1use std::f64::consts::{FRAC_PI_2, TAU};
8
9use crate::MathError;
10use crate::curves::{Circle3D, Ellipse3D};
11use crate::frame::Frame3;
12use crate::nurbs::curve::NurbsCurve;
13use crate::nurbs::fitting::interpolate;
14use crate::nurbs::intersection::{IntersectionCurve, IntersectionPoint};
15use crate::surfaces::{ConicalSurface, CylindricalSurface, SphericalSurface, ToroidalSurface};
16use crate::tolerance::Tolerance;
17use crate::vec::{Point3, Vec3};
18
19#[derive(Debug, Clone)]
21pub enum ExactIntersectionCurve {
22 Circle(Circle3D),
24 Ellipse(Ellipse3D),
26 Points(Vec<Point3>),
28}
29
30pub fn exact_plane_analytic(
41 surface: AnalyticSurface<'_>,
42 plane_normal: Vec3,
43 plane_d: f64,
44) -> Result<Vec<ExactIntersectionCurve>, MathError> {
45 exact_plane_analytic_reaching(surface, plane_normal, plane_d, 0.0)
46}
47
48pub fn exact_plane_analytic_reaching(
56 surface: AnalyticSurface<'_>,
57 plane_normal: Vec3,
58 plane_d: f64,
59 reach: f64,
60) -> Result<Vec<ExactIntersectionCurve>, MathError> {
61 match surface {
62 AnalyticSurface::Cylinder(cyl) => exact_plane_cylinder(cyl, plane_normal, plane_d),
63 AnalyticSurface::Sphere(sphere) => exact_plane_sphere(sphere, plane_normal, plane_d),
64 AnalyticSurface::Cone(cone) => exact_plane_cone(cone, plane_normal, plane_d, reach),
65 AnalyticSurface::Torus(torus) => {
66 if let Some(circles) = exact_plane_torus(torus, plane_normal, plane_d)? {
67 return Ok(circles);
68 }
69 if let Some(loops) = plane_torus_winding_loops(torus, plane_normal, plane_d, 128) {
70 return Ok(loops
71 .into_iter()
72 .map(ExactIntersectionCurve::Points)
73 .collect());
74 }
75 let chains = sample_plane_torus(torus, plane_normal, plane_d)?;
77 Ok(chains
78 .into_iter()
79 .map(ExactIntersectionCurve::Points)
80 .collect())
81 }
82 }
83}
84
85fn exact_plane_torus(
96 torus: &ToroidalSurface,
97 normal: Vec3,
98 d: f64,
99) -> Result<Option<Vec<ExactIntersectionCurve>>, MathError> {
100 let len = normal.length();
101 let n = normal.normalize()?;
102 let d = d / len;
103 let axis = torus.z_axis();
104 let center = torus.center();
105 let (big, small) = (torus.major_radius(), torus.minor_radius());
106 let height = d - dot_np(n, center);
107 let along = n.dot(axis);
108 if along.abs() > 1.0 - 1e-10 {
109 if height.abs() >= small - 1e-10 * small {
110 return Ok(if height.abs() > small + 1e-10 * small {
111 Some(Vec::new())
112 } else {
113 None
114 });
115 }
116 let reach = small.mul_add(small, -(height * height)).sqrt();
117 if big - reach <= 1e-10 * big {
118 return Ok(None);
119 }
120 let middle = center + n * height;
121 return Ok(Some(vec![
122 ExactIntersectionCurve::Circle(Circle3D::new(middle, n, big + reach)?),
123 ExactIntersectionCurve::Circle(Circle3D::new(middle, n, big - reach)?),
124 ]));
125 }
126 if along.abs() < 1e-10 && height.abs() < 1e-10 * (big + small) {
127 let out = axis.cross(n).normalize()?;
128 return Ok(Some(vec![
129 ExactIntersectionCurve::Circle(Circle3D::new(center + out * big, n, small)?),
130 ExactIntersectionCurve::Circle(Circle3D::new(center - out * big, n, small)?),
131 ]));
132 }
133 Ok(None)
134}
135
136fn exact_plane_cylinder(
142 cyl: &CylindricalSurface,
143 normal: Vec3,
144 d: f64,
145) -> Result<Vec<ExactIntersectionCurve>, MathError> {
146 let axis = cyl.axis();
147 let cos_theta = normal.dot(axis).abs();
148 let r = cyl.radius();
149
150 if cos_theta < 1e-10 {
151 let chains = sample_plane_cylinder(cyl, normal, d)?;
154 return Ok(chains
155 .into_iter()
156 .map(ExactIntersectionCurve::Points)
157 .collect());
158 }
159
160 let n_dot_axis = normal.dot(axis);
163 let n_dot_origin = dot_np(normal, cyl.origin());
164 let t = (d - n_dot_origin) / n_dot_axis;
165 let center_on_axis = Point3::new(
166 cyl.origin().x() + t * axis.x(),
167 cyl.origin().y() + t * axis.y(),
168 cyl.origin().z() + t * axis.z(),
169 );
170
171 if cos_theta > 1.0 - 1e-10 {
172 let circle = Circle3D::new(center_on_axis, normal, r)?;
174 Ok(vec![ExactIntersectionCurve::Circle(circle)])
175 } else {
176 let semi_minor = r;
180 let semi_major = r / cos_theta;
181
182 let axis_proj = Vec3::new(
186 axis.x() - n_dot_axis * normal.x(),
187 axis.y() - n_dot_axis * normal.y(),
188 axis.z() - n_dot_axis * normal.z(),
189 );
190 let u_axis = axis_proj.normalize()?;
191 let v_axis = normal.cross(u_axis);
192
193 let ellipse = Ellipse3D::with_axes(
194 center_on_axis,
195 normal,
196 semi_major,
197 semi_minor,
198 u_axis,
199 v_axis,
200 )?;
201 Ok(vec![ExactIntersectionCurve::Ellipse(ellipse)])
202 }
203}
204
205fn exact_plane_sphere(
209 sphere: &SphericalSurface,
210 normal: Vec3,
211 d: f64,
212) -> Result<Vec<ExactIntersectionCurve>, MathError> {
213 let h = dot_np(normal, sphere.center()) - d;
214 let r = sphere.radius();
215
216 if h.abs() > r - 1e-10 {
217 return Ok(vec![]);
218 }
219
220 let circle_r = (r.mul_add(r, -(h * h))).sqrt();
221 let circle_center = Point3::new(
222 h.mul_add(-normal.x(), sphere.center().x()),
223 h.mul_add(-normal.y(), sphere.center().y()),
224 h.mul_add(-normal.z(), sphere.center().z()),
225 );
226
227 let circle = Circle3D::new(circle_center, normal, circle_r)?;
228 Ok(vec![ExactIntersectionCurve::Circle(circle)])
229}
230
231fn exact_plane_cone(
240 cone: &ConicalSurface,
241 normal: Vec3,
242 d: f64,
243 reach: f64,
244) -> Result<Vec<ExactIntersectionCurve>, MathError> {
245 let axis = cone.axis();
246 let cos_theta = normal.dot(axis).abs();
247 let half_angle = cone.half_angle();
248
249 if cos_theta > 1.0 - 1e-10 {
250 let n_dot_axis = normal.dot(axis);
253 let n_dot_apex = dot_np(normal, cone.apex());
254 let t = (d - n_dot_apex) / n_dot_axis;
255
256 if t.abs() < 1e-10 {
261 return Ok(vec![]);
262 }
263
264 let center = Point3::new(
265 cone.apex().x() + t * axis.x(),
266 cone.apex().y() + t * axis.y(),
267 cone.apex().z() + t * axis.z(),
268 );
269 let circle_r = t.abs() * half_angle.cos() / half_angle.sin();
273 if circle_r < 1e-15 {
274 return Ok(vec![]);
275 }
276
277 let circle = Circle3D::new(center, normal, circle_r)?;
278 return Ok(vec![ExactIntersectionCurve::Circle(circle)]);
279 }
280
281 let c = normal.dot(axis);
293 let p2 = (1.0 - c * c).max(0.0);
294 let p = p2.sqrt();
295 let k = half_angle.sin().powi(2);
296 let a_coeff = p2 - k;
297
298 let m = Vec3::new(
300 axis.x() - c * normal.x(),
301 axis.y() - c * normal.y(),
302 axis.z() - c * normal.z(),
303 );
304 let m_len = m.length();
305 if m_len < 1e-12 {
306 let chains = sample_plane_cone(cone, normal, d, reach)?;
309 return Ok(chains
310 .into_iter()
311 .map(ExactIntersectionCurve::Points)
312 .collect());
313 }
314 let e1 = m * (1.0 / m_len);
315 let e2 = normal.cross(e1);
316 let apex = cone.apex();
317 let e = d - dot_np(normal, apex);
318
319 if a_coeff < -1e-9 {
322 let abs_a = -a_coeff; if e * c < 0.0 {
329 return Ok(vec![]);
330 }
331 let s_c = e * c * p / abs_a;
334 let rhs = e * e * k * (1.0 - k) / abs_a;
335 if rhs <= 0.0 {
336 return Ok(vec![]);
337 }
338 let semi_s = (rhs / abs_a).sqrt(); let semi_t = (rhs / k).sqrt(); if semi_s < 1e-12 || semi_t < 1e-12 {
341 return Ok(vec![]);
342 }
343 let center = apex + normal * e + e1 * s_c;
344 let (semi_major, semi_minor, u_axis, v_axis) = if semi_s >= semi_t {
345 (semi_s, semi_t, e1, e2)
346 } else {
347 (semi_t, semi_s, e2, e1)
348 };
349 let ellipse = Ellipse3D::with_axes(center, normal, semi_major, semi_minor, u_axis, v_axis)?;
350 return Ok(vec![ExactIntersectionCurve::Ellipse(ellipse)]);
351 }
352
353 let chains = sample_plane_cone(cone, normal, d, reach)?;
356 Ok(chains
357 .into_iter()
358 .map(ExactIntersectionCurve::Points)
359 .collect())
360}
361
362#[allow(clippy::many_single_char_names)]
377pub fn plane_cone_conic_arc(
378 cone: &ConicalSurface,
379 normal: Vec3,
380 d: f64,
381 from: Point3,
382 to: Point3,
383) -> Result<Option<NurbsCurve>, MathError> {
384 let len = normal.length();
385 if len < 1e-15 {
386 return Err(MathError::ZeroVector);
387 }
388 let (normal, d) = (normal * (1.0 / len), d / len);
389 let axis = cone.axis();
390 let c = normal.dot(axis);
391 let p2 = (1.0 - c * c).max(0.0);
392 let p = p2.sqrt();
393 let k = cone.half_angle().sin().powi(2);
394 let a_coeff = p2 - k;
395 let m = Vec3::new(
396 axis.x() - c * normal.x(),
397 axis.y() - c * normal.y(),
398 axis.z() - c * normal.z(),
399 );
400 let m_len = m.length();
401 if m_len < 1e-12 || a_coeff < -1e-9 {
402 return Ok(None);
403 }
404 let e1 = m * (1.0 / m_len);
405 let e2 = normal.cross(e1);
406 let apex = cone.apex();
407 let e = d - dot_np(normal, apex);
408 let origin = apex + normal * e;
409 let plane_st = |q: Point3| {
410 let w = q - origin;
411 (w.dot(e1), w.dot(e2))
412 };
413 let ((s0, t0), (s1, t1)) = (plane_st(from), plane_st(to));
414 let scale = s0.abs().max(t0.abs()).max(s1.abs()).max(t1.abs()).max(1.0);
415 if e.abs() < 1e-9 * scale || (from - to).length() <= 1e-9 * scale {
416 return Ok(None);
417 }
418 let point = |s: f64, t: f64| origin + e1 * s + e2 * t;
419 let on_curve = |q: Point3, r: Point3| (q - r).length() <= 1e-6 * scale;
420 let (control, weights) = if a_coeff.abs() <= 1e-9 {
421 let lin = 2.0 * e * c * p;
423 if lin.abs() < 1e-12 * scale {
424 return Ok(None);
425 }
426 let (alpha, beta) = (k / lin, -e * e * (c * c - k) / lin);
427 if !on_curve(point(alpha * t0 * t0 + beta, t0), from)
428 || !on_curve(point(alpha * t1 * t1 + beta, t1), to)
429 {
430 return Ok(None);
431 }
432 let mid = point(alpha * t0 * t1 + beta, 0.5 * (t0 + t1));
433 (vec![from, mid, to], vec![1.0; 3])
434 } else {
435 let s_c = -e * c * p / a_coeff;
437 let r = e * e * k * (1.0 - k) / a_coeff;
438 if r <= 0.0 {
439 return Ok(None);
440 }
441 let (a, b) = ((r / a_coeff).sqrt(), (r / k).sqrt());
442 let (x0, x1) = (s0 - s_c, s1 - s_c);
443 if x0 * x1 <= 0.0 {
444 return Ok(None);
445 }
446 let side = x0.signum();
447 let hyperbola = |phi: f64| point(s_c + side * a * phi.cosh(), b * phi.sinh());
448 let (phi0, phi1) = ((t0 / b).asinh(), (t1 / b).asinh());
449 if !on_curve(hyperbola(phi0), from) || !on_curve(hyperbola(phi1), to) {
450 return Ok(None);
451 }
452 #[allow(clippy::cast_possible_truncation, clippy::cast_sign_loss)]
453 let pieces = ((phi1 - phi0).abs().ceil() as usize).max(1);
454 let mut control = vec![from];
455 let mut weights = vec![1.0];
456 for i in 0..pieces {
457 #[allow(clippy::cast_precision_loss)]
458 let (fa, fb) = (i as f64 / pieces as f64, (i + 1) as f64 / pieces as f64);
459 let (pa, pb) = (phi0 + (phi1 - phi0) * fa, phi0 + (phi1 - phi0) * fb);
460 let (mid, half) = (0.5 * (pa + pb), 0.5 * (pb - pa));
461 let w = half.cosh();
462 control.push(point(s_c + side * a * mid.cosh() / w, b * mid.sinh() / w));
463 weights.push(w);
464 control.push(if i + 1 == pieces { to } else { hyperbola(pb) });
465 weights.push(1.0);
466 }
467 (control, weights)
468 };
469 let pieces = (control.len() - 1) / 2;
470 let mut knots = vec![0.0; 3];
471 for i in 1..pieces {
472 #[allow(clippy::cast_precision_loss)]
473 knots.extend([i as f64; 2]);
474 }
475 #[allow(clippy::cast_precision_loss)]
476 knots.extend([pieces as f64; 3]);
477 let curve = NurbsCurve::new(2, knots, control, weights)?;
478 let (sin_a, cos_a) = cone.half_angle().sin_cos();
483 let off_cone = |q: Point3| {
484 let w = q - apex;
485 let h = w.dot(axis);
486 (w - axis * h)
487 .length()
488 .mul_add(sin_a, -(h.abs() * cos_a))
489 .abs()
490 };
491 for i in 0..pieces {
492 for f in [0.25, 0.5, 0.75] {
493 #[allow(clippy::cast_precision_loss)]
494 if off_cone(curve.evaluate(i as f64 + f)) > 1e-9 * scale {
495 return Ok(None);
496 }
497 }
498 }
499 Ok(Some(curve))
500}
501
502#[derive(Clone, Copy)]
504pub enum AnalyticSurface<'a> {
505 Cylinder(&'a CylindricalSurface),
507 Cone(&'a ConicalSurface),
509 Sphere(&'a SphericalSurface),
511 Torus(&'a ToroidalSurface),
513}
514
515fn dot_np(n: Vec3, p: Point3) -> f64 {
517 n.dot(Vec3::new(p.x(), p.y(), p.z()))
518}
519
520pub fn intersect_plane_analytic(
528 surface: AnalyticSurface<'_>,
529 normal: Vec3,
530 d: f64,
531) -> Result<Vec<IntersectionCurve>, MathError> {
532 match surface {
533 AnalyticSurface::Cylinder(cyl) => intersect_plane_cylinder(cyl, normal, d),
534 AnalyticSurface::Cone(cone) => intersect_plane_cone(cone, normal, d),
535 AnalyticSurface::Sphere(sphere) => intersect_plane_sphere(sphere, normal, d),
536 AnalyticSurface::Torus(torus) => intersect_plane_torus(torus, normal, d),
537 }
538}
539
540pub fn sample_plane_analytic(
551 surface: AnalyticSurface<'_>,
552 normal: Vec3,
553 d: f64,
554) -> Result<Vec<Vec<Point3>>, MathError> {
555 match surface {
556 AnalyticSurface::Cylinder(cyl) => sample_plane_cylinder(cyl, normal, d),
557 AnalyticSurface::Cone(cone) => sample_plane_cone(cone, normal, d, 0.0),
558 AnalyticSurface::Sphere(sphere) => sample_plane_sphere(sphere, normal, d),
559 AnalyticSurface::Torus(torus) => sample_plane_torus(torus, normal, d),
560 }
561}
562
563#[allow(clippy::cast_precision_loss, clippy::unnecessary_wraps)]
