipher2.Transcode(source.data(), source.size(), out.data(), Op::Decrypt);
  57. if (key_seed != Key128{}) {
  58. AESCipher<Key128> cipher3(out, Mode::ECB);
  59. cipher3.Transcode(key_seed.data(), key_seed.size(), out.data(), Op::Decrypt);
  60. }
  61. return out;
  62. }
  63. Key128 DeriveKeyblobKey(const Key128& sbk, const Key128& tsec, Key128 source) {
  64. AESCipher<Key128> sbk_cipher(sbk, Mode::ECB);
  65. AESCipher<Key128> tsec_cipher(tsec, Mode::ECB);
  66. tsec_cipher.Transcode(source.data(), source.size(), source.data(), Op::Decrypt);
  67. sbk_cipher.Transcode(source.data(), source.size(), source.data(), Op::Decrypt);
  68. return source;
  69. }
  70. Key128 DeriveMasterKey(const std::array<u8, 0x90>& keyblob, const Key128& master_source) {
  71. Key128 master_root;
  72. std::memcpy(master_root.data(), keyblob.data(), sizeof(Key128));
  73. AESCipher<Key128> master_cipher(master_root, Mode::ECB);
  74. Key128 master{};
  75. master_cipher.Transcode(master_source.data(), master_source.size(), master.data(), Op::Decrypt);
  76. return master;
  77. }
  78. std::array<u8, 144> DecryptKeyblob(const std::array<u8, 176>& encrypted_keyblob,
  79. const Key128& key) {
  80. std::array<u8, 0x90> keyblob;
  81. AESCipher<Key128> cipher(key, Mode::CTR);
  82. cipher.SetIV(std::vector<u8>(encrypted_keyblob.data() + 0x10, encrypted_keyblob.data() + 0x20));
  83. cipher.Transcode(encrypted_keyblob.data() + 0x20, keyblob.size(), keyblob.data(), Op::Decrypt);
  84. return keyblob;
  85. }
  86. void KeyManager::DeriveGeneralPurposeKeys(std::size_t crypto_revision) {
  87. const auto kek_generation_source =
  88. GetKey(S128KeyType::Source, static_cast<u64>(SourceKeyType::AESKekGeneration));
  89. const auto key_generation_source =
  90. GetKey(S128KeyType::Source, static_cast<u64>(SourceKeyType::AESKeyGeneration));
  91. if (HasKey(S128KeyType::Master, crypto_revision)) {
  92. for (auto kak_type :
  93. {KeyAreaKeyType::Application, KeyAreaKeyType::Ocean, KeyAreaKeyType::System}) {
  94. if (HasKey(S128KeyType::Source, static_cast<u64>(SourceKeyType::KeyAreaKey),
  95. static_cast<u64>(kak_type))) {
  96. const auto source =
  97. GetKey(S128KeyType::Source, static_cast<u64>(SourceKeyType::KeyAreaKey),
  98. static_cast<u64>(kak_type));
  99. const auto kek =
  100. GenerateKeyEncryptionKey(source, GetKey(S128KeyType::Master, crypto_revision),
  101. kek_generation_source, key_generation_source);
  102. SetKey(S128KeyType::KeyArea, kek, crypto_revision, static_cast<u64>(kak_type));
  103. }
  104. }
  105. AESCipher<Key128> master_cipher(GetKey(S128KeyType::Master, crypto_revision), Mode::ECB);
  106. for (auto key_type : {SourceKeyType::Titlekek, SourceKeyType::Package2}) {
  107. if (HasKey(S128KeyType::Source, static_cast<u64>(key_type))) {
  108. Key128 key{};
  109. master_cipher.Transcode(
  110. GetKey(S128KeyType::Source, static_cast<u64>(key_type)).data(), key.size(),
  111. key.data(), Op::Decrypt);
  112. SetKey(key_type == SourceKeyType::Titlekek ? S128KeyType::Titlekek
  113. : S128KeyType::Package2,
  114. key, crypto_revision);
  115. }
  116. }
  117. }
  118. }
  119. Key128 DeriveKeyblobMACKey(const Key128& keyblob_key, const Key128& mac_source) {
  120. AESCipher<Key128> mac_cipher(keyblob_key, Mode::ECB);
  121. Key128 mac_key{};
  122. mac_cipher.Transcode(mac_source.data(), mac_key.size(), mac_key.data(), Op::Decrypt);
  123. return mac_key;
  124. }
  125. std::optional<Key128> DeriveSDSeed() {
  126. const FileUtil::IOFile save_43(FileUtil::GetUserPath(FileUtil::UserPath::NANDDir) +
  127. "/system/save/8000000000000043",
  128. "rb+");
  129. if (!save_43.IsOpen())
  130. return {};
  131. const FileUtil::IOFile sd_private(
  132. FileUtil::GetUserPath(FileUtil::UserPath::SDMCDir) + "/Nintendo/Contents/private", "rb+");
  133. if (!sd_private.IsOpen())
  134. return {};
  135. std::array<u8, 0x10> private_seed{};
  136. if (sd_private.ReadBytes(private_seed.data(), private_seed.size()) != private_seed.size()) {
  137. return {};
  138. }
  139. std::array<u8, 0x10> buffer{};
  140. std::size_t offset = 0;
  141. for (; offset + 0x10 < save_43.GetSize(); ++offset) {
  142. if (!save_43.Seek(offset, SEEK_SET)) {
  143. return {};
  144. }
  145. save_43.ReadBytes(buffer.data(), buffer.size());
  146. if (buffer == private_seed) {
  147. break;
  148. }
  149. }
  150. if (!save_43.Seek(offset + 0x10, SEEK_SET)) {
  151. return {};
  152. }
  153. Key128 seed{};
  154. if (save_43.ReadBytes(seed.data(), seed.size()) != seed.size()) {
  155. return {};
  156. }
  157. return seed;
  158. }
  159. Loader::ResultStatus DeriveSDKeys(std::array<Key256, 2>& sd_keys, KeyManager& keys) {
  160. if (!keys.HasKey(S128KeyType::Source, static_cast<u64>(SourceKeyType::SDKek)))
  161. return Loader::ResultStatus::ErrorMissingSDKEKSource;
  162. if (!keys.HasKey(S128KeyType::Source, static_cast<u64>(SourceKeyType::AESKekGeneration)))
  163. return Loader::ResultStatus::ErrorMissingAESKEKGenerationSource;
  164. if (!keys.HasKey(S128KeyType::Source, static_cast<u64>(SourceKeyType::AESKeyGeneration)))
