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- Upgrade timer code to use nanosecond accuracy internally
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commit
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2 changed files with 57 additions and 23 deletions
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@ -45,14 +45,34 @@
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//
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//==========================================================================
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static unsigned int FirstFrameStartTime;
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static unsigned int CurrentFrameStartTime;
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static unsigned int FreezeTime;
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static uint64_t FirstFrameStartTime;
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static uint64_t CurrentFrameStartTime;
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static uint64_t FreezeTime;
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static uint32_t performanceGetTime()
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static uint64_t GetClockTimeNS()
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{
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using namespace std::chrono;
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return (uint32_t)duration_cast<milliseconds>(steady_clock::now().time_since_epoch()).count();
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return (uint64_t)duration_cast<nanoseconds>(steady_clock::now().time_since_epoch()).count();
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}
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static uint64_t MSToNS(unsigned int ms)
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{
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return static_cast<uint64_t>(ms) * 1'000'000;
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}
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static uint32_t NSToMS(uint64_t ns)
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{
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return static_cast<uint32_t>(ns / 1'000'000);
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}
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static int NSToTic(uint64_t ns)
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{
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return static_cast<int>(ns * TICRATE / 1'000'000'000);
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}
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static uint64_t TicToNS(int tic)
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{
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return static_cast<uint64_t>(tic) * 1'000'000'000 / TICRATE;
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}
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void I_SetFrameTime()
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@ -65,7 +85,7 @@ void I_SetFrameTime()
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if (FreezeTime == 0)
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{
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CurrentFrameStartTime = performanceGetTime();
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CurrentFrameStartTime = GetClockTimeNS();
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if (FirstFrameStartTime == 0)
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FirstFrameStartTime = CurrentFrameStartTime;
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}
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@ -100,15 +120,7 @@ int I_WaitForTic(int prevtic)
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return time;
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}
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unsigned int I_FPSTime()
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{
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if (FreezeTime == 0)
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return CurrentFrameStartTime;
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else
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return performanceGetTime();
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}
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unsigned int I_MSTime()
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uint64_t I_NSTime()
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{
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if (FreezeTime == 0)
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{
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@ -118,26 +130,44 @@ unsigned int I_MSTime()
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{
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if (FirstFrameStartTime == 0)
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{
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FirstFrameStartTime = performanceGetTime();
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FirstFrameStartTime = GetClockTimeNS();
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return 0;
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}
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else
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{
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return performanceGetTime() - FirstFrameStartTime;
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return GetClockTimeNS() - FirstFrameStartTime;
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}
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}
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}
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uint64_t I_FPSTimeNS()
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{
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if (FreezeTime == 0)
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return NSToMS(CurrentFrameStartTime);
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else
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return NSToMS(GetClockTimeNS());
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}
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unsigned int I_MSTime()
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{
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return NSToMS(I_NSTime());
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}
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unsigned int I_FPSTime()
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{
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return NSToMS(I_FPSTimeNS());
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}
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int I_GetTime()
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{
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return (CurrentFrameStartTime - FirstFrameStartTime) * TICRATE / 1000 + 1;
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return NSToTic(CurrentFrameStartTime - FirstFrameStartTime) + 1;
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}
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double I_GetTimeFrac(uint32_t *ms)
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{
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unsigned int currentTic = (CurrentFrameStartTime - FirstFrameStartTime) * TICRATE / 1000;
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unsigned int ticStartTime = FirstFrameStartTime + currentTic * 1000 / TICRATE;
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unsigned int ticNextTime = FirstFrameStartTime + (currentTic + 1) * 1000 / TICRATE;
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int currentTic = NSToTic(CurrentFrameStartTime - FirstFrameStartTime);
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uint64_t ticStartTime = FirstFrameStartTime + TicToNS(currentTic);
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uint64_t ticNextTime = FirstFrameStartTime + TicToNS(currentTic + 1);
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if (ms)
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*ms = currentTic + 1;
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@ -149,11 +179,11 @@ void I_FreezeTime(bool frozen)
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{
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if (frozen)
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{
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FreezeTime = performanceGetTime();
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FreezeTime = GetClockTimeNS();
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}
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else
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{
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FirstFrameStartTime += performanceGetTime() - FreezeTime;
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FirstFrameStartTime += GetClockTimeNS() - FreezeTime;
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FreezeTime = 0;
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I_SetFrameTime();
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}
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@ -22,3 +22,7 @@ void I_FreezeTime(bool frozen);
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// [RH] Returns millisecond-accurate time
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unsigned int I_MSTime();
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unsigned int I_FPSTime();
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// Nanosecond-accurate time
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uint64_t I_NSTime();
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uint64_t I_FPSTimeNS();
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