Parser.cpp 16 KB

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  1. /*
  2. * Copyright (c) 2020, Liav A. <liavalb@hotmail.co.il>
  3. * Copyright (c) 2020-2021, Andreas Kling <kling@serenityos.org>
  4. *
  5. * SPDX-License-Identifier: BSD-2-Clause
  6. */
  7. #include <AK/Format.h>
  8. #include <AK/StringView.h>
  9. #include <Kernel/ACPI/Parser.h>
  10. #include <Kernel/Arch/PC/BIOS.h>
  11. #include <Kernel/Debug.h>
  12. #include <Kernel/IO.h>
  13. #include <Kernel/PCI/Access.h>
  14. #include <Kernel/StdLib.h>
  15. #include <Kernel/VM/TypedMapping.h>
  16. namespace Kernel {
  17. namespace ACPI {
  18. static Parser* s_acpi_parser;
  19. Parser* Parser::the()
  20. {
  21. return s_acpi_parser;
  22. }
  23. void Parser::set_the(Parser& parser)
  24. {
  25. VERIFY(!s_acpi_parser);
  26. s_acpi_parser = &parser;
  27. }
  28. static bool match_table_signature(PhysicalAddress table_header, const StringView& signature);
  29. static PhysicalAddress search_table_in_xsdt(PhysicalAddress xsdt, const StringView& signature);
  30. static PhysicalAddress search_table_in_rsdt(PhysicalAddress rsdt, const StringView& signature);
  31. static bool validate_table(const Structures::SDTHeader&, size_t length);
  32. UNMAP_AFTER_INIT void Parser::locate_static_data()
  33. {
  34. locate_main_system_description_table();
  35. initialize_main_system_description_table();
  36. init_fadt();
  37. init_facs();
  38. }
  39. UNMAP_AFTER_INIT PhysicalAddress Parser::find_table(const StringView& signature)
  40. {
  41. dbgln_if(ACPI_DEBUG, "ACPI: Calling Find Table method!");
  42. for (auto p_sdt : m_sdt_pointers) {
  43. auto sdt = map_typed<Structures::SDTHeader>(p_sdt);
  44. dbgln_if(ACPI_DEBUG, "ACPI: Examining Table @ {}", p_sdt);
  45. if (!strncmp(sdt->sig, signature.characters_without_null_termination(), 4)) {
  46. dbgln_if(ACPI_DEBUG, "ACPI: Found Table @ {}", p_sdt);
  47. return p_sdt;
  48. }
  49. }
  50. return {};
  51. }
  52. UNMAP_AFTER_INIT void Parser::init_facs()
  53. {
  54. m_facs = find_table("FACS");
  55. }
  56. UNMAP_AFTER_INIT void Parser::init_fadt()
  57. {
  58. dmesgln("ACPI: Initializing Fixed ACPI data");
  59. dmesgln("ACPI: Searching for the Fixed ACPI Data Table");
  60. m_fadt = find_table("FACP");
  61. VERIFY(!m_fadt.is_null());
  62. // FIXME: We need at least two pages for mapping, since we can be on the "edge" of one page...
  63. auto sdt = map_typed<const volatile Structures::FADT>(m_fadt, PAGE_SIZE * 2);
  64. dbgln_if(ACPI_DEBUG, "ACPI: FADT @ V{}, {}", &sdt, m_fadt);
  65. auto* header = &sdt.ptr()->h;
  66. dmesgln("ACPI: Fixed ACPI data, Revision {}, length: {} bytes", (size_t)header->revision, (size_t)header->length);
  67. dmesgln("ACPI: DSDT {}", PhysicalAddress(sdt->dsdt_ptr));
  68. m_x86_specific_flags.cmos_rtc_not_present = (sdt->ia_pc_boot_arch_flags & (u8)FADTFlags::IA_PC_Flags::CMOS_RTC_Not_Present);
  69. // FIXME: QEMU doesn't report that we have an i8042 controller in these flags, even if it should (when FADT revision is 3),
  70. // Later on, we need to make sure that we enumerate the ACPI namespace (AML encoded), instead of just using this value.
