feat: optimize lateral paths with SQP
This commit is contained in:
@@ -0,0 +1,20 @@
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using System;
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using System.Threading;
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namespace MultiWheelC.TrajectoryPlanning.EMPlanner;
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/// <summary>Public lateral-planning entry point backed by the solver-neutral SQP optimizer.</summary>
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public sealed class LateralPlanner
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{
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private readonly SequentialConvexOptimizer _optimizer;
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public LateralPlanner(IQpSolver qpSolver)
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{
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_optimizer = new SequentialConvexOptimizer(qpSolver ?? throw new ArgumentNullException(nameof(qpSolver)));
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}
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public LateralPlanningResult Plan(LateralPlanningInput input, CancellationToken cancellationToken)
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{
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return _optimizer.Optimize(input, cancellationToken);
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}
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}
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@@ -0,0 +1,294 @@
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using System;
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using System.Collections.Generic;
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using System.Diagnostics;
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using System.Threading;
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namespace MultiWheelC.TrajectoryPlanning.EMPlanner;
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/// <summary>Runs bounded lateral SQP iterations and retains only independently validated candidates.</summary>
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public sealed class SequentialConvexOptimizer
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{
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private const double StationTolerance = 1e-12d;
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private readonly IQpSolver _qpSolver;
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private readonly LateralConstraintBuilder _constraintBuilder;
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private readonly LateralGeometryEvaluator _geometryEvaluator;
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private readonly LateralSolutionValidator _solutionValidator;
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public SequentialConvexOptimizer(IQpSolver qpSolver)
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: this(qpSolver, new LateralConstraintBuilder(new LateralObjectiveBuilder()), new LateralGeometryEvaluator(),
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new LateralSolutionValidator())
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{
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}
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internal SequentialConvexOptimizer(IQpSolver qpSolver, LateralConstraintBuilder constraintBuilder,
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LateralGeometryEvaluator geometryEvaluator, LateralSolutionValidator solutionValidator)
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{
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_qpSolver = qpSolver ?? throw new ArgumentNullException(nameof(qpSolver));
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_constraintBuilder = constraintBuilder ?? throw new ArgumentNullException(nameof(constraintBuilder));
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_geometryEvaluator = geometryEvaluator ?? throw new ArgumentNullException(nameof(geometryEvaluator));
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_solutionValidator = solutionValidator ?? throw new ArgumentNullException(nameof(solutionValidator));
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}
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public LateralPlanningResult Optimize(LateralPlanningInput input, CancellationToken cancellationToken)
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{
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if (input == null)
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return Failed(EmPlanningStatus.InvalidInput, "Lateral planning input is required.");
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if (!TryCreateSettings(input, out QpSolverSettings settings, out TimeSpan totalBudget, out double convergenceTolerance,
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out string configurationFailure))
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{
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return Failed(EmPlanningStatus.InvalidInput, configurationFailure);
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}
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LateralCandidate iterate = CreateInitialIterate(input);
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var warmStart = Array.Empty<double>();
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LateralPath lastValidatedPath = null;
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double previousObjective = 0d;
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bool hasPreviousObjective = false;
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var stopwatch = Stopwatch.StartNew();
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for (int iteration = 0; iteration < input.Configuration.Solver.MaximumOuterIterations; iteration++)
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{
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if (cancellationToken.IsCancellationRequested)
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return FallbackOrFailure(lastValidatedPath, EmPlanningStatus.Cancelled, "Lateral SQP was cancelled.");
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TimeSpan remainingBudget = totalBudget - stopwatch.Elapsed;