565fn sample_plane_cylinder(
566 cyl: &CylindricalSurface,
567 normal: Vec3,
568 d: f64,
569) -> Result<Vec<Vec<Point3>>, MathError> {
570 let n_samples = 64_usize;
571 let mut points = Vec::with_capacity(n_samples + 1);
572
573 for i in 0..=n_samples {
574 let u = TAU * (i as f64) / (n_samples as f64);
575 let base = cyl.evaluate(u, 0.0);
576 let n_dot_axis = normal.dot(cyl.axis());
577 let n_dot_base = dot_np(normal, base);
578
579 if n_dot_axis.abs() < 1e-12 {
580 if (n_dot_base - d).abs() < 1e-6 {
581 points.push(base);
582 }
583 } else {
584 let v = (d - n_dot_base) / n_dot_axis;
585 if v.abs() <= 100.0 {
586 points.push(cyl.evaluate(u, v));
587 }
588 }
589 }
590
591 if points.len() < 2 {
592 Ok(vec![])
593 } else {
594 Ok(vec![points])
595 }
596}
597
598#[allow(clippy::cast_precision_loss)]
600fn sample_plane_sphere(
601 sphere: &SphericalSurface,
602 normal: Vec3,
603 d: f64,
604) -> Result<Vec<Vec<Point3>>, MathError> {
605 let h = dot_np(normal, sphere.center()) - d;
606 let r = sphere.radius();
607
608 if h.abs() > r - 1e-10 {
609 return Ok(vec![]);
610 }
611
612 let circle_r = (r.mul_add(r, -(h * h))).sqrt();
613 let circle_center = Point3::new(
614 h.mul_add(-normal.x(), sphere.center().x()),
615 h.mul_add(-normal.y(), sphere.center().y()),
616 h.mul_add(-normal.z(), sphere.center().z()),
617 );
618
619 let basis = Frame3::from_normal(circle_center, normal)?;
620 let u_dir = basis.x;
621 let v_dir = basis.y;
622
623 let n_samples = 64_usize;
624 let mut points = Vec::with_capacity(n_samples + 1);
625
626 for i in 0..=n_samples {
627 let theta = TAU * (i as f64) / (n_samples as f64);
628 let (sin_t, cos_t) = theta.sin_cos();
629 points.push(circle_center + u_dir * (circle_r * cos_t) + v_dir * (circle_r * sin_t));
630 }
631
632 Ok(vec![points])
633}
634
635#[allow(clippy::cast_precision_loss, clippy::unnecessary_wraps)]
647fn sample_plane_cone(
648 cone: &ConicalSurface,
649 normal: Vec3,
650 d: f64,
651 reach: f64,
652) -> Result<Vec<Vec<Point3>>, MathError> {
653 let apex = cone.apex();
654 let n_dot_apex = dot_np(normal, apex);
655 let e = d - n_dot_apex;
656
657 let n_samples = 512_usize;
661 let mut vs: Vec<Option<f64>> = Vec::with_capacity(n_samples);
662 let mut v_min = f64::INFINITY;
663 for i in 0..n_samples {
664 let u = TAU * (i as f64) / (n_samples as f64);
665 let g = cone.evaluate(u, 1.0) - apex;
666 let n_dot_g = normal.dot(Vec3::new(g.x(), g.y(), g.z()));
667 if n_dot_g.abs() < 1e-12 {
668 vs.push(None);
669 continue;
670 }
671 let v = e / n_dot_g;
672 if v >= -1e-12 {
673 let v = v.max(0.0);
674 v_min = v_min.min(v);
675 vs.push(Some(v));
676 } else {
677 vs.push(None);
678 }
679 }
680
681 if !v_min.is_finite() {
682 return Ok(Vec::new());
683 }
684
685 let v_max = (8.0 * v_min).max(v_min + 4.0).max(reach);
694
695 let kept: Vec<Option<f64>> = vs.iter().map(|v| v.filter(|&v| v <= v_max)).collect();
698
699 let point_at = |u: f64, v: f64| -> Point3 {
700 let g = cone.evaluate(u, 1.0) - apex;
701 apex + g * v
702 };
703 #[allow(clippy::cast_precision_loss)]
704 let u_of = |i: usize| TAU * (i as f64) / (n_samples as f64);
705 let n_dot_g_at = |u: f64| -> f64 {
706 let g = cone.evaluate(u, 1.0) - apex;
707 normal.dot(Vec3::new(g.x(), g.y(), g.z()))
708 };
709
710 if kept.iter().all(Option::is_some) {
711 let mut pts: Vec<Point3> = kept
713 .iter()
714 .enumerate()
715 .filter_map(|(i, v)| v.map(|v| point_at(u_of(i), v)))
716 .collect();
717 if let Some(&first) = pts.first() {
718 pts.push(first);
719 }
720 return Ok(vec![pts]);
721 }
722
723 let tail = |i_end: usize, forward: bool, kept: &[Option<f64>]| -> Vec<Point3> {
732 let Some(v_end) = kept[i_end] else {
733 return Vec::new();
734 };
735 let u_end = u_of(i_end);
736 #[allow(clippy::cast_precision_loss)]
737 let pitch = TAU / (n_samples as f64);
738 let u_next = if forward {
739 u_end + pitch
740 } else {
741 u_end - pitch
742 };
743 let target = e / v_max;
744 let h_end = n_dot_g_at(u_end) - target;
745 let h_next = n_dot_g_at(u_next) - target;
746 if v_end >= v_max || h_end == 0.0 || h_end.signum() == h_next.signum() {
747 return Vec::new();
748 }
749 let (mut lo, mut hi) = (u_end, u_next);
750 for _ in 0..60 {
751 let mid = f64::midpoint(lo, hi);
752 if (n_dot_g_at(mid) - target).signum() == h_end.signum() {
753 lo = mid;
754 } else {
755 hi = mid;
756 }
757 }
758 let u_star = f64::midpoint(lo, hi);
759 let tail_n = 8_usize;
760 (1..=tail_n)
761 .filter_map(|k| {
762 #[allow(clippy::cast_precision_loss)]
763 let u = u_end + (u_star - u_end) * (k as f64) / (tail_n as f64);
764 let ng = n_dot_g_at(u);
765 if ng.abs() < 1e-12 {
766 return None;
767 }
768 let v = e / ng;
769 (v >= -1e-12 && v <= v_max * (1.0 + 1e-9)).then(|| point_at(u, v.max(0.0)))
770 })
771 .collect()
772 };
773
774 let gap = kept.iter().position(Option::is_none).unwrap_or(0);
777 let mut chains: Vec<Vec<Point3>> = Vec::new();
778 let mut run: Vec<usize> = Vec::new();
779 let flush = |run: &mut Vec<usize>, chains: &mut Vec<Vec<Point3>>| {
780 if run.len() >= 2 {
781 let first = run[0];
782 let last = run[run.len() - 1];
783 let mut pts: Vec<Point3> = tail(first, false, &kept);
784 pts.reverse();
785 pts.extend(
786 run.iter()
787 .filter_map(|&i| kept[i].map(|v| point_at(u_of(i), v))),
788 );
789 pts.extend(tail(last, true, &kept));
790 chains.push(pts);
791 }
792 run.clear();
793 };
794 for k in 0..n_samples {
795 let idx = (gap + k) % n_samples;
796 if kept[idx].is_some() {
797 run.push(idx);
798 } else {
799 flush(&mut run, &mut chains);
800 }
801 }
802 flush(&mut run, &mut chains);
803 Ok(chains.into_iter().filter(|c| c.len() >= 2).collect())
804}
805
806#[allow(clippy::unnecessary_wraps)] fn sample_plane_torus(
812 torus: &ToroidalSurface,
813 normal: Vec3,
814 d: f64,
815) -> Result<Vec<Vec<Point3>>, MathError> {
816 let crossing_pts = plane_torus_crossings(torus, normal, d, 128);
817 Ok(chain_torus_crossings(&crossing_pts)
818 .into_iter()
819 .map(|run| run.into_iter().map(|p| p.point).collect())
820 .collect())
821}
822
823#[allow(clippy::cast_precision_loss)]
833pub fn intersect_plane_cylinder(
834 cyl: &CylindricalSurface,
835 normal: Vec3,
836 d: f64,
837) -> Result<Vec<IntersectionCurve>, MathError> {
838 let n_samples = 64_usize;
839 let mut points_3d = Vec::new();
840 let mut ipoints = Vec::new();
841
842 for i in 0..=n_samples {
843 let u = TAU * (i as f64) / (n_samples as f64);
844 let base = cyl.evaluate(u, 0.0);
847 let n_dot_axis = normal.dot(cyl.axis());
848 let n_dot_base = dot_np(normal, base);
849
850 if n_dot_axis.abs() < 1e-12 {
851 if (n_dot_base - d).abs() < 1e-6 {
853 let pt = base;
854 points_3d.push(pt);
855 ipoints.push(IntersectionPoint {
856 point: pt,
857 param1: (u, 0.0),
858 param2: (0.0, 0.0),
859 });
860 }
861 } else {
862 let v = (d - n_dot_base) / n_dot_axis;
863 if v.abs() <= 100.0 {
865 let pt = cyl.evaluate(u, v);
866 points_3d.push(pt);
867 ipoints.push(IntersectionPoint {
868 point: pt,
869 param1: (u, v),
870 param2: (0.0, 0.0),
871 });
872 }
873 }
874 }
875
876 build_curves_from_points(&points_3d, ipoints)
877}
878
879#[allow(clippy::cast_precision_loss)]
888pub fn intersect_plane_sphere(
889 sphere: &SphericalSurface,
890 normal: Vec3,
891 d: f64,
892) -> Result<Vec<IntersectionCurve>, MathError> {
893 let h = dot_np(normal, sphere.center()) - d;
894 let r = sphere.radius();
895
896 if h.abs() > r - 1e-10 {
898 return Ok(vec![]);
899 }
900
901 let circle_r = (r.mul_add(r, -(h * h))).sqrt();
902 let circle_center = Point3::new(
903 h.mul_add(-normal.x(), sphere.center().x()),
904 h.mul_add(-normal.y(), sphere.center().y()),
905 h.mul_add(-normal.z(), sphere.center().z()),
906 );
907
908 let basis = Frame3::from_normal(circle_center, normal)?;
910 let u_dir = basis.x;
911 let v_dir = basis.y;
912
913 let n_samples = 64_usize;
914 let mut points_3d = Vec::new();
915 let mut ipoints = Vec::new();
916
917 for i in 0..=n_samples {
918 let theta = TAU * (i as f64) / (n_samples as f64);
919 let (sin_t, cos_t) = theta.sin_cos();
920 let pt = circle_center + u_dir * (circle_r * cos_t) + v_dir * (circle_r * sin_t);
921 points_3d.push(pt);
922 ipoints.push(IntersectionPoint {
923 point: pt,
924 param1: (theta, 0.0),
925 param2: (0.0, 0.0),
926 });
927 }
928
929 build_curves_from_points(&points_3d, ipoints)
930}
931
932#[allow(clippy::cast_precision_loss)]
941pub fn intersect_plane_cone(
942 cone: &ConicalSurface,
943 normal: Vec3,
944 d: f64,
945) -> Result<Vec<IntersectionCurve>, MathError> {
946 let n_samples = 64_usize;
947 let mut points_3d = Vec::new();
948 let mut ipoints = Vec::new();
949
950 for i in 0..n_samples {
951 let u = TAU * (i as f64) / (n_samples as f64);
952 let apex = cone.apex();
955 let n_dot_apex = dot_np(normal, apex);
956 let p1 = cone.evaluate(u, 1.0);
958 let dir = p1 - apex;
959 let n_dot_dir = normal.dot(dir);
960
961 if n_dot_dir.abs() < 1e-12 {
962 continue;
963 }
964
965 let v = (d - n_dot_apex) / n_dot_dir;
966 if v.abs() > 1e-10 && v.abs() < 100.0 {
968 let pt = cone.evaluate(u, v);
969 points_3d.push(pt);
970 ipoints.push(IntersectionPoint {
971 point: pt,
972 param1: (u, v),
973 param2: (0.0, 0.0),
974 });
975 }
976 }
977
978 build_curves_from_points(&points_3d, ipoints)
979}
980
981#[allow(clippy::unnecessary_wraps)]
993pub fn intersect_plane_torus(
994 torus: &ToroidalSurface,
995 normal: Vec3,
996 d: f64,
997) -> Result<Vec<IntersectionCurve>, MathError> {
998 let crossing_pts = plane_torus_crossings(torus, normal, d, 128);
1002
1003 let mut curves = Vec::new();
1004 for ipts in chain_torus_crossings(&crossing_pts) {
1005 let pts: Vec<Point3> = ipts.iter().map(|p| p.point).collect();
1006 if let Ok(curve) = interpolate(&pts, 3.min(pts.len() - 1)) {
1007 curves.push(IntersectionCurve {
1008 curve,
1009 points: ipts,
1010 });
1011 }
1012 }
1013
1014 Ok(curves)
1015}
1016
1017fn chain_torus_crossings(crossing_pts: &[(f64, f64, Point3)]) -> Vec<Vec<IntersectionPoint>> {
1029 let mut used = vec![false; crossing_pts.len()];
1030 let mut runs = Vec::new();
1031
1032 for start in 0..crossing_pts.len() {
1033 if used[start] {
1034 continue;
1035 }
1036 used[start] = true;
1037 let mut chain = vec![start];
1038
1039 loop {
1040 let last = chain[chain.len() - 1];
1041 let last_pt = crossing_pts[last].2;
1042 let mut best_idx = None;
1043 let mut best_dist = 1.0_f64;
1044
1045 for (j, &is_used) in used.iter().enumerate() {
1046 if is_used {
1047 continue;
1048 }
1049 let dist = (crossing_pts[j].2 - last_pt).length();
1050 if dist < best_dist {
1051 best_dist = dist;
1052 best_idx = Some(j);
1053 }
1054 }
1055
1056 if let Some(j) = best_idx {
1057 used[j] = true;
1058 chain.push(j);
1059 } else {
1060 break;
1061 }
1062 }
1063
1064 if chain.len() < 4 {
1065 continue;
1066 }
1067 let mut ipts: Vec<IntersectionPoint> = chain
1068 .iter()
1069 .map(|&i| IntersectionPoint {
1070 point: crossing_pts[i].2,
1071 param1: (crossing_pts[i].0, crossing_pts[i].1),
1072 param2: (0.0, 0.0),
1073 })
1074 .collect();
1075
1076 let closing_gap = (ipts[ipts.len() - 1].point - ipts[0].point).length();
1077 let median_spacing = {
1078 let mut spac: Vec<f64> = ipts
1079 .windows(2)
1080 .map(|w| (w[1].point - w[0].point).length())
1081 .collect();
1082 spac.sort_by(|a, b| a.partial_cmp(b).unwrap_or(std::cmp::Ordering::Equal));
1083 spac.get(spac.len() / 2).copied().unwrap_or(0.0)
1084 };
1085 if closing_gap > 1e-9
1092 && median_spacing > 1e-12
1093 && closing_gap <= 2.0 * median_spacing
1094 && !chain_self_touches(&ipts, median_spacing)
1095 {
1096 ipts.push(ipts[0]);
1097 }
1098 runs.push(ipts);
1099 }
1100
1101 runs
1102}
1103
1104fn chain_self_touches(ipts: &[IntersectionPoint], median_spacing: f64) -> bool {
1114 let m = ipts.len();
1115 let k = (m / 4).clamp(1, 6);
1116 if m < 3 * k || median_spacing <= 0.0 {
1117 return false;
1118 }
1119 let thresh = median_spacing * 1.5;
1120 for i in k..(m - k) {
1121 for j in (i + k)..(m - k) {
1122 if (ipts[i].point - ipts[j].point).length() < thresh {
1123 return true;
1124 }
1125 }
1126 }
1127 false
1128}
1129
1130#[allow(clippy::cast_precision_loss)]
1147fn plane_torus_crossings(
1148 torus: &ToroidalSurface,
1149 normal: Vec3,
1150 d: f64,
1151 n_v: usize,
1152) -> Vec<(f64, f64, Point3)> {
1153 let big_r = torus.major_radius();
1154 let small_r = torus.minor_radius();
1155 let a = normal.dot(torus.x_axis());
1156 let b = normal.dot(torus.y_axis());
1157 let c = normal.dot(torus.z_axis());
1158 let s = a.hypot(b);
1159 let phi = b.atan2(a);
1160 let d_local = d - dot_np(normal, torus.center());
1161
1162 let mut pts: Vec<(f64, f64, Point3)> = Vec::new();
1163
1164 if s < 1e-12 {
1166 if c.abs() < 1e-12 {
1167 return pts;
1168 }
1169 let sin_v = d_local / (small_r * c);
1170 if sin_v.abs() > 1.0 + 1e-9 {
1171 return pts;
1172 }
1173 let v0 = sin_v.clamp(-1.0, 1.0).asin();
1174 let v1 = std::f64::consts::PI - v0;
1175 let mut vs = vec![v0];
1176 if (v1 - v0).abs() > 1e-9 {
