k_address_arbiter.cpp 11 KB

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  1. // Copyright 2021 yuzu Emulator Project
  2. // Licensed under GPLv2 or any later version
  3. // Refer to the license.txt file included.
  4. #include "core/arm/exclusive_monitor.h"
  5. #include "core/core.h"
  6. #include "core/hle/kernel/k_address_arbiter.h"
  7. #include "core/hle/kernel/k_scheduler.h"
  8. #include "core/hle/kernel/k_scoped_scheduler_lock_and_sleep.h"
  9. #include "core/hle/kernel/k_thread.h"
  10. #include "core/hle/kernel/kernel.h"
  11. #include "core/hle/kernel/svc_results.h"
  12. #include "core/hle/kernel/time_manager.h"
  13. #include "core/memory.h"
  14. namespace Kernel {
  15. KAddressArbiter::KAddressArbiter(Core::System& system_)
  16. : system{system_}, kernel{system.Kernel()} {}
  17. KAddressArbiter::~KAddressArbiter() = default;
  18. namespace {
  19. bool ReadFromUser(Core::System& system, s32* out, VAddr address) {
  20. *out = system.Memory().Read32(address);
  21. return true;
  22. }
  23. bool DecrementIfLessThan(Core::System& system, s32* out, VAddr address, s32 value) {
  24. auto& monitor = system.Monitor();
  25. const auto current_core = system.Kernel().CurrentPhysicalCoreIndex();
  26. // TODO(bunnei): We should disable interrupts here via KScopedInterruptDisable.
  27. // TODO(bunnei): We should call CanAccessAtomic(..) here.
  28. // Load the value from the address.
  29. const s32 current_value = static_cast<s32>(monitor.ExclusiveRead32(current_core, address));
  30. // Compare it to the desired one.
  31. if (current_value < value) {
  32. // If less than, we want to try to decrement.
  33. const s32 decrement_value = current_value - 1;
  34. // Decrement and try to store.
  35. if (!monitor.ExclusiveWrite32(current_core, address, static_cast<u32>(decrement_value))) {
  36. // If we failed to store, try again.
  37. DecrementIfLessThan(system, out, address, value);
  38. }
  39. } else {
  40. // Otherwise, clear our exclusive hold and finish
  41. monitor.ClearExclusive();
  42. }
  43. // We're done.
  44. *out = current_value;
  45. return true;
  46. }
  47. bool UpdateIfEqual(Core::System& system, s32* out, VAddr address, s32 value, s32 new_value) {
  48. auto& monitor = system.Monitor();
  49. const auto current_core = system.Kernel().CurrentPhysicalCoreIndex();
  50. // TODO(bunnei): We should disable interrupts here via KScopedInterruptDisable.
  51. // TODO(bunnei): We should call CanAccessAtomic(..) here.
  52. // Load the value from the address.
  53. const s32 current_value = static_cast<s32>(monitor.ExclusiveRead32(current_core, address));
  54. // Compare it to the desired one.
  55. if (current_value == value) {
  56. // If equal, we want to try to write the new value.
  57. // Try to store.
  58. if (!monitor.ExclusiveWrite32(current_core, address, static_cast<u32>(new_value))) {
  59. // If we failed to store, try again.
  60. UpdateIfEqual(system, out, address, value, new_value);
  61. }
  62. } else {
  63. // Otherwise, clear our exclusive hold and finish.
  64. monitor.ClearExclusive();
  65. }
  66. // We're done.
  67. *out = current_value;
  68. return true;
  69. }
  70. } // namespace
  71. ResultCode KAddressArbiter::Signal(VAddr addr, s32 count) {
  72. // Perform signaling.
  73. s32 num_waiters{};
  74. {
  75. KScopedSchedulerLock sl(kernel);
  76. auto it = thread_tree.nfind_light({addr, -1});
  77. while ((it != thread_tree.end()) && (count <= 0 || num_waiters < count) &&
  78. (it->GetAddressArbiterKey() == addr)) {
  79. KThread* target_thread = std::addressof(*it);
  80. target_thread->SetSyncedObject(nullptr, ResultSuccess);
  81. ASSERT(target_thread->IsWaitingForAddressArbiter());
  82. target_thread->Wakeup();
  83. it = thread_tree.erase(it);
  84. target_thread->ClearAddressArbiter();
  85. ++num_waiters;
  86. }
  87. }
  88. return ResultSuccess;
  89. }
  90. ResultCode KAddressArbiter::SignalAndIncrementIfEqual(VAddr addr, s32 value, s32 count) {
  91. // Perform signaling.
