process.cpp 9.5 KB

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  1. // Copyright 2015 Citra Emulator Project
  2. // Licensed under GPLv2 or any later version
  3. // Refer to the license.txt file included.
  4. #include "common/assert.h"
  5. #include "common/common_funcs.h"
  6. #include "common/logging/log.h"
  7. #include "common/make_unique.h"
  8. #include "core/hle/kernel/memory.h"
  9. #include "core/hle/kernel/process.h"
  10. #include "core/hle/kernel/resource_limit.h"
  11. #include "core/hle/kernel/thread.h"
  12. #include "core/hle/kernel/vm_manager.h"
  13. #include "core/memory.h"
  14. namespace Kernel {
  15. SharedPtr<CodeSet> CodeSet::Create(std::string name, u64 program_id) {
  16. SharedPtr<CodeSet> codeset(new CodeSet);
  17. codeset->name = std::move(name);
  18. codeset->program_id = program_id;
  19. return codeset;
  20. }
  21. CodeSet::CodeSet() {}
  22. CodeSet::~CodeSet() {}
  23. u32 Process::next_process_id;
  24. SharedPtr<Process> Process::Create(SharedPtr<CodeSet> code_set) {
  25. SharedPtr<Process> process(new Process);
  26. process->codeset = std::move(code_set);
  27. process->flags.raw = 0;
  28. process->flags.memory_region.Assign(MemoryRegion::APPLICATION);
  29. Memory::InitLegacyAddressSpace(process->vm_manager);
  30. return process;
  31. }
  32. void Process::ParseKernelCaps(const u32* kernel_caps, size_t len) {
  33. for (size_t i = 0; i < len; ++i) {
  34. u32 descriptor = kernel_caps[i];
  35. u32 type = descriptor >> 20;
  36. if (descriptor == 0xFFFFFFFF) {
  37. // Unused descriptor entry
  38. continue;
  39. } else if ((type & 0xF00) == 0xE00) { // 0x0FFF
  40. // Allowed interrupts list
  41. LOG_WARNING(Loader, "ExHeader allowed interrupts list ignored");
  42. } else if ((type & 0xF80) == 0xF00) { // 0x07FF
  43. // Allowed syscalls mask
  44. unsigned int index = ((descriptor >> 24) & 7) * 24;
  45. u32 bits = descriptor & 0xFFFFFF;
  46. while (bits && index < svc_access_mask.size()) {
  47. svc_access_mask.set(index, bits & 1);
  48. ++index; bits >>= 1;
  49. }
  50. } else if ((type & 0xFF0) == 0xFE0) { // 0x00FF
  51. // Handle table size
  52. handle_table_size = descriptor & 0x3FF;
  53. } else if ((type & 0xFF8) == 0xFF0) { // 0x007F
  54. // Misc. flags
  55. flags.raw = descriptor & 0xFFFF;
  56. } else if ((type & 0xFFE) == 0xFF8) { // 0x001F
  57. // Mapped memory range
  58. if (i+1 >= len || ((kernel_caps[i+1] >> 20) & 0xFFE) != 0xFF8) {
  59. LOG_WARNING(Loader, "Incomplete exheader memory range descriptor ignored.");
  60. continue;
  61. }
  62. u32 end_desc = kernel_caps[i+1];
  63. ++i; // Skip over the second descriptor on the next iteration
  64. AddressMapping mapping;
  65. mapping.address = descriptor << 12;
  66. mapping.size = (end_desc << 12) - mapping.address;
  67. mapping.writable = (descriptor & (1 << 20)) != 0;