  165. return Loader::ResultStatus::ErrorMissingAESKeyGenerationSource;
  166. const auto sd_kek_source =
  167. keys.GetKey(S128KeyType::Source, static_cast<u64>(SourceKeyType::SDKek));
  168. const auto aes_kek_gen =
  169. keys.GetKey(S128KeyType::Source, static_cast<u64>(SourceKeyType::AESKekGeneration));
  170. const auto aes_key_gen =
  171. keys.GetKey(S128KeyType::Source, static_cast<u64>(SourceKeyType::AESKeyGeneration));
  172. const auto master_00 = keys.GetKey(S128KeyType::Master);
  173. const auto sd_kek =
  174. GenerateKeyEncryptionKey(sd_kek_source, master_00, aes_kek_gen, aes_key_gen);
  175. keys.SetKey(S128KeyType::SDKek, sd_kek);
  176. if (!keys.HasKey(S128KeyType::SDSeed))
  177. return Loader::ResultStatus::ErrorMissingSDSeed;
  178. const auto sd_seed = keys.GetKey(S128KeyType::SDSeed);
  179. if (!keys.HasKey(S256KeyType::SDKeySource, static_cast<u64>(SDKeyType::Save)))
  180. return Loader::ResultStatus::ErrorMissingSDSaveKeySource;
  181. if (!keys.HasKey(S256KeyType::SDKeySource, static_cast<u64>(SDKeyType::NCA)))
  182. return Loader::ResultStatus::ErrorMissingSDNCAKeySource;
  183. std::array<Key256, 2> sd_key_sources{
  184. keys.GetKey(S256KeyType::SDKeySource, static_cast<u64>(SDKeyType::Save)),
  185. keys.GetKey(S256KeyType::SDKeySource, static_cast<u64>(SDKeyType::NCA)),
  186. };
  187. // Combine sources and seed
  188. for (auto& source : sd_key_sources) {
  189. for (std::size_t i = 0; i < source.size(); ++i)
  190. source[i] ^= sd_seed[i & 0xF];
  191. }
  192. AESCipher<Key128> cipher(sd_kek, Mode::ECB);
  193. // The transform manipulates sd_keys as part of the Transcode, so the return/output is
  194. // unnecessary. This does not alter sd_keys_sources.
  195. std::transform(sd_key_sources.begin(), sd_key_sources.end(), sd_keys.begin(),
  196. sd_key_sources.begin(), [&cipher](const Key256& source, Key256& out) {
  197. cipher.Transcode(source.data(), source.size(), out.data(), Op::Decrypt);
  198. return source; ///< Return unaltered source to satisfy output requirement.
  199. });
  200. keys.SetKey(S256KeyType::SDKey, sd_keys[0], static_cast<u64>(SDKeyType::Save));
  201. keys.SetKey(S256KeyType::SDKey, sd_keys[1], static_cast<u64>(SDKeyType::NCA));
  202. return Loader::ResultStatus::Success;
  203. }
  204. std::vector<TicketRaw> GetTicketblob(const FileUtil::IOFile& ticket_save) {
  205. if (!ticket_save.IsOpen())
  206. return {};
  207. std::vector<u8> buffer(ticket_save.GetSize());
  208. if (ticket_save.ReadBytes(buffer.data(), buffer.size()) != buffer.size()) {
  209. return {};
  210. }
  211. std::vector<TicketRaw> out;
  212. for (std::size_t offset = 0; offset + 0x4 < buffer.size(); ++offset) {
  213. if (buffer[offset] == 0x4 && buffer[offset + 1] == 0x0 && buffer[offset + 2] == 0x1 &&
  214. buffer[offset + 3] == 0x0) {
  215. out.emplace_back();
  216. auto& next = out.back();
  217. std::memcpy(&next, buffer.data() + offset, sizeof(TicketRaw));
  218. offset += next.size();
  219. }
  220. }
  221. return out;
  222. }
  223. template <size_t size>
  224. static std::array<u8, size> operator^(const std::array<u8, size>& lhs,
  225. const std::array<u8, size>& rhs) {
  226. std::array<u8, size> out{};
  227. std::transform(lhs.begin(), lhs.end(), rhs.begin(), out.begin(), std::bit_xor<>());
  228. return out;
  229. }
  230. template <size_t target_size, size_t in_size>
  231. static std::array<u8, target_size> MGF1(const std::array<u8, in_size>& seed) {
  232. // Avoids truncation overflow within the loop below.
  233. static_assert(target_size <= 0xFF);
  234. std::array<u8, in_size + 4> seed_exp{};
  235. std::memcpy(seed_exp.data(), seed.data(), in_size);
  236. std::vector<u8> out;
  237. size_t i = 0;
  238. while (out.size() < target_size) {
  239. out.resize(out.size() + 0x20);
  240. seed_exp[in_size + 3] = static_cast<u8>(i);
  241. mbedtls_sha256(seed_exp.data(), seed_exp.size(), out.data() + out.size() - 0x20, 0);
  242. ++i;
  243. }
  244. std::array<u8, target_size> target;
  245. std::memcpy(target.data(), out.data(), target_size);
  246. return target;
  247. }
  248. template <size_t size>
  249. static std::optional<u64> FindTicketOffset(const std::array<u8, size>& data) {
  250. u64 offset = 0;
  251. for (size_t i = 0x20; i < data.size() - 0x10; ++i) {
  252. if (data[i] == 0x1) {
  253. offset = i + 1;
  254. break;
  255. } else if (data[i] != 0x0) {
  256. return {};
  257. }
  258. }
  259. return offset;
  260. }
  261. std::optional<std::pair<Key128, Key128>> ParseTicket(const TicketRaw& ticket,
  262. const RSAKeyPair<2048>& key) {
  263. u32 cert_authority;
  264. std::memcpy(&cert_authority, ticket.data() + 0x140, sizeof(cert_authority));
  265. if (cert_authority == 0)
  266. return {};
  267. if (cert_authority != Common::MakeMagic('R', 'o', 'o', 't')) {
  268. LOG_INFO(Crypto,
  269. "Attempting to parse ticket with non-standard certificate authority {:08X}.",
  270. cert_authority);
  271. }
  272. Key128 rights_id;
  273. std::memcpy(rights_id.data(), ticket.data() + 0x2A0, sizeof(Key128));
