ae18766b01
- roomArea: polygonArea/perimeter/centroid. - ceiling: normalizeOutline/isValidOutline/ceilingArea/outlineBBox/ outlineCentroid/pointInOutline (+ BBox-Struct, serde camelCase). - stair: defaultStepCount/stairGeometry (gerade/L/Wendel)/stairCut/stairBBox/ pointHitsStair (StairParams-Struct, strukturgleich; Nullguard ||1e-9 wie TS). - roomBoundary: detectRooms/roomFromPointInside(Faces)/pointInPolygon (planarer Graph, Half-Edge-Faces, Miter-Offset; WallSegment/WallFace). - Batch-Fassaden + Harness-Slices je Modul (Struktur exakt + Werte). Verifiziert: vitest 263/263 (33 Parity), tsc sauber, build:kernel2d sauber. Bekannte Teil-Deckung: detectRooms nur mit Rechtecken (1 Face) getestet — komplexe Topologie-Reihenfolge nicht mit Zufallsgraphen abgesichert.
2990 lines
92 KiB
Rust
2990 lines
92 KiB
Rust
// kernel2d — Rust/WASM-Port von `src/geometry/kernel2d.ts` (+ reine Geometrie aus
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// room/ceiling/roomArea/stair). Handgeschriebene f64-Mathematik, KEINE externen
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// Geometrie-Crates: Akzeptanzkriterium ist Differential-Paritaet gegen die naive
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// TS-Routine (siehe PORT_PLAN.md). Fremd-Crates mit anderem Algorithmus braechen
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// die Paritaet per Konstruktion.
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//
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// Aufbau (waechst ueber die Phasen des PORT_PLAN):
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// - Phase 1 (hier): Vec2 + Vektor-Helfer (Port von src/model/geometry.ts) +
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// leere Batch-WASM-Fassade. `cargo test` + `build:kernel2d` gruen.
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// - Phase 2+: Schnitt/Offset/Trim/Fillet/Fläche/Kreis/detectRooms/… .
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//
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// KRITISCHE PARITAETS-REGELN (PORT_PLAN §6), gelten fuer den ganzen Port:
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// - `len` = Math.hypot → `f64::hypot` (NICHT (x²+y²).sqrt()).
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// - `normalize` Null-Guard: `len || 1` → `if l==0.0 {1.0} else {l}` (Ergebnis
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// {0,0}, kein NaN).
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// - Zwei Epsilons: EPS=1e-7 (kernel2d) UND hartkodiert 1e-9 in lineIntersect.
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// - Term-Reihenfolge in cross/signedArea/Diskriminante exakt beibehalten
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// (f64 nicht assoziativ; kein Kahan/Reorder).
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use serde::{Deserialize, Serialize};
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use std::cmp::Ordering;
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/// EPS aus kernel2d.ts (Primitive/Schnitt/Trim). ACHTUNG: `lineIntersect`
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/// benutzt bewusst ein ANDERES, hartkodiertes 1e-9 — nicht dieses EPS.
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pub const EPS: f64 = 1e-7;
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#[derive(Serialize, Deserialize, Clone, Copy, Debug, PartialEq)]
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pub struct Vec2 {
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pub x: f64,
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pub y: f64,
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}
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impl Vec2 {
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pub const fn new(x: f64, y: f64) -> Self {
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Vec2 { x, y }
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}
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}
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// --- Vektor-Helfer: 1:1-Port aus src/model/geometry.ts -----------------------
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#[inline]
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pub fn sub(a: Vec2, b: Vec2) -> Vec2 {
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Vec2 { x: a.x - b.x, y: a.y - b.y }
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}
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#[inline]
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pub fn add(a: Vec2, b: Vec2) -> Vec2 {
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Vec2 { x: a.x + b.x, y: a.y + b.y }
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}
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#[inline]
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pub fn scale(a: Vec2, s: f64) -> Vec2 {
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Vec2 { x: a.x * s, y: a.y * s }
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}
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/// `len` = `Math.hypot` → `f64::hypot` (NICHT sqrt(x²+y²), siehe §6).
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#[inline]
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pub fn len(a: Vec2) -> f64 {
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a.x.hypot(a.y)
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}
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/// Null-Guard wie TS `len(a) || 1`: bei Laenge 0 → Divisor 1 (Ergebnis {0,0}).
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#[inline]
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pub fn normalize(a: Vec2) -> Vec2 {
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let l = len(a);
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let l = if l == 0.0 { 1.0 } else { l };
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Vec2 { x: a.x / l, y: a.y / l }
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}
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/// Linke Normale (90° gegen den Uhrzeigersinn gedreht).
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#[inline]
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pub fn left_normal(a: Vec2) -> Vec2 {
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Vec2 { x: -a.y, y: a.x }
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}
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/// Kreuzprodukt (Z-Komponente). Term-Reihenfolge exakt wie TS: `p.x*q.y - p.y*q.x`.
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#[inline]
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pub fn cross(p: Vec2, q: Vec2) -> f64 {
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p.x * q.y - p.y * q.x
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}
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/// Skalarprodukt. Term-Reihenfolge exakt wie TS: `p.x*q.x + p.y*q.y`.
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#[inline]
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pub fn dot(p: Vec2, q: Vec2) -> f64 {
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p.x * q.x + p.y * q.y
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}
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/// Schnittpunkt der Geraden (a + t·da) mit (b + s·db). None bei (nahezu)
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/// parallelen Richtungen. HARTKODIERTES 1e-9 (nicht EPS!) — der Offset-Miter-
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/// Fallback haengt an genau dieser Schwelle (§6).
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pub fn line_intersect(a: Vec2, da: Vec2, b: Vec2, db: Vec2) -> Option<Vec2> {
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let denom = cross(da, db);
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if denom.abs() < 1e-9 {
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return None; // parallel → kein Schnitt
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}
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let t = cross(sub(b, a), db) / denom;
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Some(add(a, scale(da, t)))
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}
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/// Abstand zweier Punkte (= `len(sub(a,b))`, hypot-basiert).
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#[inline]
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pub fn dist(a: Vec2, b: Vec2) -> f64 {
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len(sub(a, b))
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}
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/// Punkt-Gleichheit innerhalb Toleranz (Port von `vecEqual`, Default-eps = EPS).
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pub fn vec_equal(a: Vec2, b: Vec2, eps: f64) -> bool {
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(a.x - b.x).abs() <= eps && (a.y - b.y).abs() <= eps
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}
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// --- Punkt/Strecke -----------------------------------------------------------
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/// Projektionsparameter t von p auf die Gerade a→b (nicht geklemmt).
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/// Guard `l2 < EPS → 0` exakt wie TS.
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pub fn project_param(p: Vec2, a: Vec2, b: Vec2) -> f64 {
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let ab = sub(b, a);
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let l2 = dot(ab, ab);
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if l2 < EPS {
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return 0.0;
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}
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dot(sub(p, a), ab) / l2
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}
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/// Naechster Punkt auf der STRECKE a→b zu p (t auf [0,1] geklemmt). Klemm-
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/// Reihenfolge wie TS `Math.max(0, Math.min(1, t))` → `.min(1).max(0)`.
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pub fn closest_point_on_segment(p: Vec2, a: Vec2, b: Vec2) -> Vec2 {
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let t = project_param(p, a, b).min(1.0).max(0.0);
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add(a, scale(sub(b, a), t))
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}
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/// Abstand von p zur Strecke a→b.
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pub fn point_segment_distance(p: Vec2, a: Vec2, b: Vec2) -> f64 {
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dist(p, closest_point_on_segment(p, a, b))
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}
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// --- Schnitt -----------------------------------------------------------------
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/// Ergebnis eines Strecken-/Linienschnitts (Port von `Hit`).
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#[derive(Serialize, Deserialize, Clone, Copy, Debug, PartialEq)]
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pub struct Hit {
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pub point: Vec2,
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/// Parameter auf der ersten Strecke (0 = a1, 1 = a2).
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pub t: f64,
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/// Parameter auf der zweiten Strecke (0 = b1, 1 = b2).
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pub s: f64,
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}
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/// Schnitt zweier STRECKEN a1→a2 und b1→b2 (None ausserhalb [-eps,1+eps] oder
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/// parallel). ACHTUNG: denom-Test gegen `EPS` (Konstante), Bereichstest gegen
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/// den Parameter `eps` — im Default-Pfad sind beide EPS (wie TS-Default).
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pub fn segment_intersect(a1: Vec2, a2: Vec2, b1: Vec2, b2: Vec2, eps: f64) -> Option<Hit> {
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let da = sub(a2, a1);
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let db = sub(b2, b1);
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let denom = cross(da, db);
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if denom.abs() < EPS {
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return None; // parallel/kollinear
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}
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let t = cross(sub(b1, a1), db) / denom;
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let s = cross(sub(b1, a1), da) / denom;
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if t < -eps || t > 1.0 + eps || s < -eps || s > 1.0 + eps {
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return None;
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}
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Some(Hit { point: add(a1, scale(da, t)), t, s })
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}
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/// Schnitt der unendlichen GERADE a1→a2 mit der STRECKE b1→b2 (s ∈ [0,1], t frei).
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pub fn line_segment_intersect(a1: Vec2, a2: Vec2, b1: Vec2, b2: Vec2, eps: f64) -> Option<Hit> {
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let da = sub(a2, a1);
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let db = sub(b2, b1);
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let denom = cross(da, db);
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if denom.abs() < EPS {
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return None;
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}
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let t = cross(sub(b1, a1), db) / denom;
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let s = cross(sub(b1, a1), da) / denom;
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if s < -eps || s > 1.0 + eps {
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return None;
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}
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Some(Hit { point: add(a1, scale(da, t)), t, s })
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}
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/// Kanten einer Polylinie als (from,to)-Paare (Schlusskante bei `closed`).
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/// Leere/ein-Punkt-Eingabe → leer (usize-Unterlauf vermeiden, TS-Verhalten).
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pub fn polyline_edges(pts: &[Vec2], closed: bool) -> Vec<(Vec2, Vec2)> {
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let mut out = Vec::new();
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if pts.is_empty() {
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return out;
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}
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for i in 0..pts.len() - 1 {
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out.push((pts[i], pts[i + 1]));
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}
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if closed && pts.len() > 2 {
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out.push((pts[pts.len() - 1], pts[0]));
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}
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out
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}
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/// Alle Schnittpunkte einer STRECKE mit den Kanten einer Polylinie, nach t
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/// sortiert, dedupliziert ab Schwelle 1e-6. STABILE Sortierung (`sort_by`) wie
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/// JS `Array.sort`.
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pub fn segment_polyline_hits(a1: Vec2, a2: Vec2, pts: &[Vec2], closed: bool) -> Vec<Hit> {
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let mut hits: Vec<Hit> = Vec::new();
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for (b1, b2) in polyline_edges(pts, closed) {
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if let Some(h) = segment_intersect(a1, a2, b1, b2, EPS) {
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hits.push(h);
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}
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}
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hits.sort_by(|p, q| p.t.partial_cmp(&q.t).unwrap_or(std::cmp::Ordering::Equal));
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let mut dedup: Vec<Hit> = Vec::new();
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for h in hits {
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if dedup.is_empty() || (dedup[dedup.len() - 1].t - h.t).abs() > 1e-6 {
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dedup.push(h);
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}
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}
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dedup
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}
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// --- Kreis-Schnitte ----------------------------------------------------------
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/// Schnittpunkte einer unendlichen GERADE a→b mit einem Kreis (0/1/2 Punkte).
