feat: derive adaptive full-segment ST schedule

This commit is contained in:
梁薄云
2026-08-06 23:54:34 +08:00
parent dad4ff4b04
commit 3269d556b6
14 changed files with 1642 additions and 108 deletions
@@ -109,7 +109,9 @@ internal static class EmPlanningServiceChecks
CreateReferencePath(TravelDirection.Forward, false, 0.0075d), null,
EmPlanningScope.FullDirectionSegment);
ConfigureExactStopServiceScenario(request.Configuration);
EmPlanningResult result = new EmPlanningService(new ScriptedPipelineSolver(PipelineSolverMode.Success)).Plan(
double[] strictFullPrimal = CreateStrictFullScopePrimal(request.Configuration);
EmPlanningResult result = new EmPlanningService(new ScriptedPipelineSolver(PipelineSolverMode.Success, null,
strictFullPrimal)).Plan(
request, CancellationToken.None);
VerifySuccess(result, request, EmTerminalType.Goal, "full scope publication");
Verification.Equal(EmPlanningScope.FullDirectionSegment, result.Trajectory.Metadata.PlanningScope,
@@ -127,9 +129,9 @@ internal static class EmPlanningServiceChecks
configuration.Longitudinal.MaximumForwardSpeedMetersPerSecond = 0.2d;
}
private static void ConfigureExactStopServiceScenario(EmPlannerConfiguration configuration)
{
configuration.Scheduling.TimeHorizonSeconds = 0.40d;
private static void ConfigureExactStopServiceScenario(EmPlannerConfiguration configuration)
{
configuration.Scheduling.TimeHorizonSeconds = 0.40d;
configuration.Scheduling.OutputTimeStepSeconds = 0.10d;
configuration.Longitudinal.MaximumForwardSpeedMetersPerSecond = 1d;
configuration.Longitudinal.MaximumReverseSpeedMetersPerSecond = 1d;
@@ -137,8 +139,171 @@ internal static class EmPlanningServiceChecks
configuration.Longitudinal.MaximumDecelerationMetersPerSecondSquared = 1d;
configuration.Longitudinal.MaximumJerkMetersPerSecondCubed = 20d;
configuration.Longitudinal.MaximumLateralAccelerationMetersPerSecondSquared = 1d;
configuration.Longitudinal.MaximumCurvatureRatePerMeterPerSecond = 1d;
}
configuration.Longitudinal.MaximumCurvatureRatePerMeterPerSecond = 1d;
}
private static double[] CreateStrictFullScopePrimal(EmPlannerConfiguration configuration)
{
var path = new LateralPath(new[]
{
new LateralPathPoint(0d, 0d, 0d, 0d, 0d, 0d, 0d, 0d, 0d, 0d, 0d, 0d),
new LateralPathPoint(0.0075d, 0.0075d, 0d, 0d, 0d, 0d, 0.0075d, 0d, 0d, 0d, 0d, 0d),
}, true);
EmPlanningStatus status = new PathSpeedLimitBuilder().Build(path, TravelDirection.Forward, 0.05d,
EmTerminalType.Goal, configuration, out PathSpeedLimit speedLimit, out string failureReason);
Verification.Equal(EmPlanningStatus.Success, status, "full scope test envelope: " + failureReason);
status = new FullDirectionSegmentScheduleBuilder().TryBuild(path, speedLimit, 0.05d, 0d,
configuration.Longitudinal.DesiredForwardSpeedMetersPerSecond, configuration,
out LongitudinalKnotSchedule schedule, out failureReason);
Verification.Equal(EmPlanningStatus.Success, status, "full scope test schedule: " + failureReason);
var input = new LongitudinalPlanningInput(path, TravelDirection.Forward, 0.05d, 0d,
EmTerminalType.Goal, EmLongitudinalMode.ExactStopAtBoundary, configuration,
EmPlanningScope.FullDirectionSegment, schedule, Array.Empty<double>(), Array.Empty<double>());
int motionIntervalCount = schedule.TerminalHoldStartIndex;
Verification.True(motionIntervalCount >= 3, "full scope test schedule has three motion intervals");