  274. if (rights_id == Key128{})
  275. return {};
  276. Key128 key_temp{};
  277. if (!std::any_of(ticket.begin() + 0x190, ticket.begin() + 0x280, [](u8 b) { return b != 0; })) {
  278. std::memcpy(key_temp.data(), ticket.data() + 0x180, key_temp.size());
  279. return std::make_pair(rights_id, key_temp);
  280. }
  281. mbedtls_mpi D; // RSA Private Exponent
  282. mbedtls_mpi N; // RSA Modulus
  283. mbedtls_mpi S; // Input
  284. mbedtls_mpi M; // Output
  285. mbedtls_mpi_init(&D);
  286. mbedtls_mpi_init(&N);
  287. mbedtls_mpi_init(&S);
  288. mbedtls_mpi_init(&M);
  289. mbedtls_mpi_read_binary(&D, key.decryption_key.data(), key.decryption_key.size());
  290. mbedtls_mpi_read_binary(&N, key.modulus.data(), key.modulus.size());
  291. mbedtls_mpi_read_binary(&S, ticket.data() + 0x180, 0x100);
  292. mbedtls_mpi_exp_mod(&M, &S, &D, &N, nullptr);
  293. std::array<u8, 0x100> rsa_step;
  294. mbedtls_mpi_write_binary(&M, rsa_step.data(), rsa_step.size());
  295. u8 m_0 = rsa_step[0];
  296. std::array<u8, 0x20> m_1;
  297. std::memcpy(m_1.data(), rsa_step.data() + 0x01, m_1.size());
  298. std::array<u8, 0xDF> m_2;
  299. std::memcpy(m_2.data(), rsa_step.data() + 0x21, m_2.size());
  300. if (m_0 != 0)
  301. return {};
  302. m_1 = m_1 ^ MGF1<0x20>(m_2);
  303. m_2 = m_2 ^ MGF1<0xDF>(m_1);
  304. const auto offset = FindTicketOffset(m_2);
  305. if (!offset)
  306. return {};
  307. ASSERT(*offset > 0);
  308. std::memcpy(key_temp.data(), m_2.data() + *offset, key_temp.size());
  309. return std::make_pair(rights_id, key_temp);
  310. }
  311. KeyManager::KeyManager() {
  312. // Initialize keys
  313. const std::string hactool_keys_dir = FileUtil::GetHactoolConfigurationPath();
  314. const std::string yuzu_keys_dir = FileUtil::GetUserPath(FileUtil::UserPath::KeysDir);
  315. if (Settings::values.use_dev_keys) {
  316. dev_mode = true;
  317. AttemptLoadKeyFile(yuzu_keys_dir, hactool_keys_dir, "dev.keys", false);
  318. AttemptLoadKeyFile(yuzu_keys_dir, yuzu_keys_dir, "dev.keys_autogenerated", false);
  319. } else {
  320. dev_mode = false;
  321. AttemptLoadKeyFile(yuzu_keys_dir, hactool_keys_dir, "prod.keys", false);
  322. AttemptLoadKeyFile(yuzu_keys_dir, yuzu_keys_dir, "prod.keys_autogenerated", false);
  323. }
  324. AttemptLoadKeyFile(yuzu_keys_dir, hactool_keys_dir, "title.keys", true);
  325. AttemptLoadKeyFile(yuzu_keys_dir, yuzu_keys_dir, "title.keys_autogenerated", true);
  326. AttemptLoadKeyFile(yuzu_keys_dir, hactool_keys_dir, "console.keys", false);
  327. AttemptLoadKeyFile(yuzu_keys_dir, yuzu_keys_dir, "console.keys_autogenerated", false);
  328. }
  329. static bool ValidCryptoRevisionString(std::string_view base, size_t begin, size_t length) {
  330. if (base.size() < begin + length)
  331. return false;
  332. return std::all_of(base.begin() + begin, base.begin() + begin + length,
  333. [](u8 c) { return std::isxdigit(c); });
  334. }
  335. void KeyManager::LoadFromFile(const std::string& filename, bool is_title_keys) {
  336. std::ifstream file;
  337. OpenFStream(file, filename, std::ios_base::in);
  338. if (!file.is_open())
  339. return;
  340. std::string line;
  341. while (std::getline(file, line)) {
  342. std::vector<std::string> out;
  343. std::stringstream stream(line);
  344. std::string item;
  345. while (std::getline(stream, item, '='))
  346. out.push_back(std::move(item));
  347. if (out.size() != 2)
  348. continue;
  349. out[0].erase(std::remove(out[0].begin(), out[0].end(), ' '), out[0].end());
  350. out[1].erase(std::remove(out[1].begin(), out[1].end(), ' '), out[1].end());
  351. if (out[0].compare(0, 1, "#") == 0)
  352. continue;
  353. if (is_title_keys) {
  354. auto rights_id_raw = Common::HexStringToArray<16>(out[0]);
  355. u128 rights_id{};
  356. std::memcpy(rights_id.data(), rights_id_raw.data(), rights_id_raw.size());
  357. Key128 key = Common::HexStringToArray<16>(out[1]);
  358. s128_keys[{S128KeyType::Titlekey, rights_id[1], rights_id[0]}] = key;
  359. } else {
  360. std::transform(out[0].begin(), out[0].end(), out[0].begin(), ::tolower);
  361. if (s128_file_id.find(out[0]) != s128_file_id.end()) {
  362. const auto index = s128_file_id.at(out[0]);
  363. Key128 key = Common::HexStringToArray<16>(out[1]);
  364. s128_keys[{index.type, index.field1, index.field2}] = key;
  365. } else if (s256_file_id.find(out[0]) != s256_file_id.end()) {
  366. const auto index = s256_file_id.at(out[0]);
  367. Key256 key = Common::HexStringToArray<32>(out[1]);
  368. s256_keys[{index.type, index.field1, index.field2}] = key;
  369. } else if (out[0].compare(0, 8, "keyblob_") == 0 &&
  370. out[0].compare(0, 9, "keyblob_k") != 0) {
  371. if (!ValidCryptoRevisionString(out[0], 8, 2))
  372. continue;
  373. const auto index = std::stoul(out[0].substr(8, 2), nullptr, 16);
  374. keyblobs[index] = Common::HexStringToArray<0x90>(out[1]);
  375. } else if (out[0].compare(0, 18, "encrypted_keyblob_") == 0) {
  376. if (!ValidCryptoRevisionString(out[0], 18, 2))
  377. continue;
