process_capability.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 <bit>
  5. #include "common/bit_util.h"
  6. #include "common/logging/log.h"
  7. #include "core/hle/kernel/handle_table.h"
  8. #include "core/hle/kernel/k_page_table.h"
  9. #include "core/hle/kernel/process_capability.h"
  10. #include "core/hle/kernel/svc_results.h"
  11. namespace Kernel {
  12. namespace {
  13. // clang-format off
  14. // Shift offsets for kernel capability types.
  15. enum : u32 {
  16. CapabilityOffset_PriorityAndCoreNum = 3,
  17. CapabilityOffset_Syscall = 4,
  18. CapabilityOffset_MapPhysical = 6,
  19. CapabilityOffset_MapIO = 7,
  20. CapabilityOffset_Interrupt = 11,
  21. CapabilityOffset_ProgramType = 13,
  22. CapabilityOffset_KernelVersion = 14,
  23. CapabilityOffset_HandleTableSize = 15,
  24. CapabilityOffset_Debug = 16,
  25. };
  26. // Combined mask of all parameters that may be initialized only once.
  27. constexpr u32 InitializeOnceMask = (1U << CapabilityOffset_PriorityAndCoreNum) |
  28. (1U << CapabilityOffset_ProgramType) |
  29. (1U << CapabilityOffset_KernelVersion) |
  30. (1U << CapabilityOffset_HandleTableSize) |
  31. (1U << CapabilityOffset_Debug);
  32. // Packed kernel version indicating 10.4.0
  33. constexpr u32 PackedKernelVersion = 0x520000;
  34. // Indicates possible types of capabilities that can be specified.
  35. enum class CapabilityType : u32 {
  36. Unset = 0U,
  37. PriorityAndCoreNum = (1U << CapabilityOffset_PriorityAndCoreNum) - 1,
  38. Syscall = (1U << CapabilityOffset_Syscall) - 1,
  39. MapPhysical = (1U << CapabilityOffset_MapPhysical) - 1,
  40. MapIO = (1U << CapabilityOffset_MapIO) - 1,
  41. Interrupt = (1U << CapabilityOffset_Interrupt) - 1,
  42. ProgramType = (1U << CapabilityOffset_ProgramType) - 1,
  43. KernelVersion = (1U << CapabilityOffset_KernelVersion) - 1,
  44. HandleTableSize = (1U << CapabilityOffset_HandleTableSize) - 1,
  45. Debug = (1U << CapabilityOffset_Debug) - 1,
  46. Ignorable = 0xFFFFFFFFU,
  47. };
  48. // clang-format on
  49. constexpr CapabilityType GetCapabilityType(u32 value) {
  50. return static_cast<CapabilityType>((~value & (value + 1)) - 1);
  51. }
  52. u32 GetFlagBitOffset(CapabilityType type) {
  53. const auto value = static_cast<u32>(type);
  54. return static_cast<u32>(Common::BitSize<u32>() - static_cast<u32>(std::countl_zero(value)));
  55. }
  56. } // Anonymous namespace
  57. ResultCode ProcessCapabilities::InitializeForKernelProcess(const u32* capabilities,
  58. std::size_t num_capabilities,
  59. KPageTable& page_table) {
  60. Clear();
  61. // Allow all cores and priorities.
  62. core_mask = 0xF;
  63. priority_mask = 0xFFFFFFFFFFFFFFFF;
  64. kernel_version = PackedKernelVersion;
  65. return ParseCapabilities(capabilities, num_capabilities, page_table);
  66. }
  67. ResultCode ProcessCapabilities::InitializeForUserProcess(const u32* capabilities,
  68. std::size_t num_capabilities,
  69. KPageTable& page_table) {
  70. Clear();
  71. return ParseCapabilities(capabilities, num_capabilities, page_table);
  72. }
  73. void ProcessCapabilities::InitializeForMetadatalessProcess() {
  74. // Allow all cores and priorities
  75. core_mask = 0xF;
  76. priority_mask = 0xFFFFFFFFFFFFFFFF;
  77. kernel_version = PackedKernelVersion;
  78. // Allow all system calls and interrupts.