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/// Diskriminante `B*B - 4*A*C` in exakt dieser Term-Reihenfolge; Klemmung
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/// `disc < -EPS → []`, sonst `disc < 0 → 0`.
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pub fn line_circle_intersect(a: Vec2, b: Vec2, center: Vec2, r: f64) -> Vec<Vec2> {
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let d = sub(b, a);
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let f = sub(a, center);
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let aa = dot(d, d);
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if aa < EPS {
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return Vec::new();
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}
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let bb = 2.0 * dot(f, d);
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let cc = dot(f, f) - r * r;
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let mut disc = bb * bb - 4.0 * aa * cc;
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if disc < -EPS {
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return Vec::new();
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}
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if disc < 0.0 {
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disc = 0.0;
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}
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let sq = disc.sqrt();
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let t1 = (-bb - sq) / (2.0 * aa);
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let t2 = (-bb + sq) / (2.0 * aa);
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let mut out = vec![add(a, scale(d, t1))];
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if (t1 - t2).abs() > EPS {
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out.push(add(a, scale(d, t2)));
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}
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out
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}
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/// Schnittpunkte einer STRECKE a→b mit einem Kreis (nur t ∈ [-EPS, 1+EPS]).
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pub fn segment_circle_intersect(a: Vec2, b: Vec2, center: Vec2, r: f64) -> Vec<Vec2> {
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line_circle_intersect(a, b, center, r)
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.into_iter()
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.filter(|p| {
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let t = project_param(*p, a, b);
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t >= -EPS && t <= 1.0 + EPS
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})
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.collect()
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}
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/// Schnittpunkte zweier Kreise (0/1/2 Punkte).
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pub fn circle_circle_intersect(c1: Vec2, r1: f64, c2: Vec2, r2: f64) -> Vec<Vec2> {
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let d = dist(c1, c2);
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if d < EPS {
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return Vec::new(); // konzentrisch
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}
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if d > r1 + r2 + EPS || d < (r1 - r2).abs() - EPS {
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return Vec::new(); // getrennt/innen
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}
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let a = (r1 * r1 - r2 * r2 + d * d) / (2.0 * d);
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let h2 = r1 * r1 - a * a;
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let h = if h2 > 0.0 { h2.sqrt() } else { 0.0 };
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let u = normalize(sub(c2, c1));
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let mid = add(c1, scale(u, a));
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let n = left_normal(u);
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if h < EPS {
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return vec![mid];
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}
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vec![add(mid, scale(n, h)), add(mid, scale(n, -h))]
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}
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// --- Polygon-Flaeche / Wicklung ----------------------------------------------
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/// Vorzeichenbehaftete Polygonflaeche (Shoelace); >0 = CCW, <0 = CW.
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/// Summierung in identischer Vertex-Reihenfolge (f64 nicht assoziativ).
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pub fn signed_area(pts: &[Vec2]) -> f64 {
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let n = pts.len();
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if n == 0 {
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return 0.0;
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}
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let mut s = 0.0;
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for i in 0..n {
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let a = pts[i];
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let b = pts[(i + 1) % n];
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s += a.x * b.y - b.x * a.y;
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}
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s / 2.0
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}
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/// Ob ein Polygonzug gegen den Uhrzeigersinn (CCW) gewickelt ist.
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pub fn is_ccw(pts: &[Vec2]) -> bool {
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signed_area(pts) > 0.0
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}
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// --- Offset ------------------------------------------------------------------
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/// Offset einer einzelnen Strecke um `d` (links positiv).
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pub fn offset_segment(a: Vec2, b: Vec2, d: f64) -> (Vec2, Vec2) {
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let n = left_normal(normalize(sub(b, a)));
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let off = scale(n, d);
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(add(a, off), add(b, off))
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}
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/// Offset einer Polylinie um `d` (links positiv) mit GEHRUNG (miter). Bei
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/// (nahezu) parallelen Nachbarkanten faellt `line_intersect` (Schwelle 1e-9)
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/// auf den verschobenen Endpunkt zurueck — dieser geometrische Sprung MUSS an
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/// exakt 1e-9 haengen (nicht EPS). Selbstschnitte werden NICHT geheilt (wie TS).
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pub fn offset_polyline(pts: &[Vec2], d: f64, closed: bool) -> Vec<Vec2> {
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// Auf signifikante Kanten reduzieren (Duplikate verwerfen).
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let mut clean: Vec<Vec2> = Vec::new();
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for &p in pts {
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if clean.is_empty() || dist(clean[clean.len() - 1], p) > EPS {
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clean.push(p);
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}
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}
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if closed && clean.len() > 1 && dist(clean[0], clean[clean.len() - 1]) <= EPS {
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clean.pop();
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}
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let n = clean.len();
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if n < 2 {
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return pts.to_vec();
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}
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let edges: Vec<(Vec2, Vec2)> = polyline_edges(&clean, closed)
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.into_iter()
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.map(|(a, b)| offset_segment(a, b, d))
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.collect();
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if edges.is_empty() {
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return pts.to_vec();
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}
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// Schnitt zweier (verschobener) Kanten als unendliche Geraden; None → fallback.
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let join = |e1: (Vec2, Vec2), e2: (Vec2, Vec2), fallback: Vec2| -> Vec2 {
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let d1 = sub(e1.1, e1.0);
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let d2 = sub(e2.1, e2.0);
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line_intersect(e1.0, d1, e2.0, d2).unwrap_or(fallback)
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};
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let m = edges.len();
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let mut result: Vec<Vec2> = Vec::new();
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if !closed {
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result.push(edges[0].0);
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for i in 0..m - 1 {
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result.push(join(edges[i], edges[i + 1], edges[i].1));
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}
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result.push(edges[m - 1].1);
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return result;
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}
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for i in 0..m {
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let prev = edges[(i + m - 1) % m];
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let curr = edges[i];
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result.push(join(prev, curr, curr.0));
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}
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result
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}
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// --- Fillet (Eck-Verrundung) -------------------------------------------------
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/// Ergebnis einer Eck-Verrundung (Port von `Fillet`). serde-camelCase, damit die
|
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/// JSON-Keys (`tangentA`/`startAngle` …) exakt der TS-Referenz entsprechen.
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|
#[derive(Serialize, Deserialize, Clone, Copy, Debug, PartialEq)]
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#[serde(rename_all = "camelCase")]
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|
pub struct Fillet {
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pub center: Vec2,
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pub radius: f64,
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/// Tangentenpunkt auf dem ersten Schenkel (corner→p1).
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pub tangent_a: Vec2,
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/// Tangentenpunkt auf dem zweiten Schenkel (corner→p2).
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pub tangent_b: Vec2,
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pub start_angle: f64,
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pub end_angle: f64,
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}
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|
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/// Verrundet die Ecke bei `corner` (Schenkel corner→p1, corner→p2) mit Radius r.
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/// None bei (nahezu) kollinearen/zu kurzen Schenkeln. Transzendente Kette
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|
/// (`acos/tan/sin/atan2`) — libm nativ↔wasm↔JS driftet um letzte ULP, daher im
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|
/// Diff-Test Winkel-Epsilon 1e-7 rad (Struktur/None-Entscheidung bleibt exakt).
|
|
pub fn fillet_corner(corner: Vec2, p1: Vec2, p2: Vec2, r: f64) -> Option<Fillet> {
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let u1 = normalize(sub(p1, corner));
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let u2 = normalize(sub(p2, corner));
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// Klemm-Reihenfolge wie TS `Math.max(-1, Math.min(1, dot))`.
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let cos_theta = dot(u1, u2).min(1.0).max(-1.0);
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let theta = cos_theta.acos();
|
|
if theta < 1e-4 || std::f64::consts::PI - theta < 1e-4 {
|
|
return None; // kollinear
|
|
}
|
|
let tan_half = (theta / 2.0).tan();
|
|
if tan_half < EPS {
|
|
return None;
|
|
}
|
|
let setback = r / tan_half;
|
|
if setback > len(sub(p1, corner)) + EPS || setback > len(sub(p2, corner)) + EPS {
|
|
return None;
|
|
}
|
|
let tangent_a = add(corner, scale(u1, setback));
|
|
let tangent_b = add(corner, scale(u2, setback));
|
|
let bis = normalize(add(u1, u2));
|
|
let center_dist = r / (theta / 2.0).sin();
|
|
let center = add(corner, scale(bis, center_dist));
|
|
let start_angle = (tangent_a.y - center.y).atan2(tangent_a.x - center.x);
|
|
let end_angle = (tangent_b.y - center.y).atan2(tangent_b.x - center.x);
|
|
Some(Fillet {
|
|
center,
|
|
radius: r,
|
|
tangent_a,
|
|
tangent_b,
|
|
start_angle,
|
|
end_angle,
|
|
})
|
|
}
|
|
|
|
// --- Trim / Split / Join -----------------------------------------------------
|
|
// Reine Geometrie auf Polylinien (`Vec2[]` + `closed`). Struktur- und
|
|
// reihenfolgeabhaengig — Sortier-Reihenfolge, Dedup-Schwellen (1e-6) und die
|
|
// greedy-Verbindungslogik von joinChains muessen EXAKT wie TS sein.
|
|
|
|
/// Polylinie / Cutter / Kette: `{pts, closed}` (Port des TS-`{pts, closed}`).
|
|
#[derive(Serialize, Deserialize, Clone, Debug)]
|
|
pub struct Polyline {
|
|
pub pts: Vec<Vec2>,
|
|
pub closed: bool,
|
|
}
|
|
|
|
/// Ein Schnitt-Treffer auf einer Kante: Kantenindex + Parameter + Punkt.
|
|
#[derive(Clone, Copy)]
|
|
struct EdgeHit {
|
|
edge: usize,
|
|
t: f64,
|
|
point: Vec2,
|
|
}
|
|
|
|
/// Lineare Interpolation zweier Punkte.
|
|
fn lerp(a: Vec2, b: Vec2, t: f64) -> Vec2 {
|
|
add(a, scale(sub(b, a), t))
|
|
}
|
|
|
|
/// Entfernt aufeinanderfolgende (nahezu) gleiche Punkte (kein Ringschluss).
|
|
fn dedupe_consecutive(pts: &[Vec2]) -> Vec<Vec2> {
|
|
let mut out: Vec<Vec2> = Vec::new();
|
|
for &p in pts {
|
|
if out.is_empty() || !vec_equal(out[out.len() - 1], p, EPS) {
|
|
out.push(p);
|
|
}
|
|
}
|
|
out
|
|
}
|
|
|
|
/// Dedup aufeinanderfolgender Punkte UND schliessender Duplikat-Endpunkt.