  71. m_x86_specific_flags.keyboard_8042 = (sdt->h.revision <= 3) || (sdt->ia_pc_boot_arch_flags & (u8)FADTFlags::IA_PC_Flags::PS2_8042);
  72. m_x86_specific_flags.legacy_devices = (sdt->ia_pc_boot_arch_flags & (u8)FADTFlags::IA_PC_Flags::Legacy_Devices);
  73. m_x86_specific_flags.msi_not_supported = (sdt->ia_pc_boot_arch_flags & (u8)FADTFlags::IA_PC_Flags::MSI_Not_Supported);
  74. m_x86_specific_flags.vga_not_present = (sdt->ia_pc_boot_arch_flags & (u8)FADTFlags::IA_PC_Flags::VGA_Not_Present);
  75. m_hardware_flags.cpu_software_sleep = (sdt->flags & (u32)FADTFlags::FeatureFlags::CPU_SW_SLP);
  76. m_hardware_flags.docking_capability = (sdt->flags & (u32)FADTFlags::FeatureFlags::DCK_CAP);
  77. m_hardware_flags.fix_rtc = (sdt->flags & (u32)FADTFlags::FeatureFlags::FIX_RTC);
  78. m_hardware_flags.force_apic_cluster_model = (sdt->flags & (u32)FADTFlags::FeatureFlags::FORCE_APIC_CLUSTER_MODEL);
  79. m_hardware_flags.force_apic_physical_destination_mode = (sdt->flags & (u32)FADTFlags::FeatureFlags::FORCE_APIC_PHYSICAL_DESTINATION_MODE);
  80. m_hardware_flags.hardware_reduced_acpi = (sdt->flags & (u32)FADTFlags::FeatureFlags::HW_REDUCED_ACPI);
  81. m_hardware_flags.headless = (sdt->flags & (u32)FADTFlags::FeatureFlags::HEADLESS);
  82. m_hardware_flags.low_power_s0_idle_capable = (sdt->flags & (u32)FADTFlags::FeatureFlags::LOW_POWER_S0_IDLE_CAPABLE);
  83. m_hardware_flags.multiprocessor_c2 = (sdt->flags & (u32)FADTFlags::FeatureFlags::P_LVL2_UP);
  84. m_hardware_flags.pci_express_wake = (sdt->flags & (u32)FADTFlags::FeatureFlags::PCI_EXP_WAK);
  85. m_hardware_flags.power_button = (sdt->flags & (u32)FADTFlags::FeatureFlags::PWR_BUTTON);
  86. m_hardware_flags.processor_c1 = (sdt->flags & (u32)FADTFlags::FeatureFlags::PROC_C1);
  87. m_hardware_flags.remote_power_on_capable = (sdt->flags & (u32)FADTFlags::FeatureFlags::REMOTE_POWER_ON_CAPABLE);
  88. m_hardware_flags.reset_register_supported = (sdt->flags & (u32)FADTFlags::FeatureFlags::RESET_REG_SUPPORTED);
  89. m_hardware_flags.rtc_s4 = (sdt->flags & (u32)FADTFlags::FeatureFlags::RTC_s4);
  90. m_hardware_flags.s4_rtc_status_valid = (sdt->flags & (u32)FADTFlags::FeatureFlags::S4_RTC_STS_VALID);
  91. m_hardware_flags.sealed_case = (sdt->flags & (u32)FADTFlags::FeatureFlags::SEALED_CASE);
  92. m_hardware_flags.sleep_button = (sdt->flags & (u32)FADTFlags::FeatureFlags::SLP_BUTTON);
  93. m_hardware_flags.timer_value_extension = (sdt->flags & (u32)FADTFlags::FeatureFlags::TMR_VAL_EXT);
  94. m_hardware_flags.use_platform_clock = (sdt->flags & (u32)FADTFlags::FeatureFlags::USE_PLATFORM_CLOCK);
  95. m_hardware_flags.wbinvd = (sdt->flags & (u32)FADTFlags::FeatureFlags::WBINVD);
  96. m_hardware_flags.wbinvd_flush = (sdt->flags & (u32)FADTFlags::FeatureFlags::WBINVD_FLUSH);
  97. }
  98. bool Parser::can_reboot()
  99. {
  100. auto fadt = map_typed<Structures::FADT>(m_fadt);
  101. if (fadt->h.revision < 2)
  102. return false;
  103. return m_hardware_flags.reset_register_supported;
  104. }
  105. void Parser::access_generic_address(const Structures::GenericAddressStructure& structure, u32 value)