  79. svc_capabilities.set();
  80. interrupt_capabilities.set();
  81. // Allow using the maximum possible amount of handles
  82. handle_table_size = static_cast<s32>(HandleTable::MAX_COUNT);
  83. // Allow all debugging capabilities.
  84. is_debuggable = true;
  85. can_force_debug = true;
  86. }
  87. ResultCode ProcessCapabilities::ParseCapabilities(const u32* capabilities,
  88. std::size_t num_capabilities,
  89. KPageTable& page_table) {
  90. u32 set_flags = 0;
  91. u32 set_svc_bits = 0;
  92. for (std::size_t i = 0; i < num_capabilities; ++i) {
  93. const u32 descriptor = capabilities[i];
  94. const auto type = GetCapabilityType(descriptor);
  95. if (type == CapabilityType::MapPhysical) {
  96. i++;
  97. // The MapPhysical type uses two descriptor flags for its parameters.
  98. // If there's only one, then there's a problem.
  99. if (i >= num_capabilities) {
  100. LOG_ERROR(Kernel, "Invalid combination! i={}", i);
  101. return ResultInvalidCombination;
  102. }
  103. const auto size_flags = capabilities[i];
  104. if (GetCapabilityType(size_flags) != CapabilityType::MapPhysical) {
  105. LOG_ERROR(Kernel, "Invalid capability type! size_flags={}", size_flags);
  106. return ResultInvalidCombination;
  107. }
  108. const auto result = HandleMapPhysicalFlags(descriptor, size_flags, page_table);
  109. if (result.IsError()) {
  110. LOG_ERROR(Kernel, "Failed to map physical flags! descriptor={}, size_flags={}",
  111. descriptor, size_flags);
  112. return result;
  113. }
  114. } else {
  115. const auto result =
  116. ParseSingleFlagCapability(set_flags, set_svc_bits, descriptor, page_table);
  117. if (result.IsError()) {
  118. LOG_ERROR(
  119. Kernel,
  120. "Failed to parse capability flag! set_flags={}, set_svc_bits={}, descriptor={}",
  121. set_flags, set_svc_bits, descriptor);
  122. return result;
  123. }
  124. }
  125. }
  126. return RESULT_SUCCESS;
  127. }
  128. ResultCode ProcessCapabilities::ParseSingleFlagCapability(u32& set_flags, u32& set_svc_bits,
  129. u32 flag, KPageTable& page_table) {
  130. const auto type = GetCapabilityType(flag);
  131. if (type == CapabilityType::Unset) {
  132. return ResultInvalidCapabilityDescriptor;
  133. }
  134. // Bail early on ignorable entries, as one would expect,
  135. // ignorable descriptors can be ignored.
  136. if (type == CapabilityType::Ignorable) {
  137. return RESULT_SUCCESS;
  138. }
  139. // Ensure that the give flag hasn't already been initialized before.
  140. // If it has been, then bail.