  378. const auto index = std::stoul(out[0].substr(18, 2), nullptr, 16);
  379. encrypted_keyblobs[index] = Common::HexStringToArray<0xB0>(out[1]);
  380. } else {
  381. for (const auto& kv : KEYS_VARIABLE_LENGTH) {
  382. if (!ValidCryptoRevisionString(out[0], kv.second.size(), 2))
  383. continue;
  384. if (out[0].compare(0, kv.second.size(), kv.second) == 0) {
  385. const auto index =
  386. std::stoul(out[0].substr(kv.second.size(), 2), nullptr, 16);
  387. const auto sub = kv.first.second;
  388. if (sub == 0) {
  389. s128_keys[{kv.first.first, index, 0}] =
  390. Common::HexStringToArray<16>(out[1]);
  391. } else {
  392. s128_keys[{kv.first.first, kv.first.second, index}] =
  393. Common::HexStringToArray<16>(out[1]);
  394. }
  395. break;
  396. }
  397. }
  398. static constexpr std::array<const char*, 3> kak_names = {
  399. "key_area_key_application_", "key_area_key_ocean_", "key_area_key_system_"};
  400. for (size_t j = 0; j < kak_names.size(); ++j) {
  401. const auto& match = kak_names[j];
  402. if (out[0].compare(0, std::strlen(match), match) == 0) {
  403. const auto index =
  404. std::stoul(out[0].substr(std::strlen(match), 2), nullptr, 16);
  405. s128_keys[{S128KeyType::KeyArea, index, j}] =
  406. Common::HexStringToArray<16>(out[1]);
  407. }
  408. }
  409. }
  410. }
  411. }
  412. }
  413. void KeyManager::AttemptLoadKeyFile(const std::string& dir1, const std::string& dir2,
  414. const std::string& filename, bool title) {
  415. if (FileUtil::Exists(dir1 + DIR_SEP + filename))
  416. LoadFromFile(dir1 + DIR_SEP + filename, title);
  417. else if (FileUtil::Exists(dir2 + DIR_SEP + filename))
  418. LoadFromFile(dir2 + DIR_SEP + filename, title);
  419. }
  420. bool KeyManager::BaseDeriveNecessary() const {
  421. const auto check_key_existence = [this](auto key_type, u64 index1 = 0, u64 index2 = 0) {
  422. return !HasKey(key_type, index1, index2);
  423. };
  424. if (check_key_existence(S256KeyType::Header))
  425. return true;
  426. for (size_t i = 0; i < CURRENT_CRYPTO_REVISION; ++i) {
  427. if (check_key_existence(S128KeyType::Master, i) ||
  428. check_key_existence(S128KeyType::KeyArea, i,
  429. static_cast<u64>(KeyAreaKeyType::Application)) ||
  430. check_key_existence(S128KeyType::KeyArea, i, static_cast<u64>(KeyAreaKeyType::Ocean)) ||
  431. check_key_existence(S128KeyType::KeyArea, i,
  432. static_cast<u64>(KeyAreaKeyType::System)) ||
  433. check_key_existence(S128KeyType::Titlekek, i))
  434. return true;
  435. }
  436. return false;
  437. }
  438. bool KeyManager::HasKey(S128KeyType id, u64 field1, u64 field2) const {
  439. return s128_keys.find({id, field1, field2}) != s128_keys.end();
  440. }
  441. bool KeyManager::HasKey(S256KeyType id, u64 field1, u64 field2) const {
  442. return s256_keys.find({id, field1, field2}) != s256_keys.end();
  443. }
  444. Key128 KeyManager::GetKey(S128KeyType id, u64 field1, u64 field2) const {
  445. if (!HasKey(id, field1, field2))
  446. return {};
  447. return s128_keys.at({id, field1, field2});
  448. }
  449. Key256 KeyManager::GetKey(S256KeyType id, u64 field1, u64 field2) const {
  450. if (!HasKey(id, field1, field2))
  451. return {};
  452. return s256_keys.at({id, field1, field2});
  453. }
  454. Key256 KeyManager::GetBISKey(u8 partition_id) const {
  455. Key256 out{};
  456. for (const auto& bis_type : {BISKeyType::Crypto, BISKeyType::Tweak}) {
  457. if (HasKey(S128KeyType::BIS, partition_id, static_cast<u64>(bis_type))) {
  458. std::memcpy(
  459. out.data() + sizeof(Key128) * static_cast<u64>(bis_type),
  460. s128_keys.at({S128KeyType::BIS, partition_id, static_cast<u64>(bis_type)}).data(),
  461. sizeof(Key128));
  462. }
  463. }
  464. return out;
  465. }
  466. template <size_t Size>
  467. void KeyManager::WriteKeyToFile(KeyCategory category, std::string_view keyname,
  468. const std::array<u8, Size>& key) {
  469. const std::string yuzu_keys_dir = FileUtil::GetUserPath(FileUtil::UserPath::KeysDir);
  470. std::string filename = "title.keys_autogenerated";
  471. if (category == KeyCategory::Standard)
  472. filename = dev_mode ? "dev.keys_autogenerated" : "prod.keys_autogenerated";
  473. else if (category == KeyCategory::Console)
  474. filename = "console.keys_autogenerated";
  475. const auto add_info_text = !FileUtil::Exists(yuzu_keys_dir + DIR_SEP + filename);
  476. FileUtil::CreateFullPath(yuzu_keys_dir + DIR_SEP + filename);
  477. std::ofstream file(yuzu_keys_dir + DIR_SEP + filename, std::ios::app);
  478. if (!file.is_open())
  479. return;
  480. if (add_info_text) {
  481. file
  482. << "# This file is autogenerated by Yuzu\n"
  483. << "# It serves to store keys that were automatically generated from the normal keys\n"
  484. << "# If you are experiencing issues involving keys, it may help to delete this file\n";
  485. }
  486. file << fmt::format("\n{} = {}", keyname, Common::HexArrayToString(key));
  487. AttemptLoadKeyFile(yuzu_keys_dir, yuzu_keys_dir, filename, category == KeyCategory::Title);
  488. }
  489. void KeyManager::SetKey(S128KeyType id, Key128 key, u64 field1, u64 field2) {