int terminalFirstInterval = motionIntervalCount - 3;
var terminalTimes = new double[4];
for (int index = 1; index < terminalTimes.Length; index++)
terminalTimes[index] = terminalTimes[index - 1] +
schedule.KnotTimes[terminalFirstInterval + index] -
schedule.KnotTimes[terminalFirstInterval + index - 1];
var motionTimes = new double[motionIntervalCount + 1];
for (int index = 0; index < motionTimes.Length; index++)
motionTimes[index] = schedule.KnotTimes[index];
var influence = new double[3, 3];
for (int interval = 0; interval < 3; interval++)
{
var basis = new double[3];
basis[interval] = 1d;
LongitudinalCandidate response = LongitudinalCandidate.Integrate(terminalTimes, 0d, 0d, 0d, basis);
int terminalIndex = response.S.Count - 1;
influence[0, interval] = response.A[terminalIndex];
influence[1, interval] = response.U[terminalIndex];
influence[2, interval] = response.S[terminalIndex];
}
var validator = new LongitudinalSolutionValidator();
for (int firstJerkStep = -20; firstJerkStep <= 0; firstJerkStep++)
{
for (int secondJerkStep = terminalFirstInterval >= 2 ? -20 : 0;
secondJerkStep <= (terminalFirstInterval >= 2 ? 20 : 0); secondJerkStep++)
{
for (int thirdJerkStep = terminalFirstInterval >= 3 ? -20 : 0;
thirdJerkStep <= (terminalFirstInterval >= 3 ? 20 : 0); thirdJerkStep++)
{
var jerk = new double[motionIntervalCount];
jerk[0] = firstJerkStep;
if (terminalFirstInterval >= 2)
jerk[1] = secondJerkStep;
if (terminalFirstInterval >= 3)
jerk[2] = thirdJerkStep;
LongitudinalCandidate baseline = LongitudinalCandidate.Integrate(motionTimes, 0d, 0.05d,
0d, jerk);
double[] target =
{
-baseline.A[baseline.A.Count - 1],
-baseline.U[baseline.U.Count - 1],
0.0075d - baseline.S[baseline.S.Count - 1],
};
if (!TrySolveThreeByThree(influence, target, out double[] terminalJerk))
throw new InvalidOperationException("Full scope strict candidate terminal system is singular.");
for (int interval = 0; interval < 3; interval++)
jerk[terminalFirstInterval + interval] = terminalJerk[interval];
LongitudinalCandidate motion = LongitudinalCandidate.Integrate(motionTimes, 0d, 0.05d, 0d,
jerk);
LongitudinalCandidate candidate = AppendFullStopTail(schedule.KnotTimes, motionIntervalCount,
motion);
if (!validator.TryValidate(input, speedLimit, candidate, out LongitudinalCandidate strict, out _))
continue;
return ToPrimal(strict);
}
}
}
throw new InvalidOperationException("Unable to construct a strict full-scope test candidate: hold=" +
motionIntervalCount + ";times=" + string.Join(",", schedule.KnotTimes));
}
private static LongitudinalCandidate AppendFullStopTail(IReadOnlyList<double> times, int motionIntervalCount,
LongitudinalCandidate motion)
{
var pathS = new double[times.Count];
var speed = new double[times.Count];
var acceleration = new double[times.Count];
var jerk = new double[times.Count - 1];
for (int index = 0; index <= motionIntervalCount; index++)
{
pathS[index] = index == motionIntervalCount ? 0.0075d : motion.S[index];
speed[index] = index == motionIntervalCount ? 0d : motion.U[index];
acceleration[index] = index == motionIntervalCount ? 0d : motion.A[index];
}
for (int index = motionIntervalCount + 1; index < times.Count; index++)
pathS[index] = 0.0075d;
for (int index = 0; index < motion.J.Count; index++)
jerk[index] = motion.J[index];
return new LongitudinalCandidate(times, pathS, speed, acceleration, jerk);