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if (remainingBudget <= TimeSpan.Zero)
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return FallbackOrFailure(lastValidatedPath, EmPlanningStatus.SolverTimedOut,
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"Lateral SQP exhausted its solve budget.");
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if (!_constraintBuilder.TryBuild(input, iterate, out QuadraticProgram problem, out string failureReason))
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{
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return FallbackOrFailure(lastValidatedPath, EmPlanningStatus.LateralInfeasible,
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"Lateral SQP constraints are infeasible: " + failureReason);
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}
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QpSolveResult solved = _qpSolver.Solve(problem,
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new QpSolverSettings(settings.MaximumIterations, settings.AbsoluteTolerance, settings.RelativeTolerance,
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remainingBudget, settings.EnableWarmStart, settings.EnablePolishing, settings.EnableNativeVerboseOutput),
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warmStart, cancellationToken);
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if (solved == null)
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return FallbackOrFailure(lastValidatedPath, EmPlanningStatus.Failed, "The lateral QP solver returned no result.");
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if (solved.Status == QpSolveStatus.TimeLimit || solved.Status == QpSolveStatus.MaximumIterations)
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{
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return FallbackOrFailure(lastValidatedPath, EmPlanningStatus.SolverTimedOut,
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"The lateral QP solver timed out: " + solved.Diagnostic);
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}
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if (solved.Status == QpSolveStatus.Cancelled)
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return FallbackOrFailure(lastValidatedPath, EmPlanningStatus.Cancelled,
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"The lateral QP solver was cancelled: " + solved.Diagnostic);
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if (solved.Status == QpSolveStatus.PrimalInfeasible || solved.Status == QpSolveStatus.DualInfeasible)
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{
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return FallbackOrFailure(lastValidatedPath, EmPlanningStatus.LateralInfeasible,
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"The lateral QP solver reported infeasibility: " + solved.Diagnostic);
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}
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if (solved.Status == QpSolveStatus.SolverUnavailable)
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return FallbackOrFailure(lastValidatedPath, EmPlanningStatus.SolverUnavailable,
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"The lateral QP solver is unavailable: " + solved.Diagnostic);
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if (solved.Status != QpSolveStatus.Solved && solved.Status != QpSolveStatus.SolvedInaccurate)
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{
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return FallbackOrFailure(lastValidatedPath, EmPlanningStatus.Failed,
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"The lateral QP solver failed: " + solved.Diagnostic);
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}
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if (solved.Status == QpSolveStatus.SolvedInaccurate && !HasStrictResiduals(solved, input.Configuration.Solver.StrictResidualTolerance))
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{
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continue;
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}
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if (!TryCreateCandidate(input.ReferenceStations, solved.Primal, out LateralCandidate candidate))
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continue;
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if (!_geometryEvaluator.TryEvaluate(input, candidate, out LateralPath evaluatedPath, out _))
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continue;
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if (!_solutionValidator.TryValidate(input, candidate, evaluatedPath, out LateralPath validatedPath, out _))
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continue;
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double maximumLateralChange = MaximumLateralChange(iterate, candidate);
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double relativeObjectiveImprovement = hasPreviousObjective
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? RelativeObjectiveImprovement(previousObjective, solved.Objective)
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: double.PositiveInfinity;
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lastValidatedPath = CopyPath(validatedPath);
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iterate = candidate;
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warmStart = CopyValues(solved.Primal);
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previousObjective = solved.Objective;
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hasPreviousObjective = true;
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if (maximumLateralChange <= convergenceTolerance && relativeObjectiveImprovement <= convergenceTolerance)
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return new LateralPlanningResult(EmPlanningStatus.Success, lastValidatedPath, string.Empty);
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}
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return lastValidatedPath == null
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? Failed(EmPlanningStatus.LateralInfeasible, "No independently validated lateral candidate was found.")