1178 vs.push(v1);
1179 }
1180 for v in vs {
1181 for i in 0..n_v {
1182 let u = TAU * (i as f64) / (n_v as f64);
1183 pts.push((u, v, torus.evaluate(u, v)));
1184 }
1185 }
1186 return pts;
1187 }
1188
1189 let v_off = TAU / (n_v as f64) * 0.5;
1195 for i in 0..n_v {
1196 let v = (i as f64).mul_add(TAU / (n_v as f64), v_off);
1197 let tube_r = small_r.mul_add(v.cos(), big_r); let rhs = (d_local - small_r * c * v.sin()) / (s * tube_r);
1199 if rhs.abs() > 1.0 {
1200 continue;
1201 }
1202 let delta = rhs.clamp(-1.0, 1.0).acos();
1203 for u in [phi + delta, phi - delta] {
1204 pts.push((u, v, torus.evaluate(u, v)));
1205 }
1206 }
1207 pts
1208}
1209
1210#[allow(clippy::cast_precision_loss)]
1219fn plane_torus_winding_loops(
1220 torus: &ToroidalSurface,
1221 normal: Vec3,
1222 d: f64,
1223 n_v: usize,
1224) -> Option<Vec<Vec<Point3>>> {
1225 let big_r = torus.major_radius();
1226 let small_r = torus.minor_radius();
1227 let a = normal.dot(torus.x_axis());
1228 let b = normal.dot(torus.y_axis());
1229 let c = normal.dot(torus.z_axis());
1230 let s = a.hypot(b);
1231 if s < 1e-12 * normal.length() || small_r >= big_r {
1232 return None;
1233 }
1234 let phi = b.atan2(a);
1235 let d_local = d - dot_np(normal, torus.center());
1236 let rhs = |v: f64| (d_local - small_r * c * v.sin()) / (s * small_r.mul_add(v.cos(), big_r));
1237 let dense = 8 * n_v;
1238 if (0..dense).any(|i| rhs(TAU * i as f64 / dense as f64).abs() > 1.0 - 1e-3) {
1239 return None;
1240 }
1241 let mut loops = [Vec::with_capacity(n_v + 1), Vec::with_capacity(n_v + 1)];
1242 for i in 0..n_v {
1243 let v = TAU * i as f64 / n_v as f64;
1244 let delta = rhs(v).acos();
1245 loops[0].push(torus.evaluate(phi + delta, v));
1246 loops[1].push(torus.evaluate(phi - delta, v));
1247 }
1248 Some(
1249 loops
1250 .into_iter()
1251 .map(|mut run| {
1252 run.push(run[0]);
1253 run
1254 })
1255 .collect(),
1256 )
1257}
1258
1259#[must_use]
1272pub fn intersect_line_torus(torus: &ToroidalSurface, origin: Point3, dir: Vec3) -> Vec<f64> {
1273 let c = torus.center();
1274 let (xa, ya, za) = (torus.x_axis(), torus.y_axis(), torus.z_axis());
1275 let big_r = torus.major_radius();
1276 let small_r = torus.minor_radius();
1277
1278 let o = Vec3::new(origin.x() - c.x(), origin.y() - c.y(), origin.z() - c.z());
1280 let (a0, a1) = (xa.dot(o), xa.dot(dir));
1281 let (b0, b1) = (ya.dot(o), ya.dot(dir));
1282 let (c0, c1) = (za.dot(o), za.dot(dir));
1283
1284 let g2 = a1.mul_add(a1, b1.mul_add(b1, c1 * c1));
1286 let g1 = 2.0 * a1.mul_add(a0, b1.mul_add(b0, c1 * c0));
1287 let g0 = a0.mul_add(
1288 a0,
1289 b0.mul_add(b0, c0.mul_add(c0, big_r.mul_add(big_r, -small_r * small_r))),
1290 );
1291
1292 let four_rr = 4.0 * big_r * big_r;
1294 let h2 = four_rr * a1.mul_add(a1, b1 * b1);
1295 let h1 = four_rr * (2.0 * a1.mul_add(a0, b1 * b0));
1296 let h0 = four_rr * a0.mul_add(a0, b0 * b0);
1297
1298 let e4 = g2 * g2;
1300 let e3 = 2.0 * g2 * g1;
1301 let e2 = g1.mul_add(g1, 2.0 * g2 * g0) - h2;
1302 let e1 = 2.0f64.mul_add(g1 * g0, -h1);
1303 let e0 = g0.mul_add(g0, -h0);
1304
1305 let mut roots = real_roots_quartic(e4, e3, e2, e1, e0);
1306 let impl_f = |t: f64| -> f64 {
1308 let p = origin + dir * t;
1309 let q = Vec3::new(p.x() - c.x(), p.y() - c.y(), p.z() - c.z());
1310 let (a, b, cc) = (xa.dot(q), ya.dot(q), za.dot(q));
1311 (a.hypot(b) - big_r).hypot(cc) - small_r
1312 };
1313 for t in &mut roots {
1314 let eps = 1e-7;
1315 let f = impl_f(*t);
1316 let df = (impl_f(*t + eps) - impl_f(*t - eps)) / (2.0 * eps);
1317 if df.abs() > 1e-12 {
1318 *t -= f / df;
1319 }
1320 }
1321 roots.sort_by(|a, b| a.partial_cmp(b).unwrap_or(std::cmp::Ordering::Equal));
1322 roots
1323}
1324
1325fn real_roots_quartic(c4: f64, c3: f64, c2: f64, c1: f64, c0: f64) -> Vec<f64> {
1328 if c4.abs() < 1e-14 {
1330 return real_roots_cubic(c3, c2, c1, c0);
1331 }
1332 let (a, b, c, d) = (c3 / c4, c2 / c4, c1 / c4, c0 / c4);
1334 let eval = |z: Complex| -> Complex {
1335 let mut acc = Complex::new(1.0, 0.0);
1337 acc = acc * z + Complex::new(a, 0.0);
1338 acc = acc * z + Complex::new(b, 0.0);
1339 acc = acc * z + Complex::new(c, 0.0);
1340 acc * z + Complex::new(d, 0.0)
1341 };
1342 let seed = Complex::new(0.4, 0.9);
1344 let mut r = [
1345 Complex::new(1.0, 0.0),
1346 seed,
1347 seed * seed,
1348 seed * seed * seed,
1349 ];
1350 for _ in 0..100 {
1351 let mut max_step = 0.0_f64;
1352 for i in 0..4 {
1353 let mut denom = Complex::new(1.0, 0.0);
1354 for j in 0..4 {
1355 if i != j {
1356 denom = denom * (r[i] - r[j]);
1357 }
1358 }
1359 if denom.norm() < 1e-300 {
1360 continue;
1361 }
1362 let step = eval(r[i]) / denom;
1363 r[i] = r[i] - step;
1364 max_step = max_step.max(step.norm());
1365 }
1366 if max_step < 1e-14 {
1367 break;
1368 }
1369 }
1370 let p_real = |x: f64| -> f64 { (((x + a) * x + b) * x + c) * x + d };
1377 let mut out: Vec<f64> = Vec::new();
1378 for z in r {
1379 if z.im.abs() >= 1e-7 {
1380 continue;
1381 }
1382 let x = z.re;
1383 let scale = 1.0 + a.abs() + b.abs() + c.abs() + d.abs() + x.abs().powi(4);
1386 if p_real(x).abs() > 1e-6 * scale {
1387 continue;
1388 }
1389 if out.iter().any(|&y| (y - x).abs() < 1e-9 * (1.0 + x.abs())) {
1390 continue;
1391 }
1392 out.push(x);
1393 }
1394 out
1395}
1396
1397fn real_roots_cubic(a: f64, b: f64, c: f64, d: f64) -> Vec<f64> {
1399 if a.abs() < 1e-14 {
1400 return real_roots_quadratic(b, c, d);
1401 }
1402 let (b, c, d) = (b / a, c / a, d / a);
1404 let p = c - b * b / 3.0;
1405 let q = 2.0 * b * b * b / 27.0 - b * c / 3.0 + d;
1406 let shift = -b / 3.0;
1407 let disc = q * q / 4.0 + p * p * p / 27.0;
1408 if disc > 1e-14 {
1409 let sq = disc.sqrt();
1410 let u = (-q / 2.0 + sq).cbrt();
1411 let v = (-q / 2.0 - sq).cbrt();
1412 vec![u + v + shift]
1413 } else if disc < -1e-14 {
1414 let m = 2.0 * (-p / 3.0).sqrt();
1416 let theta = (3.0 * q / (p * m)).clamp(-1.0, 1.0).acos() / 3.0;
1417 (0..3)
1418 .map(|k| {
1419 m.mul_add(
1420 (theta - 2.0 * std::f64::consts::PI * f64::from(k) / 3.0).cos(),
1421 shift,
1422 )
1423 })
1424 .collect()
1425 } else {
1426 let u = (-q / 2.0).cbrt();
1428 vec![2.0 * u + shift, -u + shift]
1429 }
1430}
1431
1432fn real_roots_quadratic(a: f64, b: f64, c: f64) -> Vec<f64> {
1434 if a.abs() < 1e-14 {
1435 if b.abs() < 1e-14 {
1436 return Vec::new();
1437 }
1438 return vec![-c / b];
1439 }
1440 let disc = b * b - 4.0 * a * c;
1441 if disc < 0.0 {
1442 Vec::new()
1443 } else {
1444 let sq = disc.sqrt();
1445 vec![(-b - sq) / (2.0 * a), (-b + sq) / (2.0 * a)]
1446 }
1447}
1448
1449#[derive(Clone, Copy)]
1451struct Complex {
1452 re: f64,
1453 im: f64,
1454}
1455
1456impl Complex {
1457 const fn new(re: f64, im: f64) -> Self {
1458 Self { re, im }
1459 }
1460 fn norm(self) -> f64 {
1461 self.re.hypot(self.im)
1462 }
1463}
1464
1465impl std::ops::Add for Complex {
1466 type Output = Self;
1467 fn add(self, o: Self) -> Self {
1468 Self::new(self.re + o.re, self.im + o.im)
1469 }
1470}
1471
1472impl std::ops::Sub for Complex {
1473 type Output = Self;
1474 fn sub(self, o: Self) -> Self {
1475 Self::new(self.re - o.re, self.im - o.im)
1476 }
1477}
1478
1479impl std::ops::Mul for Complex {
1480 type Output = Self;
1481 fn mul(self, o: Self) -> Self {
1482 Self::new(
1483 self.re.mul_add(o.re, -(self.im * o.im)),
1484 self.re.mul_add(o.im, self.im * o.re),
1485 )
1486 }
1487}
1488
1489impl std::ops::Div for Complex {
1490 type Output = Self;
1491 fn div(self, o: Self) -> Self {
1492 let den = o.re.mul_add(o.re, o.im * o.im);
1493 Self::new(
1494 self.re.mul_add(o.re, self.im * o.im) / den,
1495 self.im.mul_add(o.re, -(self.re * o.im)) / den,
1496 )
1497 }
1498}
1499
1500fn build_curves_from_points(
1504 points_3d: &[Point3],
1505 ipoints: Vec<IntersectionPoint>,
1506) -> Result<Vec<IntersectionCurve>, MathError> {
1507 if points_3d.len() < 2 {
1508 return Ok(vec![]);
1509 }
1510
1511 let degree = 3.min(points_3d.len() - 1);
1512 let curve = interpolate(points_3d, degree)?;
1513 Ok(vec![IntersectionCurve {
1514 curve,
1515 points: ipoints,
1516 }])
1517}
1518
1519#[allow(
1531 clippy::cast_precision_loss,
1532 clippy::too_many_lines,
1533 clippy::similar_names,
1534 clippy::unnecessary_wraps,
1535 clippy::type_complexity
1536)]
1537pub fn intersect_analytic_analytic(
1538 a: AnalyticSurface<'_>,
1539 b: AnalyticSurface<'_>,
1540 grid_res: usize,
1541) -> Result<Vec<IntersectionCurve>, MathError> {
1542 intersect_analytic_analytic_bounded(a, b, grid_res, None, None)
1543}
1544
1545pub fn intersect_analytic_analytic_bounded(
1556 a: AnalyticSurface<'_>,
1557 b: AnalyticSurface<'_>,
1558 grid_res: usize,
1559 v_range_hint_a: Option<(f64, f64)>,
1560 v_range_hint_b: Option<(f64, f64)>,
1561) -> Result<Vec<IntersectionCurve>, MathError> {
1562 if let Some(result) = try_algebraic_intersection(&a, &b, v_range_hint_a, v_range_hint_b)? {
1565 return Ok(result);
1566 }
1567
1568 let (surf_a, norm_a, u_range_a, default_v_a) = surface_closures(&a);
1569 let (surf_b, norm_b, u_range_b, default_v_b) = surface_closures(&b);
1570 let v_range_a = v_range_hint_a.unwrap_or(default_v_a);
1571 let v_range_b = v_range_hint_b.unwrap_or(default_v_b);
1572
1573 let diag_a = {
1575 let p00 = surf_a(u_range_a.0, v_range_a.0);
1576 let p11 = surf_a(u_range_a.1, v_range_a.1);
1577 (p00 - p11).length()
1578 };
1579 let diag_b = {
1580 let p00 = surf_b(u_range_b.0, v_range_b.0);
1581 let p11 = surf_b(u_range_b.1, v_range_b.1);
1582 (p00 - p11).length()
1583 };
1584 let char_size = diag_a.min(diag_b).max(0.1);
1585
1586 #[allow(clippy::type_complexity)]
1590 let mut seeds: Vec<(Point3, (f64, f64), (f64, f64))> = Vec::new();
1591 let seed_threshold = diag_a.max(diag_b).max(1.0) * 0.5;
1595 let mut min_dist = f64::INFINITY;
1596
1597 #[allow(clippy::cast_precision_loss)]
1598 for ia in 0..grid_res {
1599 for ja in 0..grid_res {
1600 let ua =
1601 u_range_a.0 + (u_range_a.1 - u_range_a.0) * (ia as f64 + 0.5) / (grid_res as f64);
1602 let va =
1603 v_range_a.0 + (v_range_a.1 - v_range_a.0) * (ja as f64 + 0.5) / (grid_res as f64);
1604
1605 let pa = surf_a(ua, va);
1606
1607 let (ub, vb) = project_analytic(&b, pa, u_range_b, v_range_b);
1609 let pb = surf_b(ub, vb);
1610 let dist = (pa - pb).length();
1611 min_dist = min_dist.min(dist);
1612
1613 if dist < seed_threshold {
1614 let mid = Point3::new(
1619 (pa.x() + pb.x()) * 0.5,
1620 (pa.y() + pb.y()) * 0.5,
1621 (pa.z() + pb.z()) * 0.5,
1622 );
1623 seeds.push((mid, (ua, va), (ub, vb)));
1624 }
1625 }
1626 }
1627
1628 let reject_dist = (char_size / grid_res as f64) * 3.0;
1637 if min_dist > reject_dist {
1638 return Ok(vec![]);
1639 }
1640
1641 if seeds.is_empty() {
1642 return Ok(vec![]);
1643 }
1644
1645 let march_step = (char_size * 0.02).clamp(0.005, 0.5);
1649 let dedup_radius = march_step * 10.0;
1650 let mut unique_seeds = Vec::new();
1651 for seed in &seeds {
1652 let dominated = unique_seeds
1653 .iter()
1654 .any(|s: &(Point3, (f64, f64), (f64, f64))| (s.0 - seed.0).length() < dedup_radius);
1655 if !dominated {
1656 unique_seeds.push(*seed);
1657 }
1658 }
1659
1660 let mut curves = Vec::new();
1662 let mut used_seeds = vec![false; unique_seeds.len()];
1663
1664 for si in 0..unique_seeds.len() {
1665 if used_seeds[si] {
1666 continue;
1667 }
1668 used_seeds[si] = true;
1669
1670 let march_result = march_analytic_intersection(
1671 &a,
1672 &b,
1673 surf_a.as_ref(),
1674 norm_a.as_ref(),
1675 surf_b.as_ref(),
1676 norm_b.as_ref(),
1677 unique_seeds[si].0,
1678 u_range_a,
1679 v_range_a,
1680 u_range_b,
1681 v_range_b,
1682 march_step,
1683 is_u_periodic(&a),
1684 is_u_periodic(&b),
1685 );
1686
1687 if march_result.len() >= 2 {
1688 for (sj, other) in unique_seeds.iter().enumerate() {
1689 if !used_seeds[sj]
1690 && march_result
1691 .iter()
1692 .any(|p| (*p - other.0).length() < dedup_radius)
1693 {
1694 used_seeds[sj] = true;
1695 }
1696 }
1697
1698 let ipts: Vec<IntersectionPoint> = march_result
1699 .iter()
1700 .map(|&pt| IntersectionPoint {
1701 point: pt,
1702 param1: (0.0, 0.0),
1703 param2: (0.0, 0.0),
1704 })
1705 .collect();
1706
1707 let degree = 3.min(march_result.len() - 1);
1708 if let Ok(curve) = interpolate(&march_result, degree) {
1709 curves.push(IntersectionCurve {
1710 curve,
1711 points: ipts,
1712 });
1713 }
1714 }
1715 }
1716
1717 Ok(curves)
1718}
1719
1720#[allow(clippy::too_many_lines)]
1732fn try_algebraic_intersection(
1733 a: &AnalyticSurface<'_>,
1734 b: &AnalyticSurface<'_>,
1735 v_range_a: Option<(f64, f64)>,
1736 v_range_b: Option<(f64, f64)>,
1737) -> Result<Option<Vec<IntersectionCurve>>, MathError> {
1738 match (a, b) {
1739 (AnalyticSurface::Cone(cone), AnalyticSurface::Cylinder(cyl)) => Ok(
1740 algebraic_parallel_cone_cylinder(cone, cyl, v_range_a, v_range_b)?
1741 .or_else(|| ruling_cone_cylinder(cone, cyl, true)),
1742 ),
1743 (AnalyticSurface::Cylinder(cyl), AnalyticSurface::Cone(cone)) => Ok(
1744 algebraic_parallel_cone_cylinder(cone, cyl, v_range_b, v_range_a)?
