2025-02-21 16:34:23 +00:00
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package d2cycle
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import (
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2025-02-22 10:36:51 +00:00
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"context"
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"math"
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2025-02-22 10:37:44 +00:00
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"sort"
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2025-02-21 16:34:23 +00:00
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2025-02-22 10:36:51 +00:00
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"oss.terrastruct.com/d2/d2graph"
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"oss.terrastruct.com/d2/lib/geo"
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"oss.terrastruct.com/d2/lib/label"
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"oss.terrastruct.com/util-go/go2"
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2025-02-21 16:34:23 +00:00
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)
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const (
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MIN_RADIUS = 200
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PADDING = 20
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MIN_SEGMENT_LEN = 10
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ARC_STEPS = 100
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)
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2025-02-22 10:37:44 +00:00
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// Layout lays out the graph and computes curved edge routes.
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func Layout(ctx context.Context, g *d2graph.Graph, layout d2graph.LayoutGraph) error {
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objects := g.Root.ChildrenArray
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if len(objects) == 0 {
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return nil
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}
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2025-02-22 10:36:51 +00:00
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for _, obj := range g.Objects {
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positionLabelsIcons(obj)
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}
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2025-02-22 10:36:51 +00:00
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radius := calculateRadius(objects)
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positionObjects(objects, radius)
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for _, edge := range g.Edges {
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createCircularArc(edge)
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}
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return nil
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2025-02-21 16:34:23 +00:00
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}
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2025-02-21 17:29:24 +00:00
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func calculateRadius(objects []*d2graph.Object) float64 {
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numObjects := float64(len(objects))
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maxSize := 0.0
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for _, obj := range objects {
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size := math.Max(obj.Box.Width, obj.Box.Height)
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maxSize = math.Max(maxSize, size)
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}
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minRadius := (maxSize/2.0 + PADDING) / math.Sin(math.Pi/numObjects)
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return math.Max(minRadius, MIN_RADIUS)
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}
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func positionObjects(objects []*d2graph.Object, radius float64) {
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numObjects := float64(len(objects))
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angleOffset := -math.Pi / 2
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for i, obj := range objects {
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angle := angleOffset + (2*math.Pi*float64(i)/numObjects)
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x := radius * math.Cos(angle)
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y := radius * math.Sin(angle)
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obj.TopLeft = geo.NewPoint(
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x-obj.Box.Width/2,
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y-obj.Box.Height/2,
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)
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}
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}
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func createCircularArc(edge *d2graph.Edge) {
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if edge.Src == nil || edge.Dst == nil {
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return
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}
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srcCenter := edge.Src.Center()
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dstCenter := edge.Dst.Center()
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srcAngle := math.Atan2(srcCenter.Y, srcCenter.X)
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dstAngle := math.Atan2(dstCenter.Y, dstCenter.X)
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if dstAngle < srcAngle {
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dstAngle += 2 * math.Pi
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}
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arcRadius := math.Hypot(srcCenter.X, srcCenter.Y)
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2025-02-22 11:05:45 +00:00
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2025-02-22 11:06:24 +00:00
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path := make([]*geo.Point, 0, ARC_STEPS+1)
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for i := 0; i <= ARC_STEPS; i++ {
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t := float64(i) / float64(ARC_STEPS)
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angle := srcAngle + t*(dstAngle-srcAngle)
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x := arcRadius * math.Cos(angle)
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y := arcRadius * math.Sin(angle)
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path = append(path, geo.NewPoint(x, y))
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}
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2025-02-22 11:06:24 +00:00
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path[0] = srcCenter
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path[len(path)-1] = dstCenter
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2025-02-22 11:06:24 +00:00
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// Clamp endpoints to the boundaries of the source and destination boxes.
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_, newSrc := clampPointOutsideBox(edge.Src.Box, path, 0)
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_, newDst := clampPointOutsideBoxReverse(edge.Dst.Box, path, len(path)-1)
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path[0] = newSrc
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path[len(path)-1] = newDst
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// Trim redundant path points that fall inside node boundaries.