}
private static double[] ToPrimal(LongitudinalCandidate candidate)
{
var layout = new LongitudinalVariableLayout(candidate.S.Count);
var primal = new double[layout.VariableCount];
for (int index = 0; index < candidate.S.Count; index++)
{
primal[layout.S(index)] = candidate.S[index];
primal[layout.U(index)] = candidate.U[index];
primal[layout.A(index)] = candidate.A[index];
}
for (int index = 0; index < candidate.J.Count; index++)
primal[layout.J(index)] = candidate.J[index];
return primal;
}
private static bool TrySolveThreeByThree(double[,] matrix, IReadOnlyList<double> rightHandSide,
out double[] solution)
{
var augmented = new double[3, 4];
for (int row = 0; row < 3; row++)
{
for (int column = 0; column < 3; column++)
augmented[row, column] = matrix[row, column];
augmented[row, 3] = rightHandSide[row];
}
for (int column = 0; column < 3; column++)
{
int pivot = column;
for (int row = column + 1; row < 3; row++)
{
if (Math.Abs(augmented[row, column]) > Math.Abs(augmented[pivot, column]))
pivot = row;
}
if (Math.Abs(augmented[pivot, column]) < 1e-12d)
{
solution = Array.Empty<double>();
return false;
}
if (pivot != column)
{
for (int index = column; index < 4; index++)
{
double temporary = augmented[column, index];
augmented[column, index] = augmented[pivot, index];
augmented[pivot, index] = temporary;
}
}
double divisor = augmented[column, column];
for (int index = column; index < 4; index++)
augmented[column, index] /= divisor;
for (int row = 0; row < 3; row++)
{
if (row == column)
continue;
double factor = augmented[row, column];
for (int index = column; index < 4; index++)
augmented[row, index] -= factor * augmented[column, index];
}
}
solution = new[] { augmented[0, 3], augmented[1, 3], augmented[2, 3] };
return true;
}
private static void AssertExactStopStabilization(EmTrajectory trajectory, EmBoundaryType boundaryType, string name)
{
@@ -452,20 +617,23 @@ internal static class EmPlanningServiceChecks
{
private readonly PipelineSolverMode mode;
private readonly PlanningGridMap? mapToCorrupt;
private readonly IReadOnlyList<double>? strictFullPrimal;
private int longitudinalCallCount;
public QuadraticProgram? LastLongitudinalProblem { get; private set; }
public ScriptedPipelineSolver(PipelineSolverMode mode, PlanningGridMap? mapToCorrupt = null)
public ScriptedPipelineSolver(PipelineSolverMode mode, PlanningGridMap? mapToCorrupt = null,
IReadOnlyList<double>? strictFullPrimal = null)
{
this.mode = mode;
this.mapToCorrupt = mapToCorrupt;
this.strictFullPrimal = strictFullPrimal;
}
public QpSolveResult Solve(QuadraticProgram problem, QpSolverSettings settings, IReadOnlyList<double> warmStart,
CancellationToken cancellationToken)
{
bool longitudinal = problem.VariableCount > 100;
bool longitudinal = IsLongitudinalProblem(problem);
if (mode == PipelineSolverMode.SolverUnavailable)
return Result(QpSolveStatus.SolverUnavailable, Array.Empty<double>());
if (!longitudinal)
@@ -479,12 +647,18 @@ internal static class EmPlanningServiceChecks
LastLongitudinalProblem = problem;
if (mode == PipelineSolverMode.LongitudinalInfeasible)
return Result(QpSolveStatus.PrimalInfeasible, Array.Empty<double>());
if (strictFullPrimal != null && strictFullPrimal.Count == problem.VariableCount)
{
longitudinalCallCount++;
return Result(QpSolveStatus.Solved, strictFullPrimal);
}
