Access.cpp 11 KB

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  1. /*
  2. * Copyright (c) 2020, Liav A. <liavalb@hotmail.co.il>
  3. *
  4. * SPDX-License-Identifier: BSD-2-Clause
  5. */
  6. #include <AK/ByteReader.h>
  7. #include <AK/Error.h>
  8. #include <AK/HashTable.h>
  9. #if ARCH(X86_64)
  10. # include <Kernel/Arch/x86_64/PCI/Controller/HostBridge.h>
  11. #endif
  12. #include <Kernel/Bus/PCI/Access.h>
  13. #include <Kernel/Bus/PCI/Controller/MemoryBackedHostBridge.h>
  14. #include <Kernel/Bus/PCI/Initializer.h>
  15. #include <Kernel/Debug.h>
  16. #include <Kernel/Firmware/ACPI/Definitions.h>
  17. #include <Kernel/Memory/MemoryManager.h>
  18. #include <Kernel/Memory/Region.h>
  19. #include <Kernel/Memory/TypedMapping.h>
  20. #include <Kernel/ProcessExposed.h>
  21. #include <Kernel/Sections.h>
  22. namespace Kernel::PCI {
  23. #define PCI_MMIO_CONFIG_SPACE_SIZE 4096
  24. static Access* s_access;
  25. Access& Access::the()
  26. {
  27. if (s_access == nullptr) {
  28. VERIFY_NOT_REACHED(); // We failed to initialize the PCI subsystem, so stop here!
  29. }
  30. return *s_access;
  31. }
  32. bool Access::is_initialized()
  33. {
  34. return (s_access != nullptr);
  35. }
  36. bool Access::is_hardware_disabled()
  37. {
  38. return g_pci_access_io_probe_failed;
  39. }
  40. bool Access::is_disabled()
  41. {
  42. return g_pci_access_is_disabled_from_commandline || g_pci_access_io_probe_failed;
  43. }
  44. UNMAP_AFTER_INIT bool Access::find_and_register_pci_host_bridges_from_acpi_mcfg_table(PhysicalAddress mcfg_table)
  45. {
  46. u32 length = 0;
  47. u8 revision = 0;
  48. {
  49. auto mapped_mcfg_table_or_error = Memory::map_typed<ACPI::Structures::SDTHeader>(mcfg_table);
  50. if (mapped_mcfg_table_or_error.is_error()) {
  51. dbgln("Failed to map MCFG table");
  52. return false;
  53. }
  54. auto mapped_mcfg_table = mapped_mcfg_table_or_error.release_value();
  55. length = mapped_mcfg_table->length;
  56. revision = mapped_mcfg_table->revision;
  57. }
  58. if (length == sizeof(ACPI::Structures::SDTHeader))
  59. return false;
  60. dbgln("PCI: MCFG, length: {}, revision: {}", length, revision);
  61. if (Checked<size_t>::addition_would_overflow(length, PAGE_SIZE)) {
  62. dbgln("Overflow when adding extra page to allocation of length {}", length);
  63. return false;
  64. }
  65. length += PAGE_SIZE;
  66. auto region_size_or_error = Memory::page_round_up(length);
  67. if (region_size_or_error.is_error()) {
  68. dbgln("Failed to round up length of {} to pages", length);
  69. return false;
  70. }
  71. auto mcfg_region_or_error = MM.allocate_kernel_region(mcfg_table.page_base(), region_size_or_error.value(), "PCI Parsing MCFG"sv, Memory::Region::Access::ReadWrite);
  72. if (mcfg_region_or_error.is_error())
  73. return false;
  74. auto& mcfg = *(ACPI::Structures::MCFG*)mcfg_region_or_error.value()->vaddr().offset(mcfg_table.offset_in_page()).as_ptr();
  75. dbgln_if(PCI_DEBUG, "PCI: Checking MCFG @ {}, {}", VirtualAddress(&mcfg), mcfg_table);
  76. for (u32 index = 0; index < ((mcfg.header.length - sizeof(ACPI::Structures::MCFG)) / sizeof(ACPI::Structures::PCI_MMIO_Descriptor)); index++) {
  77. u8 start_bus = mcfg.descriptors[index].start_pci_bus;
  78. u8 end_bus = mcfg.descriptors[index].end_pci_bus;
  79. u64 start_addr = mcfg.descriptors[index].base_addr;
  80. Domain pci_domain { index, start_bus, end_bus };
  81. dmesgln("PCI: New PCI domain @ {}, PCI buses ({}-{})", PhysicalAddress { start_addr }, start_bus, end_bus);
  82. auto host_bridge = MemoryBackedHostBridge::must_create(pci_domain, PhysicalAddress { start_addr });
  83. add_host_controller(move(host_bridge));
  84. }