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: new LateralPlanningResult(EmPlanningStatus.Success, lastValidatedPath, string.Empty);
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}
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private static bool TryCreateSettings(LateralPlanningInput input, out QpSolverSettings settings, out TimeSpan totalBudget,
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out double convergenceTolerance, out string failureReason)
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{
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settings = null;
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totalBudget = TimeSpan.Zero;
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convergenceTolerance = 0d;
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failureReason = string.Empty;
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SolverConfiguration solver = input.Configuration.Solver;
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SchedulingConfiguration scheduling = input.Configuration.Scheduling;
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if (solver == null || scheduling == null || solver.MaximumOuterIterations <= 0 ||
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!IsPositiveFinite(solver.AbsoluteTolerance) || !IsPositiveFinite(solver.RelativeTolerance) ||
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!IsPositiveFinite(solver.StrictResidualTolerance) || !IsPositiveFinite(scheduling.SolverTimeoutSeconds))
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{
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failureReason = "The lateral SQP solver configuration is invalid.";
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return false;
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}
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try
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{
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totalBudget = TimeSpan.FromSeconds(scheduling.SolverTimeoutSeconds);
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settings = new QpSolverSettings(solver.MaximumOsqpIterations, solver.AbsoluteTolerance, solver.RelativeTolerance,
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totalBudget, solver.WarmStart, solver.Polish, solver.NativeVerbose);
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convergenceTolerance = solver.StrictResidualTolerance;
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return true;
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}
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catch (ArgumentException exception)
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{
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failureReason = exception.Message;
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return false;
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}
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}
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private static LateralCandidate CreateInitialIterate(LateralPlanningInput input)
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{
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int stationCount = input.ReferenceStations.Count;
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var l = new double[stationCount];
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var dl = new double[stationCount];
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var ddl = new double[stationCount];
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var dddl = new double[stationCount - 1];
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bool coversAllStations = input.PreviousTrajectorySeed.Count >= 2 &&
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input.PreviousTrajectorySeed[0].ReferenceS <= input.ReferenceStations[0] + StationTolerance &&
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input.PreviousTrajectorySeed[input.PreviousTrajectorySeed.Count - 1].ReferenceS >=
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input.ReferenceStations[stationCount - 1] - StationTolerance;
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for (int index = 0; index < stationCount; index++)
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{
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LateralInterval corridor = input.Corridor.Stations[index];
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l[index] = coversAllStations
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? InterpolateSeedL(input.PreviousTrajectorySeed, input.ReferenceStations[index])
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: Clamp(0d, corridor.MinimumL, corridor.MaximumL);
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}
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double startDenominator = 1d - input.StartProjection.ReferencePoint.GeometricCurvature *
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input.StartProjection.LateralOffset;
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l[0] = input.StartProjection.LateralOffset;
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dl[0] = startDenominator * Math.Tan(input.StartProjection.HeadingError);
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return new LateralCandidate(input.ReferenceStations, l, dl, ddl, dddl);
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}
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private static bool TryCreateCandidate(IReadOnlyList<double> stations, IReadOnlyList<double> primal,
