init.cpp 9.5 KB

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  1. /*
  2. * Copyright (c) 2018-2020, Andreas Kling <kling@serenityos.org>
  3. * Copyright (c) 2021, Gunnar Beutner <gbeutner@serenityos.org>
  4. * Copyright (c) 2021, Liav A. <liavalb@hotmail.co.il>
  5. *
  6. * SPDX-License-Identifier: BSD-2-Clause
  7. */
  8. #include <AK/Types.h>
  9. #include <Kernel/Memory/PhysicalAddress.h>
  10. #include <Kernel/Memory/VirtualAddress.h>
  11. #include <Kernel/Multiboot.h>
  12. #include <Kernel/Prekernel/Prekernel.h>
  13. #include <LibC/elf.h>
  14. #include <LibELF/Relocation.h>
  15. #if ARCH(X86_64)
  16. # include <Kernel/Arch/x86_64/ASM_wrapper.h>
  17. # include <Kernel/Arch/x86_64/CPUID.h>
  18. #endif
  19. // Defined in the linker script
  20. extern uintptr_t __stack_chk_guard;
  21. uintptr_t __stack_chk_guard __attribute__((used));
  22. extern "C" [[noreturn]] void __stack_chk_fail();
  23. extern "C" u8 start_of_prekernel_image[];
  24. extern "C" u8 end_of_prekernel_image[];
  25. extern "C" u8 gdt64ptr[];
  26. extern "C" u16 code64_sel;
  27. extern "C" u64 boot_pml4t[512];
  28. extern "C" u64 boot_pdpt[512];
  29. extern "C" u64 boot_pd0[512];
  30. extern "C" u64 boot_pd0_pts[512 * (MAX_KERNEL_SIZE >> 21 & 0x1ff)];
  31. extern "C" u64 boot_pd_kernel[512];
  32. extern "C" u64 boot_pd_kernel_pt0[512];
  33. extern "C" u64 boot_pd_kernel_image_pts[512 * (MAX_KERNEL_SIZE >> 21 & 0x1ff)];
  34. extern "C" u64 boot_pd_kernel_pt1023[512];
  35. extern "C" char const kernel_cmdline[4096];
  36. extern "C" void reload_cr3();
  37. extern "C" {
  38. multiboot_info_t* multiboot_info_ptr;
  39. }
  40. [[noreturn]] static void halt()
  41. {
  42. asm volatile("hlt");
  43. __builtin_unreachable();
  44. }
  45. void __stack_chk_fail()
  46. {
  47. halt();
  48. }
  49. void __assertion_failed(char const*, char const*, unsigned int, char const*)
  50. {
  51. halt();
  52. }
  53. namespace Kernel {
  54. // boot.S expects these functions to exactly have the following signatures.
  55. // We declare them here to ensure their signatures don't accidentally change.
  56. extern "C" [[noreturn]] void init();
  57. // SerenityOS Pre-Kernel Environment C++ entry point :^)
  58. //
  59. // This is where C++ execution begins, after boot.S transfers control here.
  60. //
  61. u64 generate_secure_seed();
  62. extern "C" [[noreturn]] void init()
  63. {
  64. if (multiboot_info_ptr->mods_count < 1)
  65. halt();
  66. multiboot_module_entry_t* kernel_module = (multiboot_module_entry_t*)(FlatPtr)multiboot_info_ptr->mods_addr;
  67. u8* kernel_image = (u8*)(FlatPtr)kernel_module->start;
  68. // copy the ELF header and program headers because we might end up overwriting them
  69. ElfW(Ehdr) kernel_elf_header = *(ElfW(Ehdr)*)kernel_image;
  70. ElfW(Phdr) kernel_program_headers[16];
  71. if (kernel_elf_header.e_phnum > array_size(kernel_program_headers))
  72. halt();
  73. __builtin_memcpy(kernel_program_headers, kernel_image + kernel_elf_header.e_phoff, sizeof(ElfW(Phdr)) * kernel_elf_header.e_phnum);
  74. FlatPtr kernel_physical_base = 0x200000;
  75. FlatPtr default_kernel_load_base = KERNEL_MAPPING_BASE + 0x200000;
  76. FlatPtr kernel_load_base = default_kernel_load_base;
  77. if (__builtin_strstr(kernel_cmdline, "disable_kaslr") == nullptr) {
  78. FlatPtr maximum_offset = (FlatPtr)KERNEL_PD_SIZE - MAX_KERNEL_SIZE - 2 * MiB; // The first 2 MiB are used for mapping the pre-kernel