  85. return true;
  86. }
  87. UNMAP_AFTER_INIT bool Access::initialize_for_multiple_pci_domains(PhysicalAddress mcfg_table)
  88. {
  89. VERIFY(!Access::is_initialized());
  90. auto* access = new Access();
  91. if (!access->find_and_register_pci_host_bridges_from_acpi_mcfg_table(mcfg_table))
  92. return false;
  93. access->rescan_hardware();
  94. dbgln_if(PCI_DEBUG, "PCI: access for multiple PCI domain initialised.");
  95. return true;
  96. }
  97. #if ARCH(X86_64)
  98. UNMAP_AFTER_INIT bool Access::initialize_for_one_pci_domain()
  99. {
  100. VERIFY(!Access::is_initialized());
  101. auto* access = new Access();
  102. auto host_bridge = HostBridge::must_create_with_io_access();
  103. access->add_host_controller(move(host_bridge));
  104. access->rescan_hardware();
  105. dbgln_if(PCI_DEBUG, "PCI: access for one PCI domain initialised.");
  106. return true;
  107. }
  108. #endif
  109. ErrorOr<void> Access::add_host_controller_and_scan_for_devices(NonnullOwnPtr<HostController> controller)
  110. {
  111. SpinlockLocker locker(m_access_lock);
  112. SpinlockLocker scan_locker(m_scan_lock);
  113. auto domain_number = controller->domain_number();
  114. VERIFY(!m_host_controllers.contains(domain_number));
  115. // Note: We need to register the new controller as soon as possible, and
  116. // definitely before enumerating devices behind that.
  117. m_host_controllers.set(domain_number, move(controller));
  118. ErrorOr<void> error_or_void {};
  119. m_host_controllers.get(domain_number).value()->enumerate_attached_devices([&](EnumerableDeviceIdentifier const& device_identifier) -> IterationDecision {
  120. auto device_identifier_or_error = DeviceIdentifier::from_enumerable_identifier(device_identifier);
  121. if (device_identifier_or_error.is_error()) {
  122. error_or_void = device_identifier_or_error.error();
  123. return IterationDecision::Break;
  124. }
  125. m_device_identifiers.append(device_identifier_or_error.release_value());
  126. return IterationDecision::Continue;
  127. });
  128. return {};
  129. }
  130. UNMAP_AFTER_INIT void Access::add_host_controller(NonnullOwnPtr<HostController> controller)
  131. {
  132. auto domain_number = controller->domain_number();
  133. m_host_controllers.set(domain_number, move(controller));
  134. }
  135. UNMAP_AFTER_INIT Access::Access()
  136. {
  137. s_access = this;
  138. }
  139. UNMAP_AFTER_INIT void Access::rescan_hardware()
  140. {
  141. SpinlockLocker locker(m_access_lock);
  142. SpinlockLocker scan_locker(m_scan_lock);
  143. VERIFY(m_device_identifiers.is_empty());
  144. ErrorOr<void> error_or_void {};
  145. for (auto it = m_host_controllers.begin(); it != m_host_controllers.end(); ++it) {
  146. (*it).value->enumerate_attached_devices([this, &error_or_void](EnumerableDeviceIdentifier device_identifier) -> IterationDecision {
  147. auto device_identifier_or_error = DeviceIdentifier::from_enumerable_identifier(device_identifier);
  148. if (device_identifier_or_error.is_error()) {
  149. error_or_void = device_identifier_or_error.error();
  150. return IterationDecision::Break;
  151. }
  152. m_device_identifiers.append(device_identifier_or_error.release_value());
  153. return IterationDecision::Continue;
  154. });
  155. }
  156. if (error_or_void.is_error()) {
  157. dmesgln("Failed during PCI Access::rescan_hardware due to {}", error_or_void.error());
  158. VERIFY_NOT_REACHED();
  159. }
  160. }
  161. ErrorOr<void> Access::fast_enumerate(Function<void(DeviceIdentifier const&)>& callback) const
  162. {
  163. // Note: We hold the m_access_lock for a brief moment just to ensure we get
  164. // a complete Vector in case someone wants to mutate it.
