feat: separate rolling horizons from stop boundaries

This commit is contained in:
梁薄云
2026-08-05 17:13:09 +08:00
parent e56220fc29
commit 21b20d09d4
9 changed files with 246 additions and 96 deletions
@@ -1,4 +1,5 @@
using System;
using System.Collections.Generic;
using MultiWheelC.TrajectoryPlanning.CoarsePath;
namespace MultiWheelC.TrajectoryPlanning.EMPlanner;
@@ -6,15 +7,31 @@ namespace MultiWheelC.TrajectoryPlanning.EMPlanner;
/// <summary>Reference-distance terminal chosen before LS without crossing the current direction segment.</summary>
public sealed class PlanningHorizonSelection
{
internal PlanningHorizonSelection(double terminalReferenceS, EmTerminalType terminalType)
internal PlanningHorizonSelection(double windowEndReferenceS, EmBoundaryType windowEndBoundaryType,
EmTerminalType terminalType, EmLongitudinalMode longitudinalMode,
double stopBoundaryReferenceS, bool hasStopBoundary)
{
TerminalReferenceS = terminalReferenceS;
WindowEndReferenceS = windowEndReferenceS;
WindowEndBoundaryType = windowEndBoundaryType;
TerminalType = terminalType;
LongitudinalMode = longitudinalMode;
StopBoundaryReferenceS = stopBoundaryReferenceS;
HasStopBoundary = hasStopBoundary;
}
public double TerminalReferenceS { get; }
public double WindowEndReferenceS { get; }
public double TerminalReferenceS => WindowEndReferenceS;
public EmBoundaryType WindowEndBoundaryType { get; }
public EmTerminalType TerminalType { get; }
public EmLongitudinalMode LongitudinalMode { get; }
public double StopBoundaryReferenceS { get; }
public bool HasStopBoundary { get; }
}
public sealed class PlanningHorizonSelector
@@ -73,75 +90,41 @@ public sealed class PlanningHorizonSelector
return EmPlanningStatus.StoppingDistanceInsufficient;
}
double timeReachable = CalculateReachableDistance(initialProgressSpeedMetersPerSecond,
initialAccelerationMetersPerSecondSquared, directionMaximum, longitudinal, scheduling.TimeHorizonSeconds);
double terminalReferenceS = currentSegmentReferenceS + Math.Min(remainingSegment,
Math.Min(scheduling.DistanceHorizonMeters, timeReachable));
if (terminalReferenceS >= segment.LengthMeters - BoundaryTolerance)
double windowEnd = Math.Min(currentSegmentReferenceS + scheduling.DistanceHorizonMeters, segment.LengthMeters);
bool windowReachesSegmentEnd = windowEnd >= segment.LengthMeters - BoundaryTolerance;
bool hasStopBoundary = windowReachesSegmentEnd && IsStopBoundary(segment.EndBoundary.BoundaryType);
EmBoundaryType windowEndBoundaryType = windowReachesSegmentEnd
? segment.EndBoundary.BoundaryType
: EmBoundaryType.RollingSafetyStop;
if (!hasStopBoundary)
{
terminalReferenceS = segment.LengthMeters;
selection = new PlanningHorizonSelection(terminalReferenceS, ToTerminalType(segment.EndBoundary.BoundaryType));
}
else
{
selection = new PlanningHorizonSelection(terminalReferenceS, EmTerminalType.RollingSafetyStop);
selection = new PlanningHorizonSelection(windowEnd, windowEndBoundaryType,
EmTerminalType.RollingSafetyStop, EmLongitudinalMode.RollingContinuation,
segment.LengthMeters, false);
return EmPlanningStatus.Success;
}
IReadOnlyList<double> knotTimes = LongitudinalCandidate.CreateKnotTimes(
scheduling.TimeHorizonSeconds, scheduling.OutputTimeStepSeconds);
int stabilizationStart = LongitudinalTerminalSchedule.GetStabilizationStartIndex(