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out LateralCandidate candidate)
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{
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candidate = null;
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if (primal == null)
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return false;
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try
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{
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var layout = new LateralVariableLayout(stations.Count);
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if (primal.Count != layout.VariableCount)
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return false;
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var l = new double[layout.StationCount];
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var dl = new double[layout.StationCount];
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var ddl = new double[layout.StationCount];
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var dddl = new double[layout.StationCount - 1];
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for (int index = 0; index < layout.StationCount; index++)
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{
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l[index] = primal[layout.L(index)];
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dl[index] = primal[layout.DL(index)];
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ddl[index] = primal[layout.DDL(index)];
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}
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for (int index = 0; index < dddl.Length; index++)
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dddl[index] = primal[layout.DDDL(index)];
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candidate = new LateralCandidate(stations, l, dl, ddl, dddl);
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return true;
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}
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catch (ArgumentException)
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{
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return false;
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}
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}
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private static bool HasStrictResiduals(QpSolveResult result, double tolerance)
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{
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return IsPositiveFinite(tolerance) && result.PrimalResidual >= 0d && result.DualResidual >= 0d &&
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result.PrimalResidual <= tolerance && result.DualResidual <= tolerance;
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}
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private static double MaximumLateralChange(LateralCandidate previous, LateralCandidate current)
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{
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double maximum = 0d;
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for (int index = 0; index < previous.L.Count; index++)
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maximum = Math.Max(maximum, Math.Abs(current.L[index] - previous.L[index]));
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return maximum;
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}
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private static double RelativeObjectiveImprovement(double previous, double current)
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{
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return Math.Abs(previous - current) / Math.Max(1d, Math.Abs(previous));
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}
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private static LateralPlanningResult FallbackOrFailure(LateralPath path, EmPlanningStatus failureStatus, string failureReason)
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{
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return path == null
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? Failed(failureStatus, failureReason)
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: new LateralPlanningResult(EmPlanningStatus.SuccessWithFallback, path, failureReason);
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}
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private static LateralPlanningResult Failed(EmPlanningStatus status, string reason)
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{
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return new LateralPlanningResult(status, null, reason);
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}
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private static LateralPath CopyPath(LateralPath source)
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{
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var points = new List<LateralPathPoint>(source.Points.Count);
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for (int index = 0; index < source.Points.Count; index++)
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{
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LateralPathPoint point = source.Points[index];
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points.Add(new LateralPathPoint(point.ReferenceS, point.PathS, point.L, point.DL, point.DDL, point.DDDL,