  165. NonnullRefPtrVector<DeviceIdentifier> device_identifiers;
  166. {
  167. SpinlockLocker locker(m_access_lock);
  168. VERIFY(!m_device_identifiers.is_empty());
  169. TRY(device_identifiers.try_extend(m_device_identifiers));
  170. }
  171. for (auto const& device_identifier : device_identifiers) {
  172. callback(device_identifier);
  173. }
  174. return {};
  175. }
  176. DeviceIdentifier const& Access::get_device_identifier(Address address) const
  177. {
  178. for (auto& device_identifier : m_device_identifiers) {
  179. if (device_identifier.address().domain() == address.domain()
  180. && device_identifier.address().bus() == address.bus()
  181. && device_identifier.address().device() == address.device()
  182. && device_identifier.address().function() == address.function()) {
  183. return device_identifier;
  184. }
  185. }
  186. VERIFY_NOT_REACHED();
  187. }
  188. void Access::write8_field(DeviceIdentifier const& identifier, u32 field, u8 value)
  189. {
  190. VERIFY(identifier.operation_lock().is_locked());
  191. SpinlockLocker locker(m_access_lock);
  192. VERIFY(m_host_controllers.contains(identifier.address().domain()));
  193. auto& controller = *m_host_controllers.get(identifier.address().domain()).value();
  194. controller.write8_field(identifier.address().bus(), identifier.address().device(), identifier.address().function(), field, value);
  195. }
  196. void Access::write16_field(DeviceIdentifier const& identifier, u32 field, u16 value)
  197. {
  198. VERIFY(identifier.operation_lock().is_locked());
  199. SpinlockLocker locker(m_access_lock);
  200. VERIFY(m_host_controllers.contains(identifier.address().domain()));
  201. auto& controller = *m_host_controllers.get(identifier.address().domain()).value();
  202. controller.write16_field(identifier.address().bus(), identifier.address().device(), identifier.address().function(), field, value);
  203. }
  204. void Access::write32_field(DeviceIdentifier const& identifier, u32 field, u32 value)
  205. {
  206. VERIFY(identifier.operation_lock().is_locked());
  207. SpinlockLocker locker(m_access_lock);
  208. VERIFY(m_host_controllers.contains(identifier.address().domain()));
  209. auto& controller = *m_host_controllers.get(identifier.address().domain()).value();
  210. controller.write32_field(identifier.address().bus(), identifier.address().device(), identifier.address().function(), field, value);
  211. }
  212. u8 Access::read8_field(DeviceIdentifier const& identifier, RegisterOffset field)
  213. {
  214. VERIFY(identifier.operation_lock().is_locked());
  215. return read8_field(identifier, to_underlying(field));
  216. }
  217. u16 Access::read16_field(DeviceIdentifier const& identifier, RegisterOffset field)
  218. {
  219. VERIFY(identifier.operation_lock().is_locked());
  220. return read16_field(identifier, to_underlying(field));
  221. }
  222. u8 Access::read8_field(DeviceIdentifier const& identifier, u32 field)
  223. {
  224. VERIFY(identifier.operation_lock().is_locked());
  225. SpinlockLocker locker(m_access_lock);
  226. VERIFY(m_host_controllers.contains(identifier.address().domain()));
  227. auto& controller = *m_host_controllers.get(identifier.address().domain()).value();
  228. return controller.read8_field(identifier.address().bus(), identifier.address().device(), identifier.address().function(), field);
  229. }
  230. u16 Access::read16_field(DeviceIdentifier const& identifier, u32 field)
  231. {
  232. VERIFY(identifier.operation_lock().is_locked());
  233. SpinlockLocker locker(m_access_lock);
  234. VERIFY(m_host_controllers.contains(identifier.address().domain()));
  235. auto& controller = *m_host_controllers.get(identifier.address().domain()).value();
  236. return controller.read16_field(identifier.address().bus(), identifier.address().device(), identifier.address().function(), field);
  237. }
  238. u32 Access::read32_field(DeviceIdentifier const& identifier, u32 field)
  239. {
  240. VERIFY(identifier.operation_lock().is_locked());
  241. SpinlockLocker locker(m_access_lock);
  242. VERIFY(m_host_controllers.contains(identifier.address().domain()));
  243. auto& controller = *m_host_controllers.get(identifier.address().domain()).value();
  244. return controller.read32_field(identifier.address().bus(), identifier.address().device(), identifier.address().function(), field);
  245. }
  246. }