init.cpp 18 KB

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  1. /*
  2. * Copyright (c) 2018-2020, Andreas Kling <kling@serenityos.org>
  3. *
  4. * SPDX-License-Identifier: BSD-2-Clause
  5. */
  6. #include <AK/Types.h>
  7. #include <Kernel/Arch/InterruptManagement.h>
  8. #include <Kernel/Arch/Processor.h>
  9. #include <Kernel/Boot/BootInfo.h>
  10. #include <Kernel/Boot/CommandLine.h>
  11. #include <Kernel/Boot/Multiboot.h>
  12. #include <Kernel/Bus/PCI/Access.h>
  13. #include <Kernel/Bus/PCI/Initializer.h>
  14. #include <Kernel/Bus/USB/Drivers/USBDriver.h>
  15. #include <Kernel/Bus/USB/USBManagement.h>
  16. #include <Kernel/Bus/VirtIO/Device.h>
  17. #include <Kernel/Bus/VirtIO/Transport/PCIe/Detect.h>
  18. #include <Kernel/Devices/Audio/Management.h>
  19. #include <Kernel/Devices/DeviceManagement.h>
  20. #include <Kernel/Devices/GPU/Console/BootFramebufferConsole.h>
  21. #include <Kernel/Devices/GPU/Console/VGATextModeConsole.h>
  22. #include <Kernel/Devices/GPU/Management.h>
  23. #include <Kernel/Devices/Generic/DeviceControlDevice.h>
  24. #include <Kernel/Devices/Generic/FullDevice.h>
  25. #include <Kernel/Devices/Generic/MemoryDevice.h>
  26. #include <Kernel/Devices/Generic/NullDevice.h>
  27. #include <Kernel/Devices/Generic/RandomDevice.h>
  28. #include <Kernel/Devices/Generic/SelfTTYDevice.h>
  29. #include <Kernel/Devices/Generic/ZeroDevice.h>
  30. #include <Kernel/Devices/HID/Management.h>
  31. #include <Kernel/Devices/KCOVDevice.h>
  32. #include <Kernel/Devices/PCISerialDevice.h>
  33. #include <Kernel/Devices/SerialDevice.h>
  34. #include <Kernel/Devices/Storage/StorageManagement.h>
  35. #include <Kernel/Devices/TTY/ConsoleManagement.h>
  36. #include <Kernel/Devices/TTY/PTYMultiplexer.h>
  37. #include <Kernel/Devices/TTY/VirtualConsole.h>
  38. #include <Kernel/FileSystem/SysFS/Registry.h>
  39. #include <Kernel/FileSystem/SysFS/Subsystems/Firmware/Directory.h>
  40. #include <Kernel/FileSystem/VirtualFileSystem.h>
  41. #include <Kernel/Firmware/ACPI/Initialize.h>
  42. #include <Kernel/Firmware/ACPI/Parser.h>
  43. #include <Kernel/Heap/kmalloc.h>
  44. #include <Kernel/KSyms.h>
  45. #include <Kernel/Library/Panic.h>
  46. #include <Kernel/Memory/MemoryManager.h>
  47. #include <Kernel/Net/NetworkTask.h>
  48. #include <Kernel/Net/NetworkingManagement.h>
  49. #include <Kernel/Prekernel/Prekernel.h>
  50. #include <Kernel/Sections.h>
  51. #include <Kernel/Security/Random.h>
  52. #include <Kernel/Tasks/FinalizerTask.h>
  53. #include <Kernel/Tasks/Process.h>
  54. #include <Kernel/Tasks/Scheduler.h>
  55. #include <Kernel/Tasks/SyncTask.h>
  56. #include <Kernel/Tasks/WorkQueue.h>
  57. #include <Kernel/Time/TimeManagement.h>