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point.X, point.Y, point.VehicleYaw, point.GeometricCurvature, point.VehicleCurvature,
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point.VehicleCurvatureDerivative));
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}
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return new LateralPath(points, true);
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}
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private static double[] CopyValues(IReadOnlyList<double> source)
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{
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var copy = new double[source.Count];
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for (int index = 0; index < source.Count; index++)
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copy[index] = source[index];
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return copy;
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}
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private static double InterpolateSeedL(IReadOnlyList<FrenetProjection> seed, double referenceS)
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{
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if (referenceS <= seed[0].ReferenceS)
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return seed[0].LateralOffset;
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for (int index = 1; index < seed.Count; index++)
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{
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if (referenceS <= seed[index].ReferenceS)
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{
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FrenetProjection lower = seed[index - 1];
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FrenetProjection upper = seed[index];
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double span = upper.ReferenceS - lower.ReferenceS;
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return span <= StationTolerance ? upper.LateralOffset : lower.LateralOffset +
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(upper.LateralOffset - lower.LateralOffset) * (referenceS - lower.ReferenceS) / span;
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}
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}
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return seed[seed.Count - 1].LateralOffset;
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}
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private static double Clamp(double value, double minimum, double maximum)
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{
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return Math.Max(minimum, Math.Min(maximum, value));
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}
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private static bool IsPositiveFinite(double value)
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{
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return !double.IsNaN(value) && !double.IsInfinity(value) && value > 0d;
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}
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}
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@@ -8,11 +8,24 @@ namespace EMPlannerVerificationHost;
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internal sealed class FakeQpSolver : IQpSolver
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{
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private readonly QpSolveResult _result;
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private readonly Queue<QpSolveResult> _results;
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private readonly List<QuadraticProgram> _problems = new List<QuadraticProgram>();
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private readonly List<IReadOnlyList<double>> _warmStarts = new List<IReadOnlyList<double>>();
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public FakeQpSolver(QpSolveResult result)
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: this(new[] { result })
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{
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_result = result ?? throw new ArgumentNullException(nameof(result));
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}
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public FakeQpSolver(IEnumerable<QpSolveResult> results)
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{
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if (results == null)
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throw new ArgumentNullException(nameof(results));
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_results = new Queue<QpSolveResult>();
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foreach (QpSolveResult result in results)
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_results.Enqueue(result ?? throw new ArgumentException("Fake solver results cannot contain null values.", nameof(results)));
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if (_results.Count == 0)
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throw new ArgumentException("At least one fake solver result is required.", nameof(results));
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LastWarmStart = Array.Empty<double>();
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}
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@@ -22,6 +35,12 @@ internal sealed class FakeQpSolver : IQpSolver