if (mode == PipelineSolverMode.PublicationValidationFailure && longitudinalCallCount == 0)
CorruptMapAtOrigin(mapToCorrupt);
if (mode == PipelineSolverMode.TimeoutWithFallback && ++longitudinalCallCount > 1)
return Result(QpSolveStatus.TimeLimit, Array.Empty<double>());
longitudinalCallCount++;
return Result(QpSolveStatus.Solved, warmStart);
return Result(QpSolveStatus.Solved,
TryCreateStrictExactStopPrimal(problem, out double[] strictPrimal) ? strictPrimal : warmStart);
}
private static void CorruptMapAtOrigin(PlanningGridMap? map)
@@ -502,41 +676,234 @@ internal static class EmPlanningServiceChecks
distances[index] = 0d;
}
private static double[] CreateStrictLongitudinalPrimal(QuadraticProgram problem)
private static bool TryCreateStrictExactStopPrimal(QuadraticProgram problem, out double[] primal)
{
primal = Array.Empty<double>();
int variableCount = problem.VariableCount;
int knotCount = (variableCount + 1) / 4;
var layout = new LongitudinalVariableLayout(knotCount);
var jerk = new double[knotCount - 1];
const int rampIntervals = 5;
for (int index = 0; index < rampIntervals; index++) jerk[index] = 1d;
for (int index = rampIntervals; index < 3 * rampIntervals; index++) jerk[index] = -1d;
for (int index = 3 * rampIntervals; index < 4 * rampIntervals; index++) jerk[index] = 1d;
int stabilizationStart = FindExactStopTailStart(problem, layout);
if (stabilizationStart < 3)
return false;
var times = new double[knotCount];
for (int index = 0; index < times.Length; index++) times[index] = index * 0.05d;
LongitudinalCandidate baseCandidate = LongitudinalCandidate.Integrate(times, 0d, 0d, 0d, jerk);
double terminalPathS = ReadFixedVariable(problem, layout.S(knotCount - 1));
double scale = terminalPathS / baseCandidate.S[baseCandidate.S.Count - 1];
for (int index = 0; index < jerk.Length; index++) jerk[index] *= scale;
LongitudinalCandidate candidate = LongitudinalCandidate.Integrate(times, 0d, 0d, 0d, jerk);
for (int index = 0; index < knotCount - 1; index++)
{
if (!TryReadDynamicsDuration(problem, layout, index, out double duration))
return false;
times[index + 1] = times[index] + duration;
}
var motionTimes = new double[stabilizationStart + 1];
Array.Copy(times, motionTimes, motionTimes.Length);
double initialPathS = ReadFixedVariable(problem, layout.S(0));
double initialSpeed = ReadFixedVariable(problem, layout.U(0));
double initialAcceleration = ReadFixedVariable(problem, layout.A(0));
double terminalPathS = ReadFixedVariable(problem, layout.S(stabilizationStart));
var preferredJerk = new double[stabilizationStart];
LongitudinalCandidate baseline = LongitudinalCandidate.Integrate(motionTimes, initialPathS, initialSpeed,
initialAcceleration, preferredJerk);
var influence = new double[3, stabilizationStart];
for (int interval = 0; interval < stabilizationStart; interval++)
{
var basis = new double[stabilizationStart];
basis[interval] = 1d;
LongitudinalCandidate response = LongitudinalCandidate.Integrate(motionTimes, 0d, 0d, 0d, basis);
int terminalIndex = response.S.Count - 1;
influence[0, interval] = response.A[terminalIndex];
influence[1, interval] = response.U[terminalIndex];
influence[2, interval] = response.S[terminalIndex];
}
double[] target =
{
-baseline.A[baseline.A.Count - 1],
-baseline.U[baseline.U.Count - 1],
terminalPathS - baseline.S[baseline.S.Count - 1],
};
var jerk = new double[knotCount - 1];
