core_timing.cpp 4.9 KB

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  1. // SPDX-FileCopyrightText: 2016 Dolphin Emulator Project
  2. // SPDX-License-Identifier: GPL-2.0-or-later
  3. #include <catch2/catch.hpp>
  4. #include <array>
  5. #include <bitset>
  6. #include <chrono>
  7. #include <cstdlib>
  8. #include <memory>
  9. #include <mutex>
  10. #include <string>
  11. #include "core/core.h"
  12. #include "core/core_timing.h"
  13. namespace {
  14. // Numbers are chosen randomly to make sure the correct one is given.
  15. constexpr std::array<u64, 5> CB_IDS{{42, 144, 93, 1026, UINT64_C(0xFFFF7FFFF7FFFF)}};
  16. constexpr std::array<u64, 5> calls_order{{2, 0, 1, 4, 3}};
  17. std::array<s64, 5> delays{};
  18. std::bitset<CB_IDS.size()> callbacks_ran_flags;
  19. u64 expected_callback = 0;
  20. std::mutex control_mutex;
  21. template <unsigned int IDX>
  22. void HostCallbackTemplate(std::uintptr_t user_data, std::chrono::nanoseconds ns_late) {
  23. std::unique_lock<std::mutex> lk(control_mutex);
  24. static_assert(IDX < CB_IDS.size(), "IDX out of range");
  25. callbacks_ran_flags.set(IDX);
  26. REQUIRE(CB_IDS[IDX] == user_data);
  27. delays[IDX] = ns_late.count();
  28. ++expected_callback;
  29. }
  30. struct ScopeInit final {
  31. ScopeInit() {
  32. core_timing.SetMulticore(true);
  33. core_timing.Initialize([]() {});
  34. }
  35. ~ScopeInit() {
  36. core_timing.Shutdown();
  37. }
  38. Core::Timing::CoreTiming core_timing;
  39. };
  40. u64 TestTimerSpeed(Core::Timing::CoreTiming& core_timing) {
  41. const u64 start = core_timing.GetGlobalTimeNs().count();
  42. volatile u64 placebo = 0;
  43. for (std::size_t i = 0; i < 1000; i++) {
  44. placebo = placebo + core_timing.GetGlobalTimeNs().count();
  45. }
  46. const u64 end = core_timing.GetGlobalTimeNs().count();
  47. return end - start;
  48. }
  49. } // Anonymous namespace
  50. TEST_CASE("CoreTiming[BasicOrder]", "[core]") {
  51. ScopeInit guard;
  52. auto& core_timing = guard.core_timing;
  53. std::vector<std::shared_ptr<Core::Timing::EventType>> events{
  54. Core::Timing::CreateEvent("callbackA", HostCallbackTemplate<0>),
  55. Core::Timing::CreateEvent("callbackB", HostCallbackTemplate<1>),
  56. Core::Timing::CreateEvent("callbackC", HostCallbackTemplate<2>),
  57. Core::Timing::CreateEvent("callbackD", HostCallbackTemplate<3>),
  58. Core::Timing::CreateEvent("callbackE", HostCallbackTemplate<4>),
  59. };
  60. expected_callback = 0;
  61. core_timing.SyncPause(true);
  62. const u64 one_micro = 1000U;
  63. for (std::size_t i = 0; i < events.size(); i++) {
  64. const u64 order = calls_order[i];
  65. const auto future_ns = std::chrono::nanoseconds{static_cast<s64>(i * one_micro + 100)};
  66. core_timing.ScheduleEvent(future_ns, events[order], CB_IDS[order]);
  67. }
  68. /// test pause
  69. REQUIRE(callbacks_ran_flags.none());
  70. core_timing.Pause(false); // No need to sync
  71. while (core_timing.HasPendingEvents())
  72. ;
  73. REQUIRE(callbacks_ran_flags.all());
  74. for (std::size_t i = 0; i < delays.size(); i++) {
  75. const double delay = static_cast<double>(delays[i]);
  76. const double micro = delay / 1000.0f;
  77. const double mili = micro / 1000.0f;
  78. printf("HostTimer Pausing Delay[%zu]: %.3f %.6f\n", i, micro, mili);
  79. }
  80. }
  81. TEST_CASE("CoreTiming[BasicOrderNoPausing]", "[core]") {
  82. ScopeInit guard;
  83. auto& core_timing = guard.core_timing;
  84. std::vector<std::shared_ptr<Core::Timing::EventType>> events{
  85. Core::Timing::CreateEvent("callbackA", HostCallbackTemplate<0>),
  86. Core::Timing::CreateEvent("callbackB", HostCallbackTemplate<1>),
  87. Core::Timing::CreateEvent("callbackC", HostCallbackTemplate<2>),
  88. Core::Timing::CreateEvent("callbackD", HostCallbackTemplate<3>),
  89. Core::Timing::CreateEvent("callbackE", HostCallbackTemplate<4>),
  90. };
  91. core_timing.SyncPause(true);
  92. core_timing.SyncPause(false);
  93. expected_callback = 0;
  94. const u64 start = core_timing.GetGlobalTimeNs().count();
  95. const u64 one_micro = 1000U;
  96. for (std::size_t i = 0; i < events.size(); i++) {
  97. const u64 order = calls_order[i];
  98. const auto future_ns = std::chrono::nanoseconds{static_cast<s64>(i * one_micro + 100)};
  99. core_timing.ScheduleEvent(future_ns, events[order], CB_IDS[order]);
  100. }
  101. const u64 end = core_timing.GetGlobalTimeNs().count();
  102. const double scheduling_time = static_cast<double>(end - start);
  103. const double timer_time = static_cast<double>(TestTimerSpeed(core_timing));
  104. while (core_timing.HasPendingEvents())
  105. ;
  106. REQUIRE(callbacks_ran_flags.all());
  107. for (std::size_t i = 0; i < delays.size(); i++) {
  108. const double delay = static_cast<double>(delays[i]);
  109. const double micro = delay / 1000.0f;
  110. const double mili = micro / 1000.0f;
  111. printf("HostTimer No Pausing Delay[%zu]: %.3f %.6f\n", i, micro, mili);
  112. }
  113. const double micro = scheduling_time / 1000.0f;
  114. const double mili = micro / 1000.0f;
  115. printf("HostTimer No Pausing Scheduling Time: %.3f %.6f\n", micro, mili);
  116. printf("HostTimer No Pausing Timer Time: %.3f %.6f\n", timer_time / 1000.f,
  117. timer_time / 1000000.f);
  118. }