  92. s32 num_waiters{};
  93. {
  94. KScopedSchedulerLock sl(kernel);
  95. // Check the userspace value.
  96. s32 user_value{};
  97. if (!UpdateIfEqual(system, &user_value, addr, value, value + 1)) {
  98. LOG_ERROR(Kernel, "Invalid current memory!");
  99. return ResultInvalidCurrentMemory;
  100. }
  101. if (user_value != value) {
  102. return ResultInvalidState;
  103. }
  104. auto it = thread_tree.nfind_light({addr, -1});
  105. while ((it != thread_tree.end()) && (count <= 0 || num_waiters < count) &&
  106. (it->GetAddressArbiterKey() == addr)) {
  107. KThread* target_thread = std::addressof(*it);
  108. target_thread->SetSyncedObject(nullptr, ResultSuccess);
  109. ASSERT(target_thread->IsWaitingForAddressArbiter());
  110. target_thread->Wakeup();
  111. it = thread_tree.erase(it);
  112. target_thread->ClearAddressArbiter();
  113. ++num_waiters;
  114. }
  115. }
  116. return ResultSuccess;
  117. }
  118. ResultCode KAddressArbiter::SignalAndModifyByWaitingCountIfEqual(VAddr addr, s32 value, s32 count) {
  119. // Perform signaling.
  120. s32 num_waiters{};
  121. {
  122. [[maybe_unused]] const KScopedSchedulerLock sl(kernel);
  123. auto it = thread_tree.nfind_light({addr, -1});
  124. // Determine the updated value.
  125. s32 new_value{};
  126. if (count <= 0) {
  127. if (it != thread_tree.end() && it->GetAddressArbiterKey() == addr) {
  128. new_value = value - 2;
  129. } else {
  130. new_value = value + 1;
  131. }
  132. } else {
  133. if (it != thread_tree.end() && it->GetAddressArbiterKey() == addr) {
  134. auto tmp_it = it;
  135. s32 tmp_num_waiters{};
  136. while (++tmp_it != thread_tree.end() && tmp_it->GetAddressArbiterKey() == addr) {
  137. if (tmp_num_waiters++ >= count) {
  138. break;
  139. }
  140. }
  141. if (tmp_num_waiters < count) {
  142. new_value = value - 1;
  143. } else {
  144. new_value = value;
  145. }
  146. } else {
  147. new_value = value + 1;
  148. }
  149. }
  150. // Check the userspace value.
  151. s32 user_value{};
  152. bool succeeded{};
  153. if (value != new_value) {
  154. succeeded = UpdateIfEqual(system, &user_value, addr, value, new_value);
  155. } else {
  156. succeeded = ReadFromUser(system, &user_value, addr);
  157. }
  158. if (!succeeded) {
  159. LOG_ERROR(Kernel, "Invalid current memory!");
  160. return ResultInvalidCurrentMemory;
  161. }
  162. if (user_value != value) {
  163. return ResultInvalidState;
  164. }
  165. while ((it != thread_tree.end()) && (count <= 0 || num_waiters < count) &&
  166. (it->GetAddressArbiterKey() == addr)) {
  167. KThread* target_thread = std::addressof(*it);
  168. target_thread->SetSyncedObject(nullptr, ResultSuccess);
  169. ASSERT(target_thread->IsWaitingForAddressArbiter());
  170. target_thread->Wakeup();
  171. it = thread_tree.erase(it);
  172. target_thread->ClearAddressArbiter();
  173. ++num_waiters;
  174. }
  175. }
  176. return ResultSuccess;
  177. }
  178. ResultCode KAddressArbiter::WaitIfLessThan(VAddr addr, s32 value, bool decrement, s64 timeout) {
  179. // Prepare to wait.
  180. KThread* cur_thread = kernel.CurrentScheduler()->GetCurrentThread();
  181. {
  182. KScopedSchedulerLockAndSleep slp{kernel, cur_thread, timeout};
  183. // Check that the thread isn't terminating.