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public IReadOnlyList<double> LastWarmStart { get; private set; }
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public IReadOnlyList<QuadraticProgram> Problems => new ReadOnlyCollection<QuadraticProgram>(_problems);
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public IReadOnlyList<IReadOnlyList<double>> WarmStarts => new ReadOnlyCollection<IReadOnlyList<double>>(_warmStarts);
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public int SolveCallCount => _problems.Count;
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public QpSolveResult Solve(QuadraticProgram problem, QpSolverSettings settings, IReadOnlyList<double> warmStart,
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CancellationToken cancellationToken)
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{
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@@ -34,6 +53,10 @@ internal sealed class FakeQpSolver : IQpSolver
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copy.Add(warmStart[index]);
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}
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LastWarmStart = new ReadOnlyCollection<double>(copy);
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return _result;
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_problems.Add(LastProblem);
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_warmStarts.Add(LastWarmStart);
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if (_results.Count == 0)
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throw new InvalidOperationException("Fake solver was called more often than its scripted result sequence.");
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return _results.Dequeue();
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}
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}
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@@ -0,0 +1,236 @@
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using System;
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using System.Collections.Generic;
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using System.Threading;
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using EMPlannerVerificationHost;
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using MultiWheelC.TrajectoryPlanning.CoarsePath;
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using MultiWheelC.TrajectoryPlanning.CoarsePath.Vehicle;
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using MultiWheelC.TrajectoryPlanning.PathSmoothing;
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namespace MultiWheelC.TrajectoryPlanning.EMPlanner;
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internal static class LateralIntegrationChecks
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{
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public static void Run()
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{
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VerifiesValidatedCandidateSurvivesLaterTimeout();
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VerifiesInvalidVectorsAndInaccurateResidualsNeverBecomeFallbacks();
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VerifiesTrustRegionWarmStartAndOuterIterationLimit();
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VerifiesCancellationAndTimeoutWithoutCandidate();
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VerifiesLateralPlannerDelegatesToTheSequentialOptimizer();
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}
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private static void VerifiesValidatedCandidateSurvivesLaterTimeout()
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{
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LateralPlanningInput input = CreateInput();
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double[] valid = CreatePrimal(input, 0.02d);
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var solver = new FakeQpSolver(new[]
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{
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Result(QpSolveStatus.Solved, valid, 10d),
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Result(QpSolveStatus.TimeLimit, Array.Empty<double>(), 10d),
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});
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LateralPlanningResult result = new SequentialConvexOptimizer(solver).Optimize(input, CancellationToken.None);
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Verification.Equal(EmPlanningStatus.SuccessWithFallback, result.Status,
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"timeout after an independently validated candidate returns fallback success");
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LateralPath fallbackPath = result.Path ?? throw new InvalidOperationException("Fallback path was not returned.");
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Verification.True(fallbackPath.IsIndependentlyValidated,
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"fallback path remains independently validated");
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Verification.NearlyEqual(0.02d, fallbackPath.Points[1].L,
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"first valid candidate remains the fallback path");
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}
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private static void VerifiesInvalidVectorsAndInaccurateResidualsNeverBecomeFallbacks()
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{
