content_archive.cpp 13 KB

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  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 <utility>
  6. #include <boost/optional.hpp>
  7. #include "common/logging/log.h"
  8. #include "core/crypto/aes_util.h"
  9. #include "core/crypto/ctr_encryption_layer.h"
  10. #include "core/file_sys/content_archive.h"
  11. #include "core/file_sys/romfs.h"
  12. #include "core/file_sys/vfs_offset.h"
  13. #include "core/loader/loader.h"
  14. namespace FileSys {
  15. // Media offsets in headers are stored divided by 512. Mult. by this to get real offset.
  16. constexpr u64 MEDIA_OFFSET_MULTIPLIER = 0x200;
  17. constexpr u64 SECTION_HEADER_SIZE = 0x200;
  18. constexpr u64 SECTION_HEADER_OFFSET = 0x400;
  19. constexpr u32 IVFC_MAX_LEVEL = 6;
  20. enum class NCASectionFilesystemType : u8 {
  21. PFS0 = 0x2,
  22. ROMFS = 0x3,
  23. };
  24. struct NCASectionHeaderBlock {
  25. INSERT_PADDING_BYTES(3);
  26. NCASectionFilesystemType filesystem_type;
  27. NCASectionCryptoType crypto_type;
  28. INSERT_PADDING_BYTES(3);
  29. };
  30. static_assert(sizeof(NCASectionHeaderBlock) == 0x8, "NCASectionHeaderBlock has incorrect size.");
  31. struct NCASectionRaw {
  32. NCASectionHeaderBlock header;
  33. std::array<u8, 0x138> block_data;
  34. std::array<u8, 0x8> section_ctr;
  35. INSERT_PADDING_BYTES(0xB8);
  36. };
  37. static_assert(sizeof(NCASectionRaw) == 0x200, "NCASectionRaw has incorrect size.");
  38. struct PFS0Superblock {
  39. NCASectionHeaderBlock header_block;
  40. std::array<u8, 0x20> hash;
  41. u32_le size;
  42. INSERT_PADDING_BYTES(4);
  43. u64_le hash_table_offset;
  44. u64_le hash_table_size;
  45. u64_le pfs0_header_offset;
  46. u64_le pfs0_size;
  47. INSERT_PADDING_BYTES(0x1B0);
  48. };
  49. static_assert(sizeof(PFS0Superblock) == 0x200, "PFS0Superblock has incorrect size.");
  50. struct RomFSSuperblock {
  51. NCASectionHeaderBlock header_block;
  52. IVFCHeader ivfc;
  53. INSERT_PADDING_BYTES(0x118);
  54. };
  55. static_assert(sizeof(RomFSSuperblock) == 0x200, "RomFSSuperblock has incorrect size.");
  56. union NCASectionHeader {
  57. NCASectionRaw raw;
  58. PFS0Superblock pfs0;
  59. RomFSSuperblock romfs;
  60. };
  61. static_assert(sizeof(NCASectionHeader) == 0x200, "NCASectionHeader has incorrect size.");
  62. bool IsValidNCA(const NCAHeader& header) {
  63. // TODO(DarkLordZach): Add NCA2/NCA0 support.