  490. if (s128_keys.find({id, field1, field2}) != s128_keys.end())
  491. return;
  492. if (id == S128KeyType::Titlekey) {
  493. Key128 rights_id;
  494. std::memcpy(rights_id.data(), &field2, sizeof(u64));
  495. std::memcpy(rights_id.data() + sizeof(u64), &field1, sizeof(u64));
  496. WriteKeyToFile(KeyCategory::Title, Common::HexArrayToString(rights_id), key);
  497. }
  498. auto category = KeyCategory::Standard;
  499. if (id == S128KeyType::Keyblob || id == S128KeyType::KeyblobMAC || id == S128KeyType::TSEC ||
  500. id == S128KeyType::SecureBoot || id == S128KeyType::SDSeed || id == S128KeyType::BIS) {
  501. category = KeyCategory::Console;
  502. }
  503. const auto iter2 = std::find_if(
  504. s128_file_id.begin(), s128_file_id.end(),
  505. [&id, &field1, &field2](const std::pair<std::string, KeyIndex<S128KeyType>> elem) {
  506. return std::tie(elem.second.type, elem.second.field1, elem.second.field2) ==
  507. std::tie(id, field1, field2);
  508. });
  509. if (iter2 != s128_file_id.end())
  510. WriteKeyToFile(category, iter2->first, key);
  511. // Variable cases
  512. if (id == S128KeyType::KeyArea) {
  513. static constexpr std::array<const char*, 3> kak_names = {"key_area_key_application_{:02X}",
  514. "key_area_key_ocean_{:02X}",
  515. "key_area_key_system_{:02X}"};
  516. WriteKeyToFile(category, fmt::format(kak_names.at(field2), field1), key);
  517. } else if (id == S128KeyType::Master) {
  518. WriteKeyToFile(category, fmt::format("master_key_{:02X}", field1), key);
  519. } else if (id == S128KeyType::Package1) {
  520. WriteKeyToFile(category, fmt::format("package1_key_{:02X}", field1), key);
  521. } else if (id == S128KeyType::Package2) {
  522. WriteKeyToFile(category, fmt::format("package2_key_{:02X}", field1), key);
  523. } else if (id == S128KeyType::Titlekek) {
  524. WriteKeyToFile(category, fmt::format("titlekek_{:02X}", field1), key);
  525. } else if (id == S128KeyType::Keyblob) {
  526. WriteKeyToFile(category, fmt::format("keyblob_key_{:02X}", field1), key);
  527. } else if (id == S128KeyType::KeyblobMAC) {
  528. WriteKeyToFile(category, fmt::format("keyblob_mac_key_{:02X}", field1), key);
  529. } else if (id == S128KeyType::Source && field1 == static_cast<u64>(SourceKeyType::Keyblob)) {
  530. WriteKeyToFile(category, fmt::format("keyblob_key_source_{:02X}", field2), key);
  531. }
  532. s128_keys[{id, field1, field2}] = key;
  533. }
  534. void KeyManager::SetKey(S256KeyType id, Key256 key, u64 field1, u64 field2) {
  535. if (s256_keys.find({id, field1, field2}) != s256_keys.end())
  536. return;
  537. const auto iter = std::find_if(
  538. s256_file_id.begin(), s256_file_id.end(),
  539. [&id, &field1, &field2](const std::pair<std::string, KeyIndex<S256KeyType>> elem) {
  540. return std::tie(elem.second.type, elem.second.field1, elem.second.field2) ==
  541. std::tie(id, field1, field2);
  542. });
  543. if (iter != s256_file_id.end())
  544. WriteKeyToFile(KeyCategory::Standard, iter->first, key);
  545. s256_keys[{id, field1, field2}] = key;
  546. }
  547. bool KeyManager::KeyFileExists(bool title) {
  548. const std::string hactool_keys_dir = FileUtil::GetHactoolConfigurationPath();
  549. const std::string yuzu_keys_dir = FileUtil::GetUserPath(FileUtil::UserPath::KeysDir);
  550. if (title) {
  551. return FileUtil::Exists(hactool_keys_dir + DIR_SEP + "title.keys") ||
  552. FileUtil::Exists(yuzu_keys_dir + DIR_SEP + "title.keys");
  553. }
  554. if (Settings::values.use_dev_keys) {
  555. return FileUtil::Exists(hactool_keys_dir + DIR_SEP + "dev.keys") ||
  556. FileUtil::Exists(yuzu_keys_dir + DIR_SEP + "dev.keys");
  557. }
  558. return FileUtil::Exists(hactool_keys_dir + DIR_SEP + "prod.keys") ||
  559. FileUtil::Exists(yuzu_keys_dir + DIR_SEP + "prod.keys");
  560. }
  561. void KeyManager::DeriveSDSeedLazy() {
  562. if (HasKey(S128KeyType::SDSeed))
  563. return;
  564. const auto res = DeriveSDSeed();
  565. if (res)
  566. SetKey(S128KeyType::SDSeed, *res);
  567. }
  568. static Key128 CalculateCMAC(const u8* source, size_t size, const Key128& key) {
  569. Key128 out{};
  570. mbedtls_cipher_cmac(mbedtls_cipher_info_from_type(MBEDTLS_CIPHER_AES_128_ECB), key.data(),
  571. key.size() * 8, source, size, out.data());
  572. return out;
  573. }
  574. void KeyManager::DeriveBase() {
  575. if (!BaseDeriveNecessary())
  576. return;
  577. if (!HasKey(S128KeyType::SecureBoot) || !HasKey(S128KeyType::TSEC))
  578. return;
  579. const auto has_bis = [this](u64 id) {
  580. return HasKey(S128KeyType::BIS, id, static_cast<u64>(BISKeyType::Crypto)) &&
  581. HasKey(S128KeyType::BIS, id, static_cast<u64>(BISKeyType::Tweak));
  582. };
  583. const auto copy_bis = [this](u64 id_from, u64 id_to) {
  584. SetKey(S128KeyType::BIS,
  585. GetKey(S128KeyType::BIS, id_from, static_cast<u64>(BISKeyType::Crypto)), id_to,
  586. static_cast<u64>(BISKeyType::Crypto));
  587. SetKey(S128KeyType::BIS,
  588. GetKey(S128KeyType::BIS, id_from, static_cast<u64>(BISKeyType::Tweak)), id_to,