|
|
fn dedupe_ring(pts: &[Vec2]) -> Vec<Vec2> {
|
|
let mut out = dedupe_consecutive(pts);
|
|
if out.len() > 1 && vec_equal(out[0], out[out.len() - 1], EPS) {
|
|
out.pop();
|
|
}
|
|
out
|
|
}
|
|
|
|
/// Vergleichsfunktion `(edge, t)` wie TS `(p.edge-q.edge) || (p.t-q.t)`, stabil.
|
|
fn cmp_edge_t(p: &EdgeHit, q: &EdgeHit) -> Ordering {
|
|
p.edge
|
|
.cmp(&q.edge)
|
|
.then(p.t.partial_cmp(&q.t).unwrap_or(Ordering::Equal))
|
|
}
|
|
|
|
/// Zerschneidet eine STRECKE an allen inneren Cutter-Schnitten (t ∈ (EPS,1-EPS)).
|
|
pub fn split_segment_by_cutters(a1: Vec2, a2: Vec2, cutters: &[Polyline]) -> Vec<(Vec2, Vec2)> {
|
|
let mut ts: Vec<f64> = vec![0.0, 1.0];
|
|
for c in cutters {
|
|
for h in segment_polyline_hits(a1, a2, &c.pts, c.closed) {
|
|
if h.t > EPS && h.t < 1.0 - EPS {
|
|
ts.push(h.t);
|
|
}
|
|
}
|
|
}
|
|
ts.sort_by(|p, q| p.partial_cmp(q).unwrap_or(Ordering::Equal));
|
|
let da = sub(a2, a1);
|
|
let mut pieces: Vec<(Vec2, Vec2)> = Vec::new();
|
|
for i in 0..ts.len() - 1 {
|
|
if ts[i + 1] - ts[i] < 1e-6 {
|
|
continue;
|
|
}
|
|
pieces.push((add(a1, scale(da, ts[i])), add(a1, scale(da, ts[i + 1]))));
|
|
}
|
|
pieces
|
|
}
|
|
|
|
/// Trim: schneidet an den Cuttern und VERWIRFT das dem `pick` naechste Teilstueck.
|
|
pub fn trim_segment(a1: Vec2, a2: Vec2, cutters: &[Polyline], pick: Vec2) -> Vec<(Vec2, Vec2)> {
|
|
let pieces = split_segment_by_cutters(a1, a2, cutters);
|
|
if pieces.len() <= 1 {
|
|
return pieces;
|
|
}
|
|
let mut best = 0usize;
|
|
let mut best_d = f64::INFINITY;
|
|
for (i, pc) in pieces.iter().enumerate() {
|
|
let d = point_segment_distance(pick, pc.0, pc.1);
|
|
if d < best_d {
|
|
best_d = d;
|
|
best = i;
|
|
}
|
|
}
|
|
pieces
|
|
.into_iter()
|
|
.enumerate()
|
|
.filter(|(i, _)| *i != best)
|
|
.map(|(_, p)| p)
|
|
.collect()
|
|
}
|
|
|
|
/// Globaler Lauf-Parameter (edgeIndex + t) des dem Punkt naechsten Kettenpunktes.
|
|
fn nearest_param_on_chain(edges: &[(Vec2, Vec2)], p: Vec2) -> f64 {
|
|
let mut best = 0.0;
|
|
let mut best_d = f64::INFINITY;
|
|
for (ei, &(a, b)) in edges.iter().enumerate() {
|
|
let t = project_param(p, a, b).min(1.0).max(0.0);
|
|
let q = add(a, scale(sub(b, a), t));
|
|
let d = dist(p, q);
|
|
if d < best_d {
|
|
best_d = d;
|
|
best = ei as f64 + t;
|
|
}
|
|
}
|
|
best
|
|
}
|
|
|
|
/// Quick-Trim einer ganzen Kurve an einem Klickpunkt (siehe TS-Doku).
|
|
pub fn trim_polyline(pts: &[Vec2], closed: bool, cutters: &[Polyline], pick: Vec2) -> Vec<Polyline> {
|
|
let edges = polyline_edges(pts, closed);
|
|
if edges.is_empty() {
|
|
return vec![Polyline { pts: pts.to_vec(), closed }];
|
|
}
|
|
let mut cuts: Vec<EdgeHit> = Vec::new();
|
|
for ei in 0..edges.len() {
|
|
let (a1, a2) = edges[ei];
|
|
for c in cutters {
|
|
for h in segment_polyline_hits(a1, a2, &c.pts, c.closed) {
|
|
if h.t > EPS && h.t < 1.0 - EPS {
|
|
cuts.push(EdgeHit { edge: ei, t: h.t, point: h.point });
|
|
}
|
|
}
|
|
}
|
|
}
|
|
cuts.sort_by(cmp_edge_t);
|
|
let mut cut: Vec<EdgeHit> = Vec::new();
|
|
for h in cuts {
|
|
if let Some(prev) = cut.last() {
|
|
if prev.edge == h.edge && (prev.t - h.t).abs() < 1e-6 {
|
|
continue;
|
|
}
|
|
}
|
|
cut.push(h);
|
|
}
|
|
if cut.is_empty() {
|
|
return vec![Polyline { pts: pts.to_vec(), closed }];
|
|
}
|
|
|
|
if !closed {
|
|
let pick_pos = nearest_param_on_chain(&edges, pick);
|
|
let cut_pos: Vec<f64> = cut.iter().map(|c| c.edge as f64 + c.t).collect();
|
|
let mut lo_idx: isize = -1;
|
|
let mut hi_idx: usize = cut.len();
|
|
for i in 0..cut.len() {
|
|
if cut_pos[i] <= pick_pos {
|
|
lo_idx = i as isize;
|
|
} else {
|
|
hi_idx = i;
|
|
break;
|
|
}
|
|
}
|
|
let mut result: Vec<Polyline> = Vec::new();
|
|
if lo_idx >= 0 {
|
|
let c = cut[lo_idx as usize];
|
|
let mut head: Vec<Vec2> = pts[..c.edge + 1].to_vec();
|
|
head.push(c.point);
|
|
let d = dedupe_consecutive(&head);
|
|
if d.len() >= 2 {
|
|
result.push(Polyline { pts: d, closed: false });
|
|
}
|
|
}
|
|
if hi_idx < cut.len() {
|
|
let c = cut[hi_idx];
|
|
let mut tail: Vec<Vec2> = vec![c.point];
|
|
for k in c.edge + 1..pts.len() {
|
|
tail.push(pts[k]);
|
|
}
|
|
let d = dedupe_consecutive(&tail);
|
|
if d.len() >= 2 {
|
|
result.push(Polyline { pts: d, closed: false });
|
|
}
|
|
}
|
|
return result;
|
|
}
|
|
|
|
// Geschlossen.
|
|
if cut.len() == 1 {
|
|
return vec![Polyline { pts: pts.to_vec(), closed: true }];
|
|
}
|
|
let total = edges.len();
|
|
let span = |e_x: usize, p_x: Vec2, e_y: usize, p_y: Vec2| -> Vec<Vec2> {
|
|
let mut out: Vec<Vec2> = vec![p_x];
|
|
let mut e = e_x;
|
|
let mut steps = 0usize;
|
|
while steps <= total {
|
|
if e == e_y {
|
|
break;
|
|
}
|
|
out.push(edges[e].1);
|
|
e = (e + 1) % total;
|
|
steps += 1;
|
|
}
|
|
out.push(p_y);
|
|
dedupe_consecutive(&out)
|
|
};
|
|
let pick_pos = nearest_param_on_chain(&edges, pick);
|
|
let cut_pos: Vec<f64> = cut.iter().map(|c| c.edge as f64 + c.t).collect();
|
|
let mut seg: isize = -1;
|
|
for i in 0..cut.len() {
|
|
let a = cut_pos[i];
|
|
let b = cut_pos[(i + 1) % cut.len()];
|
|
let inside = if i == cut.len() - 1 {
|
|
pick_pos >= a || pick_pos <= b
|
|
} else {
|
|
pick_pos >= a && pick_pos <= b
|
|
};
|
|
if inside {
|
|
seg = i as isize;
|
|
break;
|
|
}
|
|
}
|
|
if seg < 0 {
|
|
seg = 0;
|
|
}
|
|
let seg = seg as usize;
|
|
let from = cut[(seg + 1) % cut.len()];
|
|
let to = cut[seg];
|
|
let chain = span(from.edge, from.point, to.edge, to.point);
|
|
if chain.len() < 2 {
|
|
return Vec::new();
|
|
}
|
|
vec![Polyline { pts: chain, closed: false }]
|
|
}
|
|
|
|
/// Verlaengert das gewaehlte Ende bis zur naechsten Cutter-Kante (oder None).
|
|
pub fn extend_segment(
|
|
a1: Vec2,
|
|
a2: Vec2,
|
|
end: &str,
|
|
cutters: &[Polyline],
|
|
) -> Option<(Vec2, Vec2)> {
|
|
let mut best_t: Option<f64> = None;
|
|
for c in cutters {
|
|
for (b1, b2) in polyline_edges(&c.pts, c.closed) {
|
|
let h = match line_segment_intersect(a1, a2, b1, b2, EPS) {
|
|
Some(h) => h,
|
|
None => continue,
|
|
};
|
|
if end == "end" && h.t > 1.0 + EPS {
|
|
if best_t.map_or(true, |bt| h.t < bt) {
|
|
best_t = Some(h.t);
|
|
}
|
|
} else if end == "start" && h.t < -EPS {
|
|
if best_t.map_or(true, |bt| h.t > bt) {
|
|
best_t = Some(h.t);
|
|
}
|
|
}
|
|
}
|
|
}
|
|
let bt = best_t?;
|
|
let da = sub(a2, a1);
|
|
let hit_point = add(a1, scale(da, bt));
|
|
Some(if end == "end" {
|
|
(a1, hit_point)
|
|
} else {
|
|
(hit_point, a2)
|
|
})
|
|
}
|
|
|
|
/// Teilt eine Polylinie an EINEM Punkt P = lerp(pts[edgeIndex], next, t).
|
|
pub fn split_polyline_at_param(
|
|
pts: &[Vec2],
|
|
closed: bool,
|
|
edge_index: usize,
|
|
t: f64,
|
|
) -> Vec<Vec<Vec2>> {
|
|
let n = pts.len();
|
|
if n < 2 {
|
|
return vec![pts.to_vec()];
|
|
}
|
|
let a = pts[edge_index];
|
|
let b = pts[(edge_index + 1) % n];
|
|
let p = lerp(a, b, t);
|
|
let at_start = t <= EPS;
|
|
let at_end = t >= 1.0 - EPS;
|
|
|
|
if !closed {
|
|
let mut left: Vec<Vec2> = pts[..edge_index + 1].to_vec();
|
|
if !at_start && !at_end {
|
|
left.push(p);
|
|
} else if at_end {
|
|
left.push(b);
|
|
}
|
|
let mut right: Vec<Vec2> = Vec::new();
|
|
if !at_start && !at_end {
|
|
right.push(p);
|
|
} else if at_start {
|
|
right.push(a);
|
|
}
|
|
for i in edge_index + 1..n {
|
|
right.push(pts[i]);
|
|
}
|
|
let pieces: Vec<Vec<Vec2>> = [left, right]
|
|
.into_iter()
|
|
.filter(|s| s.len() >= 2)
|
|
.collect();
|
|
return if !pieces.is_empty() {
|
|
pieces
|
|
} else {
|
|
vec![pts.to_vec()]
|
|
};
|
|
}
|
|
|
|
let mut out: Vec<Vec2> = Vec::new();
|
|
if !at_start {
|
|
out.push(p);
|
|
}
|
|
for k in 1..=n {
|
|
out.push(pts[(edge_index + k) % n]);
|
|
}
|
|
if !at_start {
|
|
out.push(p);
|
|
} else {
|
|
out.push(a);
|
|
}
|
|
vec![dedupe_consecutive(&out)]
|
|
}
|
|
|
|
/// Teilt ein GESCHLOSSENES Polygon an zwei Randpunkten via Sehne (2 Ringe).