if (stabilizationStart >= 4)
{
int terminalFirstInterval = stabilizationStart - 3;
var terminalInfluence = new double[3, 3];
for (int row = 0; row < 3; row++)
{
for (int column = 0; column < 3; column++)
terminalInfluence[row, column] = influence[row, terminalFirstInterval + column];
}
if (!TrySolveThreeByThree(terminalInfluence, target, out double[] terminalJerk))
return false;
for (int interval = 0; interval < 3; interval++)
jerk[terminalFirstInterval + interval] = terminalJerk[interval];
}
else
{
var gram = new double[3, 3];
for (int row = 0; row < 3; row++)
{
for (int column = 0; column < 3; column++)
{
for (int interval = 0; interval < stabilizationStart; interval++)
gram[row, column] += influence[row, interval] * influence[column, interval];
}
}
if (!TrySolveThreeByThree(gram, target, out double[] multipliers))
return false;
for (int interval = 0; interval < stabilizationStart; interval++)
{
jerk[interval] = preferredJerk[interval];
for (int row = 0; row < 3; row++)
jerk[interval] += influence[row, interval] * multipliers[row];
}
}
var motionJerk = new double[stabilizationStart];
Array.Copy(jerk, motionJerk, motionJerk.Length);
LongitudinalCandidate candidate = LongitudinalCandidate.Integrate(motionTimes, initialPathS, initialSpeed,
initialAcceleration, motionJerk);
primal = CreateExactStopPrimal(layout, knotCount, stabilizationStart, terminalPathS, candidate);
return true;
}
private static double[] CreateExactStopPrimal(LongitudinalVariableLayout layout, int knotCount,
int stabilizationStart, double terminalPathS, LongitudinalCandidate candidate)
{
var primal = new double[layout.VariableCount];
for (int index = 0; index < knotCount; index++)
{
primal[layout.S(index)] = candidate.S[index];
primal[layout.U(index)] = candidate.U[index];
primal[layout.A(index)] = candidate.A[index];
}
for (int index = 0; index < jerk.Length; index++) primal[layout.J(index)] = candidate.J[index];
for (int index = 4 * rampIntervals; index < knotCount; index++)
{
primal[layout.S(index)] = terminalPathS;
primal[layout.U(index)] = 0d;
primal[layout.A(index)] = 0d;
bool isTerminalTail = index >= stabilizationStart;
primal[layout.S(index)] = isTerminalTail ? terminalPathS : candidate.S[index];
primal[layout.U(index)] = isTerminalTail ? 0d : candidate.U[index];
primal[layout.A(index)] = isTerminalTail ? 0d : candidate.A[index];
}
for (int index = 0; index < candidate.J.Count; index++)
primal[layout.J(index)] = candidate.J[index];
return primal;
}
private static int FindExactStopTailStart(QuadraticProgram problem, LongitudinalVariableLayout layout)
{
for (int index = 1; index < layout.KnotCount; index++)
{
if (TryReadFixedVariable(problem, layout.S(index), out _) &&
TryReadFixedVariable(problem, layout.U(index), out _) &&
TryReadFixedVariable(problem, layout.A(index), out _))
{
return index;
}
}
return -1;
}
private static bool TryReadDynamicsDuration(QuadraticProgram problem, LongitudinalVariableLayout layout,
int interval, out double duration)
{
duration = 0d;
for (int row = 0; row < problem.ConstraintCount; row++)
{
if (Math.Abs(problem.LowerBounds[row]) > 1e-12d || Math.Abs(problem.UpperBounds[row]) > 1e-12d ||
CountRowEntries(problem, row) != 3 ||
Math.Abs(ReadCoefficient(problem, row, layout.A(interval + 1)) - 1d) > 1e-12d ||
Math.Abs(ReadCoefficient(problem, row, layout.A(interval)) + 1d) > 1e-12d)
{