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LateralPlanningInput input = CreateInput();
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double[] valid = CreatePrimal(input, 0.02d);
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double[] invalid = CreatePrimal(input, 0.40d);
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var solver = new FakeQpSolver(new[]
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{
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Result(QpSolveStatus.Solved, valid, 10d),
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Result(QpSolveStatus.Solved, invalid, 9d),
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Result(QpSolveStatus.TimeLimit, Array.Empty<double>(), 9d),
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});
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LateralPlanningResult preserved = new SequentialConvexOptimizer(solver).Optimize(input, CancellationToken.None);
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Verification.Equal(EmPlanningStatus.SuccessWithFallback, preserved.Status,
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"invalid solved vector does not discard an earlier fallback");
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Verification.NearlyEqual(0.02d, preserved.Path.Points[1].L,
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||||
"invalid solved vector does not replace the fallback candidate");
|
||||
|
||||
var inaccurateResidual = new FakeQpSolver(new[]
|
||||
{
|
||||
Result(QpSolveStatus.SolvedInaccurate, valid, 10d, 2e-5d, 0d),
|
||||
Result(QpSolveStatus.TimeLimit, Array.Empty<double>(), 10d),
|
||||
});
|
||||
LateralPlanningResult rejectedResidual = new SequentialConvexOptimizer(inaccurateResidual).Optimize(input,
|
||||
CancellationToken.None);
|
||||
Verification.Equal(EmPlanningStatus.SolverTimedOut, rejectedResidual.Status,
|
||||
"SolvedInaccurate above strict residual threshold is rejected");
|
||||
Verification.True(ReferenceEquals(null, rejectedResidual.Path),
|
||||
"rejected inaccurate result does not publish a path");
|
||||
|
||||
var inaccurateGeometry = new FakeQpSolver(new[]
|
||||
{
|
||||
Result(QpSolveStatus.SolvedInaccurate, invalid, 10d, 0d, 0d),
|
||||
Result(QpSolveStatus.TimeLimit, Array.Empty<double>(), 10d),
|
||||
});
|
||||
LateralPlanningResult rejectedGeometry = new SequentialConvexOptimizer(inaccurateGeometry).Optimize(input,
|
||||
CancellationToken.None);
|
||||
Verification.Equal(EmPlanningStatus.SolverTimedOut, rejectedGeometry.Status,
|
||||
"SolvedInaccurate still requires full independent lateral validation");
|
||||
}
|
||||
|
||||
private static void VerifiesTrustRegionWarmStartAndOuterIterationLimit()
|
||||
{
|
||||
LateralPlanningInput input = CreateInput();
|
||||
var trustSolver = new FakeQpSolver(new[]
|
||||
{
|
||||
Result(QpSolveStatus.Solved, CreatePrimal(input, 0.02d), 10d),
|
||||
Result(QpSolveStatus.TimeLimit, Array.Empty<double>(), 10d),
|
||||
});
|
||||
new SequentialConvexOptimizer(trustSolver).Optimize(input, CancellationToken.None);
|
||||
|
||||
var layout = new LateralVariableLayout(input.ReferenceStations.Count);
|
||||
FindSingleVariableBounds(trustSolver.Problems[0], layout.L(1), out double initialLower, out double initialUpper);
|
||||
FindSingleVariableBounds(trustSolver.Problems[1], layout.L(1), out double nextLower, out double nextUpper);
|
||||
Verification.NearlyEqual(-0.05d, initialLower, "initial trust-region lower bound");
|
||||
Verification.NearlyEqual(0.05d, initialUpper, "initial trust-region upper bound");
|
||||
Verification.NearlyEqual(-0.03d, nextLower, "trust region is centered on previous iterate");
|
||||
Verification.NearlyEqual(0.07d, nextUpper, "trust region never exceeds 0.05m around previous iterate");
|
||||
Verification.Equal(layout.VariableCount, trustSolver.WarmStarts[1].Count,
|
||||
"next QP receives the complete previous primal warm start");
|
||||
Verification.NearlyEqual(0.02d, trustSolver.WarmStarts[1][layout.L(1)],
|
||||
"warm start retains the prior lateral iterate");
|
||||
|
||||
var limitResults = new List<QpSolveResult>();
|
||||
for (int index = 1; index <= 5; index++)
|
||||
limitResults.Add(Result(QpSolveStatus.Solved, CreatePrimal(input, 0.02d * index), 100d - index));
|
||||
var limitSolver = new FakeQpSolver(limitResults);
|
||||
LateralPlanningResult limited = new SequentialConvexOptimizer(limitSolver).Optimize(input, CancellationToken.None);
|
||||
Verification.Equal(5, limitSolver.SolveCallCount, "outer loop stops after at most five QP calls");
|
||||
Verification.Equal(EmPlanningStatus.Success, limited.Status, "last feasible candidate succeeds at outer iteration limit");
|
||||
}
|
||||
|
||||
private static void VerifiesCancellationAndTimeoutWithoutCandidate()
|
||||
{
|
||||
LateralPlanningInput input = CreateInput();
|
||||
var cancellationSolver = new FakeQpSolver(Result(QpSolveStatus.Solved, CreatePrimal(input, 0d), 1d));
|
||||
using var cancellation = new CancellationTokenSource();
|
||||
cancellation.Cancel();
|
||||
LateralPlanningResult cancelled = new SequentialConvexOptimizer(cancellationSolver).Optimize(input,
|
||||
cancellation.Token);
|
||||
Verification.Equal(EmPlanningStatus.Cancelled, cancelled.Status, "cancellation before a solver call is cancelled");
|
||||
Verification.Equal(0, cancellationSolver.SolveCallCount, "cancelled solve does not invoke the solver");
|
||||
|
||||
var timeoutSolver = new FakeQpSolver(Result(QpSolveStatus.TimeLimit, Array.Empty<double>(), 1d));
|
||||