1745 .or_else(|| ruling_cone_cylinder(cone, cyl, false)),
1746 ),
1747 (AnalyticSurface::Sphere(s1), AnalyticSurface::Sphere(s2)) => {
1748 algebraic_sphere_sphere(s1, s2).map(Some)
1749 }
1750 (AnalyticSurface::Cylinder(c1), AnalyticSurface::Cylinder(c2)) => {
1751 let axis_dot = c1.axis().dot(c2.axis()).abs();
1752 if axis_dot > 1.0 - 1e-10 {
1753 let delta = c2.origin() - c1.origin();
1755 let delta_vec = Vec3::new(delta.x(), delta.y(), delta.z());
1756 let along = delta_vec.dot(c1.axis());
1757 let perp = (delta_vec - c1.axis() * along).length();
1758 if perp < 1e-8 {
1759 if (c1.radius() - c2.radius()).abs() < 1e-8 {
1762 return Ok(None); }
1764 return Ok(Some(vec![])); }
1766 }
1767 algebraic_cylinder_cylinder(c1, c2)
1769 }
1770 (AnalyticSurface::Sphere(s), AnalyticSurface::Cylinder(c)) => {
1772 algebraic_sphere_cylinder(s, c, true)
1773 }
1774 (AnalyticSurface::Cylinder(c), AnalyticSurface::Sphere(s)) => {
1775 algebraic_sphere_cylinder(s, c, false)
1776 }
1777 (AnalyticSurface::Cone(c1), AnalyticSurface::Cone(c2)) => algebraic_cone_cone(c1, c2),
1778 (AnalyticSurface::Torus(t), AnalyticSurface::Cylinder(c)) => {
1779 Ok(parallel_axis_torus_cylinder(t, c, true))
1780 }
1781 (AnalyticSurface::Cylinder(c), AnalyticSurface::Torus(t)) => {
1782 Ok(parallel_axis_torus_cylinder(t, c, false))
1783 }
1784 _ => Ok(None),
1785 }
1786}
1787
1788fn parallel_axis_torus_cylinder(
1795 torus: &ToroidalSurface,
1796 cyl: &CylindricalSurface,
1797 torus_first: bool,
1798) -> Option<Vec<IntersectionCurve>> {
1799 let axis = torus.z_axis();
1800 let along = cyl.axis().dot(axis);
1801 if along.abs() < 1.0 - 1e-10 {
1802 return None;
1803 }
1804 let offset = cyl.origin() - torus.center();
1805 if (offset - axis * offset.dot(axis)).length() < Tolerance::new().linear {
1806 return None;
1807 }
1808 let (major, minor) = (torus.major_radius(), torus.minor_radius());
1809 let roots = |u: f64| {
1810 let q = cyl.evaluate(u, 0.0) - torus.center();
1811 let height = q.dot(axis);
1812 let rho = (q - axis * height).length();
1813 let reach = minor * minor - (rho - major) * (rho - major);
1814 ruling_quadratic(1.0, 2.0 * along.signum() * height, height * height - reach)
1815 };
1816 let samples = ruling_samples(cyl, &roots);
1817 let loops = if samples.iter().all(Option::is_some) {
1818 closed_ruling_loops(&samples)
1819 } else {
1820 partial_ruling_loops(cyl, &roots, &samples)
1821 };
1822 if loops.is_empty() {
1823 return None;
1824 }
1825 Some(fit_ruling_loops(&loops, |p| {
1826 in_order(torus.project_point(p), cyl.project_point(p), torus_first)
1827 }))
1828}
1829
1830fn meridian_crossings(
1836 first: (f64, f64, f64),
1837 second: (f64, f64, f64),
1838 scale: f64,
1839) -> Option<Vec<(f64, f64)>> {
1840 let ((x1, z1, r1), (x2, z2, r2)) = (first, second);
1841 let (dx, dz) = (x2 - x1, z2 - z1);
1842 let dist = dx.hypot(dz);
1843 let slack = 1e-9 * scale;
1844 if dist < slack || (dist - (r1 + r2)).abs() < slack || (dist - (r1 - r2).abs()).abs() < slack {
1845 return None;
1846 }
1847 if dist > r1 + r2 || dist < (r1 - r2).abs() {
1848 return Some(Vec::new());
1849 }
1850 let along = r2.mul_add(-r2, r1.mul_add(r1, dist * dist)) / (2.0 * dist);
1851 let across = r1.mul_add(r1, -(along * along)).max(0.0).sqrt();
1852 let (ux, uz) = (dx / dist, dz / dist);
1853 let mut crossings = Vec::with_capacity(2);
1854 for side in [1.0, -1.0] {
1855 let rho = x1 + along * ux - side * across * uz;
1856 if rho <= slack {
1857 return None;
1858 }
1859 crossings.push((rho, z1 + along * uz + side * across * ux));
1860 }
1861 Some(crossings)
1862}
1863
1864fn circles_about_axis(
1866 base: Point3,
1867 axis: Vec3,
1868 crossings: &[(f64, f64)],
1869) -> Result<Vec<ExactIntersectionCurve>, MathError> {
1870 crossings
1871 .iter()
1872 .map(|&(rho, z)| {
1873 Circle3D::new(base + axis * z, axis, rho).map(ExactIntersectionCurve::Circle)
1874 })
1875 .collect()
1876}
1877
1878pub fn exact_torus_torus(
1889 first: &ToroidalSurface,
1890 second: &ToroidalSurface,
1891) -> Result<Option<Vec<ExactIntersectionCurve>>, MathError> {
1892 let axis = first.z_axis();
1893 let scale = first.major_radius() + second.major_radius();
1894 let offset = second.center() - first.center();
1895 if first.minor_radius() >= first.major_radius()
1897 || second.minor_radius() >= second.major_radius()
1898 || axis.cross(second.z_axis()).length() > 1e-9
1899 || offset.cross(axis).length() > 1e-9 * scale
1900 {
1901 return Ok(None);
1902 }
1903 let Some(crossings) = meridian_crossings(
1904 (first.major_radius(), 0.0, first.minor_radius()),
1905 (
1906 second.major_radius(),
1907 offset.dot(axis),
1908 second.minor_radius(),
1909 ),
1910 scale,
1911 ) else {
1912 return Ok(None);
1913 };
1914 circles_about_axis(first.center(), axis, &crossings).map(Some)
1915}
1916
1917pub fn exact_cylinder_torus(
1929 cylinder: &CylindricalSurface,
1930 torus: &ToroidalSurface,
1931) -> Result<Option<Vec<ExactIntersectionCurve>>, MathError> {
1932 let axis = torus.z_axis();
1933 let scale = torus.major_radius() + cylinder.radius();
1934 let offset = cylinder.origin() - torus.center();
1935 if torus.minor_radius() >= torus.major_radius()
1937 || axis.cross(cylinder.axis()).length() > 1e-9
1938 || offset.cross(axis).length() > 1e-9 * scale
1939 {
1940 return Ok(None);
1941 }
1942 let gap = cylinder.radius() - torus.major_radius();
1943 let small = torus.minor_radius();
1944 if (gap.abs() - small).abs() < 1e-9 * scale {
1945 return Ok(None);
1946 }
1947 if gap.abs() > small {
1948 return Ok(Some(Vec::new()));
1949 }
1950 let height = small.mul_add(small, -(gap * gap)).sqrt();
1951 circles_about_axis(
1952 torus.center(),
1953 axis,
1954 &[(cylinder.radius(), height), (cylinder.radius(), -height)],
1955 )
1956 .map(Some)
1957}
1958
1959pub fn exact_sphere_torus(
1972 sphere: &SphericalSurface,
1973 torus: &ToroidalSurface,
1974) -> Result<Option<Vec<ExactIntersectionCurve>>, MathError> {
1975 let axis = torus.z_axis();
1976 let scale = torus.major_radius() + sphere.radius();
1977 let offset = sphere.center() - torus.center();
1978 if torus.minor_radius() >= torus.major_radius() || offset.cross(axis).length() > 1e-9 * scale {
1980 return Ok(None);
1981 }
1982 let Some(crossings) = meridian_crossings(
1983 (0.0, offset.dot(axis), sphere.radius()),
1984 (torus.major_radius(), 0.0, torus.minor_radius()),
1985 scale,
1986 ) else {
1987 return Ok(None);
1988 };
1989 circles_about_axis(torus.center(), axis, &crossings).map(Some)
1990}
1991
1992pub fn exact_cone_cone(
2017 c1: &ConicalSurface,
2018 c2: &ConicalSurface,
2019) -> Result<Option<Vec<ExactIntersectionCurve>>, MathError> {
2020 let axis = c1.axis();
2021 let axis2 = c2.axis();
2022
2023 if axis.dot(axis2).abs() < 1.0 - 1e-10 {
2025 return Ok(None); }
2027 let apex1 = c1.apex();
2028 let apex2 = c2.apex();
2029 let delta = apex2 - apex1;
2030 let delta_v = Vec3::new(delta.x(), delta.y(), delta.z());
2031 let along = delta_v.dot(axis);
2032 if (delta_v - axis * along).length() > 1e-8 {
2033 return offset_parallel_cone_cone(c1, c2);
2034 }
2035
2036 let (s1, s2) = (c1.half_angle().sin(), c2.half_angle().sin());
2037 if s1.abs() < 1e-12 || s2.abs() < 1e-12 {
2038 return Ok(None); }
2040 let m1 = c1.half_angle().cos() / s1;
2041 let m2 = c2.half_angle().cos() / s2;
2042 let sigma = if axis.dot(axis2) >= 0.0 { 1.0 } else { -1.0 };
2043 let d2 = along; let denom = m1 - m2 * sigma;
2046 if denom.abs() < 1e-12 {
2047 if sigma > 0.0 && d2.abs() < 1e-9 {
2050 return Ok(None);
2051 }
2052 return Ok(Some(vec![]));
2053 }
2054
2055 let t_star = (-m2 * sigma * d2) / denom;
2056 let radius = m1 * t_star;
2057 if radius < 1e-12 {
2058 return Ok(Some(vec![])); }
2060
2061 let center = Point3::new(
2062 apex1.x() + axis.x() * t_star,
2063 apex1.y() + axis.y() * t_star,
2064 apex1.z() + axis.z() * t_star,
2065 );
2066 let circle = Circle3D::new(center, axis, radius)?;
2067 Ok(Some(vec![ExactIntersectionCurve::Circle(circle)]))
2068}
2069
2070fn offset_parallel_cone_cone(
2081 c1: &ConicalSurface,
2082 c2: &ConicalSurface,
2083) -> Result<Option<Vec<ExactIntersectionCurve>>, MathError> {
2084 if c1.half_angle().sin().abs() < 1e-12 || c2.half_angle().sin().abs() < 1e-12 {
2085 return Ok(None); }
2087 let t1 = c1.half_angle().tan();
2088 let t2 = c2.half_angle().tan();
2089 if !t1.is_finite() || !t2.is_finite() {
2090 return Ok(None);
2091 }
2092 if (t1 - t2).abs() > 1e-9 * (1.0 + t1.abs().max(t2.abs())) {
2093 return Ok(None);
2094 }
2095
2096 let w = c1.axis();
2097 let apex1 = c1.apex();
2098 let apex2 = c2.apex();
2099 let delta = apex2 - apex1;
2100 let delta_v = Vec3::new(delta.x(), delta.y(), delta.z());
2101 let s = delta_v.dot(w);
2102 let tm = 0.5 * (t1 + t2);
2103 let k = 1.0 + tm * tm;
2104
2105 let n = (delta_v - w * (k * s)) * 2.0;
2109 let n_len = n.length();
2110 if n_len < 1e-12 {
2111 return Ok(None);
2112 }
2113 let n_hat = n * (1.0 / n_len);
2114 let d = (dot_np(n, apex1) + delta_v.dot(delta_v) - k * s * s) / n_len;
2115
2116 let axis2 = c2.axis();
2122 let scale = 1.0 + delta_v.length();
2123 let mut out = Vec::new();
2124 for curve in exact_plane_cone(c1, n_hat, d, 0.0)? {
2125 let samples: Vec<Point3> = match &curve {
2126 ExactIntersectionCurve::Circle(c) => (0..4)
2127 .map(|i| crate::traits::ParametricCurve::evaluate(c, TAU * f64::from(i) / 4.0))
2128 .collect(),
2129 ExactIntersectionCurve::Ellipse(e) => (0..4)
2130 .map(|i| crate::traits::ParametricCurve::evaluate(e, TAU * f64::from(i) / 4.0))
2131 .collect(),
2132 ExactIntersectionCurve::Points(_) => return Ok(None),
2133 };
2134 let on_real_nappe = |p: &Point3| {
2135 let rel = *p - apex2;
2136 Vec3::new(rel.x(), rel.y(), rel.z()).dot(axis2) >= -1e-9 * scale
2137 };
2138 let hits = samples.iter().filter(|p| on_real_nappe(p)).count();
2139 match hits {
2140 0 => {}
2141 4 => out.push(curve),
2142 _ => return Ok(None),
2143 }
2144 }
2145 Ok(Some(out))
2146}
2147
2148pub fn exact_cone_cylinder(
2168 cone: &ConicalSurface,
2169 cyl: &CylindricalSurface,
2170) -> Result<Option<Vec<ExactIntersectionCurve>>, MathError> {
2171 let axis = cone.axis();
2172 let cyl_axis = cyl.axis();
2173
2174 if axis.dot(cyl_axis).abs() < 1.0 - 1e-10 {
2176 return Ok(None);
2177 }
2178 let apex = cone.apex();
2179 let delta = apex - cyl.origin();
2180 let delta_v = Vec3::new(delta.x(), delta.y(), delta.z());
2181 let along = delta_v.dot(cyl_axis);
2182 if (delta_v - cyl_axis * along).length() > 1e-8 {
2183 return Ok(None);
2184 }
2185
2186 let s = cone.half_angle().sin();
2187 if s.abs() < 1e-12 {
2188 return Ok(None); }
2190 let m = cone.half_angle().cos() / s; if m.abs() < 1e-12 {
2192 return Ok(None); }
2194
2195 let t_star = cyl.radius() / m; if t_star.abs() < 1e-12 {
2197 return Ok(Some(vec![])); }
2199 let center = Point3::new(
2200 apex.x() + axis.x() * t_star,
2201 apex.y() + axis.y() * t_star,
2202 apex.z() + axis.z() * t_star,
2203 );
2204 let circle = Circle3D::new(center, axis, cyl.radius())?;
2205 Ok(Some(vec![ExactIntersectionCurve::Circle(circle)]))
2206}
2207
2208fn algebraic_cone_cone(
2217 c1: &ConicalSurface,
2218 c2: &ConicalSurface,
2219) -> Result<Option<Vec<IntersectionCurve>>, MathError> {
2220 let Some(exacts) = exact_cone_cone(c1, c2)? else {
2221 return Ok(None);
2222 };
2223 let mut curves = Vec::new();
2224 for exact in exacts {
2225 let n_samples = 33;
2226 let mut positions = Vec::with_capacity(n_samples);
2227 let mut points = Vec::with_capacity(n_samples);
2228 #[allow(clippy::cast_precision_loss)]
2229 for i in 0..n_samples {
2230 let theta = TAU * i as f64 / (n_samples - 1) as f64;
2231 let pt = match &exact {
2232 ExactIntersectionCurve::Circle(circle) => {
2233 crate::traits::ParametricCurve::evaluate(circle, theta)
2234 }
2235 ExactIntersectionCurve::Ellipse(ellipse) => {
2236 crate::traits::ParametricCurve::evaluate(ellipse, theta)
2237 }
2238 ExactIntersectionCurve::Points(_) => break,
2239 };
2240 positions.push(pt);
2241 points.push(IntersectionPoint {
2242 point: pt,
2243 param1: (0.0, 0.0),
2244 param2: (0.0, 0.0),
2245 });
2246 }
2247 if positions.is_empty() {
2248 continue;
2249 }
2250 let degree = 3.min(positions.len() - 1);
2251 let curve = interpolate(&positions, degree)?;
2252 curves.push(IntersectionCurve { curve, points });
2253 }
2254 Ok(Some(curves))
2255}
2256
2257pub fn exact_sphere_cylinder(
2277 sphere: &SphericalSurface,
2278 cyl: &CylindricalSurface,
2279) -> Result<Option<Vec<ExactIntersectionCurve>>, MathError> {
2280 let sc = sphere.center();
2281 let r_sphere = sphere.radius();
2282 let co = cyl.origin();
2283 let axis = cyl.axis();
2284 let r_cyl = cyl.radius();
2285
2286 let delta = sc - co;
2288 let delta_vec = Vec3::new(delta.x(), delta.y(), delta.z());
2289 let along = delta_vec.dot(axis);
2290 let perp_vec = delta_vec - axis * along;
2291 let d_perp = perp_vec.length();
2292
2293 if d_perp > 1e-7 {
2296 return Ok(None);
2297 }
2298
2299 if r_cyl > r_sphere + 1e-10 {
2302 return Ok(Some(vec![]));
2303 }
2304 let z_sq = r_sphere * r_sphere - r_cyl * r_cyl;
2305 if z_sq < 0.0 {
2306 return Ok(Some(vec![]));
2307 }
2308 let z = z_sq.sqrt();
2309
2310 let center_axis_pt = Point3::new(
2313 co.x() + axis.x() * along,
2314 co.y() + axis.y() * along,
2315 co.z() + axis.z() * along,
2316 );
2317
2318 let mut circles = Vec::new();
2319 let offsets: &[f64] = if z < 1e-10 { &[0.0] } else { &[z, -z] };
2320 for &z_offset in offsets {
2321 let center = Point3::new(
2322 center_axis_pt.x() + axis.x() * z_offset,
2323 center_axis_pt.y() + axis.y() * z_offset,
2324 center_axis_pt.z() + axis.z() * z_offset,
2325 );
2326 let circle = Circle3D::new(center, axis, r_cyl)?;
2327 circles.push(ExactIntersectionCurve::Circle(circle));
2328 }
2329 Ok(Some(circles))
2330}
2331
2332fn algebraic_sphere_cylinder(
2341 sphere: &SphericalSurface,
2342 cyl: &CylindricalSurface,
2343 sphere_first: bool,