knotTimes, scheduling.OutputTimeStepSeconds);
double availableMotionTime = knotTimes[stabilizationStart];
double maximumStoppedDistance = JerkLimitedStoppingMath.CalculateMaximumStoppedDistance(
initialProgressSpeedMetersPerSecond, initialAccelerationMetersPerSecondSquared, directionMaximum,
longitudinal.MaximumAccelerationMetersPerSecondSquared,
longitudinal.MaximumDecelerationMetersPerSecondSquared,
longitudinal.MaximumJerkMetersPerSecondCubed, availableMotionTime);
EmLongitudinalMode mode = remainingSegment <= maximumStoppedDistance + BoundaryTolerance
? EmLongitudinalMode.ExactStopAtBoundary
: EmLongitudinalMode.ApproachStopBoundary;
selection = new PlanningHorizonSelection(segment.LengthMeters, windowEndBoundaryType,
ToTerminalType(segment.EndBoundary.BoundaryType), mode, segment.LengthMeters, true);
return EmPlanningStatus.Success;
}
private static double CalculateReachableDistance(double initialSpeed, double initialAcceleration, double maximumSpeed,
LongitudinalConfiguration configuration, double timeHorizonSeconds)
private static bool IsStopBoundary(EmBoundaryType boundaryType)
{
if (!JerkLimitedStoppingMath.TryCalculate(maximumSpeed, 0d,
configuration.MaximumDecelerationMetersPerSecondSquared,
configuration.MaximumJerkMetersPerSecondCubed,
out JerkLimitedStoppingProfile stopAtMaximumSpeed, out _))
{
throw new ArgumentOutOfRangeException(nameof(configuration));
}
double drivingDuration = timeHorizonSeconds - configuration.ZeroSpeedHoldSeconds - stopAtMaximumSpeed.DurationSeconds;
if (drivingDuration <= 0d)
return Math.Min(initialSpeed, maximumSpeed) * Math.Max(0d, timeHorizonSeconds - configuration.ZeroSpeedHoldSeconds);
double speed = initialSpeed;
double acceleration = initialAcceleration;
double distance = 0d;
const double simulationStepSeconds = 0.001d;
while (drivingDuration > 0d)
{
double step = Math.Min(simulationStepSeconds, drivingDuration);
double jerk = ChooseAccelerationJerk(speed, acceleration, maximumSpeed,
configuration.MaximumAccelerationMetersPerSecondSquared, configuration.MaximumJerkMetersPerSecondCubed);
double nextSpeed = speed + acceleration * step + 0.5d * jerk * step * step;
if (nextSpeed > maximumSpeed)
{
nextSpeed = maximumSpeed;
acceleration = 0d;
jerk = 0d;
}
distance += speed * step + 0.5d * acceleration * step * step + jerk * step * step * step / 6d;
acceleration += jerk * step;
speed = Math.Max(0d, nextSpeed);
drivingDuration -= step;
}
return Math.Max(0d, distance + stopAtMaximumSpeed.DistanceMeters);
}
private static double ChooseAccelerationJerk(double speed, double acceleration, double maximumSpeed,
double maximumAcceleration, double maximumJerk)
{
if (speed >= maximumSpeed - BoundaryTolerance)
{
if (acceleration > 0d)
return -maximumJerk;
return acceleration < 0d ? maximumJerk : 0d;
}
double speedToReduceAccelerationToZero = acceleration > 0d
? acceleration * acceleration / (2d * maximumJerk)
: 0d;
if (speed + speedToReduceAccelerationToZero >= maximumSpeed - BoundaryTolerance)
return acceleration > 0d ? -maximumJerk : 0d;
return acceleration < maximumAcceleration - BoundaryTolerance ? maximumJerk : 0d;
return boundaryType == EmBoundaryType.Goal || boundaryType == EmBoundaryType.GearSwitchApproach;
}
private static EmTerminalType ToTerminalType(EmBoundaryType boundaryType)