  106. {
  107. switch ((GenericAddressStructure::AddressSpace)structure.address_space) {
  108. case GenericAddressStructure::AddressSpace::SystemIO: {
  109. IOAddress address(structure.address);
  110. dbgln("ACPI: Sending value {:x} to {}", value, address);
  111. switch (structure.access_size) {
  112. case (u8)GenericAddressStructure::AccessSize::QWord: {
  113. dbgln("Trying to send QWord to IO port");
  114. VERIFY_NOT_REACHED();
  115. break;
  116. }
  117. case (u8)GenericAddressStructure::AccessSize::Undefined: {
  118. dbgln("ACPI Warning: Unknown access size {}", structure.access_size);
  119. VERIFY(structure.bit_width != (u8)GenericAddressStructure::BitWidth::QWord);
  120. VERIFY(structure.bit_width != (u8)GenericAddressStructure::BitWidth::Undefined);
  121. dbgln("ACPI: Bit Width - {} bits", structure.bit_width);
  122. address.out(value, structure.bit_width);
  123. break;
  124. }
  125. default:
  126. address.out(value, (8 << (structure.access_size - 1)));
  127. break;
  128. }
  129. return;
  130. }
  131. case GenericAddressStructure::AddressSpace::SystemMemory: {
  132. dbgln("ACPI: Sending value {:x} to {}", value, PhysicalAddress(structure.address));
  133. switch ((GenericAddressStructure::AccessSize)structure.access_size) {
  134. case GenericAddressStructure::AccessSize::Byte:
  135. *map_typed<u8>(PhysicalAddress(structure.address)) = value;
  136. break;
  137. case GenericAddressStructure::AccessSize::Word:
  138. *map_typed<u16>(PhysicalAddress(structure.address)) = value;
  139. break;
  140. case GenericAddressStructure::AccessSize::DWord:
  141. *map_typed<u32>(PhysicalAddress(structure.address)) = value;
  142. break;
  143. case GenericAddressStructure::AccessSize::QWord: {
  144. *map_typed<u64>(PhysicalAddress(structure.address)) = value;
  145. break;
  146. }
  147. default:
  148. VERIFY_NOT_REACHED();
  149. }
  150. return;
  151. }
  152. case GenericAddressStructure::AddressSpace::PCIConfigurationSpace: {
  153. // According to the ACPI specification 6.2, page 168, PCI addresses must be confined to devices on Segment group 0, bus 0.
  154. auto pci_address = PCI::Address(0, 0, ((structure.address >> 24) & 0xFF), ((structure.address >> 16) & 0xFF));
  155. dbgln("ACPI: Sending value {:x} to {}", value, pci_address);
  156. u32 offset_in_pci_address = structure.address & 0xFFFF;
  157. if (structure.access_size == (u8)GenericAddressStructure::AccessSize::QWord) {
  158. dbgln("Trying to send QWord to PCI configuration space");
  159. VERIFY_NOT_REACHED();
  160. }
  161. VERIFY(structure.access_size != (u8)GenericAddressStructure::AccessSize::Undefined);
  162. PCI::raw_access(pci_address, offset_in_pci_address, (1 << (structure.access_size - 1)), value);
  163. return;
  164. }
  165. default:
  166. VERIFY_NOT_REACHED();
  167. }
  168. VERIFY_NOT_REACHED();
  169. }
  170. bool Parser::validate_reset_register()
  171. {
  172. // According to the ACPI spec 6.2, page 152, The reset register can only be located in I/O bus, PCI bus or memory-mapped.