  141. const u32 flag_length = GetFlagBitOffset(type);
  142. const u32 set_flag = 1U << flag_length;
  143. if ((set_flag & set_flags & InitializeOnceMask) != 0) {
  144. LOG_ERROR(Kernel,
  145. "Attempted to initialize flags that may only be initialized once. set_flags={}",
  146. set_flags);
  147. return ResultInvalidCombination;
  148. }
  149. set_flags |= set_flag;
  150. switch (type) {
  151. case CapabilityType::PriorityAndCoreNum:
  152. return HandlePriorityCoreNumFlags(flag);
  153. case CapabilityType::Syscall:
  154. return HandleSyscallFlags(set_svc_bits, flag);
  155. case CapabilityType::MapIO:
  156. return HandleMapIOFlags(flag, page_table);
  157. case CapabilityType::Interrupt:
  158. return HandleInterruptFlags(flag);
  159. case CapabilityType::ProgramType:
  160. return HandleProgramTypeFlags(flag);
  161. case CapabilityType::KernelVersion:
  162. return HandleKernelVersionFlags(flag);
  163. case CapabilityType::HandleTableSize:
  164. return HandleHandleTableFlags(flag);
  165. case CapabilityType::Debug:
  166. return HandleDebugFlags(flag);
  167. default:
  168. break;
  169. }
  170. LOG_ERROR(Kernel, "Invalid capability type! type={}", type);
  171. return ResultInvalidCapabilityDescriptor;
  172. }
  173. void ProcessCapabilities::Clear() {
  174. svc_capabilities.reset();
  175. interrupt_capabilities.reset();
  176. core_mask = 0;
  177. priority_mask = 0;
  178. handle_table_size = 0;
  179. kernel_version = 0;
  180. program_type = ProgramType::SysModule;
  181. is_debuggable = false;
  182. can_force_debug = false;
  183. }
  184. ResultCode ProcessCapabilities::HandlePriorityCoreNumFlags(u32 flags) {
  185. if (priority_mask != 0 || core_mask != 0) {
  186. LOG_ERROR(Kernel, "Core or priority mask are not zero! priority_mask={}, core_mask={}",
  187. priority_mask, core_mask);
  188. return ResultInvalidCapabilityDescriptor;
  189. }
  190. const u32 core_num_min = (flags >> 16) & 0xFF;
  191. const u32 core_num_max = (flags >> 24) & 0xFF;
  192. if (core_num_min > core_num_max) {
  193. LOG_ERROR(Kernel, "Core min is greater than core max! core_num_min={}, core_num_max={}",
  194. core_num_min, core_num_max);
  195. return ResultInvalidCombination;
  196. }
  197. const u32 priority_min = (flags >> 10) & 0x3F;
  198. const u32 priority_max = (flags >> 4) & 0x3F;
  199. if (priority_min > priority_max) {
  200. LOG_ERROR(Kernel,
  201. "Priority min is greater than priority max! priority_min={}, priority_max={}",
  202. core_num_min, priority_max);
  203. return ResultInvalidCombination;
  204. }
  205. // The switch only has 4 usable cores.
  206. if (core_num_max >= 4) {
  207. LOG_ERROR(Kernel, "Invalid max cores specified! core_num_max={}", core_num_max);
  208. return ResultInvalidCoreId;
  209. }
  210. const auto make_mask = [](u64 min, u64 max) {
  211. const u64 range = max - min + 1;
  212. const u64 mask = (1ULL << range) - 1;
  213. return mask << min;
  214. };
  215. core_mask = make_mask(core_num_min, core_num_max);
  216. priority_mask = make_mask(priority_min, priority_max);
  217. return RESULT_SUCCESS;
  218. }
  219. ResultCode ProcessCapabilities::HandleSyscallFlags(u32& set_svc_bits, u32 flags) {
  220. const u32 index = flags >> 29;
  221. const u32 svc_bit = 1U << index;
  222. // If we've already set this svc before, bail.
  223. if ((set_svc_bits & svc_bit) != 0) {
  224. return ResultInvalidCombination;
  225. }
  226. set_svc_bits |= svc_bit;
  227. const u32 svc_mask = (flags >> 5) & 0xFFFFFF;
  228. for (u32 i = 0; i < 24; ++i) {
  229. const u32 svc_number = index * 24 + i;
  230. if ((svc_mask & (1U << i)) == 0) {
  231. continue;
  232. }
  233. if (svc_number >= svc_capabilities.size()) {
  234. LOG_ERROR(Kernel, "Process svc capability is out of range! svc_number={}", svc_number);
  235. return ResultOutOfRange;
  236. }
  237. svc_capabilities[svc_number] = true;
  238. }
  239. return RESULT_SUCCESS;
  240. }
  241. ResultCode ProcessCapabilities::HandleMapPhysicalFlags(u32 flags, u32 size_flags,
  242. KPageTable& page_table) {
  243. // TODO(Lioncache): Implement once the memory manager can handle this.
