Repo-wide sweep with the pinned CSharpier 1.3.0 tool. Whitespace and line-wrapping only; OpenNest.Engine.Tests (109) and OpenNest.IO.Tests pass after reformat, full solution builds 0 errors. Added .csharpierignore so csproj/config XML keeps its existing layout (CSharpier's XML wrapping churns attributes with zero benefit). Formatting is now enforceable: dotnet csharpier check . passes.
377 lines
13 KiB
C#
377 lines
13 KiB
C#
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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using OpenNest.Engine.Strategies;
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using OpenNest.Geometry;
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using OpenNest.Math;
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namespace OpenNest.Engine.Fill
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{
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public class FillExtents
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{
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private const int MaxIterations = 10;
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private readonly Box workArea;
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private readonly double partSpacing;
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private readonly double halfSpacing;
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public FillExtents(Box workArea, double partSpacing)
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{
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this.workArea = workArea;
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this.partSpacing = partSpacing;
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halfSpacing = partSpacing / 2;
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}
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public List<Part> Fill(
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Drawing drawing,
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double rotationAngle = 0,
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CancellationToken token = default,
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Action<List<Part>, string> reportProgress = null
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)
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{
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var pair = BuildPair(drawing, rotationAngle);
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if (pair == null)
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return new List<Part>();
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var column = BuildColumn(pair.Value);
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if (column.Count == 0)
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return new List<Part>();
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reportProgress?.Invoke(column, $"Extents: initial column {column.Count} parts");
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var adjusted = AdjustColumn(pair.Value, column, token);
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// The iterative pair adjustment can shift parts enough to cause
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// genuine overlap. Fall back to the unadjusted column when this happens.
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if (HasOverlappingParts(adjusted))
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{
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Debug.WriteLine("[FillExtents] Adjusted column has overlaps, using unadjusted");
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adjusted = column;
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}
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reportProgress?.Invoke(adjusted, $"Extents: column {adjusted.Count} parts");
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var result = RepeatColumns(adjusted, token);
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reportProgress?.Invoke(result, $"Extents: {result.Count} parts total");
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return result;
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}
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// --- Step 1: Pair Construction ---
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private PartPair? BuildPair(Drawing drawing, double rotationAngle)
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{
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var part1 = Part.CreateAtOrigin(drawing, rotationAngle);
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var part2 = Part.CreateAtOrigin(drawing, rotationAngle + System.Math.PI);
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// Check that each part fits in the work area individually.
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if (
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part1.BoundingBox.Width > workArea.Width + Tolerance.Epsilon
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|| part1.BoundingBox.Length > workArea.Length + Tolerance.Epsilon
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)
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return null;
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// Slide part2 toward part1 from the right using geometry-aware distance.
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var boundary1 = new PartBoundary(part1, halfSpacing);
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var boundary2 = new PartBoundary(part2, halfSpacing);
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// Position part2 to the right of part1 at bounding box width distance.
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var startOffset = part1.BoundingBox.Length + part2.BoundingBox.Length + partSpacing;
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part2.Offset(startOffset, 0);
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part2.UpdateBounds();
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// Slide part2 left toward part1.
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var movingLines = boundary2.GetLines(part2.Location, PushDirection.Left);
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var stationaryLines = boundary1.GetLines(part1.Location, PushDirection.Right);
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var dist = SpatialQuery.DirectionalDistance(
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movingLines,
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stationaryLines,
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PushDirection.Left
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);
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if (dist < double.MaxValue && dist > 0)
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{
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part2.Offset(-dist, 0);
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part2.UpdateBounds();
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}
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var pair = AnchorToWorkArea(part1, part2);
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if (pair == null)
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return null;
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// Verify pair fits in work area.
