arm_dynarmic.cpp 9.3 KB

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  1. // Copyright 2018 yuzu emulator team
  2. // Licensed under GPLv2 or any later version
  3. // Refer to the license.txt file included.
  4. #include <cinttypes>
  5. #include <memory>
  6. #include <dynarmic/A64/a64.h>
  7. #include <dynarmic/A64/config.h>
  8. #include "common/logging/log.h"
  9. #include "common/microprofile.h"
  10. #include "core/arm/dynarmic/arm_dynarmic.h"
  11. #include "core/core.h"
  12. #include "core/core_cpu.h"
  13. #include "core/core_timing.h"
  14. #include "core/hle/kernel/process.h"
  15. #include "core/hle/kernel/svc.h"
  16. #include "core/memory.h"
  17. namespace Core {
  18. using Vector = Dynarmic::A64::Vector;
  19. class ARM_Dynarmic_Callbacks : public Dynarmic::A64::UserCallbacks {
  20. public:
  21. explicit ARM_Dynarmic_Callbacks(ARM_Dynarmic& parent) : parent(parent) {}
  22. ~ARM_Dynarmic_Callbacks() = default;
  23. u8 MemoryRead8(u64 vaddr) override {
  24. return Memory::Read8(vaddr);
  25. }
  26. u16 MemoryRead16(u64 vaddr) override {
  27. return Memory::Read16(vaddr);
  28. }
  29. u32 MemoryRead32(u64 vaddr) override {
  30. return Memory::Read32(vaddr);
  31. }
  32. u64 MemoryRead64(u64 vaddr) override {
  33. return Memory::Read64(vaddr);
  34. }
  35. Vector MemoryRead128(u64 vaddr) override {
  36. return {Memory::Read64(vaddr), Memory::Read64(vaddr + 8)};
  37. }
  38. void MemoryWrite8(u64 vaddr, u8 value) override {
  39. Memory::Write8(vaddr, value);
  40. }
  41. void MemoryWrite16(u64 vaddr, u16 value) override {
  42. Memory::Write16(vaddr, value);
  43. }
  44. void MemoryWrite32(u64 vaddr, u32 value) override {
  45. Memory::Write32(vaddr, value);
  46. }
  47. void MemoryWrite64(u64 vaddr, u64 value) override {
  48. Memory::Write64(vaddr, value);
  49. }
  50. void MemoryWrite128(u64 vaddr, Vector value) override {
  51. Memory::Write64(vaddr, value[0]);
  52. Memory::Write64(vaddr + 8, value[1]);
  53. }
  54. void InterpreterFallback(u64 pc, std::size_t num_instructions) override {
  55. LOG_INFO(Core_ARM, "Unicorn fallback @ 0x{:X} for {} instructions (instr = {:08X})", pc,
  56. num_instructions, MemoryReadCode(pc));
  57. ARM_Interface::ThreadContext ctx;
  58. parent.SaveContext(ctx);
  59. parent.inner_unicorn.LoadContext(ctx);
  60. parent.inner_unicorn.ExecuteInstructions(static_cast<int>(num_instructions));
  61. parent.inner_unicorn.SaveContext(ctx);
  62. parent.LoadContext(ctx);
  63. num_interpreted_instructions += num_instructions;
  64. }
  65. void ExceptionRaised(u64 pc, Dynarmic::A64::Exception exception) override {
  66. switch (exception) {
  67. case Dynarmic::A64::Exception::WaitForInterrupt:
  68. case Dynarmic::A64::Exception::WaitForEvent:
  69. case Dynarmic::A64::Exception::SendEvent:
  70. case Dynarmic::A64::Exception::SendEventLocal:
  71. case Dynarmic::A64::Exception::Yield:
  72. return;
  73. default:
  74. ASSERT_MSG(false, "ExceptionRaised(exception = {}, pc = {:X})",
  75. static_cast<std::size_t>(exception), pc);
  76. }
  77. }
  78. void CallSVC(u32 swi) override {
  79. Kernel::CallSVC(swi);
  80. }
  81. void AddTicks(u64 ticks) override {
  82. // Divide the number of ticks by the amount of CPU cores. TODO(Subv): This yields only a
  83. // rough approximation of the amount of executed ticks in the system, it may be thrown off
  84. // if not all cores are doing a similar amount of work. Instead of doing this, we should
  85. // device a way so that timing is consistent across all cores without increasing the ticks 4
  86. // times.