  58. #include <Kernel/kstdio.h>
  59. #if ARCH(X86_64)
  60. # include <Kernel/Arch/x86_64/Hypervisor/VMWareBackdoor.h>
  61. # include <Kernel/Arch/x86_64/Interrupts/APIC.h>
  62. # include <Kernel/Arch/x86_64/Interrupts/PIC.h>
  63. #elif ARCH(AARCH64)
  64. # include <Kernel/Arch/aarch64/RPi/Framebuffer.h>
  65. # include <Kernel/Arch/aarch64/RPi/Mailbox.h>
  66. # include <Kernel/Arch/aarch64/RPi/MiniUART.h>
  67. #endif
  68. // Defined in the linker script
  69. typedef void (*ctor_func_t)();
  70. extern ctor_func_t start_heap_ctors[];
  71. extern ctor_func_t end_heap_ctors[];
  72. extern ctor_func_t start_ctors[];
  73. extern ctor_func_t end_ctors[];
  74. extern uintptr_t __stack_chk_guard;
  75. READONLY_AFTER_INIT uintptr_t __stack_chk_guard __attribute__((used));
  76. #if ARCH(X86_64)
  77. extern "C" u8 start_of_safemem_text[];
  78. extern "C" u8 end_of_safemem_text[];
  79. extern "C" u8 start_of_safemem_atomic_text[];
  80. extern "C" u8 end_of_safemem_atomic_text[];
  81. #endif
  82. extern "C" USB::DriverInitFunction driver_init_table_start[];
  83. extern "C" USB::DriverInitFunction driver_init_table_end[];
  84. extern "C" u8 end_of_kernel_image[];
  85. multiboot_module_entry_t multiboot_copy_boot_modules_array[16];
  86. size_t multiboot_copy_boot_modules_count;
  87. READONLY_AFTER_INIT bool g_in_early_boot;
  88. namespace Kernel {
  89. [[noreturn]] static void init_stage2(void*);
  90. static void setup_serial_debug();
  91. // boot.S expects these functions to exactly have the following signatures.
  92. // We declare them here to ensure their signatures don't accidentally change.
  93. extern "C" void init_finished(u32 cpu) __attribute__((used));
  94. extern "C" [[noreturn]] void init_ap(FlatPtr cpu, Processor* processor_info);
  95. extern "C" [[noreturn]] void init(BootInfo const&);
  96. READONLY_AFTER_INIT VirtualConsole* tty0;
  97. ProcessID g_init_pid { 0 };
  98. ALWAYS_INLINE static Processor& bsp_processor()
  99. {
  100. // This solves a problem where the bsp Processor instance
  101. // gets "re"-initialized in init() when we run all global constructors.
  102. alignas(Processor) static u8 bsp_processor_storage[sizeof(Processor)];
  103. return (Processor&)bsp_processor_storage;
  104. }
  105. // SerenityOS Kernel C++ entry point :^)
  106. //
  107. // This is where C++ execution begins, after boot.S transfers control here.
  108. //
  109. // The purpose of init() is to start multi-tasking. It does the bare minimum
  110. // amount of work needed to start the scheduler.
  111. //
  112. // Once multi-tasking is ready, we spawn a new thread that starts in the
  113. // init_stage2() function. Initialization continues there.