|
|
pub fn split_closed_by_chord(
|
|
pts: &[Vec2],
|
|
i: usize,
|
|
ti: f64,
|
|
j: usize,
|
|
tj: f64,
|
|
) -> Option<(Vec<Vec2>, Vec<Vec2>)> {
|
|
let n = pts.len();
|
|
if n < 3 || i == j {
|
|
return None;
|
|
}
|
|
let (ia, ta, ib, tb) = if i > j {
|
|
(j, tj, i, ti)
|
|
} else {
|
|
(i, ti, j, tj)
|
|
};
|
|
let p_a = lerp(pts[ia], pts[(ia + 1) % n], ta);
|
|
let p_b = lerp(pts[ib], pts[(ib + 1) % n], tb);
|
|
let mut arc1: Vec<Vec2> = vec![p_a];
|
|
for k in ia + 1..=ib {
|
|
arc1.push(pts[k % n]);
|
|
}
|
|
arc1.push(p_b);
|
|
let mut arc2: Vec<Vec2> = vec![p_b];
|
|
for k in ib + 1..=ia + n {
|
|
arc2.push(pts[k % n]);
|
|
}
|
|
arc2.push(p_a);
|
|
Some((dedupe_ring(&arc1), dedupe_ring(&arc2)))
|
|
}
|
|
|
|
/// Entfernt das Segment `edge_index` (offen: laengeres Stueck; geschlossen: auftrennen).
|
|
pub fn remove_segment(pts: &[Vec2], closed: bool, edge_index: usize) -> Polyline {
|
|
let n = pts.len();
|
|
if closed {
|
|
let mut out: Vec<Vec2> = Vec::new();
|
|
for k in 1..=n {
|
|
out.push(pts[(edge_index + k) % n]);
|
|
}
|
|
return Polyline { pts: dedupe_consecutive(&out), closed: false };
|
|
}
|
|
if n == 0 {
|
|
return Polyline { pts: Vec::new(), closed: false };
|
|
}
|
|
if edge_index == 0 {
|
|
return Polyline { pts: pts[1..].to_vec(), closed: false };
|
|
}
|
|
if edge_index >= n - 1 {
|
|
return Polyline { pts: pts[..n - 1].to_vec(), closed: false };
|
|
}
|
|
let left = pts[..edge_index + 1].to_vec();
|
|
let right = pts[edge_index + 1..].to_vec();
|
|
if left.len() >= right.len() {
|
|
Polyline { pts: left, closed: false }
|
|
} else {
|
|
Polyline { pts: right, closed: false }
|
|
}
|
|
}
|
|
|
|
/// Kanten einer (offenen ODER implizit geschlossenen) Punktliste.
|
|
fn polyline_edges_auto(pts: &[Vec2]) -> Vec<(Vec2, Vec2)> {
|
|
let closed = pts.len() > 2 && vec_equal(pts[0], pts[pts.len() - 1], EPS);
|
|
if closed {
|
|
polyline_edges(&pts[..pts.len() - 1], true)
|
|
} else {
|
|
polyline_edges(pts, false)
|
|
}
|
|
}
|
|
|
|
/// Offene Polylinie an gegebenen EdgeHits (auf ihren Kanten) zerschneiden.
|
|
fn split_open_by_edge_hits(pts: &[Vec2], hits: &[EdgeHit]) -> Vec<Vec<Vec2>> {
|
|
if pts.is_empty() {
|
|
return Vec::new();
|
|
}
|
|
let mut pieces: Vec<Vec<Vec2>> = Vec::new();
|
|
let mut cur: Vec<Vec2> = vec![pts[0]];
|
|
let mut hi = 0usize;
|
|
for ei in 0..pts.len() - 1 {
|
|
while hi < hits.len() && hits[hi].edge == ei {
|
|
let p = hits[hi].point;
|
|
cur.push(p);
|
|
pieces.push(cur.clone());
|
|
cur = vec![p];
|
|
hi += 1;
|
|
}
|
|
cur.push(pts[ei + 1]);
|
|
}
|
|
pieces.push(cur);
|
|
pieces
|
|
.into_iter()
|
|
.map(|s| dedupe_consecutive(&s))
|
|
.filter(|s| s.len() >= 2)
|
|
.collect()
|
|
}
|
|
|
|
/// Offene Polylinie an einer Liste von Schnitt-PUNKTEN (auf dem Zug) zerschneiden.
|
|
fn split_open_at_hits(pts: &[Vec2], cut_points: &[Vec2]) -> Vec<Vec<Vec2>> {
|
|
if cut_points.is_empty() {
|
|
return vec![pts.to_vec()];
|
|
}
|
|
let mut hits: Vec<EdgeHit> = Vec::new();
|
|
for ei in 0..pts.len().saturating_sub(1) {
|
|
let a = pts[ei];
|
|
let b = pts[ei + 1];
|
|
for &cp in cut_points {
|
|
let t = project_param(cp, a, b);
|
|
if t > EPS && t < 1.0 - EPS && point_segment_distance(cp, a, b) < 1e-6 {
|
|
hits.push(EdgeHit { edge: ei, t, point: cp });
|
|
}
|
|
}
|
|
}
|
|
hits.sort_by(cmp_edge_t);
|
|
split_open_by_edge_hits(pts, &hits)
|
|
}
|
|
|
|
/// Teilt das Ziel an allen Schnittpunkten mit den anderen Polylinien.
|
|
pub fn split_at_intersections(
|
|
target_pts: &[Vec2],
|
|
closed: bool,
|
|
others: &[Vec<Vec2>],
|
|
) -> Vec<Vec<Vec2>> {
|
|
let edges = polyline_edges(target_pts, closed);
|
|
let mut hits: Vec<EdgeHit> = Vec::new();
|
|
for ei in 0..edges.len() {
|
|
let (a1, a2) = edges[ei];
|
|
for o in others {
|
|
for (b1, b2) in polyline_edges_auto(o) {
|
|
if let Some(h) = segment_intersect(a1, a2, b1, b2, EPS) {
|
|
hits.push(EdgeHit { edge: ei, t: h.t, point: h.point });
|
|
}
|
|
}
|
|
}
|
|
}
|
|
hits.sort_by(cmp_edge_t);
|
|
let mut dedup: Vec<EdgeHit> = Vec::new();
|
|
for h in hits {
|
|
if let Some(prev) = dedup.last() {
|
|
if prev.edge == h.edge && (prev.t - h.t).abs() < 1e-6 {
|
|
continue;
|
|
}
|
|
}
|
|
if h.t <= EPS || h.t >= 1.0 - EPS {
|
|
continue;
|
|
}
|
|
dedup.push(h);
|
|
}
|
|
if dedup.is_empty() {
|
|
return vec![target_pts.to_vec()];
|
|
}
|
|
if closed {
|
|
if dedup.len() == 2 {
|
|
return match split_closed_by_chord(
|
|
target_pts, dedup[0].edge, dedup[0].t, dedup[1].edge, dedup[1].t,
|
|
) {
|
|
Some((a, b)) => vec![a, b],
|
|
None => vec![target_pts.to_vec()],
|
|
};
|
|
}
|
|
let opened = split_polyline_at_param(target_pts, true, dedup[0].edge, dedup[0].t)
|
|
.into_iter()
|
|
.next()
|
|
.unwrap_or_default();
|
|
let cut_pts: Vec<Vec2> = dedup[1..].iter().map(|h| h.point).collect();
|
|
return split_open_at_hits(&opened, &cut_pts);
|
|
}
|
|
split_open_by_edge_hits(target_pts, &dedup)
|
|
}
|
|
|
|
/// Verschmilzt Polylinien an koinzidenten Endpunkten zu laengeren Ketten.
|
|
/// Greedy `i<j`-erster-Treffer-dann-Neustart — reihenfolgeabhaengig, exakt wie TS.
|
|
pub fn join_chains(polylines: &[Polyline]) -> Vec<Polyline> {
|
|
let mut closed_out: Vec<Polyline> = Vec::new();
|
|
let mut open: Vec<Vec<Vec2>> = Vec::new();
|
|
for pl in polylines {
|
|
if pl.closed {
|
|
closed_out.push(Polyline { pts: pl.pts.clone(), closed: true });
|
|
} else if pl.pts.len() >= 2 {
|
|
open.push(pl.pts.clone());
|
|
} else if pl.pts.len() == 1 {
|
|
open.push(pl.pts.clone());
|
|
}
|
|
}
|
|
|
|
let mut merged = true;
|
|
while merged {
|
|
merged = false;
|
|
'outer: for i in 0..open.len() {
|
|
for j in i + 1..open.len() {
|
|
let a = &open[i];
|
|
let b = &open[j];
|
|
let a_s = a[0];
|
|
let a_e = a[a.len() - 1];
|
|
let b_s = b[0];
|
|
let b_e = b[b.len() - 1];
|
|
let combined: Option<Vec<Vec2>> = if vec_equal(a_e, b_s, EPS) {
|
|
let mut v = a.clone();
|
|
v.extend_from_slice(&b[1..]);
|
|
Some(v)
|
|
} else if vec_equal(a_e, b_e, EPS) {
|
|
let mut v = a.clone();
|
|
let mut rev: Vec<Vec2> = b[..b.len() - 1].to_vec();
|
|
rev.reverse();
|
|
v.extend(rev);
|
|
Some(v)
|
|
} else if vec_equal(a_s, b_e, EPS) {
|
|
let mut v = b.clone();
|
|
v.extend_from_slice(&a[1..]);
|
|
Some(v)
|
|
} else if vec_equal(a_s, b_s, EPS) {
|
|
let mut v: Vec<Vec2> = b.clone();
|
|
v.reverse();
|
|
v.extend_from_slice(&a[1..]);
|
|
Some(v)
|
|
} else {
|
|
None
|
|
};
|
|
if let Some(c) = combined {
|
|
open.remove(j);
|
|
open[i] = c;
|
|
merged = true;
|
|
break 'outer;
|
|
}
|
|
}
|
|
}
|
|
}
|
|
|
|
let mut out: Vec<Polyline> = closed_out;
|
|
for chain in open {
|
|
if chain.len() > 2 && vec_equal(chain[0], chain[chain.len() - 1], EPS) {
|
|
out.push(Polyline { pts: chain[..chain.len() - 1].to_vec(), closed: true });
|
|
} else {
|
|
out.push(Polyline { pts: chain, closed: false });
|
|
}
|
|
}
|
|
out
|
|
}
|
|
|
|
// --- Polygon-Kennzahlen (roomArea) -------------------------------------------
|
|
|
|
/// Absolute Polygonflaeche in m² (Port von `polygonArea`).
