core_timing_util.cpp 3.2 KB

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  1. // Copyright 2008 Dolphin Emulator Project / 2017 Citra Emulator Project
  2. // Licensed under GPLv2+
  3. // Refer to the license.txt file included.
  4. #include "core/core_timing_util.h"
  5. #include <cinttypes>
  6. #include <limits>
  7. #include "common/logging/log.h"
  8. #include "common/uint128.h"
  9. namespace Core::Timing {
  10. constexpr u64 MAX_VALUE_TO_MULTIPLY = std::numeric_limits<s64>::max() / Hardware::BASE_CLOCK_RATE;
  11. s64 msToCycles(std::chrono::milliseconds ms) {
  12. if (static_cast<u64>(ms.count() / 1000) > MAX_VALUE_TO_MULTIPLY) {
  13. LOG_ERROR(Core_Timing, "Integer overflow, use max value");
  14. return std::numeric_limits<s64>::max();
  15. }
  16. if (static_cast<u64>(ms.count()) > MAX_VALUE_TO_MULTIPLY) {
  17. LOG_DEBUG(Core_Timing, "Time very big, do rounding");
  18. return Hardware::BASE_CLOCK_RATE * (ms.count() / 1000);
  19. }
  20. return (Hardware::BASE_CLOCK_RATE * ms.count()) / 1000;
  21. }
  22. s64 usToCycles(std::chrono::microseconds us) {
  23. if (static_cast<u64>(us.count() / 1000000) > MAX_VALUE_TO_MULTIPLY) {
  24. LOG_ERROR(Core_Timing, "Integer overflow, use max value");
  25. return std::numeric_limits<s64>::max();
  26. }
  27. if (static_cast<u64>(us.count()) > MAX_VALUE_TO_MULTIPLY) {
  28. LOG_DEBUG(Core_Timing, "Time very big, do rounding");
  29. return Hardware::BASE_CLOCK_RATE * (us.count() / 1000000);
  30. }
  31. return (Hardware::BASE_CLOCK_RATE * us.count()) / 1000000;
  32. }
  33. s64 nsToCycles(std::chrono::nanoseconds ns) {
  34. const u128 temporal = Common::Multiply64Into128(ns.count(), Hardware::BASE_CLOCK_RATE);
  35. return Common::Divide128On32(temporal, static_cast<u32>(1000000000)).first;
  36. }
  37. u64 msToClockCycles(std::chrono::milliseconds ns) {
  38. const u128 temp = Common::Multiply64Into128(ns.count(), Hardware::CNTFREQ);
  39. return Common::Divide128On32(temp, 1000).first;
  40. }
  41. u64 usToClockCycles(std::chrono::microseconds ns) {
  42. const u128 temp = Common::Multiply64Into128(ns.count(), Hardware::CNTFREQ);
  43. return Common::Divide128On32(temp, 1000000).first;
  44. }
  45. u64 nsToClockCycles(std::chrono::nanoseconds ns) {
  46. const u128 temp = Common::Multiply64Into128(ns.count(), Hardware::CNTFREQ);
  47. return Common::Divide128On32(temp, 1000000000).first;
  48. }
  49. u64 CpuCyclesToClockCycles(u64 ticks) {
  50. const u128 temporal = Common::Multiply64Into128(ticks, Hardware::CNTFREQ);
  51. return Common::Divide128On32(temporal, static_cast<u32>(Hardware::BASE_CLOCK_RATE)).first;
  52. }
  53. std::chrono::milliseconds CyclesToMs(s64 cycles) {
  54. const u128 temporal = Common::Multiply64Into128(cycles, 1000);
  55. u64 ms = Common::Divide128On32(temporal, static_cast<u32>(Hardware::BASE_CLOCK_RATE)).first;
  56. return std::chrono::milliseconds(ms);
  57. }
  58. std::chrono::nanoseconds CyclesToNs(s64 cycles) {
  59. const u128 temporal = Common::Multiply64Into128(cycles, 1000000000);
  60. u64 ns = Common::Divide128On32(temporal, static_cast<u32>(Hardware::BASE_CLOCK_RATE)).first;
  61. return std::chrono::nanoseconds(ns);
  62. }
  63. std::chrono::microseconds CyclesToUs(s64 cycles) {
  64. const u128 temporal = Common::Multiply64Into128(cycles, 1000000);
  65. u64 us = Common::Divide128On32(temporal, static_cast<u32>(Hardware::BASE_CLOCK_RATE)).first;
  66. return std::chrono::microseconds(us);
  67. }
  68. } // namespace Core::Timing