  87. u64 amortized_ticks = (ticks - num_interpreted_instructions) / Core::NUM_CPU_CORES;
  88. // Always execute at least one tick.
  89. amortized_ticks = std::max<u64>(amortized_ticks, 1);
  90. CoreTiming::AddTicks(amortized_ticks);
  91. num_interpreted_instructions = 0;
  92. }
  93. u64 GetTicksRemaining() override {
  94. return std::max(CoreTiming::GetDowncount(), 0);
  95. }
  96. u64 GetCNTPCT() override {
  97. return CoreTiming::GetTicks();
  98. }
  99. ARM_Dynarmic& parent;
  100. std::size_t num_interpreted_instructions = 0;
  101. u64 tpidrro_el0 = 0;
  102. u64 tpidr_el0 = 0;
  103. };
  104. std::unique_ptr<Dynarmic::A64::Jit> ARM_Dynarmic::MakeJit() const {
  105. auto** const page_table = Core::CurrentProcess()->vm_manager.page_table.pointers.data();
  106. Dynarmic::A64::UserConfig config;
  107. // Callbacks
  108. config.callbacks = cb.get();
  109. // Memory
  110. config.page_table = reinterpret_cast<void**>(page_table);
  111. config.page_table_address_space_bits = Memory::ADDRESS_SPACE_BITS;
  112. config.silently_mirror_page_table = false;
  113. // Multi-process state
  114. config.processor_id = core_index;
  115. config.global_monitor = &exclusive_monitor->monitor;
  116. // System registers
  117. config.tpidrro_el0 = &cb->tpidrro_el0;
  118. config.tpidr_el0 = &cb->tpidr_el0;
  119. config.dczid_el0 = 4;
  120. config.ctr_el0 = 0x8444c004;
  121. // Unpredictable instructions
  122. config.define_unpredictable_behaviour = true;
  123. return std::make_unique<Dynarmic::A64::Jit>(config);
  124. }
  125. MICROPROFILE_DEFINE(ARM_Jit_Dynarmic, "ARM JIT", "Dynarmic", MP_RGB(255, 64, 64));
  126. void ARM_Dynarmic::Run() {
  127. MICROPROFILE_SCOPE(ARM_Jit_Dynarmic);
  128. ASSERT(Memory::GetCurrentPageTable() == current_page_table);
  129. jit->Run();
  130. }
  131. void ARM_Dynarmic::Step() {
  132. cb->InterpreterFallback(jit->GetPC(), 1);
  133. }
  134. ARM_Dynarmic::ARM_Dynarmic(std::shared_ptr<ExclusiveMonitor> exclusive_monitor,
  135. std::size_t core_index)
  136. : cb(std::make_unique<ARM_Dynarmic_Callbacks>(*this)), core_index{core_index},
  137. exclusive_monitor{std::dynamic_pointer_cast<DynarmicExclusiveMonitor>(exclusive_monitor)} {
  138. ThreadContext ctx;
  139. inner_unicorn.SaveContext(ctx);
  140. PageTableChanged();
  141. LoadContext(ctx);
  142. }
  143. ARM_Dynarmic::~ARM_Dynarmic() = default;
  144. void ARM_Dynarmic::MapBackingMemory(u64 address, std::size_t size, u8* memory,
  145. Kernel::VMAPermission perms) {
  146. inner_unicorn.MapBackingMemory(address, size, memory, perms);
  147. }
  148. void ARM_Dynarmic::UnmapMemory(u64 address, std::size_t size) {
  149. inner_unicorn.UnmapMemory(address, size);
  150. }
  151. void ARM_Dynarmic::SetPC(u64 pc) {
  152. jit->SetPC(pc);
  153. }
  154. u64 ARM_Dynarmic::GetPC() const {
  155. return jit->GetPC();
  156. }
  157. u64 ARM_Dynarmic::GetReg(int index) const {
  158. return jit->GetRegister(index);
  159. }
  160. void ARM_Dynarmic::SetReg(int index, u64 value) {
  161. jit->SetRegister(index, value);
  162. }
  163. u128 ARM_Dynarmic::GetVectorReg(int index) const {
  164. return jit->GetVector(index);
  165. }
  166. void ARM_Dynarmic::SetVectorReg(int index, u128 value) {
  167. jit->SetVector(index, value);