LateralPlanningResult timeout = new SequentialConvexOptimizer(timeoutSolver).Optimize(input, CancellationToken.None);
|
||||
Verification.Equal(EmPlanningStatus.SolverTimedOut, timeout.Status,
|
||||
"timeout without a feasible candidate is solver timed out");
|
||||
Verification.True(ReferenceEquals(null, timeout.Path), "timeout without candidate does not publish a path");
|
||||
}
|
||||
|
||||
private static void VerifiesLateralPlannerDelegatesToTheSequentialOptimizer()
|
||||
{
|
||||
LateralPlanningInput input = CreateInput();
|
||||
double[] zero = CreatePrimal(input, 0d);
|
||||
var solver = new FakeQpSolver(new[]
|
||||
{
|
||||
Result(QpSolveStatus.Solved, zero, 1d),
|
||||
Result(QpSolveStatus.Solved, zero, 1d),
|
||||
});
|
||||
LateralPlanningResult result = new LateralPlanner(solver).Plan(input, CancellationToken.None);
|
||||
Verification.Equal(EmPlanningStatus.Success, result.Status, "lateral planner returns SQP success");
|
||||
}
|
||||
|
||||
private static LateralPlanningInput CreateInput()
|
||||
{
|
||||
var points = new List<SmoothedPathPoint>
|
||||
{
|
||||
Point(0d, 0d),
|
||||
Point(1d, 1d),
|
||||
Point(2d, 2d),
|
||||
};
|
||||
var segment = new DirectionSegmentView(0, TravelDirection.Forward, points,
|
||||
new ReferenceBoundary(0, 0d, EmBoundaryType.None, 0d),
|
||||
new ReferenceBoundary(0, 2d, EmBoundaryType.Goal, 2d), 0d);
|
||||
var corridor = new StaticCorridor(new[]
|
||||
{
|
||||
new LateralInterval(0d, -0.3d, 0.3d, 0d),
|
||||
new LateralInterval(1d, -0.3d, 0.3d, 0d),
|
||||
new LateralInterval(2d, -0.3d, 0.3d, 0d),
|
||||
});
|
||||
var vehicle = new VehicleParameters
|
||||
{
|
||||
LengthMeters = 0.1d,
|
||||
WidthMeters = 0.1d,
|
||||
SafetyMarginMeters = 0d,
|
||||
MaximumCurvaturePerMeter = 1d,
|
||||
};
|
||||
return new LateralPlanningInput(segment, corridor,
|
||||
new FrenetProjection(ReferencePathInterpolator.Interpolate(segment, 0d), 0d, 0d, 0d),
|
||||
EmTerminalType.Goal, vehicle, EmPlannerConfiguration.CreateDefault(), Array.Empty<FrenetProjection>());
|
||||
}
|
||||
|
||||
private static SmoothedPathPoint Point(double x, double pathS)
|
||||
{
|
||||
return new SmoothedPathPoint(x, 0d, 0d, 0d, pathS, TravelDirection.Forward, 0d, 0d, 0d, 1d,
|
||||
false, SmoothedPathPointSource.Anchor);
|
||||
}
|
||||
|
||||
private static QpSolveResult Result(QpSolveStatus status, IReadOnlyList<double> primal, double objective,
|
||||
double primalResidual = 0d, double dualResidual = 0d)
|
||||
{
|
||||
return new QpSolveResult(status, primal, objective, primalResidual, dualResidual, 1, TimeSpan.Zero,
|
||||
status.ToString(), string.Empty);
|
||||
}
|
||||
|
||||
private static double[] CreatePrimal(LateralPlanningInput input, double middleL)
|
||||
{
|
||||
var layout = new LateralVariableLayout(input.ReferenceStations.Count);
|
||||
double c = 6d * middleL;
|
||||
var primal = new double[layout.VariableCount];
|
||||
primal[layout.L(0)] = 0d;
|
||||
primal[layout.L(1)] = middleL;
|
||||
primal[layout.L(2)] = 0d;
|
||||
primal[layout.DL(0)] = 0d;
|
||||
primal[layout.DL(1)] = 0d;
|
||||
primal[layout.DL(2)] = 0d;
|
||||
primal[layout.DDL(0)] = c;
|
||||
primal[layout.DDL(1)] = -c;
|
||||
primal[layout.DDL(2)] = c;
|
||||
primal[layout.DDDL(0)] = -2d * c;
|
||||
primal[layout.DDDL(1)] = 2d * c;
|
||||
return primal;
|
||||
}
|
||||
|
||||
private static void FindSingleVariableBounds(QuadraticProgram problem, int variable, out double lower, out double upper)
|
||||
{
|
||||
for (int row = 0; row < problem.ConstraintCount; row++)
|
||||
{
|
||||
int matchingEntries = 0;
|
||||
double coefficient = 0d;
|
||||
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)
|
||||
{
|
||||
matchingEntries++;
|
||||
if (column == variable)
|
||||
coefficient = problem.ConstraintMatrix.Values[index];
|
||||
}
|
||||
}
|
||||
}
|
||||
if (matchingEntries == 1 && Math.Abs(coefficient - 1d) <= 1e-12d &&
|
||||
Math.Abs(problem.LowerBounds[row] - problem.UpperBounds[row]) > 1e-12d)
|
||||
{
|
||||
lower = problem.LowerBounds[row];
|
||||
upper = problem.UpperBounds[row];
|
||||
return;
|
||||
}
|
||||
}
|
||||
throw new InvalidOperationException("Expected single-variable lateral trust-region row was not found.");
|
||||
}
|
||||
}
|
||||
@@ -8,9 +8,9 @@ internal static class Program
|
||||
{
|
||||
if (args.Length != 1 || (args[0] != "foundation" && args[0] != "segmentation" && args[0] != "frenet" &&
|
||||
args[0] != "corridor" && args[0] != "optimization" && args[0] != "osqp" && args[0] != "osqp-loader" && args[0] != "osqp-probe" &&
|
||||
args[0] != "all-foundation" && args[0] != "lateral-model"))
|
||||
args[0] != "all-foundation" && args[0] != "lateral-model" && args[0] != "lateral-integration"))
|
||||
{
|
||||
Console.Error.WriteLine("Usage: EMPlannerVerificationHost foundation|segmentation|frenet|corridor|optimization|osqp|osqp-loader|all-foundation|lateral-model");
|
||||
Console.Error.WriteLine("Usage: EMPlannerVerificationHost foundation|segmentation|frenet|corridor|optimization|osqp|osqp-loader|all-foundation|lateral-model|lateral-integration");
|
||||
return 2;
|
||||
}
|
||||
|
||||
@@ -55,6 +55,11 @@ internal static class Program
|
||||
MultiWheelC.TrajectoryPlanning.EMPlanner.LateralModelChecks.Run();
|
||||
Console.WriteLine("PASS lateral-model");
|
||||
}
|
||||
if (args[0] == "lateral-integration")
|
||||
{
|
||||
MultiWheelC.TrajectoryPlanning.EMPlanner.LateralIntegrationChecks.Run();
|
||||
Console.WriteLine("PASS lateral-integration");
|
||||
}
|
||||
return 0;
|
||||
}
|
||||
catch (Exception exception)
|
||||
|
||||
Reference in New Issue
Block a user