  114. extern "C" {
  115. READONLY_AFTER_INIT PhysicalAddress start_of_prekernel_image;
  116. READONLY_AFTER_INIT PhysicalAddress end_of_prekernel_image;
  117. READONLY_AFTER_INIT size_t physical_to_virtual_offset;
  118. READONLY_AFTER_INIT FlatPtr kernel_mapping_base;
  119. READONLY_AFTER_INIT FlatPtr kernel_load_base;
  120. READONLY_AFTER_INIT PhysicalAddress boot_pml4t;
  121. READONLY_AFTER_INIT PhysicalAddress boot_pdpt;
  122. READONLY_AFTER_INIT PhysicalAddress boot_pd0;
  123. READONLY_AFTER_INIT PhysicalAddress boot_pd_kernel;
  124. READONLY_AFTER_INIT Memory::PageTableEntry* boot_pd_kernel_pt1023;
  125. READONLY_AFTER_INIT StringView kernel_cmdline;
  126. READONLY_AFTER_INIT u32 multiboot_flags;
  127. READONLY_AFTER_INIT multiboot_memory_map_t* multiboot_memory_map;
  128. READONLY_AFTER_INIT size_t multiboot_memory_map_count;
  129. READONLY_AFTER_INIT multiboot_module_entry_t* multiboot_modules;
  130. READONLY_AFTER_INIT size_t multiboot_modules_count;
  131. READONLY_AFTER_INIT PhysicalAddress multiboot_framebuffer_addr;
  132. READONLY_AFTER_INIT u32 multiboot_framebuffer_pitch;
  133. READONLY_AFTER_INIT u32 multiboot_framebuffer_width;
  134. READONLY_AFTER_INIT u32 multiboot_framebuffer_height;
  135. READONLY_AFTER_INIT u8 multiboot_framebuffer_bpp;
  136. READONLY_AFTER_INIT u8 multiboot_framebuffer_type;
  137. }
  138. Atomic<Graphics::Console*> g_boot_console;
  139. #if ARCH(AARCH64)
  140. READONLY_AFTER_INIT static u8 s_command_line_buffer[512];
  141. #endif
  142. extern "C" [[noreturn]] UNMAP_AFTER_INIT void init([[maybe_unused]] BootInfo const& boot_info)
  143. {
  144. g_in_early_boot = true;
  145. #if ARCH(X86_64)
  146. start_of_prekernel_image = PhysicalAddress { boot_info.start_of_prekernel_image };
  147. end_of_prekernel_image = PhysicalAddress { boot_info.end_of_prekernel_image };
  148. physical_to_virtual_offset = boot_info.physical_to_virtual_offset;
  149. kernel_mapping_base = boot_info.kernel_mapping_base;
  150. kernel_load_base = boot_info.kernel_load_base;
  151. gdt64ptr = boot_info.gdt64ptr;
  152. code64_sel = boot_info.code64_sel;
  153. boot_pml4t = PhysicalAddress { boot_info.boot_pml4t };
  154. boot_pdpt = PhysicalAddress { boot_info.boot_pdpt };
  155. boot_pd0 = PhysicalAddress { boot_info.boot_pd0 };
  156. boot_pd_kernel = PhysicalAddress { boot_info.boot_pd_kernel };
  157. boot_pd_kernel_pt1023 = (Memory::PageTableEntry*)boot_info.boot_pd_kernel_pt1023;
  158. char const* cmdline = (char const*)boot_info.kernel_cmdline;
  159. kernel_cmdline = StringView { cmdline, strlen(cmdline) };
  160. multiboot_flags = boot_info.multiboot_flags;
  161. multiboot_memory_map = (multiboot_memory_map_t*)boot_info.multiboot_memory_map;
  162. multiboot_memory_map_count = boot_info.multiboot_memory_map_count;
  163. multiboot_modules = (multiboot_module_entry_t*)boot_info.multiboot_modules;
  164. multiboot_modules_count = boot_info.multiboot_modules_count;
  165. multiboot_framebuffer_addr = PhysicalAddress { boot_info.multiboot_framebuffer_addr };
  166. multiboot_framebuffer_pitch = boot_info.multiboot_framebuffer_pitch;
  167. multiboot_framebuffer_width = boot_info.multiboot_framebuffer_width;
  168. multiboot_framebuffer_height = boot_info.multiboot_framebuffer_height;
  169. multiboot_framebuffer_bpp = boot_info.multiboot_framebuffer_bpp;
  170. multiboot_framebuffer_type = boot_info.multiboot_framebuffer_type;
  171. #elif ARCH(AARCH64)
  172. // FIXME: For the aarch64 platforms, we should get the information by parsing a device tree instead of using multiboot.