  68. mapping.unk_flag = (end_desc & (1 << 20)) != 0;
  69. address_mappings.push_back(mapping);
  70. } else if ((type & 0xFFF) == 0xFFE) { // 0x000F
  71. // Mapped memory page
  72. AddressMapping mapping;
  73. mapping.address = descriptor << 12;
  74. mapping.size = Memory::PAGE_SIZE;
  75. mapping.writable = true; // TODO: Not sure if correct
  76. mapping.unk_flag = false;
  77. } else if ((type & 0xFE0) == 0xFC0) { // 0x01FF
  78. // Kernel version
  79. kernel_version = descriptor & 0xFFFF;
  80. int minor = kernel_version & 0xFF;
  81. int major = (kernel_version >> 8) & 0xFF;
  82. LOG_INFO(Loader, "ExHeader kernel version: %d.%d", major, minor);
  83. } else {
  84. LOG_ERROR(Loader, "Unhandled kernel caps descriptor: 0x%08X", descriptor);
  85. }
  86. }
  87. }
  88. void Process::Run(s32 main_thread_priority, u32 stack_size) {
  89. memory_region = GetMemoryRegion(flags.memory_region);
  90. auto MapSegment = [&](CodeSet::Segment& segment, VMAPermission permissions, MemoryState memory_state) {
  91. auto vma = vm_manager.MapMemoryBlock(segment.addr, codeset->memory,
  92. segment.offset, segment.size, memory_state).Unwrap();
  93. vm_manager.Reprotect(vma, permissions);
  94. misc_memory_used += segment.size;
  95. memory_region->used += segment.size;
  96. };
  97. // Map CodeSet segments
  98. MapSegment(codeset->code, VMAPermission::ReadExecute, MemoryState::Code);
  99. MapSegment(codeset->rodata, VMAPermission::Read, MemoryState::Code);
  100. MapSegment(codeset->data, VMAPermission::ReadWrite, MemoryState::Private);
  101. // Allocate and map stack
  102. vm_manager.MapMemoryBlock(Memory::HEAP_VADDR_END - stack_size,
  103. std::make_shared<std::vector<u8>>(stack_size, 0), 0, stack_size, MemoryState::Locked
  104. ).Unwrap();
  105. misc_memory_used += stack_size;
  106. memory_region->used += stack_size;
  107. vm_manager.LogLayout(Log::Level::Debug);
  108. Kernel::SetupMainThread(codeset->entrypoint, main_thread_priority);
  109. }
  110. VAddr Process::GetLinearHeapAreaAddress() const {
  111. return kernel_version < 0x22C ? Memory::LINEAR_HEAP_VADDR : Memory::NEW_LINEAR_HEAP_VADDR;
  112. }
  113. VAddr Process::GetLinearHeapBase() const {
  114. return GetLinearHeapAreaAddress() + memory_region->base;
  115. }
  116. VAddr Process::GetLinearHeapLimit() const {
  117. return GetLinearHeapBase() + memory_region->size;
  118. }
  119. ResultVal<VAddr> Process::HeapAllocate(VAddr target, u32 size, VMAPermission perms) {
  120. if (target < Memory::HEAP_VADDR || target + size > Memory::HEAP_VADDR_END || target + size < target) {
  121. return ERR_INVALID_ADDRESS;
  122. }
  123. if (heap_memory == nullptr) {
  124. // Initialize heap
  125. heap_memory = std::make_shared<std::vector<u8>>();
  126. heap_start = heap_end = target;
  127. }
  128. // If necessary, expand backing vector to cover new heap extents.