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if (
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pair.Value.Bbox.Width > workArea.Width + Tolerance.Epsilon
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|| pair.Value.Bbox.Length > workArea.Length + Tolerance.Epsilon
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)
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return null;
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return pair;
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}
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// --- Step 2: Build Column (tile vertically) ---
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private List<Part> BuildColumn(PartPair pair)
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{
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var column = new List<Part> { (Part)pair.Part1.Clone(), (Part)pair.Part2.Clone() };
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// Find geometry-aware copy distance for the pair vertically.
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var boundary1 = new PartBoundary(pair.Part1, halfSpacing);
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var boundary2 = new PartBoundary(pair.Part2, halfSpacing);
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// Compute vertical copy distance using bounding boxes as starting point,
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// then slide down to find true geometry distance.
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var pairHeight = pair.Bbox.Width;
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var testOffset = new Vector(0, pairHeight);
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// Create test parts for slide distance measurement.
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var testPart1 = pair.Part1.CloneAtOffset(testOffset);
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var testPart2 = pair.Part2.CloneAtOffset(testOffset);
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// Find minimum distance from test pair sliding down toward original pair.
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var copyDistance = FindVerticalCopyDistance(
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pair.Part1,
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pair.Part2,
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testPart1,
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testPart2,
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boundary1,
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boundary2,
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pairHeight
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);
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if (copyDistance <= 0)
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return column;
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var count = 1;
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while (true)
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{
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var nextBottom = pair.Bbox.Bottom + copyDistance * count;
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if (nextBottom + pairHeight > workArea.Top + Tolerance.Epsilon)
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break;
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var offset = new Vector(0, copyDistance * count);
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column.Add(pair.Part1.CloneAtOffset(offset));
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column.Add(pair.Part2.CloneAtOffset(offset));
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count++;
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}
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return column;
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}
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private double FindVerticalCopyDistance(
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Part origPart1,
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Part origPart2,
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Part testPart1,
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Part testPart2,
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PartBoundary boundary1,
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PartBoundary boundary2,
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double pairHeight
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)
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{
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// Check all 4 combinations: test parts sliding down toward original parts.
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var slidePairs = new[]
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{
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(
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moving: boundary1,
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movingLoc: testPart1.Location,
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stationary: boundary1,
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stationaryLoc: origPart1.Location
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),
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(
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moving: boundary1,
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movingLoc: testPart1.Location,
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stationary: boundary2,
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stationaryLoc: origPart2.Location
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),
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(
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moving: boundary2,
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movingLoc: testPart2.Location,
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stationary: boundary1,
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stationaryLoc: origPart1.Location
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),
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(
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moving: boundary2,
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movingLoc: testPart2.Location,
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stationary: boundary2,
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stationaryLoc: origPart2.Location
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),
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};
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var minSlide = double.MaxValue;
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foreach (var (moving, movingLoc, stationary, stationaryLoc) in slidePairs)
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{
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var d = SlideDistance(
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moving,
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movingLoc,
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stationary,
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stationaryLoc,
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PushDirection.Down
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);
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if (d < minSlide)
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minSlide = d;
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}
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if (minSlide >= double.MaxValue || minSlide < 0)
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return pairHeight + partSpacing;
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// Match FillLinear.ComputeCopyDistance: copyDist = startOffset - slide,
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// clamped so it never goes below pairHeight + partSpacing to prevent
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// bounding-box overlap from spurious slide values.
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var copyDist = pairHeight - minSlide;
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return System.Math.Max(copyDist, pairHeight + partSpacing);
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}
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private static double SlideDistance(
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PartBoundary movingBoundary,
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Vector movingLocation,
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PartBoundary stationaryBoundary,
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Vector stationaryLocation,
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PushDirection direction
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)
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{
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var opposite = SpatialQuery.OppositeDirection(direction);
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var movingEdges = movingBoundary.GetEdges(direction);
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var stationaryEdges = stationaryBoundary.GetEdges(opposite);
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return SpatialQuery.DirectionalDistance(
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movingEdges,
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movingLocation,
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stationaryEdges,
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stationaryLocation,
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direction
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);
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}
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// --- Step 3: Iterative Adjustment ---
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private List<Part> AdjustColumn(PartPair pair, List<Part> column, CancellationToken token)
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{
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var originalPairWidth = pair.Bbox.Length;
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for (var iteration = 0; iteration < MaxIterations; iteration++)
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{
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if (token.IsCancellationRequested)
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break;
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// Measure current gap.