  64. return header.magic == Common::MakeMagic('N', 'C', 'A', '3');
  65. }
  66. u8 NCA::GetCryptoRevision() const {
  67. u8 master_key_id = header.crypto_type;
  68. if (header.crypto_type_2 > master_key_id)
  69. master_key_id = header.crypto_type_2;
  70. if (master_key_id > 0)
  71. --master_key_id;
  72. return master_key_id;
  73. }
  74. boost::optional<Core::Crypto::Key128> NCA::GetKeyAreaKey(NCASectionCryptoType type) const {
  75. const auto master_key_id = GetCryptoRevision();
  76. if (!keys.HasKey(Core::Crypto::S128KeyType::KeyArea, master_key_id, header.key_index))
  77. return boost::none;
  78. std::vector<u8> key_area(header.key_area.begin(), header.key_area.end());
  79. Core::Crypto::AESCipher<Core::Crypto::Key128> cipher(
  80. keys.GetKey(Core::Crypto::S128KeyType::KeyArea, master_key_id, header.key_index),
  81. Core::Crypto::Mode::ECB);
  82. cipher.Transcode(key_area.data(), key_area.size(), key_area.data(), Core::Crypto::Op::Decrypt);
  83. Core::Crypto::Key128 out;
  84. if (type == NCASectionCryptoType::XTS)
  85. std::copy(key_area.begin(), key_area.begin() + 0x10, out.begin());
  86. else if (type == NCASectionCryptoType::CTR)
  87. std::copy(key_area.begin() + 0x20, key_area.begin() + 0x30, out.begin());
  88. else
  89. LOG_CRITICAL(Crypto, "Called GetKeyAreaKey on invalid NCASectionCryptoType type={:02X}",
  90. static_cast<u8>(type));
  91. u128 out_128{};
  92. memcpy(out_128.data(), out.data(), 16);
  93. LOG_DEBUG(Crypto, "called with crypto_rev={:02X}, kak_index={:02X}, key={:016X}{:016X}",
  94. master_key_id, header.key_index, out_128[1], out_128[0]);
  95. return out;
  96. }
  97. boost::optional<Core::Crypto::Key128> NCA::GetTitlekey() {
  98. const auto master_key_id = GetCryptoRevision();
  99. u128 rights_id{};
  100. memcpy(rights_id.data(), header.rights_id.data(), 16);
  101. if (rights_id == u128{}) {
  102. status = Loader::ResultStatus::ErrorInvalidRightsID;
  103. return boost::none;
  104. }
  105. auto titlekey = keys.GetKey(Core::Crypto::S128KeyType::Titlekey, rights_id[1], rights_id[0]);
  106. if (titlekey == Core::Crypto::Key128{}) {
  107. status = Loader::ResultStatus::ErrorMissingTitlekey;
  108. return boost::none;
  109. }
  110. if (!keys.HasKey(Core::Crypto::S128KeyType::Titlekek, master_key_id)) {
  111. status = Loader::ResultStatus::ErrorMissingTitlekek;
  112. return boost::none;
  113. }
  114. Core::Crypto::AESCipher<Core::Crypto::Key128> cipher(
  115. keys.GetKey(Core::Crypto::S128KeyType::Titlekek, master_key_id), Core::Crypto::Mode::ECB);
  116. cipher.Transcode(titlekey.data(), titlekey.size(), titlekey.data(), Core::Crypto::Op::Decrypt);
  117. return titlekey;
  118. }
  119. VirtualFile NCA::Decrypt(NCASectionHeader s_header, VirtualFile in, u64 starting_offset) {
  120. if (!encrypted)
  121. return in;
  122. switch (s_header.raw.header.crypto_type) {
  123. case NCASectionCryptoType::NONE:
  124. LOG_DEBUG(Crypto, "called with mode=NONE");
  125. return in;
  126. case NCASectionCryptoType::CTR:
  127. LOG_DEBUG(Crypto, "called with mode=CTR, starting_offset={:016X}", starting_offset);
  128. {
  129. boost::optional<Core::Crypto::Key128> key = boost::none;
  130. if (has_rights_id) {
  131. status = Loader::ResultStatus::Success;
  132. key = GetTitlekey();
  133. if (key == boost::none) {
  134. if (status == Loader::ResultStatus::Success)
  135. status = Loader::ResultStatus::ErrorMissingTitlekey;
  136. return nullptr;
  137. }
  138. } else {
  139. key = GetKeyAreaKey(NCASectionCryptoType::CTR);
  140. if (key == boost::none) {
  141. status = Loader::ResultStatus::ErrorMissingKeyAreaKey;
  142. return nullptr;
  143. }
  144. }
  145. auto out = std::make_shared<Core::Crypto::CTREncryptionLayer>(
  146. std::move(in), key.value(), starting_offset);
  147. std::vector<u8> iv(16);
  148. for (u8 i = 0; i < 8; ++i)
  149. iv[i] = s_header.raw.section_ctr[0x8 - i - 1];
  150. out->SetIV(iv);
  151. return std::static_pointer_cast<VfsFile>(out);
  152. }
  153. case NCASectionCryptoType::XTS:
  154. // TODO(DarkLordZach): Implement XTSEncryptionLayer.