  173. auto fadt = map_typed<Structures::FADT>(m_fadt);
  174. return (fadt->reset_reg.address_space == (u8)GenericAddressStructure::AddressSpace::PCIConfigurationSpace || fadt->reset_reg.address_space == (u8)GenericAddressStructure::AddressSpace::SystemMemory || fadt->reset_reg.address_space == (u8)GenericAddressStructure::AddressSpace::SystemIO);
  175. }
  176. void Parser::try_acpi_reboot()
  177. {
  178. InterruptDisabler disabler;
  179. if (!can_reboot()) {
  180. dmesgln("ACPI: Reboot not supported!");
  181. return;
  182. }
  183. dbgln_if(ACPI_DEBUG, "ACPI: Rebooting, probing FADT ({})", m_fadt);
  184. auto fadt = map_typed<Structures::FADT>(m_fadt);
  185. VERIFY(validate_reset_register());
  186. access_generic_address(fadt->reset_reg, fadt->reset_value);
  187. Processor::halt();
  188. }
  189. void Parser::try_acpi_shutdown()
  190. {
  191. dmesgln("ACPI: Shutdown is not supported with the current configuration, aborting!");
  192. }
  193. size_t Parser::get_table_size(PhysicalAddress table_header)
  194. {
  195. InterruptDisabler disabler;
  196. dbgln_if(ACPI_DEBUG, "ACPI: Checking SDT Length");
  197. return map_typed<Structures::SDTHeader>(table_header)->length;
  198. }
  199. u8 Parser::get_table_revision(PhysicalAddress table_header)
  200. {
  201. InterruptDisabler disabler;
  202. dbgln_if(ACPI_DEBUG, "ACPI: Checking SDT Revision");
  203. return map_typed<Structures::SDTHeader>(table_header)->revision;
  204. }
  205. UNMAP_AFTER_INIT void Parser::initialize_main_system_description_table()
  206. {
  207. dbgln_if(ACPI_DEBUG, "ACPI: Checking Main SDT Length to choose the correct mapping size");
  208. VERIFY(!m_main_system_description_table.is_null());
  209. auto length = get_table_size(m_main_system_description_table);
  210. auto revision = get_table_revision(m_main_system_description_table);
  211. auto sdt = map_typed<Structures::SDTHeader>(m_main_system_description_table, length);
  212. dmesgln("ACPI: Main Description Table valid? {}", validate_table(*sdt, length));
  213. if (m_xsdt_supported) {
  214. auto& xsdt = (const Structures::XSDT&)*sdt;
  215. dmesgln("ACPI: Using XSDT, enumerating tables @ {}", m_main_system_description_table);
  216. dmesgln("ACPI: XSDT revision {}, total length: {}", revision, length);
  217. dbgln_if(ACPI_DEBUG, "ACPI: XSDT pointer @ {}", VirtualAddress { &xsdt });
  218. for (u32 i = 0; i < ((length - sizeof(Structures::SDTHeader)) / sizeof(u64)); i++) {
  219. dbgln_if(ACPI_DEBUG, "ACPI: Found new table [{0}], @ V{1:p} - P{1:p}", i, &xsdt.table_ptrs[i]);
  220. m_sdt_pointers.append(PhysicalAddress(xsdt.table_ptrs[i]));
  221. }
  222. } else {
  223. auto& rsdt = (const Structures::RSDT&)*sdt;
  224. dmesgln("ACPI: Using RSDT, enumerating tables @ {}", m_main_system_description_table);
  225. dmesgln("ACPI: RSDT revision {}, total length: {}", revision, length);
  226. dbgln_if(ACPI_DEBUG, "ACPI: RSDT pointer @ V{}", &rsdt);
  227. for (u32 i = 0; i < ((length - sizeof(Structures::SDTHeader)) / sizeof(u32)); i++) {
  228. dbgln_if(ACPI_DEBUG, "ACPI: Found new table [{0}], @ V{1:p} - P{1:p}", i, &rsdt.table_ptrs[i]);
  229. m_sdt_pointers.append(PhysicalAddress(rsdt.table_ptrs[i]));
  230. }
  231. }
  232. }
  233. UNMAP_AFTER_INIT void Parser::locate_main_system_description_table()
  234. {
  235. auto rsdp = map_typed<Structures::RSDPDescriptor20>(m_rsdp);
  236. if (rsdp->base.revision == 0) {
  237. m_xsdt_supported = false;
  238. } else if (rsdp->base.revision >= 2) {
  239. if (rsdp->xsdt_ptr != (u64) nullptr) {
  240. m_xsdt_supported = true;
  241. } else {
  242. m_xsdt_supported = false;
  243. }
  244. }
  245. if (!m_xsdt_supported) {
  246. m_main_system_description_table = PhysicalAddress(rsdp->base.rsdt_ptr);
  247. } else {
  248. m_main_system_description_table = PhysicalAddress(rsdp->xsdt_ptr);
  249. }
  250. }
  251. UNMAP_AFTER_INIT Parser::Parser(PhysicalAddress rsdp)
  252. : m_rsdp(rsdp)
  253. {
  254. dmesgln("ACPI: Using RSDP @ {}", rsdp);
  255. locate_static_data();
  256. }
  257. static bool validate_table(const Structures::SDTHeader& v_header, size_t length)
  258. {
  259. u8 checksum = 0;
  260. auto* sdt = (const u8*)&v_header;
  261. for (size_t i = 0; i < length; i++)
  262. checksum += sdt[i];
  263. if (checksum == 0)
  264. return true;
  265. return false;
  266. }
  267. UNMAP_AFTER_INIT Optional<PhysicalAddress> StaticParsing::find_rsdp()
  268. {
  269. StringView signature("RSD PTR ");
  270. auto rsdp = map_ebda().find_chunk_starting_with(signature, 16);
  271. if (rsdp.has_value())
  272. return rsdp;
  273. return map_bios().find_chunk_starting_with(signature, 16);
  274. }
  275. UNMAP_AFTER_INIT PhysicalAddress StaticParsing::find_table(PhysicalAddress rsdp_address, const StringView& signature)
  276. {
  277. // FIXME: There's no validation of ACPI tables here. Use the checksum to validate the tables.