|
|
pub fn polygon_area(pts: &[Vec2]) -> f64 {
|
|
signed_area(pts).abs()
|
|
}
|
|
|
|
/// Umfang eines geschlossenen Polygons (Summe aller Kantenlaengen, hypot).
|
|
pub fn perimeter(pts: &[Vec2]) -> f64 {
|
|
let n = pts.len();
|
|
if n < 2 {
|
|
return 0.0;
|
|
}
|
|
let mut p = 0.0;
|
|
for i in 0..n {
|
|
let a = pts[i];
|
|
let b = pts[(i + 1) % n];
|
|
p += (b.x - a.x).hypot(b.y - a.y);
|
|
}
|
|
p
|
|
}
|
|
|
|
/// Flaechenschwerpunkt (momenten-gewichtet); degeneriert (|A|<1e-12) → Mittelwert.
|
|
pub fn centroid(pts: &[Vec2]) -> Vec2 {
|
|
let n = pts.len();
|
|
if n == 0 {
|
|
return Vec2::new(0.0, 0.0);
|
|
}
|
|
if n < 3 {
|
|
let (mut sx, mut sy) = (0.0, 0.0);
|
|
for p in pts {
|
|
sx += p.x;
|
|
sy += p.y;
|
|
}
|
|
return Vec2::new(sx / n as f64, sy / n as f64);
|
|
}
|
|
let (mut a, mut cx, mut cy) = (0.0, 0.0, 0.0);
|
|
for i in 0..n {
|
|
let p = pts[i];
|
|
let q = pts[(i + 1) % n];
|
|
let cr = p.x * q.y - q.x * p.y;
|
|
a += cr;
|
|
cx += (p.x + q.x) * cr;
|
|
cy += (p.y + q.y) * cr;
|
|
}
|
|
a /= 2.0;
|
|
if a.abs() < 1e-12 {
|
|
let (mut sx, mut sy) = (0.0, 0.0);
|
|
for p in pts {
|
|
sx += p.x;
|
|
sy += p.y;
|
|
}
|
|
return Vec2::new(sx / n as f64, sy / n as f64);
|
|
}
|
|
Vec2::new(cx / (6.0 * a), cy / (6.0 * a))
|
|
}
|
|
|
|
// --- Umriss-/Decken-Utilities (ceiling) --------------------------------------
|
|
|
|
/// Kleinste sinnvolle Deckenflaeche (m²) — darunter gilt der Umriss als entartet.
|
|
pub const MIN_CEILING_AREA: f64 = 1e-4;
|
|
|
|
/// Achsparallele Bounding-Box (serde camelCase: minX/minY/maxX/maxY wie TS).
|
|
#[derive(Serialize, Deserialize, Clone, Copy, Debug, PartialEq)]
|
|
#[serde(rename_all = "camelCase")]
|
|
pub struct BBox {
|
|
pub min_x: f64,
|
|
pub min_y: f64,
|
|
pub max_x: f64,
|
|
pub max_y: f64,
|
|
}
|
|
|
|
/// Normalisiert einen Umriss: Dedup, schliessenden Duplikat-Endpunkt weg,
|
|
/// CCW erzwingen. None bei < 3 Restpunkten.
|
|
pub fn normalize_outline(pts: &[Vec2]) -> Option<Vec<Vec2>> {
|
|
let mut clean: Vec<Vec2> = Vec::new();
|
|
for &p in pts {
|
|
if clean.is_empty() || !vec_equal(clean[clean.len() - 1], p, EPS) {
|
|
clean.push(p);
|
|
}
|
|
}
|
|
if clean.len() > 1 && vec_equal(clean[0], clean[clean.len() - 1], EPS) {
|
|
clean.pop();
|
|
}
|
|
if clean.len() < 3 {
|
|
return None;
|
|
}
|
|
if is_ccw(&clean) {
|
|
Some(clean)
|
|
} else {
|
|
clean.reverse();
|
|
Some(clean)
|
|
}
|
|
}
|
|
|
|
/// Fläche eines Deckenumrisses in m² (immer positiv).
|
|
pub fn ceiling_area(pts: &[Vec2]) -> f64 {
|
|
signed_area(pts).abs()
|
|
}
|
|
|
|
/// Ob ein Umriss ein gueltiges (nicht entartetes) Deckenpolygon bildet.
|
|
pub fn is_valid_outline(pts: &[Vec2]) -> bool {
|
|
match normalize_outline(pts) {
|
|
Some(norm) => ceiling_area(&norm) >= MIN_CEILING_AREA,
|
|
None => false,
|
|
}
|
|
}
|
|
|
|
/// Achsparallele Bounding-Box; leer/entartet → Null-Box.
|
|
pub fn outline_bbox(pts: &[Vec2]) -> BBox {
|
|
let mut min_x = f64::INFINITY;
|
|
let mut min_y = f64::INFINITY;
|
|
let mut max_x = f64::NEG_INFINITY;
|
|
let mut max_y = f64::NEG_INFINITY;
|
|
for p in pts {
|
|
min_x = min_x.min(p.x);
|
|
min_y = min_y.min(p.y);
|
|
max_x = max_x.max(p.x);
|
|
max_y = max_y.max(p.y);
|
|
}
|
|
if !min_x.is_finite() {
|
|
return BBox { min_x: 0.0, min_y: 0.0, max_x: 0.0, max_y: 0.0 };
|
|
}
|
|
BBox { min_x, min_y, max_x, max_y }
|
|
}
|
|
|
|
/// Schwerpunkt des Umriss-Polygons (ceiling-Variante: f = 1/(6·signedArea)).
|
|
pub fn outline_centroid(pts: &[Vec2]) -> Vec2 {
|
|
let a = signed_area(pts);
|
|
if a.abs() < 1e-12 {
|
|
let (mut sx, mut sy) = (0.0, 0.0);
|
|
for p in pts {
|
|
sx += p.x;
|
|
sy += p.y;
|
|
}
|
|
let n = if pts.is_empty() { 1.0 } else { pts.len() as f64 };
|
|
return Vec2::new(sx / n, sy / n);
|
|
}
|
|
let (mut cx, mut cy) = (0.0, 0.0);
|
|
let n = pts.len();
|
|
for i in 0..n {
|
|
let p = pts[i];
|
|
let q = pts[(i + 1) % n];
|
|
let cr = p.x * q.y - q.x * p.y;
|
|
cx += (p.x + q.x) * cr;
|
|
cy += (p.y + q.y) * cr;
|
|
}
|
|
let f = 1.0 / (6.0 * a);
|
|
Vec2::new(cx * f, cy * f)
|
|
}
|
|
|
|
/// Punkt-in-Polygon (Ray-Casting) fuer einen geschlossenen Umriss. Der TS-Guard
|
|
/// `(b.y-a.y || 1e-12)` wird exakt nachgebildet (Null-Nenner → 1e-12).
|
|
pub fn point_in_outline(p: Vec2, outline: &[Vec2]) -> bool {
|
|
let n = outline.len();
|
|
if n == 0 {
|
|
return false;
|
|
}
|
|
let mut inside = false;
|
|
let mut j = n - 1;
|
|
for i in 0..n {
|
|
let a = outline[i];
|
|
let b = outline[j];
|
|
let denom = if b.y - a.y == 0.0 { 1e-12 } else { b.y - a.y };
|
|
let intersect =
|
|
(a.y > p.y) != (b.y > p.y) && p.x < (b.x - a.x) * (p.y - a.y) / denom + a.x;
|
|
if intersect {
|
|
inside = !inside;
|
|
}
|
|
j = i;
|
|
}
|
|
inside
|
|
}
|
|
|
|
// --- Batch-WASM-Fassade (Feature "web") --------------------------------------
|
|
// Phase 1: nur ein Versions-/Ping-Export, um die WASM-Grenze + das Tooling
|
|
// (wasm-pack → pkgKernel2d → Vite/vitest) end-to-end gruen zu bekommen. Die
|
|
// echten Batch-Fassaden (offset_polylines_json, intersect_batch_json, …) kommen
|
|
// ab Phase 2, Muster: geometry::compute_joins_json (JSON rein/raus, O(n)-Grenze).
|
|
|
|
/// Ping-Export: beweist die WASM-Grenze. Nimmt ein JSON-`Vec2`, spiegelt es
|
|
/// normalisiert zurueck — genug, um Init + JSON-Marshalling im vitest-Harness
|
|
/// zu verifizieren, bevor die echten Operationen landen.
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn kernel2d_normalize_json(input_json: &str) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let v: Vec2 = serde_json::from_str(input_json)
|
|
.map_err(|e| wasm_bindgen::JsValue::from_str(&e.to_string()))?;
|
|
let out = normalize(v);
|
|
serde_json::to_string(&out).map_err(|e| wasm_bindgen::JsValue::from_str(&e.to_string()))
|
|
}
|
|
|
|
// Grobkoernige Grenze: je Operation EINE Batch-Funktion (N Queries rein, N
|
|
// Ergebnisse raus), Muster geometry::compute_joins_json. Serde-Helfer buendeln
|
|
// das immergleiche JsValue-Fehlermapping. Die Query-Structs definieren zugleich
|
|
// das JSON-Format, das der vitest-Differential-Harness sendet.