2344) -> Result<Option<Vec<IntersectionCurve>>, MathError> {
2345 let Some(exacts) = exact_sphere_cylinder(sphere, cyl)? else {
2346 return Ok(off_axis_sphere_cylinder(sphere, cyl, sphere_first));
2347 };
2348
2349 let mut curves = Vec::new();
2350 for exact in exacts {
2351 let ExactIntersectionCurve::Circle(circle) = exact else {
2352 continue;
2353 };
2354 let n_samples = 33;
2355 let mut points = Vec::with_capacity(n_samples);
2356 let mut positions = Vec::with_capacity(n_samples);
2357 #[allow(clippy::cast_precision_loss)]
2358 for i in 0..n_samples {
2359 let theta = TAU * i as f64 / (n_samples - 1) as f64;
2360 let pt = crate::traits::ParametricCurve::evaluate(&circle, theta);
2361 positions.push(pt);
2362 let (param1, param2) = in_order(
2363 sphere.project_point(pt),
2364 cyl.project_point(pt),
2365 sphere_first,
2366 );
2367 points.push(IntersectionPoint {
2368 point: pt,
2369 param1,
2370 param2,
2371 });
2372 }
2373 let degree = 3.min(positions.len() - 1);
2374 let curve = interpolate(&positions, degree)?;
2375 curves.push(IntersectionCurve { curve, points });
2376 }
2377
2378 Ok(Some(curves))
2379}
2380
2381fn off_axis_sphere_cylinder(
2390 sphere: &SphericalSurface,
2391 cyl: &CylindricalSurface,
2392 sphere_first: bool,
2393) -> Option<Vec<IntersectionCurve>> {
2394 let (centre, radius) = (sphere.center(), sphere.radius());
2395 let axis = cyl.axis();
2396 let offset = centre - cyl.origin();
2397 let axis_distance = (offset - axis * offset.dot(axis)).length();
2398 let lin_tol = Tolerance::new().linear;
2399 if axis_distance > radius + cyl.radius() + lin_tol
2400 || axis_distance + radius < cyl.radius() - lin_tol
2401 {
2402 return Some(Vec::new());
2403 }
2404 let roots = |u: f64| {
2405 let q = cyl.evaluate(u, 0.0) - centre;
2406 ruling_quadratic(1.0, 2.0 * q.dot(axis), q.dot(q) - radius * radius)
2407 };
2408 let samples = ruling_samples(cyl, &roots);
2409 let loops = if samples.iter().all(Option::is_some) {
2410 closed_ruling_loops(&samples)
2411 } else {
2412 partial_ruling_loops(cyl, &roots, &samples)
2413 };
2414 if loops.is_empty() {
2415 return None;
2416 }
2417 Some(fit_ruling_loops(&loops, |p| {
2418 in_order(sphere.project_point(p), cyl.project_point(p), sphere_first)
2419 }))
2420}
2421
2422const fn in_order(a: (f64, f64), b: (f64, f64), a_first: bool) -> ((f64, f64), (f64, f64)) {
2425 if a_first { (a, b) } else { (b, a) }
2426}
2427
2428#[allow(clippy::too_many_lines, clippy::unnecessary_wraps)]
2442fn algebraic_cylinder_cylinder(
2443 c1: &CylindricalSurface,
2444 c2: &CylindricalSurface,
2445) -> Result<Option<Vec<IntersectionCurve>>, MathError> {
2446 let alpha = c1.axis().dot(c2.axis());
2447 let a_coeff = 1.0 - alpha * alpha;
2448
2449 if a_coeff.abs() < 1e-12 {
2451 return Ok(None);
2452 }
2453
2454 let r1 = c1.radius();
2455 let r2 = c2.radius();
2456 let o1 = c1.origin();
2457 let o2 = c2.origin();
2458 let a1 = c1.axis();
2459 let a2 = c2.axis();
2460
2461 let delta = Vec3::new(o1.x() - o2.x(), o1.y() - o2.y(), o1.z() - o2.z());
2464 let cross = a1.cross(a2);
2465 let cross_len = cross.length();
2466 if cross_len > 1e-12 {
2467 let axis_dist = delta.dot(cross).abs() / cross_len;
2468 if axis_dist > r1 + r2 + Tolerance::new().linear {
2469 return Ok(Some(vec![])); }
2471 }
2472
2473 let roots = |sweep: &CylindricalSurface, other: &CylindricalSurface| {
2479 let (o, a, radius) = (other.origin(), other.axis(), other.radius());
2480 let alpha = sweep.axis().dot(a);
2481 let quad = 1.0 - alpha * alpha;
2482 let (axis, sweep) = (sweep.axis(), sweep.clone());
2483 move |u: f64| {
2484 let q = sweep.evaluate(u, 0.0) - o;
2485 let (q_a1, q_a2) = (q.dot(axis), q.dot(a));
2486 let b = 2.0 * (q_a1 - alpha * q_a2);
2487 let c = q.dot(q) - q_a2 * q_a2 - radius * radius;
2488 ruling_quadratic(quad, b, c)
2489 }
2490 };
2491 let (roots1, roots2) = (roots(c1, c2), roots(c2, c1));
2492 let samples1 = ruling_samples(c1, &roots1);
2493 let loops = if samples1.iter().all(Option::is_some) {
2494 closed_ruling_loops(&samples1)
2495 } else {
2496 let samples2 = ruling_samples(c2, &roots2);
2497 if samples2.iter().all(Option::is_some) {
2498 closed_ruling_loops(&samples2)
2499 } else if samples1.iter().any(Option::is_some) {
2500 partial_ruling_loops(c1, &roots1, &samples1)
2501 } else {
2502 partial_ruling_loops(c2, &roots2, &samples2)
2503 }
2504 };
2505 if loops.is_empty() {
2506 return Ok(None);
2507 }
2508 Ok(Some(fit_ruling_loops(&loops, |p| {
2509 (c1.project_point(p), c2.project_point(p))
2510 })))
2511}
2512
2513fn ruling_cone_cylinder(
2520 cone: &ConicalSurface,
2521 cyl: &CylindricalSurface,
2522 cone_first: bool,
2523) -> Option<Vec<IntersectionCurve>> {
2524 let (sin_t, cos_t) = cone.half_angle().sin_cos();
2525 if sin_t < 1e-12 || cos_t < 1e-12 {
2526 return None;
2527 }
2528 let (apex, d, w) = (cone.apex(), cone.axis(), cyl.axis());
2529 let s = 1.0 / (sin_t * sin_t);
2530 let alpha = w.dot(d);
2531 let quad = 1.0 - s * alpha * alpha;
2532 if quad.abs() < 1e-9 {
2533 return None;
2534 }
2535 let roots = |u: f64| {
2536 let delta = cyl.evaluate(u, 0.0) - apex;
2537 let (dd, dw) = (delta.dot(d), delta.dot(w));
2538 let b = 2.0 * (dw - s * dd * alpha);
2539 let c = delta.dot(delta) - s * dd * dd;
2540 ruling_quadratic(quad, b, c)
2541 };
2542 let lin_tol = Tolerance::new().linear;
2543 let far_nappe = (0..WINDOW_SCAN * RULING_SAMPLES).any(|k| {
2544 #[allow(clippy::cast_precision_loss)]
2545 let u = TAU * (k as f64 + 0.5) / (WINDOW_SCAN * RULING_SAMPLES) as f64;
2546 let (disc, vp, vm) = roots(u);
2547 disc >= -lin_tol
2548 && [vp, vm]
2549 .iter()
2550 .any(|&t| (cyl.evaluate(u, t) - apex).dot(d) < -lin_tol)
2551 });
2552 if far_nappe {
2553 return None;
2554 }
2555 let samples = ruling_samples(cyl, &roots);
2556 let scan = WINDOW_SCAN * RULING_SAMPLES;
2561 #[allow(clippy::cast_precision_loss)]
2564 let meets = |k: usize| roots(TAU * ((k % scan) as f64 + 0.5) / scan as f64).0 >= -lin_tol;
2565 if let Some(start) = (0..scan).find(|&k| !meets(k)) {
2566 let mut k = start;
2567 while k < start + scan {
2568 if !meets(k) {
2569 k += 1;
2570 continue;
2571 }
2572 let first = k;
2573 while k < start + scan && meets(k) {
2574 k += 1;
2575 }
2576 let covered = (first..k)
2577 .filter(|&j| j % WINDOW_SCAN == WINDOW_SCAN / 2 - 1 && meets(j + 1))
2578 .count();
2579 if covered < WINDOW_MIN_SAMPLES {
2580 return None;
2581 }
2582 }
2583 }
2584 let loops = if samples.iter().all(Option::is_some) {
2585 closed_ruling_loops(&samples)
2586 } else {
2587 partial_ruling_loops(cyl, &roots, &samples)
2588 };
2589 if loops.is_empty() {
2590 return None;
2591 }
2592 Some(fit_ruling_loops(&loops, |p| {
2593 in_order(cone.project_point(p), cyl.project_point(p), cone_first)
2594 }))
2595}
2596
2597const WINDOW_SCAN: usize = 16;
2600const WINDOW_MIN_SAMPLES: usize = 8;
2601
2602const RULING_SAMPLES: usize = 128;
2606
2607#[allow(clippy::cast_precision_loss)]
2608fn ruling_u(i: usize) -> f64 {
2609 TAU * (i as f64 + 0.5) / RULING_SAMPLES as f64
2610}
2611
2612fn ruling_quadratic(quad: f64, b: f64, c: f64) -> (f64, f64, f64) {
2614 let disc = b * b - 4.0 * quad * c;
2615 let root = disc.max(0.0).sqrt();
2616 (disc, (-b + root) / (2.0 * quad), (-b - root) / (2.0 * quad))
2617}
2618
2619fn ruling_samples(
2623 sweep: &CylindricalSurface,
2624 roots: &impl Fn(f64) -> (f64, f64, f64),
2625) -> Vec<Option<(Point3, Point3)>> {
2626 let lin_tol = Tolerance::new().linear;
2627 (0..RULING_SAMPLES)
2628 .map(|i| {
2629 let u = ruling_u(i);
2630 let (disc, vp, vm) = roots(u);
2631 (disc >= -lin_tol).then(|| (sweep.evaluate(u, vp), sweep.evaluate(u, vm)))
2632 })
2633 .collect()
2634}
2635
2636fn closed_ruling_loops(samples: &[Option<(Point3, Point3)>]) -> Vec<Vec<Point3>> {
2638 let mut plus: Vec<Point3> = samples.iter().flatten().map(|s| s.0).collect();
2639 let mut minus: Vec<Point3> = samples.iter().flatten().map(|s| s.1).collect();
2640 plus.push(plus[0]);
2641 minus.push(minus[0]);
2642 vec![plus, minus]
2643}
2644
2645fn partial_ruling_loops(
2650 sweep: &CylindricalSurface,
2651 roots: &impl Fn(f64) -> (f64, f64, f64),
2652 samples: &[Option<(Point3, Point3)>],
2653) -> Vec<Vec<Point3>> {
2654 let branch_point = |inside: usize, outside: usize| -> Point3 {
2655 let (mut lo, mut hi) = (ruling_u(inside), ruling_u(outside));
2656 if (hi - lo).abs() > std::f64::consts::PI {
2657 hi += if hi < lo { TAU } else { -TAU };
2658 }
2659 for _ in 0..60 {
2660 let mid = 0.5 * (lo + hi);
2661 if roots(mid).0 >= 0.0 {
2662 lo = mid;
2663 } else {
2664 hi = mid;
2665 }
2666 }
2667 let (_, vp, vm) = roots(lo);
2668 sweep.evaluate(lo, 0.5 * (vp + vm))
2669 };
2670 let Some(first_gap) = samples.iter().position(Option::is_none) else {
2671 return Vec::new();
2672 };
2673 let mut loops = Vec::new();
2674 let mut k = 0;
2675 while k < RULING_SAMPLES {
2676 let i = (first_gap + k) % RULING_SAMPLES;
2677 if samples[i].is_none() {
2678 k += 1;
2679 continue;
2680 }
2681 let start = i;
2682 let mut run = Vec::new();
2683 while k < RULING_SAMPLES {
2684 let j = (first_gap + k) % RULING_SAMPLES;
2685 let Some(pair) = samples[j] else { break };
2686 run.push(pair);
2687 k += 1;
2688 }
2689 let end = (start + run.len() - 1) % RULING_SAMPLES;
2690 let head = branch_point(start, (start + RULING_SAMPLES - 1) % RULING_SAMPLES);
2691 let tail = branch_point(end, (end + 1) % RULING_SAMPLES);
2692 let mut pts = vec![head];
2693 pts.extend(run.iter().map(|p| p.0));
2694 pts.push(tail);
2695 pts.extend(run.iter().rev().map(|p| p.1));
2696 pts.push(head);
2697 loops.push(pts);
2698 }
2699 loops
2700}
2701
2702fn fit_ruling_loops(
2705 loops: &[Vec<Point3>],
2706 params: impl Fn(Point3) -> ((f64, f64), (f64, f64)),
2707) -> Vec<IntersectionCurve> {
2708 let mut curves = Vec::new();
2709 for pts in loops {
2710 if pts.len() < 4 {
2711 continue;
2712 }
2713 let ipts: Vec<IntersectionPoint> = pts
2714 .iter()
2715 .map(|&p| {
2716 let (param1, param2) = params(p);
2717 IntersectionPoint {
2718 point: p,
2719 param1,
2720 param2,
2721 }
2722 })
2723 .collect();
2724 let degree = 3.min(pts.len() - 1);
2725 if let Ok(curve) = interpolate(pts, degree) {
2726 curves.push(IntersectionCurve {
2727 curve,
2728 points: ipts,
2729 });
2730 }
2731 }
2732 curves
2733}
2734
2735#[allow(clippy::unnecessary_wraps)]
2761fn algebraic_parallel_cone_cylinder(
2762 cone: &ConicalSurface,
2763 cyl: &CylindricalSurface,
2764 v_range_cone: Option<(f64, f64)>,
2765 v_range_cyl: Option<(f64, f64)>,
2766) -> Result<Option<Vec<IntersectionCurve>>, MathError> {
2767 let axis = cone.axis();
2768 if axis.dot(cyl.axis()).abs() < 1.0 - 1e-10 {
2769 return Ok(None); }
2771
2772 let apex = cone.apex();
2773 let delta = cyl.origin() - apex;
2774 let along = delta.dot(axis);
2775 let perp = delta - axis * along;
2776 let d = perp.length();
2777 if d < 1e-9 {
2778 return Ok(None); }
2780
2781 let (e1, e2) = (cone.x_axis(), cone.y_axis());
2782 let phi0 = perp.dot(e2).atan2(perp.dot(e1));
2783
2784 let (sin_t, cos_t) = cone.half_angle().sin_cos();
2785 if cos_t < 1e-12 || sin_t < 1e-12 {
2786 return Ok(None);
2787 }
2788 let r = cyl.radius();
2789
2790 let mut v_min = (d - r).abs() / cos_t;
2792 let mut v_max = (d + r) / cos_t;
2793 if v_max <= v_min {
2794 return Ok(Some(vec![]));
2795 }
2796
2797 let mut lo = v_min;
2803 let mut hi = v_max;
2804 if let Some((a, b)) = v_range_cone {
2809 let (a, b) = if a <= b { (a, b) } else { (b, a) };
2810 lo = lo.max(a);
2811 hi = hi.min(b);
2812 }
2813 if let Some((a, b)) = v_range_cyl {
2814 let flip = cyl.axis().dot(axis);
2817 let to_cone_v = |cv: f64| (along + cv * flip) / sin_t;
2818 let (a, b) = (to_cone_v(a), to_cone_v(b));
2819 let (a, b) = if a <= b { (a, b) } else { (b, a) };
2820 lo = lo.max(a);
2821 hi = hi.min(b);
2822 }
2823 v_min = lo.max(v_min);
2824 v_max = hi.min(v_max);
2825 if v_max - v_min <= 1e-12 {
2826 return Ok(Some(vec![]));
2827 }
2828
2829 let n_samples = 128;
2830 let mut plus: Vec<Point3> = Vec::with_capacity(n_samples + 1);
2831 let mut minus: Vec<Point3> = Vec::with_capacity(n_samples + 1);
2832 #[allow(clippy::cast_precision_loss)]
2833 for i in 0..=n_samples {
2834 let v = v_min + (v_max - v_min) * (i as f64) / (n_samples as f64);
2835 let rho = v * cos_t;
2836 if rho < 1e-12 {
2837 if (d - r).abs() < 1e-12 {
2845 let apex = cone.evaluate(phi0, v);
2846 plus.push(apex);
2847 minus.push(apex);
2848 }
2849 continue;
2850 }
2851 let cos_alpha = ((d * d + rho * rho - r * r) / (2.0 * d * rho)).clamp(-1.0, 1.0);
2852 let alpha = cos_alpha.acos();
2853 plus.push(cone.evaluate(phi0 + alpha, v));
2854 minus.push(cone.evaluate(phi0 - alpha, v));
2855 }
2856
2857 let mut curves = Vec::new();
2858 for pts in [&plus, &minus] {
2859 if pts.len() < 4 {
2862 continue;
2863 }
2864 let ipts: Vec<IntersectionPoint> = pts
2865 .iter()
2866 .map(|&p| IntersectionPoint {
2867 point: p,
2868 param1: cone.project_point(p),
2869 param2: cyl.project_point(p),
2870 })
2871 .collect();
2872 let degree = 3.min(pts.len() - 1);
2873 match interpolate(pts, degree) {
2874 Ok(curve) => curves.push(IntersectionCurve {
2875 curve,
2876 points: ipts,
2877 }),
2878 Err(_) => return Ok(None),
2883 }
2884 }
2885
2886 Ok(Some(curves))
2887}
2888
2889fn algebraic_sphere_sphere(
2897 s1: &SphericalSurface,
2898 s2: &SphericalSurface,
2899) -> Result<Vec<IntersectionCurve>, MathError> {
2900 let c1 = s1.center();
2901 let c2 = s2.center();
2902 let r1 = s1.radius();
2903 let r2 = s2.radius();
2904
2905 let delta = c2 - c1;
2906 let d_sq = delta.x() * delta.x() + delta.y() * delta.y() + delta.z() * delta.z();
2907 let d = d_sq.sqrt();
2908
2909 if d < 1e-12 {
2910 return Ok(vec![]);
2912 }
2913
2914 if d > r1 + r2 + 1e-10 {
2916 return Ok(vec![]); }
2918 if d + r2.min(r1) + 1e-10 < r1.max(r2) {
2919 return Ok(vec![]); }
2921
2922 let d1 = (d_sq + r1 * r1 - r2 * r2) / (2.0 * d);
2924
2925 let r_circle_sq = r1 * r1 - d1 * d1;
2927 if r_circle_sq < 0.0 {