  278. VERIFY(signature.length() == 4);
  279. auto rsdp = map_typed<Structures::RSDPDescriptor20>(rsdp_address);
  280. if (rsdp->base.revision == 0)
  281. return search_table_in_rsdt(PhysicalAddress(rsdp->base.rsdt_ptr), signature);
  282. if (rsdp->base.revision >= 2) {
  283. if (rsdp->xsdt_ptr)
  284. return search_table_in_xsdt(PhysicalAddress(rsdp->xsdt_ptr), signature);
  285. return search_table_in_rsdt(PhysicalAddress(rsdp->base.rsdt_ptr), signature);
  286. }
  287. VERIFY_NOT_REACHED();
  288. }
  289. UNMAP_AFTER_INIT static PhysicalAddress search_table_in_xsdt(PhysicalAddress xsdt_address, const StringView& signature)
  290. {
  291. // FIXME: There's no validation of ACPI tables here. Use the checksum to validate the tables.
  292. VERIFY(signature.length() == 4);
  293. auto xsdt = map_typed<Structures::XSDT>(xsdt_address);
  294. for (size_t i = 0; i < ((xsdt->h.length - sizeof(Structures::SDTHeader)) / sizeof(u64)); ++i) {
  295. if (match_table_signature(PhysicalAddress((FlatPtr)xsdt->table_ptrs[i]), signature))
  296. return PhysicalAddress((FlatPtr)xsdt->table_ptrs[i]);
  297. }
  298. return {};
  299. }
  300. static bool match_table_signature(PhysicalAddress table_header, const StringView& signature)
  301. {
  302. // FIXME: There's no validation of ACPI tables here. Use the checksum to validate the tables.
  303. VERIFY(signature.length() == 4);
  304. auto table = map_typed<Structures::RSDT>(table_header);
  305. return !strncmp(table->h.sig, signature.characters_without_null_termination(), 4);
  306. }
  307. UNMAP_AFTER_INIT static PhysicalAddress search_table_in_rsdt(PhysicalAddress rsdt_address, const StringView& signature)
  308. {
  309. // FIXME: There's no validation of ACPI tables here. Use the checksum to validate the tables.
  310. VERIFY(signature.length() == 4);
  311. auto rsdt = map_typed<Structures::RSDT>(rsdt_address);
  312. for (u32 i = 0; i < ((rsdt->h.length - sizeof(Structures::SDTHeader)) / sizeof(u32)); i++) {
  313. if (match_table_signature(PhysicalAddress((FlatPtr)rsdt->table_ptrs[i]), signature))
  314. return PhysicalAddress((FlatPtr)rsdt->table_ptrs[i]);
  315. }
  316. return {};
  317. }
  318. void Parser::enable_aml_interpretation()
  319. {
  320. VERIFY_NOT_REACHED();
  321. }
  322. void Parser::enable_aml_interpretation(File&)
  323. {
  324. VERIFY_NOT_REACHED();
  325. }
  326. void Parser::enable_aml_interpretation(u8*, u32)
  327. {
  328. VERIFY_NOT_REACHED();
  329. }
  330. void Parser::disable_aml_interpretation()
  331. {
  332. VERIFY_NOT_REACHED();
  333. }
  334. }
  335. }