  79. kernel_load_base += (generate_secure_seed() % maximum_offset);
  80. kernel_load_base &= ~(2 * MiB - 1);
  81. }
  82. FlatPtr kernel_load_end = 0;
  83. for (size_t i = 0; i < kernel_elf_header.e_phnum; i++) {
  84. auto& kernel_program_header = kernel_program_headers[i];
  85. if (kernel_program_header.p_type != PT_LOAD)
  86. continue;
  87. auto start = kernel_load_base + kernel_program_header.p_vaddr;
  88. auto end = start + kernel_program_header.p_memsz;
  89. if (start < (FlatPtr)end_of_prekernel_image)
  90. halt();
  91. if (kernel_physical_base + kernel_program_header.p_paddr < (FlatPtr)end_of_prekernel_image)
  92. halt();
  93. if (end > kernel_load_end)
  94. kernel_load_end = end;
  95. }
  96. // align to 1GB
  97. FlatPtr kernel_mapping_base = kernel_load_base & ~(FlatPtr)0x3fffffff;
  98. VERIFY(kernel_load_base % 0x1000 == 0);
  99. VERIFY(kernel_load_base >= kernel_mapping_base + 0x200000);
  100. int pdpt_flags = 0x3;
  101. boot_pdpt[(kernel_mapping_base >> 30) & 0x1ffu] = (FlatPtr)boot_pd_kernel | pdpt_flags;
  102. boot_pd_kernel[0] = (FlatPtr)boot_pd_kernel_pt0 | 0x3;
  103. for (FlatPtr vaddr = kernel_load_base; vaddr <= kernel_load_end; vaddr += PAGE_SIZE * 512)
  104. boot_pd_kernel[(vaddr - kernel_mapping_base) >> 21] = (FlatPtr)(&boot_pd_kernel_image_pts[(vaddr - kernel_load_base) >> 12]) | 0x3;
  105. __builtin_memset(boot_pd_kernel_pt0, 0, sizeof(boot_pd_kernel_pt0));
  106. VERIFY((size_t)end_of_prekernel_image < array_size(boot_pd_kernel_pt0) * PAGE_SIZE);
  107. /* pseudo-identity map 0M - end_of_prekernel_image */
  108. for (size_t i = 0; i < (FlatPtr)end_of_prekernel_image / PAGE_SIZE; i++)
  109. boot_pd_kernel_pt0[i] = i * PAGE_SIZE | 0x3;
  110. __builtin_memset(boot_pd_kernel_image_pts, 0, sizeof(boot_pd_kernel_image_pts));
  111. for (size_t i = 0; i < kernel_elf_header.e_phnum; i++) {
  112. auto& kernel_program_header = kernel_program_headers[i];
  113. if (kernel_program_header.p_type != PT_LOAD)
  114. continue;
  115. for (FlatPtr offset = 0; offset < kernel_program_header.p_memsz; offset += PAGE_SIZE) {
  116. auto pte_index = ((kernel_load_base & 0x1fffff) + kernel_program_header.p_vaddr + offset) >> 12;
  117. boot_pd_kernel_image_pts[pte_index] = (kernel_physical_base + kernel_program_header.p_paddr + offset) | 0x3;
  118. }
  119. }
  120. boot_pd_kernel[511] = (FlatPtr)boot_pd_kernel_pt1023 | 0x3;
  121. reload_cr3();
  122. for (ssize_t i = kernel_elf_header.e_phnum - 1; i >= 0; i--) {
  123. auto& kernel_program_header = kernel_program_headers[i];
  124. if (kernel_program_header.p_type != PT_LOAD)
  125. continue;
  126. __builtin_memmove((u8*)kernel_load_base + kernel_program_header.p_vaddr, kernel_image + kernel_program_header.p_offset, kernel_program_header.p_filesz);
  127. }
  128. for (ssize_t i = kernel_elf_header.e_phnum - 1; i >= 0; i--) {
  129. auto& kernel_program_header = kernel_program_headers[i];
  130. if (kernel_program_header.p_type != PT_LOAD)
  131. continue;
  132. __builtin_memset((u8*)kernel_load_base + kernel_program_header.p_vaddr + kernel_program_header.p_filesz, 0, kernel_program_header.p_memsz - kernel_program_header.p_filesz);
  133. }
  134. multiboot_info_ptr->mods_count--;
  135. multiboot_info_ptr->mods_addr += sizeof(multiboot_module_entry_t);
  136. auto adjust_by_mapping_base = [kernel_mapping_base](auto ptr) {
  137. return (decltype(ptr))((FlatPtr)ptr + kernel_mapping_base);