|
|
|
|
#[cfg(feature = "web")]
|
|
fn to_js<T: serde::Serialize>(v: &T) -> Result<String, wasm_bindgen::JsValue> {
|
|
serde_json::to_string(v).map_err(|e| wasm_bindgen::JsValue::from_str(&e.to_string()))
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
fn from_js<T: serde::de::DeserializeOwned>(s: &str) -> Result<T, wasm_bindgen::JsValue> {
|
|
serde_json::from_str(s).map_err(|e| wasm_bindgen::JsValue::from_str(&e.to_string()))
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[derive(Deserialize)]
|
|
struct ProjQuery {
|
|
p: Vec2,
|
|
a: Vec2,
|
|
b: Vec2,
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[derive(Deserialize)]
|
|
struct SegQuery {
|
|
a1: Vec2,
|
|
a2: Vec2,
|
|
b1: Vec2,
|
|
b2: Vec2,
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[derive(Deserialize)]
|
|
struct PolyHitsQuery {
|
|
a1: Vec2,
|
|
a2: Vec2,
|
|
pts: Vec<Vec2>,
|
|
closed: bool,
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[derive(Deserialize)]
|
|
struct LineCircleQuery {
|
|
a: Vec2,
|
|
b: Vec2,
|
|
center: Vec2,
|
|
r: f64,
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[derive(Deserialize)]
|
|
struct CircleCircleQuery {
|
|
c1: Vec2,
|
|
r1: f64,
|
|
c2: Vec2,
|
|
r2: f64,
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[derive(Deserialize)]
|
|
struct OffsetSegQuery {
|
|
a: Vec2,
|
|
b: Vec2,
|
|
d: f64,
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[derive(Deserialize)]
|
|
struct OffsetPolyQuery {
|
|
pts: Vec<Vec2>,
|
|
d: f64,
|
|
closed: bool,
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[derive(Deserialize)]
|
|
struct FilletQuery {
|
|
corner: Vec2,
|
|
p1: Vec2,
|
|
p2: Vec2,
|
|
r: f64,
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[derive(Deserialize)]
|
|
struct SplitCuttersQuery {
|
|
a1: Vec2,
|
|
a2: Vec2,
|
|
cutters: Vec<Polyline>,
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[derive(Deserialize)]
|
|
struct TrimSegQuery {
|
|
a1: Vec2,
|
|
a2: Vec2,
|
|
cutters: Vec<Polyline>,
|
|
pick: Vec2,
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[derive(Deserialize)]
|
|
struct TrimPolyQuery {
|
|
pts: Vec<Vec2>,
|
|
closed: bool,
|
|
cutters: Vec<Polyline>,
|
|
pick: Vec2,
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[derive(Deserialize)]
|
|
struct ExtendQuery {
|
|
a1: Vec2,
|
|
a2: Vec2,
|
|
end: String,
|
|
cutters: Vec<Polyline>,
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[derive(Deserialize)]
|
|
struct SplitAtParamQuery {
|
|
pts: Vec<Vec2>,
|
|
closed: bool,
|
|
#[serde(rename = "edgeIndex")]
|
|
edge_index: usize,
|
|
t: f64,
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[derive(Deserialize)]
|
|
struct ChordQuery {
|
|
pts: Vec<Vec2>,
|
|
i: usize,
|
|
ti: f64,
|
|
j: usize,
|
|
tj: f64,
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[derive(Deserialize)]
|
|
struct RemoveSegQuery {
|
|
pts: Vec<Vec2>,
|
|
closed: bool,
|
|
#[serde(rename = "edgeIndex")]
|
|
edge_index: usize,
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[derive(Deserialize)]
|
|
struct SplitIntersectQuery {
|
|
#[serde(rename = "targetPts")]
|
|
target_pts: Vec<Vec2>,
|
|
closed: bool,
|
|
others: Vec<Vec<Vec2>>,
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn project_param_batch_json(input_json: &str) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let qs: Vec<ProjQuery> = from_js(input_json)?;
|
|
let out: Vec<f64> = qs.iter().map(|q| project_param(q.p, q.a, q.b)).collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn closest_point_batch_json(input_json: &str) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let qs: Vec<ProjQuery> = from_js(input_json)?;
|
|
let out: Vec<Vec2> = qs
|
|
.iter()
|
|
.map(|q| closest_point_on_segment(q.p, q.a, q.b))
|
|
.collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn point_segment_distance_batch_json(input_json: &str) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let qs: Vec<ProjQuery> = from_js(input_json)?;
|
|
let out: Vec<f64> = qs
|
|
.iter()
|
|
.map(|q| point_segment_distance(q.p, q.a, q.b))
|
|
.collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn segment_intersect_batch_json(input_json: &str) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let qs: Vec<SegQuery> = from_js(input_json)?;
|
|
let out: Vec<Option<Hit>> = qs
|
|
.iter()
|
|
.map(|q| segment_intersect(q.a1, q.a2, q.b1, q.b2, EPS))
|
|
.collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn line_segment_intersect_batch_json(input_json: &str) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let qs: Vec<SegQuery> = from_js(input_json)?;
|
|
let out: Vec<Option<Hit>> = qs
|
|
.iter()
|
|
.map(|q| line_segment_intersect(q.a1, q.a2, q.b1, q.b2, EPS))
|
|
.collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn segment_polyline_hits_batch_json(input_json: &str) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let qs: Vec<PolyHitsQuery> = from_js(input_json)?;
|
|
let out: Vec<Vec<Hit>> = qs
|
|
.iter()
|
|
.map(|q| segment_polyline_hits(q.a1, q.a2, &q.pts, q.closed))
|
|
.collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn line_circle_intersect_batch_json(input_json: &str) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let qs: Vec<LineCircleQuery> = from_js(input_json)?;
|
|
let out: Vec<Vec<Vec2>> = qs
|
|
.iter()
|
|
.map(|q| line_circle_intersect(q.a, q.b, q.center, q.r))
|
|
.collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn segment_circle_intersect_batch_json(input_json: &str) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let qs: Vec<LineCircleQuery> = from_js(input_json)?;
|
|
let out: Vec<Vec<Vec2>> = qs
|
|
.iter()
|
|
.map(|q| segment_circle_intersect(q.a, q.b, q.center, q.r))
|
|
.collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn circle_circle_intersect_batch_json(input_json: &str) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let qs: Vec<CircleCircleQuery> = from_js(input_json)?;
|
|
let out: Vec<Vec<Vec2>> = qs
|
|
.iter()
|
|
.map(|q| circle_circle_intersect(q.c1, q.r1, q.c2, q.r2))
|
|
.collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn signed_area_batch_json(input_json: &str) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let polys: Vec<Vec<Vec2>> = from_js(input_json)?;
|
|
let out: Vec<f64> = polys.iter().map(|p| signed_area(p)).collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn is_ccw_batch_json(input_json: &str) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let polys: Vec<Vec<Vec2>> = from_js(input_json)?;
|
|
let out: Vec<bool> = polys.iter().map(|p| is_ccw(p)).collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn offset_segment_batch_json(input_json: &str) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let qs: Vec<OffsetSegQuery> = from_js(input_json)?;
|
|
let out: Vec<(Vec2, Vec2)> = qs.iter().map(|q| offset_segment(q.a, q.b, q.d)).collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn offset_polyline_batch_json(input_json: &str) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let qs: Vec<OffsetPolyQuery> = from_js(input_json)?;
|
|
let out: Vec<Vec<Vec2>> = qs
|
|
.iter()
|
|
.map(|q| offset_polyline(&q.pts, q.d, q.closed))
|
|
.collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn fillet_corner_batch_json(input_json: &str) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let qs: Vec<FilletQuery> = from_js(input_json)?;
|
|
let out: Vec<Option<Fillet>> = qs
|
|
.iter()
|
|
.map(|q| fillet_corner(q.corner, q.p1, q.p2, q.r))
|
|
.collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn split_segment_by_cutters_batch_json(
|
|
input_json: &str,
|
|
) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let qs: Vec<SplitCuttersQuery> = from_js(input_json)?;
|
|
let out: Vec<Vec<(Vec2, Vec2)>> = qs
|
|
.iter()
|
|
.map(|q| split_segment_by_cutters(q.a1, q.a2, &q.cutters))
|
|
.collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn trim_segment_batch_json(input_json: &str) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let qs: Vec<TrimSegQuery> = from_js(input_json)?;
|
|
let out: Vec<Vec<(Vec2, Vec2)>> = qs
|
|
.iter()
|
|
.map(|q| trim_segment(q.a1, q.a2, &q.cutters, q.pick))
|
|
.collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn trim_polyline_batch_json(input_json: &str) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let qs: Vec<TrimPolyQuery> = from_js(input_json)?;
|
|
let out: Vec<Vec<Polyline>> = qs
|
|
.iter()
|
|
.map(|q| trim_polyline(&q.pts, q.closed, &q.cutters, q.pick))
|
|
.collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn extend_segment_batch_json(input_json: &str) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let qs: Vec<ExtendQuery> = from_js(input_json)?;
|
|
let out: Vec<Option<(Vec2, Vec2)>> = qs
|
|
.iter()
|
|
.map(|q| extend_segment(q.a1, q.a2, &q.end, &q.cutters))
|
|
.collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn split_polyline_at_param_batch_json(
|
|
input_json: &str,
|
|
) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let qs: Vec<SplitAtParamQuery> = from_js(input_json)?;
|
|
let out: Vec<Vec<Vec<Vec2>>> = qs
|
|
.iter()
|
|
.map(|q| split_polyline_at_param(&q.pts, q.closed, q.edge_index, q.t))
|
|
.collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn split_closed_by_chord_batch_json(
|
|
input_json: &str,
|
|
) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let qs: Vec<ChordQuery> = from_js(input_json)?;
|
|
let out: Vec<Option<(Vec<Vec2>, Vec<Vec2>)>> = qs
|
|
.iter()
|
|
.map(|q| split_closed_by_chord(&q.pts, q.i, q.ti, q.j, q.tj))
|
|
.collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn remove_segment_batch_json(input_json: &str) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let qs: Vec<RemoveSegQuery> = from_js(input_json)?;
|
|
let out: Vec<Polyline> = qs
|
|
.iter()
|
|
.map(|q| remove_segment(&q.pts, q.closed, q.edge_index))
|
|
.collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn split_at_intersections_batch_json(
|
|
input_json: &str,
|
|
) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let qs: Vec<SplitIntersectQuery> = from_js(input_json)?;
|
|
let out: Vec<Vec<Vec<Vec2>>> = qs
|
|
.iter()
|
|
.map(|q| split_at_intersections(&q.target_pts, q.closed, &q.others))
|
|
.collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn join_chains_batch_json(input_json: &str) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let groups: Vec<Vec<Polyline>> = from_js(input_json)?;
|
|
let out: Vec<Vec<Polyline>> = groups.iter().map(|g| join_chains(g)).collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
// --- Treppen-Geometrie (stair.ts, Slice 2) -----------------------------------
|
|
|
|
/// Formkonstanten fuer Treppen (identisch zur TS-Referenz).
|
|
pub const IDEAL_RISER: f64 = 0.17;
|
|
pub const IDEAL_TREAD: f64 = 0.29;
|
|
pub const MIN_STEPS: i64 = 2;
|
|
const DEG: f64 = std::f64::consts::PI / 180.0;
|
|
|
|
/// norm in stair.ts: `lenOf(a) || 1e-9` (NICHT EPS!).
|
|
#[inline]
|
|
fn stair_norm(a: Vec2) -> Vec2 {
|
|
let l = len(a);
|
|
let l = if l == 0.0 { 1e-9 } else { l };
|
|
Vec2 { x: a.x / l, y: a.y / l }
|
|
}
|
|
|
|
/// Linke Normale (stair.ts `leftN`).
|
|
#[inline]
|
|
fn stair_left_n(u: Vec2) -> Vec2 {
|
|
Vec2 { x: -u.y, y: u.x }
|
|
}
|
|
|
|
/// Sinnvolle Default-Stufenzahl (Port von `defaultStepCount`).
|
|
pub fn default_step_count(total_rise: f64, run_length: f64) -> i64 {
|
|
let by_rise = (total_rise / IDEAL_RISER).round() as i64;
|
|
let by_rise = if by_rise < MIN_STEPS { MIN_STEPS } else { by_rise };
|
|
let max_by_run = if run_length > 0.0 {
|
|
let v = (run_length / 0.24).floor() as i64 + 1;
|
|
if v < MIN_STEPS { MIN_STEPS } else { v }
|
|
} else {
|
|
by_rise
|
|
};
|
|
let res = if by_rise < max_by_run { by_rise } else { max_by_run };
|
|
if res < MIN_STEPS { MIN_STEPS } else { res }
|
|
}
|
|
|
|
/// Ein Tritt im Grundriss (Port von `TreadRect`).