  155. default:
  156. LOG_ERROR(Crypto, "called with unhandled crypto type={:02X}",
  157. static_cast<u8>(s_header.raw.header.crypto_type));
  158. return nullptr;
  159. }
  160. }
  161. NCA::NCA(VirtualFile file_) : file(std::move(file_)) {
  162. status = Loader::ResultStatus::Success;
  163. if (file == nullptr) {
  164. status = Loader::ResultStatus::ErrorNullFile;
  165. return;
  166. }
  167. if (sizeof(NCAHeader) != file->ReadObject(&header)) {
  168. LOG_ERROR(Loader, "File reader errored out during header read.");
  169. status = Loader::ResultStatus::ErrorBadNCAHeader;
  170. return;
  171. }
  172. encrypted = false;
  173. if (!IsValidNCA(header)) {
  174. if (header.magic == Common::MakeMagic('N', 'C', 'A', '2')) {
  175. status = Loader::ResultStatus::ErrorNCA2;
  176. return;
  177. }
  178. if (header.magic == Common::MakeMagic('N', 'C', 'A', '0')) {
  179. status = Loader::ResultStatus::ErrorNCA0;
  180. return;
  181. }
  182. NCAHeader dec_header{};
  183. Core::Crypto::AESCipher<Core::Crypto::Key256> cipher(
  184. keys.GetKey(Core::Crypto::S256KeyType::Header), Core::Crypto::Mode::XTS);
  185. cipher.XTSTranscode(&header, sizeof(NCAHeader), &dec_header, 0, 0x200,
  186. Core::Crypto::Op::Decrypt);
  187. if (IsValidNCA(dec_header)) {
  188. header = dec_header;
  189. encrypted = true;
  190. } else {
  191. if (dec_header.magic == Common::MakeMagic('N', 'C', 'A', '2')) {
  192. status = Loader::ResultStatus::ErrorNCA2;
  193. return;
  194. }
  195. if (dec_header.magic == Common::MakeMagic('N', 'C', 'A', '0')) {
  196. status = Loader::ResultStatus::ErrorNCA0;
  197. return;
  198. }
  199. if (!keys.HasKey(Core::Crypto::S256KeyType::Header))
  200. status = Loader::ResultStatus::ErrorMissingHeaderKey;
  201. else
  202. status = Loader::ResultStatus::ErrorIncorrectHeaderKey;
  203. return;
  204. }
  205. }
  206. has_rights_id = std::find_if_not(header.rights_id.begin(), header.rights_id.end(),
  207. [](char c) { return c == '\0'; }) != header.rights_id.end();
  208. const std::ptrdiff_t number_sections =
  209. std::count_if(std::begin(header.section_tables), std::end(header.section_tables),
  210. [](NCASectionTableEntry entry) { return entry.media_offset > 0; });
  211. std::vector<NCASectionHeader> sections(number_sections);
  212. const auto length_sections = SECTION_HEADER_SIZE * number_sections;
  213. if (encrypted) {
  214. auto raw = file->ReadBytes(length_sections, SECTION_HEADER_OFFSET);
  215. Core::Crypto::AESCipher<Core::Crypto::Key256> cipher(
  216. keys.GetKey(Core::Crypto::S256KeyType::Header), Core::Crypto::Mode::XTS);
  217. cipher.XTSTranscode(raw.data(), length_sections, sections.data(), 2, SECTION_HEADER_SIZE,
  218. Core::Crypto::Op::Decrypt);
  219. } else {
  220. file->ReadBytes(sections.data(), length_sections, SECTION_HEADER_OFFSET);
  221. }
  222. for (std::ptrdiff_t i = 0; i < number_sections; ++i) {
  223. auto section = sections[i];
  224. if (section.raw.header.filesystem_type == NCASectionFilesystemType::ROMFS) {
  225. const size_t romfs_offset =