  184. if (cur_thread->IsTerminationRequested()) {
  185. slp.CancelSleep();
  186. return ResultTerminationRequested;
  187. }
  188. // Set the synced object.
  189. cur_thread->SetSyncedObject(nullptr, ResultTimedOut);
  190. // Read the value from userspace.
  191. s32 user_value{};
  192. bool succeeded{};
  193. if (decrement) {
  194. succeeded = DecrementIfLessThan(system, &user_value, addr, value);
  195. } else {
  196. succeeded = ReadFromUser(system, &user_value, addr);
  197. }
  198. if (!succeeded) {
  199. slp.CancelSleep();
  200. return ResultInvalidCurrentMemory;
  201. }
  202. // Check that the value is less than the specified one.
  203. if (user_value >= value) {
  204. slp.CancelSleep();
  205. return ResultInvalidState;
  206. }
  207. // Check that the timeout is non-zero.
  208. if (timeout == 0) {
  209. slp.CancelSleep();
  210. return ResultTimedOut;
  211. }
  212. // Set the arbiter.
  213. cur_thread->SetAddressArbiter(&thread_tree, addr);
  214. thread_tree.insert(*cur_thread);
  215. cur_thread->SetState(ThreadState::Waiting);
  216. cur_thread->SetWaitReasonForDebugging(ThreadWaitReasonForDebugging::Arbitration);
  217. }
  218. // Cancel the timer wait.
  219. kernel.TimeManager().UnscheduleTimeEvent(cur_thread);
  220. // Remove from the address arbiter.
  221. {
  222. KScopedSchedulerLock sl(kernel);
  223. if (cur_thread->IsWaitingForAddressArbiter()) {
  224. thread_tree.erase(thread_tree.iterator_to(*cur_thread));
  225. cur_thread->ClearAddressArbiter();
  226. }
  227. }
  228. // Get the result.
  229. KSynchronizationObject* dummy{};
  230. return cur_thread->GetWaitResult(&dummy);
  231. }
  232. ResultCode KAddressArbiter::WaitIfEqual(VAddr addr, s32 value, s64 timeout) {
  233. // Prepare to wait.
  234. KThread* cur_thread = kernel.CurrentScheduler()->GetCurrentThread();
  235. {
  236. KScopedSchedulerLockAndSleep slp{kernel, cur_thread, timeout};
  237. // Check that the thread isn't terminating.
  238. if (cur_thread->IsTerminationRequested()) {
  239. slp.CancelSleep();
  240. return ResultTerminationRequested;
  241. }
  242. // Set the synced object.
  243. cur_thread->SetSyncedObject(nullptr, ResultTimedOut);
  244. // Read the value from userspace.
  245. s32 user_value{};
  246. if (!ReadFromUser(system, &user_value, addr)) {
  247. slp.CancelSleep();
  248. return ResultInvalidCurrentMemory;
  249. }
  250. // Check that the value is equal.
  251. if (value != user_value) {
  252. slp.CancelSleep();
  253. return ResultInvalidState;
  254. }
  255. // Check that the timeout is non-zero.
  256. if (timeout == 0) {
  257. slp.CancelSleep();
  258. return ResultTimedOut;
  259. }
  260. // Set the arbiter.
  261. cur_thread->SetAddressArbiter(&thread_tree, addr);
  262. thread_tree.insert(*cur_thread);
  263. cur_thread->SetState(ThreadState::Waiting);
  264. cur_thread->SetWaitReasonForDebugging(ThreadWaitReasonForDebugging::Arbitration);
  265. }
  266. // Cancel the timer wait.
  267. kernel.TimeManager().UnscheduleTimeEvent(cur_thread);
  268. // Remove from the address arbiter.
  269. {
  270. KScopedSchedulerLock sl(kernel);
  271. if (cur_thread->IsWaitingForAddressArbiter()) {
  272. thread_tree.erase(thread_tree.iterator_to(*cur_thread));
  273. cur_thread->ClearAddressArbiter();
  274. }
  275. }
  276. // Get the result.
  277. KSynchronizationObject* dummy{};
  278. return cur_thread->GetWaitResult(&dummy);
  279. }
  280. } // namespace Kernel