|
|
#[derive(Serialize, Deserialize, Clone, Debug)]
|
|
#[serde(rename_all = "camelCase")]
|
|
pub struct TreadRect {
|
|
pub pts: Vec<Vec2>,
|
|
pub index: i64,
|
|
pub top_rise: f64,
|
|
pub base_rise: f64,
|
|
}
|
|
|
|
/// Vollstaendige abgeleitete Treppengeometrie (Port von `StairGeometry`).
|
|
#[derive(Serialize, Deserialize, Clone, Debug)]
|
|
#[serde(rename_all = "camelCase")]
|
|
pub struct StairGeometry {
|
|
pub treads: Vec<TreadRect>,
|
|
pub landing: Option<Vec<Vec2>>,
|
|
pub riser_height: f64,
|
|
pub tread_depth: f64,
|
|
pub run_line: Vec<Vec2>,
|
|
pub arrow: StairArrow,
|
|
pub total_rise: f64,
|
|
}
|
|
|
|
/// Auf-/Abpfeil (Port von `arrow`-Typ in stair.ts).
|
|
#[derive(Serialize, Deserialize, Clone, Debug)]
|
|
pub struct StairArrow {
|
|
pub shaft: (Vec2, Vec2),
|
|
pub head: (Vec2, Vec2, Vec2),
|
|
}
|
|
|
|
/// Schnitt-Aufteilung (Port von `StairCut`).
|
|
#[derive(Serialize, Deserialize, Clone, Debug)]
|
|
#[serde(rename_all = "camelCase")]
|
|
pub struct StairCut {
|
|
pub below_indices: Vec<i64>,
|
|
pub above_indices: Vec<i64>,
|
|
pub break_line: Option<Vec<(Vec2, Vec2)>>,
|
|
}
|
|
|
|
/// Achsparallele BBox (Treppen, eigenes Struct um Konflikte zu vermeiden).
|
|
#[derive(Serialize, Deserialize, Clone, Copy, Debug)]
|
|
#[serde(rename_all = "camelCase")]
|
|
pub struct StairBBox {
|
|
pub min_x: f64,
|
|
pub min_y: f64,
|
|
pub max_x: f64,
|
|
pub max_y: f64,
|
|
}
|
|
|
|
/// Tritt-Rechteck zwischen Achsparametern `a0..a1` entlang `dir`, Breite `half_w`
|
|
/// (Port der lokalen Hilfsfunktion `treadRect`).
|
|
fn tread_rect_pts(origin: Vec2, dir: Vec2, n: Vec2, a0: f64, a1: f64, half_w: f64) -> Vec<Vec2> {
|
|
let p0 = add(origin, scale(dir, a0));
|
|
let p1 = add(origin, scale(dir, a1));
|
|
vec![
|
|
add(p0, scale(n, half_w)),
|
|
add(p1, scale(n, half_w)),
|
|
add(p1, scale(n, -half_w)),
|
|
add(p0, scale(n, -half_w)),
|
|
]
|
|
}
|
|
|
|
/// Auf-/Abpfeil aus der Lauflinie (Port von `arrowFor`).
|
|
fn arrow_for(run_line: &[Vec2], up: bool) -> StairArrow {
|
|
let a = run_line[0];
|
|
let b = run_line[run_line.len() - 1];
|
|
let tip = if up { b } else { a };
|
|
let from = if up {
|
|
run_line[run_line.len() - 2]
|
|
} else {
|
|
run_line[1]
|
|
};
|
|
let dir = stair_norm(sub(tip, from));
|
|
let n = stair_left_n(dir);
|
|
let s = 0.22_f64;
|
|
let back = add(tip, scale(dir, -s));
|
|
let w1 = add(back, scale(n, s * 0.55));
|
|
let w2 = add(back, scale(n, -s * 0.55));
|
|
StairArrow { shaft: (a, b), head: (w1, tip, w2) }
|
|
}
|
|
|
|
/// Achteck-Approximation des Wendel-Auges (Port von `eyePolygon`, 12 Segmente).
|
|
fn eye_polygon(center: Vec2, r: f64) -> Vec<Vec2> {
|
|
(0..12).map(|i| {
|
|
let t = (i as f64 / 12.0) * std::f64::consts::PI * 2.0;
|
|
Vec2 { x: center.x + r * t.cos(), y: center.y + r * t.sin() }
|
|
}).collect()
|
|
}
|
|
|
|
/// Parameter-Struct fuer die Batch-Fassade (enthaelt alle geometrisch relevanten
|
|
/// Felder des TS-Typs `Stair`; Modell-Semantik-Felder wie id/floorId werden
|
|
/// ignoriert).
|
|
#[derive(Deserialize)]
|
|
#[serde(rename_all = "camelCase")]
|
|
struct StairParams {
|
|
shape: String,
|
|
start: Vec2,
|
|
dir: Vec2,
|
|
run_length: f64,
|
|
#[serde(default)]
|
|
run2_length: Option<f64>,
|
|
#[serde(default)]
|
|
turn: Option<i32>,
|
|
#[serde(default)]
|
|
center: Option<Vec2>,
|
|
#[serde(default)]
|
|
radius: Option<f64>,
|
|
#[serde(default)]
|
|
sweep: Option<f64>,
|
|
width: f64,
|
|
step_count: i64,
|
|
#[serde(default)]
|
|
up: Option<bool>,
|
|
}
|
|
|
|
/// Gerade Treppe (Port von `straightGeometry`).
|
|
fn straight_geometry(
|
|
stair: &StairParams,
|
|
total_rise: f64,
|
|
steps: i64,
|
|
riser_height: f64,
|
|
half_w: f64,
|
|
u: Vec2,
|
|
n: Vec2,
|
|
) -> StairGeometry {
|
|
let run_length = stair.run_length.max(0.1);
|
|
let tread_depth = run_length / steps as f64;
|
|
let mut treads: Vec<TreadRect> = Vec::new();
|
|
for i in 0..steps {
|
|
treads.push(TreadRect {
|
|
pts: tread_rect_pts(stair.start, u, n, i as f64 * tread_depth, (i + 1) as f64 * tread_depth, half_w),
|
|
index: i,
|
|
base_rise: i as f64 * riser_height,
|
|
top_rise: (i + 1) as f64 * riser_height,
|
|
});
|
|
}
|
|
let run_line: Vec<Vec2> = vec![
|
|
add(stair.start, scale(u, tread_depth * 0.5)),
|
|
add(stair.start, scale(u, run_length - tread_depth * 0.15)),
|
|
];
|
|
let up = stair.up.unwrap_or(true);
|
|
StairGeometry {
|
|
arrow: arrow_for(&run_line, up),
|
|
treads,
|
|
landing: None,
|
|
riser_height,
|
|
tread_depth,
|
|
run_line,
|
|
total_rise,
|
|
}
|
|
}
|
|
|
|
/// L-Treppe (Port von `lGeometry`).
|
|
fn l_geometry(
|
|
stair: &StairParams,
|
|
total_rise: f64,
|
|
steps: i64,
|
|
riser_height: f64,
|
|
half_w: f64,
|
|
u: Vec2,
|
|
n: Vec2,
|
|
) -> StairGeometry {
|
|
let run1 = stair.run_length.max(0.1);
|
|
let run2 = stair.run2_length.unwrap_or(stair.run_length).max(0.1);
|
|
let turn = stair.turn.unwrap_or(1);
|
|
let body_steps = steps - 1;
|
|
let s1 = {
|
|
let v = ((body_steps as f64 * run1) / (run1 + run2)).round() as i64;
|
|
if v < 1 { 1 } else { v }
|
|
};
|
|
let s2 = {
|
|
let v = body_steps - s1;
|
|
if v < 1 { 1 } else { v }
|
|
};
|
|
let td1 = run1 / s1 as f64;
|
|
let td2 = run2 / s2 as f64;
|
|
|
|
let mut treads: Vec<TreadRect> = Vec::new();
|
|
let mut rise = 0.0_f64;
|
|
for i in 0..s1 {
|
|
treads.push(TreadRect {
|
|
pts: tread_rect_pts(stair.start, u, n, i as f64 * td1, (i + 1) as f64 * td1, half_w),
|
|
index: i,
|
|
base_rise: rise,
|
|
top_rise: rise + riser_height,
|
|
});
|
|
rise += riser_height;
|
|
}
|
|
let corner_center = add(stair.start, scale(u, run1 + half_w));
|
|
let u2: Vec2 = if turn > 0 { n } else { scale(n, -1.0) };
|
|
let n2 = stair_left_n(u2);
|
|
let landing: Vec<Vec2> = vec![
|
|
add(add(corner_center, scale(u, -half_w)), scale(n, half_w)),
|
|
add(add(corner_center, scale(u, half_w)), scale(n, half_w)),
|
|
add(add(corner_center, scale(u, half_w)), scale(n, -half_w)),
|
|
add(add(corner_center, scale(u, -half_w)), scale(n, -half_w)),
|
|
];
|
|
rise += riser_height; // Podest-Tritt
|
|
let run2_start = add(corner_center, scale(u2, half_w));
|
|
for i in 0..s2 {
|
|
treads.push(TreadRect {
|
|
pts: tread_rect_pts(run2_start, u2, n2, i as f64 * td2, (i + 1) as f64 * td2, half_w),
|
|
index: s1 + 1 + i,
|
|
base_rise: rise,
|
|
top_rise: rise + riser_height,
|
|
});
|
|
rise += riser_height;
|
|
}
|
|
let run_line: Vec<Vec2> = vec![
|
|
add(stair.start, scale(u, td1 * 0.5)),
|
|
corner_center,
|
|
add(run2_start, scale(u2, run2 - td2 * 0.15)),
|
|
];
|
|
let up = stair.up.unwrap_or(true);
|
|
StairGeometry {
|
|
arrow: arrow_for(&run_line, up),
|
|
treads,
|
|
landing: Some(landing),
|
|
riser_height,
|
|
tread_depth: td1,
|
|
run_line,
|
|
total_rise,
|
|
}
|
|
}
|
|
|
|
/// Wendeltreppe (Port von `spiralGeometry`).