2928 if r_circle_sq > -1e-10 {
2930 let axis = Vec3::new(delta.x() / d, delta.y() / d, delta.z() / d);
2932 let tangent_pt = Point3::new(
2933 c1.x() + axis.x() * d1,
2934 c1.y() + axis.y() * d1,
2935 c1.z() + axis.z() * d1,
2936 );
2937 let ipt = IntersectionPoint {
2938 point: tangent_pt,
2939 param1: (0.0, 0.0),
2940 param2: (0.0, 0.0),
2941 };
2942 return Ok(vec![IntersectionCurve {
2944 curve: interpolate(&[tangent_pt, tangent_pt], 1)?,
2945 points: vec![ipt],
2946 }]);
2947 }
2948 return Ok(vec![]);
2949 }
2950
2951 let r_circle = r_circle_sq.sqrt();
2952 let axis = Vec3::new(delta.x() / d, delta.y() / d, delta.z() / d);
2953 let center = Point3::new(
2954 c1.x() + axis.x() * d1,
2955 c1.y() + axis.y() * d1,
2956 c1.z() + axis.z() * d1,
2957 );
2958
2959 let basis = Frame3::from_normal(center, axis)?;
2961 let u_dir = basis.x;
2962 let v_dir = basis.y;
2963
2964 let n_samples = 33; let mut points = Vec::with_capacity(n_samples);
2967 let mut positions = Vec::with_capacity(n_samples);
2968 #[allow(clippy::cast_precision_loss)]
2969 for i in 0..n_samples {
2970 let theta = TAU * i as f64 / (n_samples - 1) as f64;
2971 let (sin_t, cos_t) = theta.sin_cos();
2972 let pt = Point3::new(
2973 center.x() + (u_dir.x() * cos_t + v_dir.x() * sin_t) * r_circle,
2974 center.y() + (u_dir.y() * cos_t + v_dir.y() * sin_t) * r_circle,
2975 center.z() + (u_dir.z() * cos_t + v_dir.z() * sin_t) * r_circle,
2976 );
2977 positions.push(pt);
2978 points.push(IntersectionPoint {
2979 point: pt,
2980 param1: (0.0, 0.0),
2981 param2: (0.0, 0.0),
2982 });
2983 }
2984
2985 let degree = 3.min(positions.len() - 1);
2986 let curve = interpolate(&positions, degree)?;
2987
2988 Ok(vec![IntersectionCurve { curve, points }])
2989}
2990
2991#[allow(clippy::too_many_arguments)]
2997fn correct_to_intersection(
2998 a: &AnalyticSurface<'_>,
2999 b: &AnalyticSurface<'_>,
3000 surf_a: &dyn Fn(f64, f64) -> Point3,
3001 norm_a: &dyn Fn(f64, f64) -> Vec3,
3002 surf_b: &dyn Fn(f64, f64) -> Point3,
3003 norm_b: &dyn Fn(f64, f64) -> Vec3,
3004 point: Point3,
3005 u_range_a: (f64, f64),
3006 v_range_a: (f64, f64),
3007 u_range_b: (f64, f64),
3008 v_range_b: (f64, f64),
3009 max_iters: usize,
3010) -> Point3 {
3011 let mut p = point;
3012 for _ in 0..max_iters {
3013 let (ua, va) = project_analytic(a, p, u_range_a, v_range_a);
3014 let (ub, vb) = project_analytic(b, p, u_range_b, v_range_b);
3015 let pa = surf_a(ua, va);
3016 let pb = surf_b(ub, vb);
3017 let na = norm_a(ua, va);
3018 let nb = norm_b(ub, vb);
3019 let pv = Vec3::new(p.x(), p.y(), p.z());
3020
3021 let da = (pv - Vec3::new(pa.x(), pa.y(), pa.z())).dot(na);
3022 let db = (pv - Vec3::new(pb.x(), pb.y(), pb.z())).dot(nb);
3023
3024 if da.abs() < 1e-7 && db.abs() < 1e-7 {
3025 break;
3026 }
3027
3028 let t = na.cross(nb);
3029 let t_len = t.length();
3030 if t_len < 1e-10 {
3031 return Point3::new(
3033 (pa.x() + pb.x()) * 0.5,
3034 (pa.y() + pb.y()) * 0.5,
3035 (pa.z() + pb.z()) * 0.5,
3036 );
3037 }
3038 let t_hat = t * (1.0 / t_len);
3039
3040 let det = na.x() * (nb.y() * t_hat.z() - nb.z() * t_hat.y())
3042 - na.y() * (nb.x() * t_hat.z() - nb.z() * t_hat.x())
3043 + na.z() * (nb.x() * t_hat.y() - nb.y() * t_hat.x());
3044 if det.abs() < 1e-15 {
3045 return Point3::new(
3046 (pa.x() + pb.x()) * 0.5,
3047 (pa.y() + pb.y()) * 0.5,
3048 (pa.z() + pb.z()) * 0.5,
3049 );
3050 }
3051 let inv = 1.0 / det;
3052 let dx = inv
3054 * (-da * (nb.y() * t_hat.z() - nb.z() * t_hat.y())
3055 + db * (na.y() * t_hat.z() - na.z() * t_hat.y()));
3056 let dy = inv
3057 * (da * (nb.x() * t_hat.z() - nb.z() * t_hat.x())
3058 - db * (na.x() * t_hat.z() - na.z() * t_hat.x()));
3059 let dz = inv
3060 * (-da * (nb.x() * t_hat.y() - nb.y() * t_hat.x())
3061 + db * (na.x() * t_hat.y() - na.y() * t_hat.x()));
3062 let candidate = Point3::new(p.x() + dx, p.y() + dy, p.z() + dz);
3063
3064 let (uc, vc) = project_analytic(a, candidate, u_range_a, v_range_a);
3067 let (ud, vd) = project_analytic(b, candidate, u_range_b, v_range_b);
3068 let pc_a = surf_a(uc, vc);
3069 let pc_b = surf_b(ud, vd);
3070 let cv = Vec3::new(candidate.x(), candidate.y(), candidate.z());
3071 let da_new = (cv - Vec3::new(pc_a.x(), pc_a.y(), pc_a.z()))
3072 .dot(norm_a(uc, vc))
3073 .abs();
3074 let db_new = (cv - Vec3::new(pc_b.x(), pc_b.y(), pc_b.z()))
3075 .dot(norm_b(ud, vd))
3076 .abs();
3077 if da_new > da.abs() && db_new > db.abs() {
3078 return p;
3079 }
3080
3081 p = candidate;
3082 }
3083 p
3084}
3085
3086#[allow(clippy::too_many_arguments)]
3092fn march_analytic_intersection(
3093 a: &AnalyticSurface<'_>,
3094 b: &AnalyticSurface<'_>,
3095 surf_a: &dyn Fn(f64, f64) -> Point3,
3096 norm_a: &dyn Fn(f64, f64) -> Vec3,
3097 surf_b: &dyn Fn(f64, f64) -> Point3,
3098 norm_b: &dyn Fn(f64, f64) -> Vec3,
3099 seed: Point3,
3100 u_range_a: (f64, f64),
3101 v_range_a: (f64, f64),
3102 u_range_b: (f64, f64),
3103 v_range_b: (f64, f64),
3104 initial_step: f64,
3105 u_periodic_a: bool,
3106 u_periodic_b: bool,
3107) -> Vec<Point3> {
3108 let max_steps = 500;
3109 let h_min = 1e-6;
3110 let h_max = initial_step * 4.0;
3111 let closure_dist = initial_step * 5.0;
3115 let max_angle = 10.0_f64.to_radians();
3117 let min_angle = 2.0_f64.to_radians();
3118
3119 let mut forward = Vec::new();
3121 let mut backward = Vec::new();
3123
3124 for (direction, points) in [(1.0_f64, &mut forward), (-1.0_f64, &mut backward)] {
3125 let mut current = seed;
3126 let mut h = initial_step;
3127 let mut prev_tangent: Option<Vec3> = None;
3128
3129 for _ in 0..max_steps {
3130 let (ua, va) = project_analytic(a, current, u_range_a, v_range_a);
3131 let (ub, vb) = project_analytic(b, current, u_range_b, v_range_b);
3132
3133 let na = norm_a(ua, va);
3134 let nb = norm_b(ub, vb);
3135
3136 let tangent = na.cross(nb);
3137 let t_len = tangent.length();
3138 if t_len < 1e-10 {
3139 break;
3140 }
3141 let t_dir = tangent * (direction / t_len);
3142
3143 if let Some(prev_t) = prev_tangent {
3145 let cos_angle = prev_t.dot(t_dir).clamp(-1.0, 1.0);
3146 let angle = cos_angle.acos();
3147 if angle > max_angle && h > h_min {
3148 h = (h * 0.5).max(h_min);
3149 } else if angle < min_angle {
3150 h = (h * 2.0).min(h_max);
3151 }
3152 }
3153 prev_tangent = Some(t_dir);
3154
3155 let next = Point3::new(
3156 h.mul_add(t_dir.x(), current.x()),
3157 h.mul_add(t_dir.y(), current.y()),
3158 h.mul_add(t_dir.z(), current.z()),
3159 );
3160
3161 let (ua2, va2) = project_analytic(a, next, u_range_a, v_range_a);
3162 let (ub2, vb2) = project_analytic(b, next, u_range_b, v_range_b);
3163
3164 let pa = surf_a(ua2, va2);
3165 let pb = surf_b(ub2, vb2);
3166 let mid = Point3::new(
3167 (pa.x() + pb.x()) * 0.5,
3168 (pa.y() + pb.y()) * 0.5,
3169 (pa.z() + pb.z()) * 0.5,
3170 );
3171 let out_a = (!u_periodic_a && (ua2 <= u_range_a.0 || ua2 >= u_range_a.1))
3172 || va2 <= v_range_a.0
3173 || va2 >= v_range_a.1;
3174 let out_b = (!u_periodic_b && (ub2 <= u_range_b.0 || ub2 >= u_range_b.1))
3175 || vb2 <= v_range_b.0
3176 || vb2 >= v_range_b.1;
3177
3178 if out_a || out_b {
3179 break;
3180 }
3181
3182 let dist_to_seed = (mid - seed).length();
3186 if points.len() > 10 && dist_to_seed < closure_dist {
3187 points.push(seed);
3188 break;
3189 }
3190
3191 points.push(mid);
3192 current = mid;
3193 }
3194 }
3195
3196 backward.reverse();
3198 let mut result = backward;
3199 result.push(seed);
3200 result.append(&mut forward);
3201
3202 for pt in &mut result {
3204 *pt = correct_to_intersection(
3205 a, b, surf_a, norm_a, surf_b, norm_b, *pt, u_range_a, v_range_a, u_range_b, v_range_b,
3206 5,
3207 );
3208 }
3209
3210 result
3211}
3212
3213fn project_analytic(
3217 surface: &AnalyticSurface<'_>,
3218 point: Point3,
3219 u_range: (f64, f64),
3220 v_range: (f64, f64),
3221) -> (f64, f64) {
3222 match surface {
3223 AnalyticSurface::Cylinder(cyl) => {
3224 let (u, v) = cyl.project_point(point);
3225 (u.clamp(u_range.0, u_range.1), v.clamp(v_range.0, v_range.1))
3226 }
3227 AnalyticSurface::Sphere(sphere) => {
3228 let (u, v) = sphere.project_point(point);
3229 (u.clamp(u_range.0, u_range.1), v.clamp(v_range.0, v_range.1))
3230 }
3231 AnalyticSurface::Cone(cone) => {
3232 let (u, v) = cone.project_point(point);
3233 (u.clamp(u_range.0, u_range.1), v.clamp(v_range.0, v_range.1))
3234 }
3235 AnalyticSurface::Torus(torus) => {
3236 let (u, v) = torus.project_point(point);
3237 (u.clamp(u_range.0, u_range.1), v.clamp(v_range.0, v_range.1))
3238 }
3239 }
3240}
3241
3242fn is_u_periodic(surface: &AnalyticSurface<'_>) -> bool {
3246 matches!(
3247 surface,
3248 AnalyticSurface::Cylinder(_)
3249 | AnalyticSurface::Cone(_)
3250 | AnalyticSurface::Sphere(_)
3251 | AnalyticSurface::Torus(_)
3252 )
3253}
3254
3255#[allow(clippy::type_complexity)]
3257fn surface_closures<'a>(
3258 surface: &'a AnalyticSurface<'a>,
3259) -> (
3260 Box<dyn Fn(f64, f64) -> Point3 + 'a>,
3261 Box<dyn Fn(f64, f64) -> Vec3 + 'a>,
3262 (f64, f64),
3263 (f64, f64),
3264) {
3265 match surface {
3266 AnalyticSurface::Cylinder(cyl) => (
3267 Box::new(|u, v| cyl.evaluate(u, v)),
3268 Box::new(|u, v| cyl.normal(u, v)),
3269 (0.0, TAU),
3270 (-1.0, 1.0),
3271 ),
3272 AnalyticSurface::Cone(cone) => (
3273 Box::new(|u, v| cone.evaluate(u, v)),
3274 Box::new(|u, v| cone.normal(u, v)),
3275 (0.0, TAU),
3276 (0.01, 2.0),
3277 ),
3278 AnalyticSurface::Sphere(sphere) => (
3279 Box::new(|u, v| sphere.evaluate(u, v)),
3280 Box::new(|u, v| sphere.normal(u, v)),
3281 (0.0, TAU),
3282 (-FRAC_PI_2, FRAC_PI_2),
3283 ),
3284 AnalyticSurface::Torus(torus) => (
3285 Box::new(|u, v| torus.evaluate(u, v)),
3286 Box::new(|u, v| torus.normal(u, v)),
3287 (0.0, TAU),
3288 (0.0, TAU),
3289 ),
3290 }
3291}
3292
3293#[cfg(test)]
3294#[allow(clippy::unwrap_used, clippy::expect_used)]
3295mod tests {
3296 use super::*;
3297 use crate::tolerance::Tolerance;
3298
3299 #[test]
3303 fn plane_cone_conic_arcs_lie_on_both_surfaces() {
3304 let half_angle = 1.1_f64;
3305 let cone = ConicalSurface::new(
3306 Point3::new(0.0, 0.0, 0.0),
3307 Vec3::new(0.0, 0.0, 1.0),
3308 half_angle,
3309 )
3310 .unwrap();
3311 let ruling = Vec3::new(half_angle.sin(), 0.0, half_angle.cos());
3312 for (normal, d) in [(Vec3::new(1.0, 0.0, 0.0), 0.5), (ruling, 1.0)] {
3313 let chains =
3314 exact_plane_analytic_reaching(AnalyticSurface::Cone(&cone), normal, d, 10.0)
3315 .unwrap();
3316 let chain = chains
3317 .iter()
3318 .find_map(|c| match c {
3319 ExactIntersectionCurve::Points(chain) => Some(chain),
3320 _ => None,
3321 })
3322 .expect("a parabola or hyperbola section is sampled");
3323 let (from, to) = (chain[2], chain[chain.len() - 3]);
3324 let arc = plane_cone_conic_arc(&cone, normal, d, from, to)
3325 .unwrap()
3326 .expect("an exact arc");
3327 let (t0, t1) = arc.domain();
3328 assert!((arc.evaluate(t0) - from).length() < 1e-12);
3329 assert!((arc.evaluate(t1) - to).length() < 1e-12);
3330 for i in 0..=200 {
3331 let q = arc.evaluate(t0 + (t1 - t0) * f64::from(i) / 200.0);
3332 let w = q - Point3::new(0.0, 0.0, 0.0);
3333 let off_plane = (normal.dot(w) - d).abs();
3334 let off_cone = (w.z() - w.length() * half_angle.sin()).abs();
3335 assert!(off_plane < 1e-9, "off the plane by {off_plane}");
3336 assert!(off_cone < 1e-9, "off the cone by {off_cone}");
3337 }
3338 }
3339 }
3340
3341 #[test]
3345 fn plane_cone_conic_arc_declines_a_near_parabolic_ellipse() {
3346 let half_angle = 1.1_f64;
3347 let cone = ConicalSurface::new(
3348 Point3::new(0.0, 0.0, 0.0),
3349 Vec3::new(0.0, 0.0, 1.0),
3350 half_angle,
3351 )
3352 .unwrap();
3353 for shortfall in [1e-10, 3e-10, 8e-10] {
3354 let tilt = half_angle - shortfall / (2.0 * half_angle).sin();
3355 let normal = Vec3::new(tilt.sin(), 0.0, tilt.cos());
3356 let chains =
3357 exact_plane_analytic_reaching(AnalyticSurface::Cone(&cone), normal, 1.0, 10.0)
3358 .unwrap();
3359 let Some(chain) = chains.iter().find_map(|c| match c {
3360 ExactIntersectionCurve::Points(chain) => Some(chain),
3361 _ => None,
3362 }) else {
3363 continue;
3364 };
3365 let (from, to) = (chain[2], chain[chain.len() - 3]);
3366 assert!(
3367 plane_cone_conic_arc(&cone, normal, 1.0, from, from)
3368 .unwrap()
3369 .is_none(),
3370 "coincident ends"
3371 );
3372 let Some(arc) = plane_cone_conic_arc(&cone, normal, 1.0, from, to).unwrap() else {
3373 continue;
3374 };
3375 let (t0, t1) = arc.domain();
3376 for i in 0..=200 {
3377 let w = arc.evaluate(t0 + (t1 - t0) * f64::from(i) / 200.0)
3378 - Point3::new(0.0, 0.0, 0.0);
3379 let off_cone = (w.z() - w.length() * half_angle.sin()).abs();
3380 assert!(off_cone < 1e-8, "{shortfall}: off the cone by {off_cone}");
3381 }
3382 }
3383 }
3384
3385 #[test]
3386 fn plane_cylinder_perpendicular() {
3387 let cyl =
3388 CylindricalSurface::new(Point3::new(0.0, 0.0, 0.0), Vec3::new(0.0, 0.0, 1.0), 2.0)
3389 .unwrap();
3390
3391 let curves = intersect_plane_cylinder(&cyl, Vec3::new(0.0, 0.0, 1.0), 3.0).unwrap();
3393 assert!(!curves.is_empty(), "should find intersection curve");
3394 assert!(
3395 curves[0].points.len() > 10,
3396 "should have many sample points"
3397 );
3398
3399 let tol = Tolerance::loose();
3400 for pt in &curves[0].points {
3401 assert!(
3402 tol.approx_eq(pt.point.z(), 3.0),
3403 "z should be ~3.0, got {}",
3404 pt.point.z()
3405 );
3406 let r = pt.point.x().hypot(pt.point.y());
3407 assert!(tol.approx_eq(r, 2.0), "radius should be ~2.0, got {r}");
3408 }
3409 }
3410
3411 #[test]
3412 fn plane_sphere_equator() {
3413 let sphere = SphericalSurface::new(Point3::new(0.0, 0.0, 0.0), 3.0).unwrap();
3414
3415 let curves = intersect_plane_sphere(&sphere, Vec3::new(0.0, 0.0, 1.0), 0.0).unwrap();
3416 assert!(!curves.is_empty());
3417
3418 let tol = Tolerance::loose();
3419 for pt in &curves[0].points {
3420 assert!(
3421 tol.approx_eq(pt.point.z(), 0.0),
3422 "z should be ~0, got {}",
3423 pt.point.z()
3424 );
3425 let r = pt.point.x().hypot(pt.point.y());