continue;
}
double jerkCoefficient = ReadCoefficient(problem, row, layout.J(interval));
if (jerkCoefficient >= -1e-12d)
continue;
duration = -jerkCoefficient;
return true;
}
return false;
}
private static int CountRowEntries(QuadraticProgram problem, int row)
{
int count = 0;
for (int column = 0; column < problem.ConstraintMatrix.ColumnCount; column++)
{
for (int index = problem.ConstraintMatrix.ColumnPointers[column];
index < problem.ConstraintMatrix.ColumnPointers[column + 1]; index++)
{
if (problem.ConstraintMatrix.RowIndices[index] == row)
count++;
}
}
return count;
}
private static double ReadCoefficient(QuadraticProgram problem, int row, int column)
{
for (int index = problem.ConstraintMatrix.ColumnPointers[column];
index < problem.ConstraintMatrix.ColumnPointers[column + 1]; index++)
{
if (problem.ConstraintMatrix.RowIndices[index] == row)
return problem.ConstraintMatrix.Values[index];
}
return 0d;
}
private static bool TrySolveThreeByThree(double[,] matrix, IReadOnlyList<double> rightHandSide,
out double[] solution)
{
var augmented = new double[3, 4];
for (int row = 0; row < 3; row++)
{
for (int column = 0; column < 3; column++)
augmented[row, column] = matrix[row, column];
augmented[row, 3] = rightHandSide[row];
}
for (int column = 0; column < 3; column++)
{
int pivot = column;
for (int row = column + 1; row < 3; row++)
{
if (Math.Abs(augmented[row, column]) > Math.Abs(augmented[pivot, column]))
pivot = row;
}
if (Math.Abs(augmented[pivot, column]) < 1e-12d)
{
solution = Array.Empty<double>();
return false;
}
if (pivot != column)
{
for (int index = column; index < 4; index++)
{
double temporary = augmented[column, index];
augmented[column, index] = augmented[pivot, index];
augmented[pivot, index] = temporary;
}
}
double divisor = augmented[column, column];
for (int index = column; index < 4; index++)
augmented[column, index] /= divisor;
for (int row = 0; row < 3; row++)
{
if (row == column)
continue;
double factor = augmented[row, column];
for (int index = column; index < 4; index++)
augmented[row, index] -= factor * augmented[column, index];
}
}
solution = new[] { augmented[0, 3], augmented[1, 3], augmented[2, 3] };
return true;
}
private static bool IsLongitudinalProblem(QuadraticProgram problem)
{
if (problem.VariableCount < 7 || (problem.VariableCount + 1) % 4 != 0)
return false;
int knotCount = (problem.VariableCount + 1) / 4;
return problem.ConstraintCount >= 8 * knotCount - 2;
}
private static double ReadFixedVariable(QuadraticProgram problem, int variable)
{
if (TryReadFixedVariable(problem, variable, out double value))
return value;
throw new InvalidOperationException("Expected a fixed ST variable constraint.");
}
private static bool TryReadFixedVariable(QuadraticProgram problem, int variable, out double value)
{
for (int row = 0; row < problem.ConstraintCount; row++)
{
@@ -557,10 +924,12 @@ internal static class EmPlanningServiceChecks
if (entryCount == 1 && Math.Abs(coefficient) > 1e-12d &&
Math.Abs(problem.LowerBounds[row] - problem.UpperBounds[row]) <= 1e-12d)
{
return problem.LowerBounds[row] / coefficient;
value = problem.LowerBounds[row] / coefficient;
return true;
}
}
throw new InvalidOperationException("Expected a fixed ST variable constraint.");
value = 0d;
return false;
}
private static QpSolveResult Result(QpSolveStatus status, IReadOnlyList<double> primal)