  589. static_cast<u64>(BISKeyType::Tweak));
  590. };
  591. if (has_bis(2) && !has_bis(3))
  592. copy_bis(2, 3);
  593. else if (has_bis(3) && !has_bis(2))
  594. copy_bis(3, 2);
  595. std::bitset<32> revisions(0xFFFFFFFF);
  596. for (size_t i = 0; i < revisions.size(); ++i) {
  597. if (!HasKey(S128KeyType::Source, static_cast<u64>(SourceKeyType::Keyblob), i) ||
  598. encrypted_keyblobs[i] == std::array<u8, 0xB0>{}) {
  599. revisions.reset(i);
  600. }
  601. }
  602. if (!revisions.any())
  603. return;
  604. const auto sbk = GetKey(S128KeyType::SecureBoot);
  605. const auto tsec = GetKey(S128KeyType::TSEC);
  606. for (size_t i = 0; i < revisions.size(); ++i) {
  607. if (!revisions[i])
  608. continue;
  609. // Derive keyblob key
  610. const auto key = DeriveKeyblobKey(
  611. sbk, tsec, GetKey(S128KeyType::Source, static_cast<u64>(SourceKeyType::Keyblob), i));
  612. SetKey(S128KeyType::Keyblob, key, i);
  613. // Derive keyblob MAC key
  614. if (!HasKey(S128KeyType::Source, static_cast<u64>(SourceKeyType::KeyblobMAC)))
  615. continue;
  616. const auto mac_key = DeriveKeyblobMACKey(
  617. key, GetKey(S128KeyType::Source, static_cast<u64>(SourceKeyType::KeyblobMAC)));
  618. SetKey(S128KeyType::KeyblobMAC, mac_key, i);
  619. Key128 cmac = CalculateCMAC(encrypted_keyblobs[i].data() + 0x10, 0xA0, mac_key);
  620. if (std::memcmp(cmac.data(), encrypted_keyblobs[i].data(), cmac.size()) != 0)
  621. continue;
  622. // Decrypt keyblob
  623. if (keyblobs[i] == std::array<u8, 0x90>{}) {
  624. keyblobs[i] = DecryptKeyblob(encrypted_keyblobs[i], key);
  625. WriteKeyToFile<0x90>(KeyCategory::Console, fmt::format("keyblob_{:02X}", i),
  626. keyblobs[i]);
  627. }
  628. Key128 package1;
  629. std::memcpy(package1.data(), keyblobs[i].data() + 0x80, sizeof(Key128));
  630. SetKey(S128KeyType::Package1, package1, i);
  631. // Derive master key
  632. if (HasKey(S128KeyType::Source, static_cast<u64>(SourceKeyType::Master))) {
  633. SetKey(S128KeyType::Master,
  634. DeriveMasterKey(keyblobs[i], GetKey(S128KeyType::Source,
  635. static_cast<u64>(SourceKeyType::Master))),
  636. i);
  637. }
  638. }
  639. revisions.set();
  640. for (size_t i = 0; i < revisions.size(); ++i) {
  641. if (!HasKey(S128KeyType::Master, i))
  642. revisions.reset(i);
  643. }
  644. if (!revisions.any())
  645. return;
  646. for (size_t i = 0; i < revisions.size(); ++i) {
  647. if (!revisions[i])
  648. continue;
  649. // Derive general purpose keys
  650. DeriveGeneralPurposeKeys(i);
  651. }
  652. if (HasKey(S128KeyType::Master, 0) &&
  653. HasKey(S128KeyType::Source, static_cast<u64>(SourceKeyType::AESKeyGeneration)) &&
  654. HasKey(S128KeyType::Source, static_cast<u64>(SourceKeyType::AESKekGeneration)) &&
  655. HasKey(S128KeyType::Source, static_cast<u64>(SourceKeyType::HeaderKek)) &&
  656. HasKey(S256KeyType::HeaderSource)) {
  657. const auto header_kek = GenerateKeyEncryptionKey(
  658. GetKey(S128KeyType::Source, static_cast<u64>(SourceKeyType::HeaderKek)),
  659. GetKey(S128KeyType::Master, 0),
  660. GetKey(S128KeyType::Source, static_cast<u64>(SourceKeyType::AESKekGeneration)),
  661. GetKey(S128KeyType::Source, static_cast<u64>(SourceKeyType::AESKeyGeneration)));
  662. SetKey(S128KeyType::HeaderKek, header_kek);
  663. AESCipher<Key128> header_cipher(header_kek, Mode::ECB);
  664. Key256 out = GetKey(S256KeyType::HeaderSource);
  665. header_cipher.Transcode(out.data(), out.size(), out.data(), Op::Decrypt);
  666. SetKey(S256KeyType::Header, out);
  667. }
  668. }
  669. void KeyManager::DeriveETicket(PartitionDataManager& data) {
  670. // ETicket keys
  671. const auto es = Core::System::GetInstance().GetContentProvider().GetEntry(
  672. 0x0100000000000033, FileSys::ContentRecordType::Program);
  673. if (es == nullptr)
  674. return;
  675. const auto exefs = es->GetExeFS();
  676. if (exefs == nullptr)
  677. return;
  678. const auto main = exefs->GetFile("main");
  679. if (main == nullptr)
  680. return;
  681. const auto bytes = main->ReadAllBytes();
  682. const auto eticket_kek = FindKeyFromHex16(bytes, eticket_source_hashes[0]);
  683. const auto eticket_kekek = FindKeyFromHex16(bytes, eticket_source_hashes[1]);
  684. const auto seed3 = data.GetRSAKekSeed3();
  685. const auto mask0 = data.GetRSAKekMask0();
  686. if (eticket_kek != Key128{})
  687. SetKey(S128KeyType::Source, eticket_kek, static_cast<size_t>(SourceKeyType::ETicketKek));
  688. if (eticket_kekek != Key128{}) {
  689. SetKey(S128KeyType::Source, eticket_kekek,
  690. static_cast<size_t>(SourceKeyType::ETicketKekek));
  691. }
  692. if (seed3 != Key128{})
  693. SetKey(S128KeyType::RSAKek, seed3, static_cast<size_t>(RSAKekType::Seed3));
  694. if (mask0 != Key128{})
  695. SetKey(S128KeyType::RSAKek, mask0, static_cast<size_t>(RSAKekType::Mask0));
  696. if (eticket_kek == Key128{} || eticket_kekek == Key128{} || seed3 == Key128{} ||
  697. mask0 == Key128{}) {
  698. return;
  699. }
  700. Key128 rsa_oaep_kek{};
  701. std::transform(seed3.begin(), seed3.end(), mask0.begin(), rsa_oaep_kek.begin(),