3426 assert!(tol.approx_eq(r, 3.0), "radius should be ~3.0, got {r}");
3427 }
3428 }
3429
3430 #[test]
3431 fn plane_sphere_no_intersection() {
3432 let sphere = SphericalSurface::new(Point3::new(0.0, 0.0, 0.0), 1.0).unwrap();
3433
3434 let curves = intersect_plane_sphere(&sphere, Vec3::new(0.0, 0.0, 1.0), 5.0).unwrap();
3435 assert!(curves.is_empty());
3436 }
3437
3438 #[test]
3439 fn plane_cone_cross_section() {
3440 let cone = ConicalSurface::new(
3441 Point3::new(0.0, 0.0, 0.0),
3442 Vec3::new(0.0, 0.0, 1.0),
3443 std::f64::consts::FRAC_PI_4,
3444 )
3445 .unwrap();
3446
3447 let curves = intersect_plane_cone(&cone, Vec3::new(0.0, 0.0, 1.0), 1.0).unwrap();
3448 assert!(!curves.is_empty(), "should find intersection with cone");
3449 }
3450
3451 #[test]
3458 fn offset_parallel_equal_angle_cones_give_one_exact_ellipse() {
3459 let c1 = ConicalSurface::new(
3460 Point3::new(
3461 -16.999_999_999_999_975,
3462 -16.999_999_999_999_975,
3463 5.849_999_999_999_951,
3464 ),
3465 Vec3::new(0.0, 0.0, -1.0),
3466 0.785_398_163_397_433_5,
3467 )
3468 .unwrap();
3469 let c2 = ConicalSurface::new(
3470 Point3::new(
3471 -16.750_000_000_000_036,
3472 -16.750_000_000_000_018,
3473 0.749_999_999_999_881,
3474 ),
3475 Vec3::new(0.0, 0.0, 1.0),
3476 0.785_398_163_397_467_6,
3477 )
3478 .unwrap();
3479
3480 let curves = exact_cone_cone(&c1, &c2)
3481 .unwrap()
3482 .expect("offset parallel equal-angle cones must take the radical-plane path");
3483 assert_eq!(curves.len(), 1, "expected exactly one section conic");
3484 assert!(
3485 matches!(curves[0], ExactIntersectionCurve::Ellipse(_)),
3486 "expected an ellipse section, got {:?}",
3487 curves[0]
3488 );
3489 let ExactIntersectionCurve::Ellipse(ellipse) = &curves[0] else {
3490 return;
3491 };
3492
3493 for i in 0..16 {
3497 let p = crate::traits::ParametricCurve::evaluate(ellipse, TAU * f64::from(i) / 16.0);
3498 for (cone, label) in [(&c1, "c1"), (&c2, "c2")] {
3499 let rel = p - cone.apex();
3500 let rel_v = Vec3::new(rel.x(), rel.y(), rel.z());
3501 let axial = rel_v.dot(cone.axis());
3502 let radial = (rel_v - cone.axis() * axial).length();
3503 assert!(
3504 axial > 0.0,
3505 "{label}: sample on phantom nappe (axial {axial})"
3506 );
3507 let expect = cone.half_angle().tan() * axial;
3508 assert!(
3509 (radial - expect).abs() < 1e-9,
3510 "{label}: sample off surface by {}",
3511 (radial - expect).abs()
3512 );
3513 }
3514 }
3515 }
3516
3517 #[test]
3521 fn offset_parallel_cones_opening_apart_have_no_real_intersection() {
3522 let c1 = ConicalSurface::new(
3523 Point3::new(0.0, 0.0, 5.0),
3524 Vec3::new(0.0, 0.0, -1.0),
3525 std::f64::consts::FRAC_PI_4,
3526 )
3527 .unwrap();
3528 let c2 = ConicalSurface::new(
3529 Point3::new(0.25, 0.25, 20.0),
3530 Vec3::new(0.0, 0.0, 1.0),
3531 std::f64::consts::FRAC_PI_4,
3532 )
3533 .unwrap();
3534 let curves = exact_cone_cone(&c1, &c2)
3535 .unwrap()
3536 .expect("radical-plane path");
3537 assert!(curves.is_empty(), "disjoint nappes must yield no curves");
3538 }
3539
3540 #[test]
3543 fn offset_parallel_cones_with_unequal_angles_defer() {
3544 let c1 = ConicalSurface::new(
3545 Point3::new(0.0, 0.0, 5.0),
3546 Vec3::new(0.0, 0.0, -1.0),
3547 std::f64::consts::FRAC_PI_4,
3548 )
3549 .unwrap();
3550 let c2 = ConicalSurface::new(Point3::new(0.25, 0.25, 0.5), Vec3::new(0.0, 0.0, 1.0), 0.6)
3551 .unwrap();
3552 assert!(exact_cone_cone(&c1, &c2).unwrap().is_none());
3553 }
3554
3555 #[test]
3556 fn coaxial_cones_cross_at_single_circle() {
3557 let outer = ConicalSurface::new(
3562 Point3::new(0.0, 0.0, 50.0),
3563 Vec3::new(0.0, 0.0, -1.0),
3564 5.0_f64.atan(),
3565 )
3566 .unwrap();
3567 let inner = ConicalSurface::new(
3568 Point3::new(0.0, 0.0, 90.0),
3569 Vec3::new(0.0, 0.0, -1.0),
3570 10.0_f64.atan(),
3571 )
3572 .unwrap();
3573
3574 let curves = intersect_analytic_analytic_bounded(
3575 AnalyticSurface::Cone(&outer),
3576 AnalyticSurface::Cone(&inner),
3577 32,
3578 None,
3579 None,
3580 )
3581 .unwrap();
3582
3583 assert_eq!(
3584 curves.len(),
3585 1,
3586 "coaxial cones crossing at one circle must yield exactly one curve, got {}",
3587 curves.len()
3588 );
3589 for p in &curves[0].points {
3590 let r = p.point.x().hypot(p.point.y());
3591 assert!(
3592 (p.point.z() - 10.0).abs() < 1e-6 && (r - 8.0).abs() < 1e-6,
3593 "intersection point off the expected z=10,r=8 circle: {:?}",
3594 p.point
3595 );
3596 }
3597 }
3598
3599 #[test]
3600 fn plane_torus_cross_section() {
3601 let torus = ToroidalSurface::new(Point3::new(0.0, 0.0, 0.0), 5.0, 1.0).unwrap();
3602
3603 let curves = intersect_plane_torus(&torus, Vec3::new(0.0, 0.0, 1.0), 0.0).unwrap();
3604 assert!(
3605 !curves.is_empty(),
3606 "should find intersection curves with torus"
3607 );
3608 }
3609
3610 fn torus_implicit(p: Point3, major: f64, minor: f64) -> f64 {
3613 let rho = p.x().hypot(p.y());
3614 ((rho - major).hypot(p.z())) - minor
3615 }
3616
3617 #[test]
3623 fn oblique_cone_cylinder_traces_curves_on_both() {
3624 use crate::traits::ParametricCurve;
3625 let cone = ConicalSurface::new(
3629 Point3::new(0.0, 0.0, 3.0),
3630 Vec3::new(0.0, 0.0, -1.0),
3631 2.0_f64.atan(),
3632 )
3633 .unwrap();
3634 for (x0, loops) in [(0.5, 1), (0.0, 2)] {
3635 let cyl =
3636 CylindricalSurface::new(Point3::new(x0, 0.0, 1.0), Vec3::new(0.0, 1.0, 0.0), 0.6)
3637 .unwrap();
3638 for cone_first in [true, false] {
3639 let (a, b) = if cone_first {
3640 (
3641 AnalyticSurface::Cone(&cone),
3642 AnalyticSurface::Cylinder(&cyl),
3643 )
3644 } else {
3645 (
3646 AnalyticSurface::Cylinder(&cyl),
3647 AnalyticSurface::Cone(&cone),
3648 )
3649 };
3650 let curves = intersect_analytic_analytic(a, b, 32).unwrap();
3651 assert_eq!(curves.len(), loops, "x0 {x0}: loops");
3652 for c in &curves {
3653 let (t0, t1) = c.curve.domain();
3654 for k in 0..=64 {
3655 let t = (t1 - t0).mul_add(f64::from(k) / 64.0, t0);
3656 let p = ParametricCurve::evaluate(&c.curve, t);
3657 let rod = (p.x() - x0).hypot(p.z() - 1.0);
3660 assert!(
3661 (rod - 0.6).abs() < 1e-4,
3662 "x0 {x0}: off the rod by {}",
3663 rod - 0.6
3664 );
3665 let cone_r = p.x().hypot(p.y());
3666 assert!(
3667 (cone_r - 0.5 * (3.0 - p.z())).abs() < 1e-4,
3668 "x0 {x0}: off the cone at {p:?}"
3669 );
3670 }
3671 }
3672 }
3673 }
3674 }
3675
3676 #[test]
3677 fn oblique_cone_cylinder_defers_where_rulings_cannot_trace_it() {
3678 let t = 2.0_f64.atan();
3679 let cone =
3680 ConicalSurface::new(Point3::new(0.0, 0.0, 3.0), Vec3::new(0.0, 0.0, -1.0), t).unwrap();
3681 let through_apex =
3683 CylindricalSurface::new(Point3::new(0.0, 0.0, 3.0), Vec3::new(0.0, 1.0, 0.0), 0.6)
3684 .unwrap();
3685 assert!(ruling_cone_cylinder(&cone, &through_apex, true).is_none());
3686 let generator = Vec3::new(t.cos(), 0.0, -t.sin());
3688 let along = CylindricalSurface::new(Point3::new(0.0, 0.3, 0.0), generator, 0.2).unwrap();
3689 assert!(ruling_cone_cylinder(&cone, &along, true).is_none());
3690 let pin =
3693 ConicalSurface::new(Point3::new(20.5, 0.0, 0.0), Vec3::new(-1.0, 0.0, 0.0), t).unwrap();
3694 let tube =
3695 CylindricalSurface::new(Point3::new(0.0, 0.0, -10.0), Vec3::new(0.0, 0.0, 1.0), 20.0)
3696 .unwrap();
3697 assert!(ruling_cone_cylinder(&pin, &tube, true).is_none());
3698 }
3699
3700 #[test]
3701 fn parallel_cone_cylinder_gives_two_exact_branches() {
3702 use crate::traits::ParametricCurve;
3703 let cone = ConicalSurface::new(
3704 Point3::new(-5.45, -36.55, -4.85),
3705 Vec3::new(0.0, 0.0, 1.0),
3706 std::f64::consts::FRAC_PI_4,
3707 )
3708 .unwrap();
3709 let cyl = CylindricalSurface::new(
3710 Point3::new(-8.0, -34.0, -5.0),
3711 Vec3::new(0.0, 0.0, 1.0),
3712 4.45,
3713 )
3714 .unwrap();
3715 let v_hint = (1.484_924_240_492_058, 2.616_295_090_390_43);
3717 let curves = intersect_analytic_analytic_bounded(
3718 AnalyticSurface::Cone(&cone),
3719 AnalyticSurface::Cylinder(&cyl),
3720 32,
3721 Some(v_hint),
3722 Some((0.0, 2.5)),
3723 )
3724 .unwrap();
3725
3726 assert_eq!(curves.len(), 2, "expected exactly the two branches");
3727 for c in &curves {
3728 let (t0, t1) = c.curve.domain();
3729 for k in 0..=32 {
3730 let t = (t1 - t0).mul_add(f64::from(k) / 32.0, t0);
3731 let p = ParametricCurve::evaluate(&c.curve, t);
3732 let radial = ((p.x() + 8.0).powi(2) + (p.y() + 34.0).powi(2)).sqrt();
3734 assert!((radial - 4.45).abs() < 1e-6, "off cylinder: {radial}");
3735 let cone_r = ((p.x() + 5.45).powi(2) + (p.y() + 36.55).powi(2)).sqrt();
3737 assert!((cone_r - (p.z() + 4.85)).abs() < 1e-6, "off cone at {p:?}");
3738 assert!(p.z() >= -3.8 - 1e-9 && p.z() <= -3.0 + 1e-9, "z={}", p.z());
3740 }
3741 }
3742 }
3743
3744 #[test]
3747 fn coaxial_cone_cylinder_defers_to_other_paths() {
3748 let cone = ConicalSurface::new(
3749 Point3::new(0.0, 0.0, 0.0),
3750 Vec3::new(0.0, 0.0, 1.0),
3751 std::f64::consts::FRAC_PI_4,
3752 )
3753 .unwrap();
3754 let cyl =
3755 CylindricalSurface::new(Point3::new(0.0, 0.0, 0.0), Vec3::new(0.0, 0.0, 1.0), 2.0)
3756 .unwrap();
3757 assert!(
3758 algebraic_parallel_cone_cylinder(&cone, &cyl, None, None)
3759 .unwrap()
3760 .is_none()
3761 );
3762 }
3763
3764 #[test]
3765 fn oblique_cone_cylinder_defers_to_other_paths() {
3766 let cone = ConicalSurface::new(
3767 Point3::new(0.0, 0.0, 0.0),
3768 Vec3::new(0.0, 0.0, 1.0),
3769 std::f64::consts::FRAC_PI_4,
3770 )
3771 .unwrap();
3772 let cyl =
3773 CylindricalSurface::new(Point3::new(3.0, 0.0, 1.0), Vec3::new(1.0, 0.0, 0.0), 1.0)
3774 .unwrap();
3775 assert!(
3776 algebraic_parallel_cone_cylinder(&cone, &cyl, None, None)
3777 .unwrap()
3778 .is_none()
3779 );
3780 }
3781
3782 #[test]
3783 fn plane_torus_lobe_closes_and_stays_on_surface() {
3784 use crate::traits::ParametricCurve;
3785 let (major, minor) = (10.0, 3.0);
3786 let torus = ToroidalSurface::new(Point3::new(0.0, 0.0, 0.0), major, minor).unwrap();
3787
3788 for (n, d) in [
3792 (Vec3::new(0.0, -1.0, 0.0), 4.0), (Vec3::new(-1.0, 0.0, 0.0), -6.0), (Vec3::new(0.0, 0.0, 1.0), 0.0), ] {
3796 let curves = intersect_plane_torus(&torus, n, d).unwrap();
3797 assert!(!curves.is_empty(), "plane n={n:?} d={d} found no curves");
3798 for c in &curves {
3799 let p0 = ParametricCurve::evaluate(&c.curve, 0.0);
3800 let p1 = ParametricCurve::evaluate(&c.curve, 1.0);
3801 assert!(
3802 (p0 - p1).length() < 1e-7,
3803 "lobe not closed: gap={} (n={n:?} d={d})",
3804 (p0 - p1).length()
3805 );
3806 for k in 0..=64 {
3808 let t = f64::from(k) / 64.0;
3809 let p = ParametricCurve::evaluate(&c.curve, t);
3810 assert!(
3811 torus_implicit(p, major, minor).abs() < 1e-2,
3812 "off-surface point {p:?} implicit={}",
3813 torus_implicit(p, major, minor)
3814 );
3815 }
3816 }
3817 }
3818 }
3819
3820 #[test]
3821 fn plane_torus_inner_tangent_figure_eight_stays_open() {
3822 use crate::traits::ParametricCurve;
3823 let (major, minor) = (10.0, 3.0);
3824 let torus = ToroidalSurface::new(Point3::new(0.0, 0.0, 0.0), major, minor).unwrap();
3825
3826 let curves =
3832 intersect_plane_torus(&torus, Vec3::new(-1.0, 0.0, 0.0), -(major - minor)).unwrap();
3833 assert!(!curves.is_empty(), "inner-tangent plane found no curves");
3834 let max_gap = curves
3835 .iter()
3836 .map(|c| {
3837 let p0 = ParametricCurve::evaluate(&c.curve, 0.0);
3838 let p1 = ParametricCurve::evaluate(&c.curve, 1.0);
3839 (p0 - p1).length()
3840 })
3841 .fold(0.0_f64, f64::max);
3842 assert!(
3843 max_gap > 1e-2,
3844 "figure-eight chain was wrongly force-closed (max end-gap={max_gap})"
3845 );
3846 }
3847
3848 #[test]
3849 fn line_torus_box_edge_crossing_is_exact() {
3850 let torus = ToroidalSurface::new(Point3::new(0.0, 0.0, 0.0), 10.0, 3.0).unwrap();
3853 let ts = intersect_line_torus(
3854 &torus,
3855 Point3::new(6.0, -4.0, -5.0),
3856 Vec3::new(0.0, 0.0, 1.0),
3857 );
3858 assert_eq!(ts.len(), 2, "expected 2 crossings, got {ts:?}");
3860 let zs: Vec<f64> = ts.iter().map(|t| -5.0 + t).collect();
3861 let rho = 6.0_f64.hypot(4.0);
3862 let z_exp = (9.0 - (rho - 10.0).powi(2)).sqrt();
3863 assert!(
3864 (zs[0] - (-z_exp)).abs() < 1e-9,
3865 "z0={} exp={}",
3866 zs[0],
3867 -z_exp
3868 );
3869 assert!((zs[1] - z_exp).abs() < 1e-9, "z1={} exp={}", zs[1], z_exp);
3870 for &t in &ts {
3872 let p = Point3::new(6.0, -4.0, -5.0 + t);
3873 let rho = p.x().hypot(p.y());
3874 let impl_v = (rho - 10.0).hypot(p.z()) - 3.0;
3875 assert!(impl_v.abs() < 1e-9, "off-torus impl={impl_v}");
3876 }
3877 }
3878
3879 #[test]
3880 fn line_torus_miss_and_tangent() {
3881 let torus = ToroidalSurface::new(Point3::new(0.0, 0.0, 0.0), 10.0, 3.0).unwrap();
3882 let miss = intersect_line_torus(
3884 &torus,
3885 Point3::new(20.0, 0.0, 0.0),
3886 Vec3::new(0.0, 0.0, 1.0),
3887 );
3888 assert!(miss.is_empty(), "expected no crossings, got {miss:?}");
3889 let axis =
3891 intersect_line_torus(&torus, Point3::new(0.0, 0.0, 0.0), Vec3::new(0.0, 0.0, 1.0));
3892 assert!(axis.is_empty(), "z-axis should miss the tube, got {axis:?}");
3893 }
3894
3895 #[test]
3896 fn dispatch_via_analytic_surface() {
3897 let cyl =
3898 CylindricalSurface::new(Point3::new(0.0, 0.0, 0.0), Vec3::new(0.0, 0.0, 1.0), 1.0)
3899 .unwrap();
3900 let curves = intersect_plane_analytic(
3901 AnalyticSurface::Cylinder(&cyl),
3902 Vec3::new(0.0, 0.0, 1.0),
3903 0.0,
3904 )
3905 .unwrap();
3906 assert!(!curves.is_empty());
3907 }
3908
3909 #[test]
3910 fn perpendicular_cylinders_intersect() {
3911 let cyl_z =
3912 CylindricalSurface::new(Point3::new(0.0, 0.0, 0.0), Vec3::new(0.0, 0.0, 1.0), 1.0)
3913 .unwrap();
3914 let cyl_x =
3915 CylindricalSurface::new(Point3::new(0.0, 0.0, 0.0), Vec3::new(1.0, 0.0, 0.0), 1.0)
3916 .unwrap();
3917
3918 let curves = intersect_analytic_analytic(
3919 AnalyticSurface::Cylinder(&cyl_z),
3920 AnalyticSurface::Cylinder(&cyl_x),
3921 16,
3922 )
3923 .unwrap();
3924
3925 assert!(
3926 !curves.is_empty(),
3927 "perpendicular cylinders should intersect"
3928 );
3929
3930 for c in &curves {
3931 assert!(
3932 c.points.len() >= 2,
3933 "intersection curve should have >= 2 points, got {}",
3934 c.points.len()