  168. }
  169. u32 ARM_Dynarmic::GetPSTATE() const {
  170. return jit->GetPstate();
  171. }
  172. void ARM_Dynarmic::SetPSTATE(u32 pstate) {
  173. jit->SetPstate(pstate);
  174. }
  175. u64 ARM_Dynarmic::GetTlsAddress() const {
  176. return cb->tpidrro_el0;
  177. }
  178. void ARM_Dynarmic::SetTlsAddress(VAddr address) {
  179. cb->tpidrro_el0 = address;
  180. }
  181. u64 ARM_Dynarmic::GetTPIDR_EL0() const {
  182. return cb->tpidr_el0;
  183. }
  184. void ARM_Dynarmic::SetTPIDR_EL0(u64 value) {
  185. cb->tpidr_el0 = value;
  186. }
  187. void ARM_Dynarmic::SaveContext(ThreadContext& ctx) {
  188. ctx.cpu_registers = jit->GetRegisters();
  189. ctx.sp = jit->GetSP();
  190. ctx.pc = jit->GetPC();
  191. ctx.pstate = jit->GetPstate();
  192. ctx.vector_registers = jit->GetVectors();
  193. ctx.fpcr = jit->GetFpcr();
  194. }
  195. void ARM_Dynarmic::LoadContext(const ThreadContext& ctx) {
  196. jit->SetRegisters(ctx.cpu_registers);
  197. jit->SetSP(ctx.sp);
  198. jit->SetPC(ctx.pc);
  199. jit->SetPstate(static_cast<u32>(ctx.pstate));
  200. jit->SetVectors(ctx.vector_registers);
  201. jit->SetFpcr(static_cast<u32>(ctx.fpcr));
  202. }
  203. void ARM_Dynarmic::PrepareReschedule() {
  204. jit->HaltExecution();
  205. }
  206. void ARM_Dynarmic::ClearInstructionCache() {
  207. jit->ClearCache();
  208. }
  209. void ARM_Dynarmic::ClearExclusiveState() {
  210. jit->ClearExclusiveState();
  211. }
  212. void ARM_Dynarmic::PageTableChanged() {
  213. jit = MakeJit();
  214. current_page_table = Memory::GetCurrentPageTable();
  215. }
  216. DynarmicExclusiveMonitor::DynarmicExclusiveMonitor(std::size_t core_count) : monitor(core_count) {}
  217. DynarmicExclusiveMonitor::~DynarmicExclusiveMonitor() = default;
  218. void DynarmicExclusiveMonitor::SetExclusive(std::size_t core_index, VAddr addr) {
  219. // Size doesn't actually matter.
  220. monitor.Mark(core_index, addr, 16);
  221. }
  222. void DynarmicExclusiveMonitor::ClearExclusive() {
  223. monitor.Clear();
  224. }
  225. bool DynarmicExclusiveMonitor::ExclusiveWrite8(std::size_t core_index, VAddr vaddr, u8 value) {
  226. return monitor.DoExclusiveOperation(core_index, vaddr, 1,
  227. [&] { Memory::Write8(vaddr, value); });
  228. }
  229. bool DynarmicExclusiveMonitor::ExclusiveWrite16(std::size_t core_index, VAddr vaddr, u16 value) {
  230. return monitor.DoExclusiveOperation(core_index, vaddr, 2,
  231. [&] { Memory::Write16(vaddr, value); });
  232. }
  233. bool DynarmicExclusiveMonitor::ExclusiveWrite32(std::size_t core_index, VAddr vaddr, u32 value) {
  234. return monitor.DoExclusiveOperation(core_index, vaddr, 4,
  235. [&] { Memory::Write32(vaddr, value); });
  236. }
  237. bool DynarmicExclusiveMonitor::ExclusiveWrite64(std::size_t core_index, VAddr vaddr, u64 value) {
  238. return monitor.DoExclusiveOperation(core_index, vaddr, 8,
  239. [&] { Memory::Write64(vaddr, value); });
  240. }
  241. bool DynarmicExclusiveMonitor::ExclusiveWrite128(std::size_t core_index, VAddr vaddr, u128 value) {
  242. return monitor.DoExclusiveOperation(core_index, vaddr, 16, [&] {
  243. Memory::Write64(vaddr + 0, value[0]);
  244. Memory::Write64(vaddr + 8, value[1]);
  245. });
  246. }
  247. } // namespace Core