  138. };
  139. BootInfo info {};
  140. info.start_of_prekernel_image = (PhysicalPtr)start_of_prekernel_image;
  141. info.end_of_prekernel_image = (PhysicalPtr)end_of_prekernel_image;
  142. info.physical_to_virtual_offset = kernel_load_base - kernel_physical_base;
  143. info.kernel_mapping_base = kernel_mapping_base;
  144. info.kernel_load_base = kernel_load_base;
  145. #if ARCH(X86_64)
  146. info.gdt64ptr = (PhysicalPtr)gdt64ptr;
  147. info.code64_sel = code64_sel;
  148. info.boot_pml4t = (PhysicalPtr)boot_pml4t;
  149. #endif
  150. info.boot_pdpt = (PhysicalPtr)boot_pdpt;
  151. info.boot_pd0 = (PhysicalPtr)boot_pd0;
  152. info.boot_pd_kernel = (PhysicalPtr)boot_pd_kernel;
  153. info.boot_pd_kernel_pt1023 = (FlatPtr)adjust_by_mapping_base(boot_pd_kernel_pt1023);
  154. info.kernel_cmdline = (FlatPtr)adjust_by_mapping_base(kernel_cmdline);
  155. info.multiboot_flags = multiboot_info_ptr->flags;
  156. info.multiboot_memory_map = adjust_by_mapping_base((FlatPtr)multiboot_info_ptr->mmap_addr);
  157. info.multiboot_memory_map_count = multiboot_info_ptr->mmap_length / sizeof(multiboot_memory_map_t);
  158. info.multiboot_modules = adjust_by_mapping_base((FlatPtr)multiboot_info_ptr->mods_addr);
  159. info.multiboot_modules_count = multiboot_info_ptr->mods_count;
  160. if ((multiboot_info_ptr->flags & MULTIBOOT_INFO_FRAMEBUFFER_INFO) != 0) {
  161. info.multiboot_framebuffer_addr = multiboot_info_ptr->framebuffer_addr;
  162. info.multiboot_framebuffer_pitch = multiboot_info_ptr->framebuffer_pitch;
  163. info.multiboot_framebuffer_width = multiboot_info_ptr->framebuffer_width;
  164. info.multiboot_framebuffer_height = multiboot_info_ptr->framebuffer_height;
  165. info.multiboot_framebuffer_bpp = multiboot_info_ptr->framebuffer_bpp;
  166. info.multiboot_framebuffer_type = multiboot_info_ptr->framebuffer_type;
  167. }
  168. asm(
  169. "mov %0, %%rax\n"
  170. "add %%rax, %%rsp" ::"g"(kernel_mapping_base)
  171. : "ax");
  172. // unmap the 0-1MB region
  173. for (size_t i = 0; i < 256; i++)
  174. boot_pd0_pts[i] = 0;
  175. // unmap the end_of_prekernel_image - MAX_KERNEL_SIZE region
  176. for (FlatPtr vaddr = (FlatPtr)end_of_prekernel_image; vaddr < MAX_KERNEL_SIZE; vaddr += PAGE_SIZE)
  177. boot_pd0_pts[vaddr >> 12] = 0;
  178. reload_cr3();
  179. ELF::perform_relative_relocations(kernel_load_base);
  180. void (*entry)(BootInfo const&) = (void (*)(BootInfo const&))(kernel_load_base + kernel_elf_header.e_entry);
  181. entry(*adjust_by_mapping_base(&info));
  182. __builtin_unreachable();
  183. }
  184. u64 generate_secure_seed()
  185. {
  186. u32 seed = 0xFEEBDAED;
  187. #if ARCH(X86_64)
  188. CPUID processor_info(0x1);
  189. if (processor_info.edx() & (1 << 4)) // TSC
  190. seed ^= read_tsc();
  191. if (processor_info.ecx() & (1 << 30)) // RDRAND
  192. seed ^= read_rdrand();
  193. CPUID extended_features(0x7);
  194. if (extended_features.ebx() & (1 << 18)) // RDSEED
  195. seed ^= read_rdseed();
  196. #else
  197. # warning No native randomness source available for this architecture
  198. #endif
  199. seed ^= multiboot_info_ptr->mods_addr;
  200. seed ^= multiboot_info_ptr->framebuffer_addr;
  201. return seed;
  202. }
  203. // Define some Itanium C++ ABI methods to stop the linker from complaining.
  204. // If we actually call these something has gone horribly wrong
  205. void* __dso_handle __attribute__((visibility("hidden")));
  206. }