3935 );
3936 }
3937 }
3938
3939 #[test]
3942 fn partially_overlapping_cylinders_meet_in_one_closed_loop() {
3943 let cyl_z =
3944 CylindricalSurface::new(Point3::new(0.0, 0.0, 0.0), Vec3::new(0.0, 0.0, 1.0), 1.0)
3945 .unwrap();
3946 let cyl_x =
3947 CylindricalSurface::new(Point3::new(0.0, 1.2, 0.0), Vec3::new(1.0, 0.0, 0.0), 1.0)
3948 .unwrap();
3949 let curves = algebraic_cylinder_cylinder(&cyl_z, &cyl_x)
3950 .unwrap()
3951 .unwrap();
3952 assert_eq!(curves.len(), 1);
3953 let curve = &curves[0].curve;
3954 let (t0, t1) = curve.domain();
3955 assert!((curve.evaluate(t0) - curve.evaluate(t1)).length() < 1e-9);
3956 let off = |p: Point3| {
3957 let on_z = (p.x().hypot(p.y()) - 1.0).abs();
3958 let on_x = ((p.y() - 1.2).hypot(p.z()) - 1.0).abs();
3959 on_z.max(on_x)
3960 };
3961 let worst = (0..=400)
3962 .map(|k| off(curve.evaluate(t0 + (t1 - t0) * f64::from(k) / 400.0)))
3963 .fold(0.0, f64::max);
3964 assert!(worst < 2e-4, "curve leaves the cylinders by {worst}");
3965 }
3966
3967 #[test]
3971 fn near_tangent_cylinders_find_their_loop_on_the_thinner_sweep() {
3972 let cyl_z =
3973 CylindricalSurface::new(Point3::new(0.0, 0.0, 0.0), Vec3::new(0.0, 0.0, 1.0), 1.0)
3974 .unwrap();
3975 let cyl_x =
3976 CylindricalSurface::new(Point3::new(0.0, 1.1998, 0.0), Vec3::new(1.0, 0.0, 0.0), 0.2)
3977 .unwrap();
3978 let curves = algebraic_cylinder_cylinder(&cyl_z, &cyl_x)
3979 .unwrap()
3980 .expect("the thin cylinder's sweep finds the loop");
3981 assert_eq!(curves.len(), 1);
3982 }
3983
3984 #[test]
3985 fn sphere_cylinder_intersect() {
3986 let sphere = SphericalSurface::new(Point3::new(0.0, 0.0, 0.0), 2.0).unwrap();
3987 let cyl =
3988 CylindricalSurface::new(Point3::new(0.0, 0.0, 0.0), Vec3::new(0.0, 0.0, 1.0), 1.0)
3989 .unwrap();
3990
3991 let curves = intersect_analytic_analytic(
3992 AnalyticSurface::Sphere(&sphere),
3993 AnalyticSurface::Cylinder(&cyl),
3994 16,
3995 )
3996 .unwrap();
3997
3998 assert!(!curves.is_empty(), "sphere and cylinder should intersect");
4002 }
4003
4004 #[test]
4005 fn exact_sphere_cylinder_coaxial_two_circles() {
4006 let sphere = SphericalSurface::new(Point3::new(0.0, 0.0, 0.0), 6.0).unwrap();
4009 let cyl =
4010 CylindricalSurface::new(Point3::new(0.0, 0.0, 0.0), Vec3::new(0.0, 0.0, 1.0), 3.0)
4011 .unwrap();
4012 let circles = exact_sphere_cylinder(&sphere, &cyl)
4013 .unwrap()
4014 .expect("coaxial case returns Some");
4015 assert_eq!(circles.len(), 2, "through-bore meets the sphere twice");
4016 let mut zs: Vec<f64> = circles
4017 .iter()
4018 .filter_map(|c| match c {
4019 ExactIntersectionCurve::Circle(circle) => {
4020 assert!(
4021 (circle.radius() - 3.0).abs() < 1e-9,
4022 "rim radius == cyl radius"
4023 );
4024 Some(circle.center().z())
4025 }
4026 _ => None,
4027 })
4028 .collect();
4029 assert_eq!(zs.len(), 2, "both sections must be exact circles");
4030 zs.sort_by(f64::total_cmp);
4031 let z = 27.0_f64.sqrt();
4032 assert!((zs[0] + z).abs() < 1e-9 && (zs[1] - z).abs() < 1e-9);
4033 }
4034
4035 #[test]
4036 fn exact_sphere_cylinder_non_coaxial_defers() {
4037 let sphere = SphericalSurface::new(Point3::new(0.0, 0.0, 0.0), 6.0).unwrap();
4039 let cyl =
4040 CylindricalSurface::new(Point3::new(2.0, 0.0, 0.0), Vec3::new(0.0, 0.0, 1.0), 3.0)
4041 .unwrap();
4042 assert!(
4043 exact_sphere_cylinder(&sphere, &cyl).unwrap().is_none(),
4044 "non-coaxial sphere/cylinder defers to the marcher"
4045 );
4046 }
4047
4048 fn circles_of(curves: &[ExactIntersectionCurve]) -> Vec<&Circle3D> {
4050 curves
4051 .iter()
4052 .filter_map(|c| match c {
4053 ExactIntersectionCurve::Circle(circle) => Some(circle),
4054 _ => None,
4055 })
4056 .collect()
4057 }
4058
4059 fn worst_off(
4062 circles: &[&Circle3D],
4063 torus: &ToroidalSurface,
4064 other: impl Fn(Point3) -> f64,
4065 ) -> f64 {
4066 let mut worst = 0.0_f64;
4067 for circle in circles {
4068 for k in 0..16 {
4069 let p = circle.evaluate(TAU * f64::from(k) / 16.0);
4070 let q = p - torus.center();
4071 let along = q.dot(torus.z_axis());
4072 let rho = (q - torus.z_axis() * along).length();
4073 let off = ((rho - torus.major_radius()).hypot(along) - torus.minor_radius()).abs();
4074 worst = worst.max(off).max(other(p).abs());
4075 }
4076 }
4077 worst
4078 }
4079
4080 #[test]
4081 fn exact_sphere_torus_meets_a_ball_on_the_axis_in_circles() {
4082 let torus = ToroidalSurface::new(Point3::new(0.0, 0.0, 0.0), 4.0, 1.5).unwrap();
4083 for height in [0.0, 1.0] {
4084 let centre = Point3::new(0.0, 0.0, height);
4085 let sphere = SphericalSurface::new(centre, 3.0).unwrap();
4086 let curves = exact_sphere_torus(&sphere, &torus).unwrap().unwrap();
4087 let circles = circles_of(&curves);
4088 assert_eq!((curves.len(), circles.len()), (2, 2), "height {height}");
4089 let worst = worst_off(&circles, &torus, |p| (p - centre).length() - 3.0);
4090 assert!(worst < 1e-9, "height {height}: {worst}");
4091 }
4092 }
4093
4094 #[test]
4095 fn exact_sphere_torus_misses_touches_and_defers() {
4096 let torus = ToroidalSurface::new(Point3::new(0.0, 0.0, 0.0), 4.0, 1.5).unwrap();
4097 let ball = |x: f64, r: f64| SphericalSurface::new(Point3::new(x, 0.0, 0.0), r).unwrap();
4098 assert!(
4099 exact_sphere_torus(&ball(0.0, 1.0), &torus)
4100 .unwrap()
4101 .unwrap()
4102 .is_empty(),
4103 "a small ball in the hole misses"
4104 );
4105 assert!(
4106 exact_sphere_torus(&ball(0.0, 2.5), &torus)
4107 .unwrap()
4108 .is_none(),
4109 "a ball touching the inner equator defers"
4110 );
4111 assert!(
4112 exact_sphere_torus(&ball(1.0, 3.0), &torus)
4113 .unwrap()
4114 .is_none(),
4115 "a ball off the axis defers"
4116 );
4117 let spindle = ToroidalSurface::with_axis_and_ref_dir(
4118 Point3::new(0.0, 0.0, 0.0),
4119 1.0,
4120 2.0,
4121 Vec3::new(0.0, 0.0, 1.0),
4122 Vec3::new(1.0, 0.0, 0.0),
4123 )
4124 .unwrap();
4125 assert!(
4126 exact_sphere_torus(&ball(0.0, 2.5), &spindle)
4127 .unwrap()
4128 .is_none()
4129 );
4130 }
4131
4132 #[test]
4133 fn exact_cylinder_torus_meets_a_coaxial_rod_in_circles() {
4134 let torus = ToroidalSurface::new(Point3::new(0.0, 0.0, 0.0), 4.0, 1.5).unwrap();
4135 let z = Vec3::new(0.0, 0.0, 1.0);
4136 let rod = |r: f64| CylindricalSurface::new(Point3::new(0.0, 0.0, -5.0), z, r).unwrap();
4137 let curves = exact_cylinder_torus(&rod(4.2), &torus).unwrap().unwrap();
4138 let circles = circles_of(&curves);
4139 assert_eq!((curves.len(), circles.len()), (2, 2));
4140 let worst = worst_off(&circles, &torus, |p| p.x().hypot(p.y()) - 4.2);
4141 assert!(worst < 1e-9, "{worst}");
4142 assert!(
4143 exact_cylinder_torus(&rod(2.0), &torus)
4144 .unwrap()
4145 .unwrap()
4146 .is_empty(),
4147 "a rod clear in the hole misses"
4148 );
4149 assert!(
4150 exact_cylinder_torus(&rod(5.5), &torus).unwrap().is_none(),
4151 "a wall touching the outer equator defers"
4152 );
4153 let tilted =
4154 CylindricalSurface::new(Point3::new(0.0, 0.0, 0.0), Vec3::new(0.0, 0.1, 1.0), 4.2)
4155 .unwrap();
4156 let offset = CylindricalSurface::new(Point3::new(0.5, 0.0, 0.0), z, 4.2).unwrap();
4157 assert!(exact_cylinder_torus(&tilted, &torus).unwrap().is_none());
4158 assert!(exact_cylinder_torus(&offset, &torus).unwrap().is_none());
4159 let spindle = ToroidalSurface::with_axis_and_ref_dir(
4160 Point3::new(0.0, 0.0, 0.0),
4161 1.0,
4162 2.0,
4163 z,
4164 Vec3::new(1.0, 0.0, 0.0),
4165 )
4166 .unwrap();
4167 assert!(
4168 exact_cylinder_torus(&rod(0.5), &spindle).unwrap().is_none(),
4169 "a spindle torus's inner lemon also meets the rod"
4170 );
4171 }
4172
4173 fn off_axis_loops(cylinder_origin: Point3, cylinder_radius: f64) -> (usize, f64) {
4176 let sphere = SphericalSurface::new(Point3::new(0.0, 0.0, 0.0), 2.0).unwrap();
4177 let cyl =
4178 CylindricalSurface::new(cylinder_origin, Vec3::new(0.0, 0.0, 1.0), cylinder_radius)
4179 .unwrap();
4180 let curves = algebraic_sphere_cylinder(&sphere, &cyl, true)
4181 .unwrap()
4182 .unwrap();
4183 let mut worst: f64 = 0.0;
4184 for c in &curves {
4185 for ip in &c.points {
4186 let on_sphere = sphere.evaluate(ip.param1.0, ip.param1.1);
4187 let on_cylinder = cyl.evaluate(ip.param2.0, ip.param2.1);
4188 worst = worst
4189 .max((on_sphere - ip.point).length())
4190 .max((on_cylinder - ip.point).length());
4191 }
4192 let (t0, t1) = c.curve.domain();
4193 assert!((c.curve.evaluate(t0) - c.curve.evaluate(t1)).length() < 1e-9);
4194 for k in 0..=400 {
4195 let p = c.curve.evaluate(t0 + (t1 - t0) * f64::from(k) / 400.0);
4196 let on_sphere = ((p - Point3::new(0.0, 0.0, 0.0)).length() - 2.0).abs();
4197 let on_cylinder = ((p.x() - cylinder_origin.x())
4198 .hypot(p.y() - cylinder_origin.y())
4199 - cylinder_radius)
4200 .abs();
4201 worst = worst.max(on_sphere).max(on_cylinder);
4202 }
4203 }
4204 (curves.len(), worst)
4205 }
4206
4207 #[test]
4210 fn off_axis_drill_through_a_sphere_meets_it_in_two_loops() {
4211 let (count, worst) = off_axis_loops(Point3::new(0.5, 0.0, 0.0), 0.2);
4212 assert_eq!(count, 2);
4213 assert!(worst < 1e-5, "loops leave the surfaces by {worst}");
4214 }
4215
4216 #[test]
4218 fn cylinder_over_a_spheres_side_meets_it_in_one_loop() {
4219 let (count, worst) = off_axis_loops(Point3::new(1.8, 0.0, 0.0), 0.5);
4220 assert_eq!(count, 1);
4221 assert!(worst < 5e-4, "loop leaves the surfaces by {worst}");
4222 }
4223
4224 #[test]
4225 fn disjoint_cylinders_no_intersection() {
4226 let cyl_a =
4227 CylindricalSurface::new(Point3::new(0.0, 0.0, 0.0), Vec3::new(0.0, 0.0, 1.0), 0.5)
4228 .unwrap();
4229 let cyl_b =
4230 CylindricalSurface::new(Point3::new(5.0, 0.0, 0.0), Vec3::new(0.0, 0.0, 1.0), 0.5)
4231 .unwrap();
4232
4233 let curves = intersect_analytic_analytic(
4234 AnalyticSurface::Cylinder(&cyl_a),
4235 AnalyticSurface::Cylinder(&cyl_b),
4236 16,
4237 )
4238 .unwrap();
4239
4240 assert!(curves.is_empty(), "disjoint cylinders should not intersect");
4241 }
4242
4243 fn collect_points(curve: &ExactIntersectionCurve) -> Vec<Point3> {
4247 use crate::traits::ParametricCurve;
4248 match curve {
4249 ExactIntersectionCurve::Circle(c) => (0..=64)
4250 .map(|i| ParametricCurve::evaluate(c, TAU * f64::from(i) / 64.0))
4251 .collect(),
4252 ExactIntersectionCurve::Ellipse(e) => (0..=64)
4253 .map(|i| ParametricCurve::evaluate(e, TAU * f64::from(i) / 64.0))
4254 .collect(),
4255 ExactIntersectionCurve::Points(pts) => pts.clone(),
4256 }
4257 }
4258
4259 fn assert_on_plane_and_cone(
4262 curves: &[ExactIntersectionCurve],
4263 cone: &ConicalSurface,
4264 n: Vec3,
4265 d: f64,
4266 z_bound: (f64, f64),
4267 ) {
4268 assert!(!curves.is_empty(), "expected at least one section curve");
4269 let mut total = 0;
4270 for curve in curves {
4271 for p in collect_points(curve) {
4272 total += 1;
4273 let plane_err = (n.x() * p.x() + n.y() * p.y() + n.z() * p.z() - d).abs();
4274 assert!(
4275 plane_err < 1e-9,
4276 "point off plane by {plane_err:.2e}: {p:?}"
4277 );
4278 let (u, v) = cone.project_point(p);
4279 let q = cone.evaluate(u, v);
4280 let cone_err =
4281 ((p.x() - q.x()).powi(2) + (p.y() - q.y()).powi(2) + (p.z() - q.z()).powi(2))
4282 .sqrt();
4283 assert!(cone_err < 1e-7, "point off cone by {cone_err:.2e}: {p:?}");
4284 assert!(v >= -1e-9, "point on phantom nappe (v={v:.4}): {p:?}");
4285 assert!(
4286 p.z() >= z_bound.0 - 1e-6 && p.z() <= z_bound.1 + 1e-6,
4287 "point z={:.4} outside sane bound {z_bound:?}: {p:?}",
4288 p.z()
4289 );
4290 }
4291 }
4292 assert!(total >= 8, "too few section points ({total})");
4293 }
4294
4295 #[test]
4296 fn oblique_plane_cone_ellipse_is_exact_and_on_both() {
4297 let cone = ConicalSurface::new(
4301 Point3::new(0.0, 0.0, 0.0),
4302 Vec3::new(0.0, 0.0, 1.0),
4303 std::f64::consts::FRAC_PI_4,
4304 )
4305 .unwrap();
4306 let n = Vec3::new(0.3, 0.0, 1.0).normalize().unwrap();
4307 let d = n.z() * 5.0;
4309 let curves = exact_plane_cone(&cone, n, d, 0.0).unwrap();
4310 assert!(
4311 curves
4312 .iter()
4313 .any(|c| matches!(c, ExactIntersectionCurve::Ellipse(_))),
4314 "oblique steep plane × cone must yield an exact Ellipse"
4315 );
4316 assert_on_plane_and_cone(&curves, &cone, n, d, (0.0, 12.0));
4318 }
4319
4320 #[test]
4321 fn oblique_plane_cone_wrong_nappe_is_empty() {
4322 let cone = ConicalSurface::new(
4326 Point3::new(0.0, 0.0, 0.0),
4327 Vec3::new(0.0, 0.0, 1.0),
4328 std::f64::consts::FRAC_PI_4,
4329 )
4330 .unwrap();
4331 let n = Vec3::new(0.3, 0.0, 1.0).normalize().unwrap();
4332 let d = n.z() * -5.0;
4333 let curves = exact_plane_cone(&cone, n, d, 0.0).unwrap();
4334 assert!(
4335 curves.is_empty(),
4336 "plane on the phantom-nappe side must yield no real curve, got {}",
4337 curves.len()
4338 );
4339 }
4340
4341 #[test]
4342 fn oblique_plane_cone_parabola_on_both_single_branch() {
4343 let cone = ConicalSurface::new(
4346 Point3::new(0.0, 0.0, 0.0),
4347 Vec3::new(0.0, 0.0, 1.0),
4348 std::f64::consts::FRAC_PI_4,
4349 )
4350 .unwrap();
4351 let n = Vec3::new(1.0, 0.0, 1.0).normalize().unwrap();
4352 let d = n.x() * 3.0 + n.z() * 3.0; let curves = exact_plane_cone(&cone, n, d, 0.0).unwrap();
4354 assert_eq!(
4355 curves.len(),
4356 1,
4357 "a parabola is a single branch, got {}",
4358 curves.len()
4359 );
4360 assert_on_plane_and_cone(&curves, &cone, n, d, (0.0, 400.0));
4362 }
4363
4364 #[test]
4365 fn oblique_plane_cone_hyperbola_real_nappe_only() {
4366 let cone = ConicalSurface::new(
4374 Point3::new(-59.0, -59.0, 15.85),
4375 Vec3::new(0.0, 0.0, -1.0),
4376 std::f64::consts::FRAC_PI_4,
4377 )
4378 .unwrap();
4379 let n = Vec3::new(0.0, 0.995_18, 0.098_02).normalize().unwrap();
4380 let d = -58.360_56;
4381 let cos_theta = n.dot(cone.axis()).abs();
4382 assert!(cos_theta < 0.2, "expected a shallow (hyperbola) plane");
4383 let curves = exact_plane_cone(&cone, n, d, 0.0).unwrap();
4384 assert_on_plane_and_cone(&curves, &cone, n, d, (5.0, 15.85));
4387 for c in &curves {
4389 assert!(
4390 matches!(c, ExactIntersectionCurve::Points(_)),
4391 "hyperbola must be sampled Points, not a closed conic"
4392 );
4393 }
4394 }
4395}