  173. auto [ram_base, ram_size] = RPi::Mailbox::the().query_lower_arm_memory_range();
  174. auto [vcmem_base, vcmem_size] = RPi::Mailbox::the().query_videocore_memory_range();
  175. multiboot_memory_map_t mmap[] = {
  176. {
  177. sizeof(struct multiboot_mmap_entry) - sizeof(u32),
  178. (u64)ram_base,
  179. (u64)ram_size,
  180. MULTIBOOT_MEMORY_AVAILABLE,
  181. },
  182. {
  183. sizeof(struct multiboot_mmap_entry) - sizeof(u32),
  184. (u64)vcmem_base,
  185. (u64)vcmem_size,
  186. MULTIBOOT_MEMORY_RESERVED,
  187. },
  188. // FIXME: VideoCore only reports the first 1GB of RAM, the rest only shows up in the device tree.
  189. };
  190. multiboot_memory_map = mmap;
  191. multiboot_memory_map_count = 2;
  192. multiboot_modules = nullptr;
  193. multiboot_modules_count = 0;
  194. // FIXME: Read the /chosen/bootargs property.
  195. kernel_cmdline = RPi::Mailbox::the().query_kernel_command_line(s_command_line_buffer);
  196. #endif
  197. setup_serial_debug();
  198. // We need to copy the command line before kmalloc is initialized,
  199. // as it may overwrite parts of multiboot!
  200. CommandLine::early_initialize(kernel_cmdline);
  201. if (multiboot_modules_count > 0) {
  202. VERIFY(multiboot_modules);
  203. memcpy(multiboot_copy_boot_modules_array, multiboot_modules, multiboot_modules_count * sizeof(multiboot_module_entry_t));
  204. }
  205. multiboot_copy_boot_modules_count = multiboot_modules_count;
  206. new (&bsp_processor()) Processor();
  207. bsp_processor().early_initialize(0);
  208. // Invoke the constructors needed for the kernel heap
  209. for (ctor_func_t* ctor = start_heap_ctors; ctor < end_heap_ctors; ctor++)
  210. (*ctor)();
  211. kmalloc_init();
  212. load_kernel_symbol_table();
  213. bsp_processor().initialize(0);
  214. CommandLine::initialize();
  215. Memory::MemoryManager::initialize(0);
  216. #if ARCH(AARCH64)
  217. auto firmware_version = RPi::Mailbox::the().query_firmware_version();
  218. dmesgln("RPi: Firmware version: {}", firmware_version);
  219. RPi::Framebuffer::initialize();
  220. #endif
  221. // NOTE: If the bootloader provided a framebuffer, then set up an initial console.
  222. // If the bootloader didn't provide a framebuffer, then set up an initial text console.
  223. // We do so we can see the output on the screen as soon as possible.
  224. if (!kernel_command_line().is_early_boot_console_disabled()) {
  225. if ((multiboot_flags & MULTIBOOT_INFO_FRAMEBUFFER_INFO) && !multiboot_framebuffer_addr.is_null() && multiboot_framebuffer_type == MULTIBOOT_FRAMEBUFFER_TYPE_RGB) {
  226. g_boot_console = &try_make_lock_ref_counted<Graphics::BootFramebufferConsole>(multiboot_framebuffer_addr, multiboot_framebuffer_width, multiboot_framebuffer_height, multiboot_framebuffer_pitch).value().leak_ref();
  227. } else {
  228. g_boot_console = &Graphics::VGATextModeConsole::initialize().leak_ref();
  229. }
  230. }
  231. dmesgln("Starting SerenityOS...");
  232. MM.unmap_prekernel();
  233. #if ARCH(X86_64)
  234. // Ensure that the safemem sections are not empty. This could happen if the linker accidentally discards the sections.
  235. VERIFY(+start_of_safemem_text != +end_of_safemem_text);
  236. VERIFY(+start_of_safemem_atomic_text != +end_of_safemem_atomic_text);
  237. #endif
  238. // Invoke all static global constructors in the kernel.
  239. // Note that we want to do this as early as possible.
  240. for (ctor_func_t* ctor = start_ctors; ctor < end_ctors; ctor++)
  241. (*ctor)();
  242. InterruptManagement::initialize();
  243. ACPI::initialize();
  244. // Initialize TimeManagement before using randomness!