  702. std::bit_xor<>());
  703. if (rsa_oaep_kek == Key128{})
  704. return;
  705. SetKey(S128KeyType::Source, rsa_oaep_kek,
  706. static_cast<u64>(SourceKeyType::RSAOaepKekGeneration));
  707. Key128 temp_kek{};
  708. Key128 temp_kekek{};
  709. Key128 eticket_final{};
  710. // Derive ETicket RSA Kek
  711. AESCipher<Key128> es_master(GetKey(S128KeyType::Master), Mode::ECB);
  712. es_master.Transcode(rsa_oaep_kek.data(), rsa_oaep_kek.size(), temp_kek.data(), Op::Decrypt);
  713. AESCipher<Key128> es_kekek(temp_kek, Mode::ECB);
  714. es_kekek.Transcode(eticket_kekek.data(), eticket_kekek.size(), temp_kekek.data(), Op::Decrypt);
  715. AESCipher<Key128> es_kek(temp_kekek, Mode::ECB);
  716. es_kek.Transcode(eticket_kek.data(), eticket_kek.size(), eticket_final.data(), Op::Decrypt);
  717. if (eticket_final == Key128{})
  718. return;
  719. SetKey(S128KeyType::ETicketRSAKek, eticket_final);
  720. // Titlekeys
  721. data.DecryptProdInfo(GetBISKey(0));
  722. const auto eticket_extended_kek = data.GetETicketExtendedKek();
  723. std::vector<u8> extended_iv(0x10);
  724. std::memcpy(extended_iv.data(), eticket_extended_kek.data(), extended_iv.size());
  725. std::array<u8, 0x230> extended_dec{};
  726. AESCipher<Key128> rsa_1(eticket_final, Mode::CTR);
  727. rsa_1.SetIV(extended_iv);
  728. rsa_1.Transcode(eticket_extended_kek.data() + 0x10, eticket_extended_kek.size() - 0x10,
  729. extended_dec.data(), Op::Decrypt);
  730. RSAKeyPair<2048> rsa_key{};
  731. std::memcpy(rsa_key.decryption_key.data(), extended_dec.data(), rsa_key.decryption_key.size());
  732. std::memcpy(rsa_key.modulus.data(), extended_dec.data() + 0x100, rsa_key.modulus.size());
  733. std::memcpy(rsa_key.exponent.data(), extended_dec.data() + 0x200, rsa_key.exponent.size());
  734. const FileUtil::IOFile save1(FileUtil::GetUserPath(FileUtil::UserPath::NANDDir) +
  735. "/system/save/80000000000000e1",
  736. "rb+");
  737. const FileUtil::IOFile save2(FileUtil::GetUserPath(FileUtil::UserPath::NANDDir) +
  738. "/system/save/80000000000000e2",
  739. "rb+");
  740. const auto blob2 = GetTicketblob(save2);
  741. auto res = GetTicketblob(save1);
  742. res.insert(res.end(), blob2.begin(), blob2.end());
  743. for (const auto& raw : res) {
  744. const auto pair = ParseTicket(raw, rsa_key);
  745. if (!pair)
  746. continue;
  747. const auto& [rid, key] = *pair;
  748. u128 rights_id;
  749. std::memcpy(rights_id.data(), rid.data(), rid.size());
  750. SetKey(S128KeyType::Titlekey, key, rights_id[1], rights_id[0]);
  751. }
  752. }
  753. void KeyManager::SetKeyWrapped(S128KeyType id, Key128 key, u64 field1, u64 field2) {
  754. if (key == Key128{})
  755. return;
  756. SetKey(id, key, field1, field2);
  757. }
  758. void KeyManager::SetKeyWrapped(S256KeyType id, Key256 key, u64 field1, u64 field2) {
  759. if (key == Key256{})
  760. return;
  761. SetKey(id, key, field1, field2);
  762. }
  763. void KeyManager::PopulateFromPartitionData(PartitionDataManager& data) {
  764. if (!BaseDeriveNecessary())
  765. return;
  766. if (!data.HasBoot0())
  767. return;
  768. for (size_t i = 0; i < encrypted_keyblobs.size(); ++i) {
  769. if (encrypted_keyblobs[i] != std::array<u8, 0xB0>{})
  770. continue;
  771. encrypted_keyblobs[i] = data.GetEncryptedKeyblob(i);
  772. WriteKeyToFile<0xB0>(KeyCategory::Console, fmt::format("encrypted_keyblob_{:02X}", i),
  773. encrypted_keyblobs[i]);
  774. }
  775. SetKeyWrapped(S128KeyType::Source, data.GetPackage2KeySource(),
  776. static_cast<u64>(SourceKeyType::Package2));
  777. SetKeyWrapped(S128KeyType::Source, data.GetAESKekGenerationSource(),
  778. static_cast<u64>(SourceKeyType::AESKekGeneration));
  779. SetKeyWrapped(S128KeyType::Source, data.GetTitlekekSource(),
  780. static_cast<u64>(SourceKeyType::Titlekek));
  781. SetKeyWrapped(S128KeyType::Source, data.GetMasterKeySource(),
  782. static_cast<u64>(SourceKeyType::Master));
  783. SetKeyWrapped(S128KeyType::Source, data.GetKeyblobMACKeySource(),
  784. static_cast<u64>(SourceKeyType::KeyblobMAC));
  785. for (size_t i = 0; i < PartitionDataManager::MAX_KEYBLOB_SOURCE_HASH; ++i) {
  786. SetKeyWrapped(S128KeyType::Source, data.GetKeyblobKeySource(i),
  787. static_cast<u64>(SourceKeyType::Keyblob), i);
  788. }
  789. if (data.HasFuses())
  790. SetKeyWrapped(S128KeyType::SecureBoot, data.GetSecureBootKey());
  791. DeriveBase();
  792. Key128 latest_master{};
  793. for (s8 i = 0x1F; i >= 0; --i) {
  794. if (GetKey(S128KeyType::Master, static_cast<u8>(i)) != Key128{}) {
  795. latest_master = GetKey(S128KeyType::Master, static_cast<u8>(i));
  796. break;
  797. }
  798. }
  799. const auto masters = data.GetTZMasterKeys(latest_master);
  800. for (size_t i = 0; i < masters.size(); ++i) {
  801. if (masters[i] != Key128{} && !HasKey(S128KeyType::Master, i))
  802. SetKey(S128KeyType::Master, masters[i], i);
  803. }
  804. DeriveBase();
  805. if (!data.HasPackage2())
  806. return;
  807. std::array<Key128, 0x20> package2_keys{};
  808. for (size_t i = 0; i < package2_keys.size(); ++i) {
  809. if (HasKey(S128KeyType::Package2, i))