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// path = trimPathPoints(path, edge.Src.Box)
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// path = trimPathPoints(path, edge.Dst.Box)
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// edge.Route = path
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// edge.IsCurve = true
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// }
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path = trimPathPoints(path, edge.Src.Box)
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path = trimPathPoints(path, edge.Dst.Box)
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// Adjust the last two points to align the arrow direction with the arc's tangent
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if len(path) >= 2 {
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dstPoint := path[len(path)-1]
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prevPoint := path[len(path)-2]
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// Calculate the vector between the last two points
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dx := dstPoint.X - prevPoint.X
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dy := dstPoint.Y - prevPoint.Y
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// Calculate the perpendicular vector (rotated 90 degrees counter-clockwise)
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// This gives us the center direction of the circular arc
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centerDirX := -dy
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centerDirY := dx
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// Normalize the center direction vector
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centerLength := math.Hypot(centerDirX, centerDirY)
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if centerLength > 0 {
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centerDirX /= centerLength
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centerDirY /= centerLength
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}
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// Calculate the tangent direction (perpendicular to center direction)
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tangentX := -centerDirY
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tangentY := centerDirX
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// Adjust the penultimate point to create proper arrow alignment
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step := 10.0
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newPrevX := dstPoint.X - tangentX*step
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newPrevY := dstPoint.Y - tangentY*step
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// Update the path with the adjusted point
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path[len(path)-2] = geo.NewPoint(newPrevX, newPrevY)
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}
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edge.Route = path
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edge.IsCurve = true
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}
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2025-02-22 11:06:24 +00:00
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2025-02-22 10:37:44 +00:00
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// clampPointOutsideBox walks forward along the path until it finds a point outside the box,
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// then replaces the point with a precise intersection.
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func clampPointOutsideBox(box *geo.Box, path []*geo.Point, startIdx int) (int, *geo.Point) {
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if startIdx >= len(path)-1 {
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return startIdx, path[startIdx]
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}
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if !boxContains(box, path[startIdx]) {
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return startIdx, path[startIdx]
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}
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for i := startIdx + 1; i < len(path); i++ {
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if boxContains(box, path[i]) {
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continue
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}
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seg := geo.NewSegment(path[i-1], path[i])
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inter := findPreciseIntersection(box, *seg)
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if inter != nil {
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return i, inter
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}
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return i, path[i]
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}
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return len(path)-1, path[len(path)-1]
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}
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2025-02-22 10:37:44 +00:00
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// clampPointOutsideBoxReverse works similarly but in reverse order.
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func clampPointOutsideBoxReverse(box *geo.Box, path []*geo.Point, endIdx int) (int, *geo.Point) {
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if endIdx <= 0 {
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return endIdx, path[endIdx]
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}
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if !boxContains(box, path[endIdx]) {
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return endIdx, path[endIdx]
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}
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2025-02-22 10:37:44 +00:00
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for j := endIdx - 1; j >= 0; j-- {
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if boxContains(box, path[j]) {
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continue
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}
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seg := geo.NewSegment(path[j], path[j+1])
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inter := findPreciseIntersection(box, *seg)
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if inter != nil {
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return j, inter
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}
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return j, path[j]
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}
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2025-02-22 10:37:44 +00:00
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return 0, path[0]
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2025-02-21 19:24:57 +00:00
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}
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2025-02-22 10:37:44 +00:00
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// findPreciseIntersection calculates intersection points between seg and all four sides of the box,
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// then returns the intersection closest to seg.Start.
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func findPreciseIntersection(box *geo.Box, seg geo.Segment) *geo.Point {
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intersections := []struct {
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point *geo.Point
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t float64
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}{}
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2025-02-22 10:36:51 +00:00
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left := box.TopLeft.X
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right := box.TopLeft.X + box.Width
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top := box.TopLeft.Y
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bottom := box.TopLeft.Y + box.Height
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2025-02-22 10:37:44 +00:00
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dx := seg.End.X - seg.Start.X
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dy := seg.End.Y - seg.Start.Y
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// Check vertical boundaries.
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if dx != 0 {
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// Left boundary.
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t := (left - seg.Start.X) / dx
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if t >= 0 && t <= 1 {
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y := seg.Start.Y + t*dy
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if y >= top && y <= bottom {
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intersections = append(intersections, struct {
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point *geo.Point
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t float64
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}{geo.NewPoint(left, y), t})
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}
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}
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// Right boundary.
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t = (right - seg.Start.X) / dx
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if t >= 0 && t <= 1 {
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y := seg.Start.Y + t*dy
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if y >= top && y <= bottom {
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intersections = append(intersections, struct {
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point *geo.Point
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t float64
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}{geo.NewPoint(right, y), t})
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}
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}
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}
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// Check horizontal boundaries.
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if dy != 0 {
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// Top boundary.
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t := (top - seg.Start.Y) / dy
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if t >= 0 && t <= 1 {
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x := seg.Start.X + t*dx
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if x >= left && x <= right {
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intersections = append(intersections, struct {
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point *geo.Point
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t float64
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}{geo.NewPoint(x, top), t})
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}
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}
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// Bottom boundary.