  245. TimeManagement::initialize(0);
  246. DeviceManagement::initialize();
  247. SysFSComponentRegistry::initialize();
  248. DeviceManagement::the().attach_null_device(*NullDevice::must_initialize());
  249. DeviceManagement::the().attach_console_device(*ConsoleDevice::must_create());
  250. DeviceManagement::the().attach_device_control_device(*DeviceControlDevice::must_create());
  251. __stack_chk_guard = get_fast_random<uintptr_t>();
  252. Process::initialize();
  253. Scheduler::initialize();
  254. #if ARCH(X86_64)
  255. // FIXME: Add an abstraction for the smp related functions, instead of using ifdefs in this file.
  256. if (APIC::initialized() && APIC::the().enabled_processor_count() > 1) {
  257. // We must set up the AP boot environment before switching to a kernel process,
  258. // as pages below address USER_RANGE_BASE are only accessible through the kernel
  259. // page directory.
  260. APIC::the().setup_ap_boot_environment();
  261. }
  262. #endif
  263. MUST(Process::create_kernel_process("init_stage2"sv, init_stage2, nullptr, THREAD_AFFINITY_DEFAULT, Process::RegisterProcess::No));
  264. Scheduler::start();
  265. VERIFY_NOT_REACHED();
  266. }
  267. #if ARCH(X86_64)
  268. //
  269. // This is where C++ execution begins for APs, after boot.S transfers control here.
  270. //
  271. // The purpose of init_ap() is to initialize APs for multi-tasking.
  272. //
  273. extern "C" [[noreturn]] UNMAP_AFTER_INIT void init_ap(FlatPtr cpu, Processor* processor_info)
  274. {
  275. processor_info->early_initialize(cpu);
  276. processor_info->initialize(cpu);
  277. Memory::MemoryManager::initialize(cpu);
  278. Scheduler::set_idle_thread(APIC::the().get_idle_thread(cpu));
  279. Scheduler::start();
  280. VERIFY_NOT_REACHED();
  281. }
  282. //
  283. // This method is called once a CPU enters the scheduler and its idle thread
  284. // At this point the initial boot stack can be freed
  285. //
  286. extern "C" UNMAP_AFTER_INIT void init_finished(u32 cpu)
  287. {
  288. if (cpu == 0) {
  289. // TODO: we can reuse the boot stack, maybe for kmalloc()?
  290. } else {
  291. APIC::the().init_finished(cpu);
  292. TimeManagement::initialize(cpu);
  293. }
  294. }
  295. #endif
  296. void init_stage2(void*)
  297. {
  298. // This is a little bit of a hack. We can't register our process at the time we're
  299. // creating it, but we need to be registered otherwise finalization won't be happy.
  300. // The colonel process gets away without having to do this because it never exits.
  301. Process::register_new(Process::current());
  302. WorkQueue::initialize();
  303. #if ARCH(X86_64)
  304. if (kernel_command_line().is_smp_enabled() && APIC::initialized() && APIC::the().enabled_processor_count() > 1) {
  305. // We can't start the APs until we have a scheduler up and running.