  810. package2_keys[i] = GetKey(S128KeyType::Package2, i);
  811. }
  812. data.DecryptPackage2(package2_keys, Package2Type::NormalMain);
  813. SetKeyWrapped(S128KeyType::Source, data.GetKeyAreaKeyApplicationSource(),
  814. static_cast<u64>(SourceKeyType::KeyAreaKey),
  815. static_cast<u64>(KeyAreaKeyType::Application));
  816. SetKeyWrapped(S128KeyType::Source, data.GetKeyAreaKeyOceanSource(),
  817. static_cast<u64>(SourceKeyType::KeyAreaKey),
  818. static_cast<u64>(KeyAreaKeyType::Ocean));
  819. SetKeyWrapped(S128KeyType::Source, data.GetKeyAreaKeySystemSource(),
  820. static_cast<u64>(SourceKeyType::KeyAreaKey),
  821. static_cast<u64>(KeyAreaKeyType::System));
  822. SetKeyWrapped(S128KeyType::Source, data.GetSDKekSource(),
  823. static_cast<u64>(SourceKeyType::SDKek));
  824. SetKeyWrapped(S256KeyType::SDKeySource, data.GetSDSaveKeySource(),
  825. static_cast<u64>(SDKeyType::Save));
  826. SetKeyWrapped(S256KeyType::SDKeySource, data.GetSDNCAKeySource(),
  827. static_cast<u64>(SDKeyType::NCA));
  828. SetKeyWrapped(S128KeyType::Source, data.GetHeaderKekSource(),
  829. static_cast<u64>(SourceKeyType::HeaderKek));
  830. SetKeyWrapped(S256KeyType::HeaderSource, data.GetHeaderKeySource());
  831. SetKeyWrapped(S128KeyType::Source, data.GetAESKeyGenerationSource(),
  832. static_cast<u64>(SourceKeyType::AESKeyGeneration));
  833. DeriveBase();
  834. }
  835. const boost::container::flat_map<std::string, KeyIndex<S128KeyType>> KeyManager::s128_file_id = {
  836. {"eticket_rsa_kek", {S128KeyType::ETicketRSAKek, 0, 0}},
  837. {"eticket_rsa_kek_source",
  838. {S128KeyType::Source, static_cast<u64>(SourceKeyType::ETicketKek), 0}},
  839. {"eticket_rsa_kekek_source",
  840. {S128KeyType::Source, static_cast<u64>(SourceKeyType::ETicketKekek), 0}},
  841. {"rsa_kek_mask_0", {S128KeyType::RSAKek, static_cast<u64>(RSAKekType::Mask0), 0}},
  842. {"rsa_kek_seed_3", {S128KeyType::RSAKek, static_cast<u64>(RSAKekType::Seed3), 0}},
  843. {"rsa_oaep_kek_generation_source",
  844. {S128KeyType::Source, static_cast<u64>(SourceKeyType::RSAOaepKekGeneration), 0}},
  845. {"sd_card_kek_source", {S128KeyType::Source, static_cast<u64>(SourceKeyType::SDKek), 0}},
  846. {"aes_kek_generation_source",
  847. {S128KeyType::Source, static_cast<u64>(SourceKeyType::AESKekGeneration), 0}},
  848. {"aes_key_generation_source",
  849. {S128KeyType::Source, static_cast<u64>(SourceKeyType::AESKeyGeneration), 0}},
  850. {"package2_key_source", {S128KeyType::Source, static_cast<u64>(SourceKeyType::Package2), 0}},
  851. {"master_key_source", {S128KeyType::Source, static_cast<u64>(SourceKeyType::Master), 0}},
  852. {"header_kek_source", {S128KeyType::Source, static_cast<u64>(SourceKeyType::HeaderKek), 0}},
  853. {"key_area_key_application_source",
  854. {S128KeyType::Source, static_cast<u64>(SourceKeyType::KeyAreaKey),
  855. static_cast<u64>(KeyAreaKeyType::Application)}},
  856. {"key_area_key_ocean_source",
  857. {S128KeyType::Source, static_cast<u64>(SourceKeyType::KeyAreaKey),
  858. static_cast<u64>(KeyAreaKeyType::Ocean)}},
  859. {"key_area_key_system_source",
  860. {S128KeyType::Source, static_cast<u64>(SourceKeyType::KeyAreaKey),
  861. static_cast<u64>(KeyAreaKeyType::System)}},
  862. {"titlekek_source", {S128KeyType::Source, static_cast<u64>(SourceKeyType::Titlekek), 0}},
  863. {"keyblob_mac_key_source", {S128KeyType::Source, static_cast<u64>(SourceKeyType::KeyblobMAC)}},
  864. {"tsec_key", {S128KeyType::TSEC, 0, 0}},
  865. {"secure_boot_key", {S128KeyType::SecureBoot, 0, 0}},
  866. {"sd_seed", {S128KeyType::SDSeed, 0, 0}},
  867. {"bis_key_0_crypt", {S128KeyType::BIS, 0, static_cast<u64>(BISKeyType::Crypto)}},
  868. {"bis_key_0_tweak", {S128KeyType::BIS, 0, static_cast<u64>(BISKeyType::Tweak)}},
  869. {"bis_key_1_crypt", {S128KeyType::BIS, 1, static_cast<u64>(BISKeyType::Crypto)}},
  870. {"bis_key_1_tweak", {S128KeyType::BIS, 1, static_cast<u64>(BISKeyType::Tweak)}},
  871. {"bis_key_2_crypt", {S128KeyType::BIS, 2, static_cast<u64>(BISKeyType::Crypto)}},
  872. {"bis_key_2_tweak", {S128KeyType::BIS, 2, static_cast<u64>(BISKeyType::Tweak)}},
  873. {"bis_key_3_crypt", {S128KeyType::BIS, 3, static_cast<u64>(BISKeyType::Crypto)}},
  874. {"bis_key_3_tweak", {S128KeyType::BIS, 3, static_cast<u64>(BISKeyType::Tweak)}},
  875. {"header_kek", {S128KeyType::HeaderKek, 0, 0}},
  876. {"sd_card_kek", {S128KeyType::SDKek, 0, 0}},
  877. };
  878. const boost::container::flat_map<std::string, KeyIndex<S256KeyType>> KeyManager::s256_file_id = {
  879. {"header_key", {S256KeyType::Header, 0, 0}},
  880. {"sd_card_save_key_source", {S256KeyType::SDKeySource, static_cast<u64>(SDKeyType::Save), 0}},
  881. {"sd_card_nca_key_source", {S256KeyType::SDKeySource, static_cast<u64>(SDKeyType::NCA), 0}},
  882. {"header_key_source", {S256KeyType::HeaderSource, 0, 0}},
  883. {"sd_card_save_key", {S256KeyType::SDKey, static_cast<u64>(SDKeyType::Save), 0}},
  884. {"sd_card_nca_key", {S256KeyType::SDKey, static_cast<u64>(SDKeyType::NCA), 0}},
  885. };
  886. } // namespace Core::Crypto