  129. if (target < heap_start) {
  130. heap_memory->insert(begin(*heap_memory), heap_start - target, 0);
  131. heap_start = target;
  132. vm_manager.RefreshMemoryBlockMappings(heap_memory.get());
  133. }
  134. if (target + size > heap_end) {
  135. heap_memory->insert(end(*heap_memory), (target + size) - heap_end, 0);
  136. heap_end = target + size;
  137. vm_manager.RefreshMemoryBlockMappings(heap_memory.get());
  138. }
  139. ASSERT(heap_end - heap_start == heap_memory->size());
  140. CASCADE_RESULT(auto vma, vm_manager.MapMemoryBlock(target, heap_memory, target - heap_start, size, MemoryState::Private));
  141. vm_manager.Reprotect(vma, perms);
  142. heap_used += size;
  143. memory_region->used += size;
  144. return MakeResult<VAddr>(heap_end - size);
  145. }
  146. ResultCode Process::HeapFree(VAddr target, u32 size) {
  147. if (target < Memory::HEAP_VADDR || target + size > Memory::HEAP_VADDR_END || target + size < target) {
  148. return ERR_INVALID_ADDRESS;
  149. }
  150. if (size == 0) {
  151. return RESULT_SUCCESS;
  152. }
  153. ResultCode result = vm_manager.UnmapRange(target, size);
  154. if (result.IsError()) return result;
  155. heap_used -= size;
  156. memory_region->used -= size;
  157. return RESULT_SUCCESS;
  158. }
  159. ResultVal<VAddr> Process::LinearAllocate(VAddr target, u32 size, VMAPermission perms) {
  160. auto& linheap_memory = memory_region->linear_heap_memory;
  161. VAddr heap_end = GetLinearHeapBase() + (u32)linheap_memory->size();
  162. // Games and homebrew only ever seem to pass 0 here (which lets the kernel decide the address),
  163. // but explicit addresses are also accepted and respected.
  164. if (target == 0) {
  165. target = heap_end;
  166. }
  167. if (target < GetLinearHeapBase() || target + size > GetLinearHeapLimit() ||
  168. target > heap_end || target + size < target) {
  169. return ERR_INVALID_ADDRESS;
  170. }
  171. // Expansion of the linear heap is only allowed if you do an allocation immediatelly at its
  172. // end. It's possible to free gaps in the middle of the heap and then reallocate them later,
  173. // but expansions are only allowed at the end.
  174. if (target == heap_end) {
  175. linheap_memory->insert(linheap_memory->end(), size, 0);
  176. vm_manager.RefreshMemoryBlockMappings(linheap_memory.get());
  177. }
  178. // TODO(yuriks): As is, this lets processes map memory allocated by other processes from the
  179. // same region. It is unknown if or how the 3DS kernel checks against this.
  180. size_t offset = target - GetLinearHeapBase();
  181. CASCADE_RESULT(auto vma, vm_manager.MapMemoryBlock(target, linheap_memory, offset, size, MemoryState::Continuous));
  182. vm_manager.Reprotect(vma, perms);
  183. linear_heap_used += size;
  184. memory_region->used += size;
  185. return MakeResult<VAddr>(target);
  186. }
  187. ResultCode Process::LinearFree(VAddr target, u32 size) {
  188. auto& linheap_memory = memory_region->linear_heap_memory;
  189. if (target < GetLinearHeapBase() || target + size > GetLinearHeapLimit() ||
  190. target + size < target) {
  191. return ERR_INVALID_ADDRESS;
  192. }
  193. if (size == 0) {
  194. return RESULT_SUCCESS;
  195. }
  196. VAddr heap_end = GetLinearHeapBase() + (u32)linheap_memory->size();
  197. if (target + size > heap_end) {
  198. return ERR_INVALID_ADDRESS_STATE;
  199. }
  200. ResultCode result = vm_manager.UnmapRange(target, size);
  201. if (result.IsError()) return result;
  202. linear_heap_used -= size;
  203. memory_region->used -= size;
  204. if (target + size == heap_end) {
  205. // End of linear heap has been freed, so check what's the last allocated block in it and
  206. // reduce the size.
  207. auto vma = vm_manager.FindVMA(target);
  208. ASSERT(vma != vm_manager.vma_map.end());
  209. ASSERT(vma->second.type == VMAType::Free);
  210. VAddr new_end = vma->second.base;
  211. if (new_end >= GetLinearHeapBase()) {
  212. linheap_memory->resize(new_end - GetLinearHeapBase());
  213. }
  214. }
  215. return RESULT_SUCCESS;
  216. }
  217. Kernel::Process::Process() {}
  218. Kernel::Process::~Process() {}
  219. SharedPtr<Process> g_current_process;
  220. }