  244. return RESULT_SUCCESS;
  245. }
  246. ResultCode ProcessCapabilities::HandleMapIOFlags(u32 flags, KPageTable& page_table) {
  247. // TODO(Lioncache): Implement once the memory manager can handle this.
  248. return RESULT_SUCCESS;
  249. }
  250. ResultCode ProcessCapabilities::HandleInterruptFlags(u32 flags) {
  251. constexpr u32 interrupt_ignore_value = 0x3FF;
  252. const u32 interrupt0 = (flags >> 12) & 0x3FF;
  253. const u32 interrupt1 = (flags >> 22) & 0x3FF;
  254. for (u32 interrupt : {interrupt0, interrupt1}) {
  255. if (interrupt == interrupt_ignore_value) {
  256. continue;
  257. }
  258. // NOTE:
  259. // This should be checking a generic interrupt controller value
  260. // as part of the calculation, however, given we don't currently
  261. // emulate that, it's sufficient to mark every interrupt as defined.
  262. if (interrupt >= interrupt_capabilities.size()) {
  263. LOG_ERROR(Kernel, "Process interrupt capability is out of range! svc_number={}",
  264. interrupt);
  265. return ResultOutOfRange;
  266. }
  267. interrupt_capabilities[interrupt] = true;
  268. }
  269. return RESULT_SUCCESS;
  270. }
  271. ResultCode ProcessCapabilities::HandleProgramTypeFlags(u32 flags) {
  272. const u32 reserved = flags >> 17;
  273. if (reserved != 0) {
  274. LOG_ERROR(Kernel, "Reserved value is non-zero! reserved={}", reserved);
  275. return ResultReservedValue;
  276. }
  277. program_type = static_cast<ProgramType>((flags >> 14) & 0b111);
  278. return RESULT_SUCCESS;
  279. }
  280. ResultCode ProcessCapabilities::HandleKernelVersionFlags(u32 flags) {
  281. // Yes, the internal member variable is checked in the actual kernel here.
  282. // This might look odd for options that are only allowed to be initialized
  283. // just once, however the kernel has a separate initialization function for
  284. // kernel processes and userland processes. The kernel variant sets this
  285. // member variable ahead of time.
  286. const u32 major_version = kernel_version >> 19;
  287. if (major_version != 0 || flags < 0x80000) {
  288. LOG_ERROR(Kernel,
  289. "Kernel version is non zero or flags are too small! major_version={}, flags={}",
  290. major_version, flags);
  291. return ResultInvalidCapabilityDescriptor;
  292. }
  293. kernel_version = flags;
  294. return RESULT_SUCCESS;
  295. }
  296. ResultCode ProcessCapabilities::HandleHandleTableFlags(u32 flags) {
  297. const u32 reserved = flags >> 26;
  298. if (reserved != 0) {
  299. LOG_ERROR(Kernel, "Reserved value is non-zero! reserved={}", reserved);
  300. return ResultReservedValue;
  301. }
  302. handle_table_size = static_cast<s32>((flags >> 16) & 0x3FF);
  303. return RESULT_SUCCESS;
  304. }
  305. ResultCode ProcessCapabilities::HandleDebugFlags(u32 flags) {
  306. const u32 reserved = flags >> 19;
  307. if (reserved != 0) {
  308. LOG_ERROR(Kernel, "Reserved value is non-zero! reserved={}", reserved);
  309. return ResultReservedValue;
  310. }
  311. is_debuggable = (flags & 0x20000) != 0;
  312. can_force_debug = (flags & 0x40000) != 0;
  313. return RESULT_SUCCESS;
  314. }
  315. } // namespace Kernel