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var topEdge = double.MinValue;
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foreach (var p in column)
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if (p.BoundingBox.Top > topEdge)
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topEdge = p.BoundingBox.Top;
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var gap = workArea.Top - topEdge;
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if (gap <= Tolerance.Epsilon)
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break;
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var pairCount = column.Count / 2;
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if (pairCount <= 0)
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break;
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var adjustment = gap / pairCount;
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if (adjustment <= Tolerance.Epsilon)
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break;
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// Try adjusting the pair and rebuilding the column.
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var adjusted = TryAdjustPair(pair, adjustment, originalPairWidth);
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if (adjusted == null)
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break;
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var newColumn = BuildColumn(adjusted.Value);
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if (newColumn.Count == 0)
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break;
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column = newColumn;
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pair = adjusted.Value;
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}
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return column;
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}
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private PartPair? TryAdjustPair(PartPair pair, double adjustment, double originalPairWidth)
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{
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// Try shifting part2 up first.
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var result = TryShiftDirection(pair, adjustment, originalPairWidth);
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if (result != null)
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return result;
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// Up made the pair wider — try down instead.
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return TryShiftDirection(pair, -adjustment, originalPairWidth);
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}
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private PartPair? TryShiftDirection(
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PartPair pair,
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double verticalShift,
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double originalPairWidth
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)
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{
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// Clone parts so we don't mutate the originals.
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var p1 = (Part)pair.Part1.Clone();
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var p2 = (Part)pair.Part2.Clone();
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// Separate: shift part2 right so bounding boxes don't touch.
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p2.Offset(partSpacing, 0);
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p2.UpdateBounds();
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// Apply the vertical shift.
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p2.Offset(0, verticalShift);
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p2.UpdateBounds();
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// Compact part2 left toward part1.
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var moving = new List<Part> { p2 };
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var obstacles = new List<Part> { p1 };
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Compactor.Push(moving, obstacles, workArea, partSpacing, PushDirection.Left);
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// Check if the pair got wider.
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var newBbox = PairBbox(p1, p2);
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if (newBbox.Length > originalPairWidth + Tolerance.Epsilon)
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return null;
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return AnchorToWorkArea(p1, p2);
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}
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// --- Step 4: Horizontal Repetition ---
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private List<Part> RepeatColumns(List<Part> column, CancellationToken token)
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{
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if (column.Count == 0)
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return column;
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var pattern = new Pattern();
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pattern.Parts.AddRange(column);
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pattern.UpdateBounds();
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var linear = new FillLinear(workArea, partSpacing);
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return linear.Fill(pattern, NestDirection.Horizontal);
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}
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// --- Helpers ---
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private PartPair? AnchorToWorkArea(Part part1, Part part2)
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{
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var bbox = PairBbox(part1, part2);
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var anchor = new Vector(workArea.X - bbox.Left, workArea.Y - bbox.Bottom);
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part1.Offset(anchor);
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part2.Offset(anchor);
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part1.UpdateBounds();
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part2.UpdateBounds();
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bbox = PairBbox(part1, part2);
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return new PartPair(part1, part2, bbox);
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}
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private static Box PairBbox(Part part1, Part part2) =>
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((IEnumerable<IBoundable>)new IBoundable[] { part1, part2 }).GetBoundingBox();
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private static bool HasOverlappingParts(List<Part> parts) =>
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FillHelpers.HasOverlappingParts(parts);
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private readonly record struct PartPair(Part Part1, Part Part2, Box Bbox);
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}
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}
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