  306. // We need to be able to process ICI messages, otherwise another
  307. // core may send too many and end up deadlocking once the pool is
  308. // exhausted
  309. APIC::the().boot_aps();
  310. }
  311. #endif
  312. // Initialize the PCI Bus as early as possible, for early boot (PCI based) serial logging
  313. PCI::initialize();
  314. if (!PCI::Access::is_disabled()) {
  315. PCISerialDevice::detect();
  316. }
  317. VirtualFileSystem::initialize();
  318. #if ARCH(X86_64)
  319. if (!is_serial_debug_enabled())
  320. (void)SerialDevice::must_create(0).leak_ref();
  321. (void)SerialDevice::must_create(1).leak_ref();
  322. (void)SerialDevice::must_create(2).leak_ref();
  323. (void)SerialDevice::must_create(3).leak_ref();
  324. #elif ARCH(AARCH64)
  325. (void)MUST(RPi::MiniUART::create()).leak_ref();
  326. #endif
  327. #if ARCH(X86_64)
  328. VMWareBackdoor::the(); // don't wait until first mouse packet
  329. #endif
  330. MUST(HIDManagement::initialize());
  331. GraphicsManagement::the().initialize();
  332. ConsoleManagement::the().initialize();
  333. SyncTask::spawn();
  334. FinalizerTask::spawn();
  335. auto boot_profiling = kernel_command_line().is_boot_profiling_enabled();
  336. if (!PCI::Access::is_disabled()) {
  337. USB::USBManagement::initialize();
  338. }
  339. SysFSFirmwareDirectory::initialize();
  340. if (!PCI::Access::is_disabled()) {
  341. VirtIO::detect_pci_instances();
  342. }
  343. NetworkingManagement::the().initialize();
  344. #ifdef ENABLE_KERNEL_COVERAGE_COLLECTION
  345. (void)KCOVDevice::must_create().leak_ref();
  346. #endif
  347. (void)MemoryDevice::must_create().leak_ref();
  348. (void)ZeroDevice::must_create().leak_ref();
  349. (void)FullDevice::must_create().leak_ref();
  350. (void)RandomDevice::must_create().leak_ref();
  351. (void)SelfTTYDevice::must_create().leak_ref();
  352. PTYMultiplexer::initialize();
  353. AudioManagement::the().initialize();
  354. StorageManagement::the().initialize(kernel_command_line().root_device(), kernel_command_line().is_force_pio(), kernel_command_line().is_nvme_polling_enabled());
  355. if (VirtualFileSystem::the().mount_root(StorageManagement::the().root_filesystem()).is_error()) {
  356. PANIC("VirtualFileSystem::mount_root failed");
  357. }
  358. // Initialise all USB Drivers
  359. for (auto* init_function = driver_init_table_start; init_function != driver_init_table_end; init_function++)
  360. (*init_function)();
  361. // Switch out of early boot mode.
  362. g_in_early_boot = false;
  363. // NOTE: Everything marked READONLY_AFTER_INIT becomes non-writable after this point.
  364. MM.protect_readonly_after_init_memory();
  365. // NOTE: Everything in the .ksyms section becomes read-only after this point.
  366. MM.protect_ksyms_after_init();
  367. // NOTE: Everything marked UNMAP_AFTER_INIT becomes inaccessible after this point.
  368. MM.unmap_text_after_init();
  369. auto userspace_init = kernel_command_line().userspace_init();
  370. auto init_args = kernel_command_line().userspace_init_args();
  371. auto init_or_error = Process::create_user_process(userspace_init, UserID(0), GroupID(0), move(init_args), {}, tty0);
  372. if (init_or_error.is_error())
  373. PANIC("init_stage2: Error spawning init process: {}", init_or_error.error());
  374. auto [init_process, init_thread] = init_or_error.release_value();
  375. g_init_pid = init_process->pid();
  376. init_thread->set_priority(THREAD_PRIORITY_HIGH);
  377. NetworkTask::spawn();
  378. // NOTE: All kernel processes must be created before enabling boot profiling.
  379. // This is so profiling_enable() can emit process created performance events for them.
  380. if (boot_profiling) {
  381. dbgln("Starting full system boot profiling");
  382. MutexLocker mutex_locker(Process::current().big_lock());
  383. auto const enable_all = ~(u64)0;
  384. auto result = Process::current().profiling_enable(-1, enable_all);
  385. VERIFY(!result.is_error());
  386. }
  387. Process::current().sys$exit(0);
  388. VERIFY_NOT_REACHED();
  389. }
  390. UNMAP_AFTER_INIT void setup_serial_debug()
  391. {
  392. // serial_debug will output all the dbgln() data to COM1 at
  393. // 8-N-1 57600 baud. this is particularly useful for debugging the boot
  394. // process on live hardware.
  395. if (kernel_cmdline.contains("serial_debug"sv)) {
  396. set_serial_debug_enabled(true);
  397. }
  398. }
  399. // Define some Itanium C++ ABI methods to stop the linker from complaining.
  400. // If we actually call these something has gone horribly wrong
  401. void* __dso_handle __attribute__((visibility("hidden")));
  402. }