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t = (bottom - seg.Start.Y) / dy
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if t >= 0 && t <= 1 {
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x := seg.Start.X + t*dx
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if x >= left && x <= right {
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intersections = append(intersections, struct {
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point *geo.Point
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t float64
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}{geo.NewPoint(x, bottom), t})
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}
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}
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2025-02-22 10:36:51 +00:00
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}
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2025-02-22 10:37:44 +00:00
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if len(intersections) == 0 {
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return nil
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}
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// Sort intersections by t (distance from seg.Start) and return the closest.
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sort.Slice(intersections, func(i, j int) bool {
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return intersections[i].t < intersections[j].t
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})
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return intersections[0].point
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2025-02-22 10:36:51 +00:00
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}
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2025-02-22 10:42:02 +00:00
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// trimPathPoints removes intermediate points that fall inside the given box while preserving endpoints.
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func trimPathPoints(path []*geo.Point, box *geo.Box) []*geo.Point {
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if len(path) <= 2 {
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return path
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}
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2025-02-22 10:42:02 +00:00
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trimmed := []*geo.Point{path[0]}
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for i := 1; i < len(path)-1; i++ {
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if !boxContains(box, path[i]) {
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trimmed = append(trimmed, path[i])
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}
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2025-02-22 10:37:44 +00:00
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}
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2025-02-22 10:42:02 +00:00
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trimmed = append(trimmed, path[len(path)-1])
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return trimmed
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}
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// boxContains uses strict inequalities so that points exactly on the boundary are considered outside.
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2025-02-22 10:32:46 +00:00
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func boxContains(b *geo.Box, p *geo.Point) bool {
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return p.X > b.TopLeft.X &&
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p.X < b.TopLeft.X+b.Width &&
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p.Y > b.TopLeft.Y &&
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|
|
|
|
p.Y < b.TopLeft.Y+b.Height
|
2025-02-21 17:41:31 +00:00
|
|
|
}
|
|
|
|
|
|
|
|
|
|
func positionLabelsIcons(obj *d2graph.Object) {
|
2025-02-22 10:36:51 +00:00
|
|
|
if obj.Icon != nil && obj.IconPosition == nil {
|
|
|
|
|
if len(obj.ChildrenArray) > 0 {
|
|
|
|
|
obj.IconPosition = go2.Pointer(label.OutsideTopLeft.String())
|
|
|
|
|
if obj.LabelPosition == nil {
|
|
|
|
|
obj.LabelPosition = go2.Pointer(label.OutsideTopRight.String())
|
|
|
|
|
return
|
|
|
|
|
}
|
|
|
|
|
} else if obj.SQLTable != nil || obj.Class != nil || obj.Language != "" {
|
|
|
|
|
obj.IconPosition = go2.Pointer(label.OutsideTopLeft.String())
|
|
|
|
|
} else {
|
|
|
|
|
obj.IconPosition = go2.Pointer(label.InsideMiddleCenter.String())
|
|
|
|
|
}
|
|
|
|
|
}
|
|
|
|
|
|
|
|
|
|
if obj.HasLabel() && obj.LabelPosition == nil {
|
|
|
|
|
if len(obj.ChildrenArray) > 0 {
|
|
|
|
|
obj.LabelPosition = go2.Pointer(label.OutsideTopCenter.String())
|
|
|
|
|
} else if obj.HasOutsideBottomLabel() {
|
|
|
|
|
obj.LabelPosition = go2.Pointer(label.OutsideBottomCenter.String())
|
|
|
|
|
} else if obj.Icon != nil {
|
|
|
|
|
obj.LabelPosition = go2.Pointer(label.InsideTopCenter.String())
|
|
|
|
|
} else {
|
|
|
|
|
obj.LabelPosition = go2.Pointer(label.InsideMiddleCenter.String())
|
|
|
|
|
}
|
|
|
|
|
|
|
|
|
|
if float64(obj.LabelDimensions.Width) > obj.Width ||
|
|
|
|
|
float64(obj.LabelDimensions.Height) > obj.Height {
|
|
|
|
|
if len(obj.ChildrenArray) > 0 {
|
|
|
|
|
obj.LabelPosition = go2.Pointer(label.OutsideTopCenter.String())
|
|
|
|
|
} else {
|
|
|
|
|
obj.LabelPosition = go2.Pointer(label.OutsideBottomCenter.String())
|
|
|
|
|
}
|
|
|
|
|
}
|
|
|
|
|
}
|
2025-02-22 10:42:02 +00:00
|
|
|
}
|