  226. header.section_tables[i].media_offset * MEDIA_OFFSET_MULTIPLIER +
  227. section.romfs.ivfc.levels[IVFC_MAX_LEVEL - 1].offset;
  228. const size_t romfs_size = section.romfs.ivfc.levels[IVFC_MAX_LEVEL - 1].size;
  229. auto dec =
  230. Decrypt(section, std::make_shared<OffsetVfsFile>(file, romfs_size, romfs_offset),
  231. romfs_offset);
  232. if (dec != nullptr) {
  233. files.push_back(std::move(dec));
  234. romfs = files.back();
  235. } else {
  236. if (status != Loader::ResultStatus::Success)
  237. return;
  238. if (has_rights_id)
  239. status = Loader::ResultStatus::ErrorIncorrectTitlekeyOrTitlekek;
  240. else
  241. status = Loader::ResultStatus::ErrorIncorrectKeyAreaKey;
  242. return;
  243. }
  244. } else if (section.raw.header.filesystem_type == NCASectionFilesystemType::PFS0) {
  245. u64 offset = (static_cast<u64>(header.section_tables[i].media_offset) *
  246. MEDIA_OFFSET_MULTIPLIER) +
  247. section.pfs0.pfs0_header_offset;
  248. u64 size = MEDIA_OFFSET_MULTIPLIER * (header.section_tables[i].media_end_offset -
  249. header.section_tables[i].media_offset);
  250. auto dec =
  251. Decrypt(section, std::make_shared<OffsetVfsFile>(file, size, offset), offset);
  252. if (dec != nullptr) {
  253. auto npfs = std::make_shared<PartitionFilesystem>(std::move(dec));
  254. if (npfs->GetStatus() == Loader::ResultStatus::Success) {
  255. dirs.push_back(std::move(npfs));
  256. if (IsDirectoryExeFS(dirs.back()))
  257. exefs = dirs.back();
  258. }
  259. } else {
  260. if (status != Loader::ResultStatus::Success)
  261. return;
  262. if (has_rights_id)
  263. status = Loader::ResultStatus::ErrorIncorrectTitlekeyOrTitlekek;
  264. else
  265. status = Loader::ResultStatus::ErrorIncorrectKeyAreaKey;
  266. return;
  267. }
  268. }
  269. }
  270. status = Loader::ResultStatus::Success;
  271. }
  272. Loader::ResultStatus NCA::GetStatus() const {
  273. return status;
  274. }
  275. std::vector<std::shared_ptr<VfsFile>> NCA::GetFiles() const {
  276. if (status != Loader::ResultStatus::Success)
  277. return {};
  278. return files;
  279. }
  280. std::vector<std::shared_ptr<VfsDirectory>> NCA::GetSubdirectories() const {
  281. if (status != Loader::ResultStatus::Success)
  282. return {};
  283. return dirs;
  284. }
  285. std::string NCA::GetName() const {
  286. return file->GetName();
  287. }
  288. std::shared_ptr<VfsDirectory> NCA::GetParentDirectory() const {
  289. return file->GetContainingDirectory();
  290. }
  291. NCAContentType NCA::GetType() const {
  292. return header.content_type;
  293. }
  294. u64 NCA::GetTitleId() const {
  295. if (status != Loader::ResultStatus::Success)
  296. return {};
  297. return header.title_id;
  298. }
  299. VirtualFile NCA::GetRomFS() const {
  300. return romfs;
  301. }
  302. VirtualDir NCA::GetExeFS() const {
  303. return exefs;
  304. }
  305. VirtualFile NCA::GetBaseFile() const {
  306. return file;
  307. }
  308. bool NCA::ReplaceFileWithSubdirectory(VirtualFile file, VirtualDir dir) {
  309. return false;
  310. }
  311. } // namespace FileSys