|
|
fn spiral_geometry(
|
|
stair: &StairParams,
|
|
total_rise: f64,
|
|
steps: i64,
|
|
riser_height: f64,
|
|
half_w: f64,
|
|
) -> StairGeometry {
|
|
let center = stair.center.unwrap_or(stair.start);
|
|
let radius = (half_w + 0.1).max(stair.radius.unwrap_or(stair.width));
|
|
let sweep = stair.sweep.unwrap_or(270.0) * DEG;
|
|
let start_vec = sub(stair.start, center);
|
|
let a0 = start_vec.y.atan2(start_vec.x);
|
|
let d_a = sweep / steps as f64;
|
|
let r_in = (radius - half_w).max(0.02);
|
|
let r_out = radius + half_w;
|
|
|
|
let mut treads: Vec<TreadRect> = Vec::new();
|
|
for i in 0..steps {
|
|
let t0 = a0 + i as f64 * d_a;
|
|
let t1 = a0 + (i + 1) as f64 * d_a;
|
|
let pts: Vec<Vec2> = vec![
|
|
Vec2 { x: center.x + r_in * t0.cos(), y: center.y + r_in * t0.sin() },
|
|
Vec2 { x: center.x + r_out * t0.cos(), y: center.y + r_out * t0.sin() },
|
|
Vec2 { x: center.x + r_out * t1.cos(), y: center.y + r_out * t1.sin() },
|
|
Vec2 { x: center.x + r_in * t1.cos(), y: center.y + r_in * t1.sin() },
|
|
];
|
|
treads.push(TreadRect {
|
|
pts,
|
|
index: i,
|
|
base_rise: i as f64 * riser_height,
|
|
top_rise: (i + 1) as f64 * riser_height,
|
|
});
|
|
}
|
|
let n_seg = steps.max(2) as usize;
|
|
let mut run_line: Vec<Vec2> = Vec::new();
|
|
for i in 0..=n_seg {
|
|
let tt = a0 + (sweep * i as f64) / n_seg as f64;
|
|
run_line.push(Vec2 { x: center.x + radius * tt.cos(), y: center.y + radius * tt.sin() });
|
|
}
|
|
let tread_depth = (2.0 * std::f64::consts::PI * radius * (sweep / (2.0 * std::f64::consts::PI))) / steps as f64;
|
|
let up = stair.up.unwrap_or(true);
|
|
StairGeometry {
|
|
arrow: arrow_for(&run_line, up),
|
|
treads,
|
|
landing: Some(eye_polygon(center, r_in)),
|
|
riser_height,
|
|
tread_depth,
|
|
run_line,
|
|
total_rise,
|
|
}
|
|
}
|
|
|
|
/// Vollstaendige Treppengeometrie (Port von `stairGeometry`).
|
|
fn stair_geometry(stair: &StairParams, total_rise: f64) -> StairGeometry {
|
|
let steps = (stair.step_count as i64).max(MIN_STEPS);
|
|
let riser_height = total_rise / steps as f64;
|
|
let half_w = (0.05_f64).max(stair.width / 2.0);
|
|
let u = stair_norm(stair.dir);
|
|
let n = stair_left_n(u);
|
|
|
|
if stair.shape == "spiral" {
|
|
return spiral_geometry(stair, total_rise, steps, riser_height, half_w);
|
|
}
|
|
if stair.shape == "L" {
|
|
return l_geometry(stair, total_rise, steps, riser_height, half_w, u, n);
|
|
}
|
|
straight_geometry(stair, total_rise, steps, riser_height, half_w, u, n)
|
|
}
|
|
|
|
/// Punkt-in-Polygon (Ray-Casting) — gleiches Muster wie `pointInOutline` /
|
|
/// stair.ts `pointInPolygon` (Nenner-Guard `|| 1e-12`).
|
|
pub fn point_in_polygon(p: Vec2, poly: &[Vec2]) -> bool {
|
|
let nn = poly.len();
|
|
if nn == 0 {
|
|
return false;
|
|
}
|
|
let mut inside = false;
|
|
let mut j = nn - 1;
|
|
for i in 0..nn {
|
|
let a = poly[i];
|
|
let b = poly[j];
|
|
let denom = if b.y - a.y == 0.0 { 1e-12 } else { b.y - a.y };
|
|
let intersect =
|
|
(a.y > p.y) != (b.y > p.y) && p.x < (b.x - a.x) * (p.y - a.y) / denom + a.x;
|
|
if intersect {
|
|
inside = !inside;
|
|
}
|
|
j = i;
|
|
}
|
|
inside
|
|
}
|
|
|
|
/// Schnittaufteilung (Port von `stairCut`).
|
|
pub fn stair_cut(geo: &StairGeometry, cut_rise: f64) -> StairCut {
|
|
let mut below: Vec<i64> = Vec::new();
|
|
let mut above: Vec<i64> = Vec::new();
|
|
let mut break_idx: i64 = -1;
|
|
for tr in &geo.treads {
|
|
if tr.top_rise <= cut_rise + 1e-6 {
|
|
below.push(tr.index);
|
|
} else {
|
|
if break_idx < 0 {
|
|
break_idx = tr.index;
|
|
}
|
|
above.push(tr.index);
|
|
}
|
|
}
|
|
let break_line = if break_idx >= 0 {
|
|
geo.treads.iter().find(|t| t.index == break_idx).map(|tr| {
|
|
let (c0, c1, c2, c3) = (tr.pts[0], tr.pts[1], tr.pts[2], tr.pts[3]);
|
|
let mid01 = scale(add(c0, c1), 0.5);
|
|
let mid23 = scale(add(c2, c3), 0.5);
|
|
let off = scale(stair_norm(sub(c1, c0)), 0.06);
|
|
vec![
|
|
(add(mid01, off), add(mid23, off)),
|
|
(sub(mid01, off), sub(mid23, off)),
|
|
]
|
|
})
|
|
} else {
|
|
None
|
|
};
|
|
StairCut { below_indices: below, above_indices: above, break_line }
|
|
}
|
|
|
|
/// Achsparallele BBox aller Tritte + Podest (Port von `stairBBox`).
|
|
pub fn stair_bbox(geo: &StairGeometry) -> StairBBox {
|
|
let mut min_x = f64::INFINITY;
|
|
let mut min_y = f64::INFINITY;
|
|
let mut max_x = f64::NEG_INFINITY;
|
|
let mut max_y = f64::NEG_INFINITY;
|
|
for tr in &geo.treads {
|
|
for p in &tr.pts {
|
|
min_x = min_x.min(p.x);
|
|
min_y = min_y.min(p.y);
|
|
max_x = max_x.max(p.x);
|
|
max_y = max_y.max(p.y);
|
|
}
|
|
}
|
|
if let Some(land) = &geo.landing {
|
|
for p in land {
|
|
min_x = min_x.min(p.x);
|
|
min_y = min_y.min(p.y);
|
|
max_x = max_x.max(p.x);
|
|
max_y = max_y.max(p.y);
|
|
}
|
|
}
|
|
if !min_x.is_finite() {
|
|
return StairBBox { min_x: 0.0, min_y: 0.0, max_x: 0.0, max_y: 0.0 };
|
|
}
|
|
StairBBox { min_x, min_y, max_x, max_y }
|
|
}
|
|
|
|
/// Ob ein Punkt irgendeinen Tritt (oder das Podest) trifft (Port `pointHitsStair`).
|
|
pub fn point_hits_stair(p: Vec2, geo: &StairGeometry) -> bool {
|
|
for tr in &geo.treads {
|
|
if point_in_polygon(p, &tr.pts) {
|
|
return true;
|
|
}
|
|
}
|
|
if let Some(land) = &geo.landing {
|
|
if point_in_polygon(p, land) {
|
|
return true;
|
|
}
|
|
}
|
|
false
|
|
}
|
|
|
|
// --- Raum-Erkennung (roomBoundary.ts, Slice 3) -------------------------------
|
|
// Lokale Konstanten exakt wie TS (EPS=1e-9, normalize-Guard 1e-12).
|
|
|
|
const RB_EPS: f64 = 1e-9;
|
|
|
|
/// normalize (roomBoundary-Variante): Guard `l < 1e-12 → {0,0}` (NICHT `l||1`).
|
|
#[inline]
|
|
fn rb_normalize(a: Vec2) -> Vec2 {
|
|
let l = len(a);
|
|
if l < 1e-12 { Vec2 { x: 0.0, y: 0.0 } } else { Vec2 { x: a.x / l, y: a.y / l } }
|
|
}
|
|
|
|
/// cross (lokal, identisch zur globalen).
|
|
#[inline]
|
|
fn rb_cross(a: Vec2, b: Vec2) -> f64 {
|
|
a.x * b.y - a.y * b.x
|
|
}
|
|
|
|
// ── Planarer Graph ────────────────────────────────────────────────────────────
|
|
|
|
struct RbNode {
|
|
p: Vec2,
|
|
}
|
|
|
|
struct RbUEdge {
|
|
u: usize,
|
|
v: usize,
|
|
}
|
|
|
|
struct RbSplit {
|
|
t: f64,
|
|
p: Vec2,
|
|
}
|
|
|
|
/// Baut den planaren Graphen aus Mittellinien-Segmenten (Port von `buildPlanarGraph`).
|
|
fn build_planar_graph(segments: &[(Vec2, Vec2)], snap: f64) -> (Vec<RbNode>, Vec<RbUEdge>) {
|
|
let mut nodes: Vec<RbNode> = Vec::new();
|
|
|
|
let add_node = |nodes: &mut Vec<RbNode>, p: Vec2| -> usize {
|
|
for i in 0..nodes.len() {
|
|
if dist(nodes[i].p, p) <= snap {
|
|
return i;
|
|
}
|
|
}
|
|
nodes.push(RbNode { p: Vec2 { x: p.x, y: p.y } });
|
|
nodes.len() - 1
|
|
};
|
|
|
|
// Rohe Segmente: degenerate (zu kurze) herausfiltern.
|
|
let raw: Vec<(Vec2, Vec2)> = segments
|
|
.iter()
|
|
.filter(|(a, b)| dist(*a, *b) > snap)
|
|
.cloned()
|
|
.collect();
|
|
|
|
let mut per_segment: Vec<Vec<RbSplit>> = raw
|
|
.iter()
|
|
.map(|(a, b)| vec![RbSplit { t: 0.0, p: *a }, RbSplit { t: 1.0, p: *b }])
|
|
.collect();
|
|
|
|
for i in 0..raw.len() {
|
|
for j in i + 1..raw.len() {
|
|
let (aa, ab) = raw[i];
|
|
let (ba, bb) = raw[j];
|
|
let da = sub(ab, aa);
|
|
let db = sub(bb, ba);
|
|
let denom = rb_cross(da, db);
|
|
if denom.abs() < RB_EPS {
|
|
continue;
|
|
}
|
|
let t = rb_cross(sub(ba, aa), db) / denom;
|
|
let s = rb_cross(sub(ba, aa), da) / denom;
|
|
let tol_t = snap / len(da).max(1e-9);
|
|
let tol_s = snap / len(db).max(1e-9);
|
|
if t < -tol_t || t > 1.0 + tol_t || s < -tol_s || s > 1.0 + tol_s {
|
|
continue;
|
|
}
|
|
let p = add(aa, scale(da, t));
|
|
per_segment[i].push(RbSplit { t, p });
|
|
per_segment[j].push(RbSplit { t: s, p });
|
|
}
|
|
}
|
|
|
|
let mut edge_set: std::collections::HashSet<(usize, usize)> = std::collections::HashSet::new();
|
|
let mut edges: Vec<RbUEdge> = Vec::new();
|
|
|
|
let push_edge = |edges: &mut Vec<RbUEdge>, edge_set: &mut std::collections::HashSet<(usize, usize)>, u: usize, v: usize| {
|
|
if u == v { return; }
|
|
let key = if u < v { (u, v) } else { (v, u) };
|
|
if edge_set.contains(&key) { return; }
|
|
edge_set.insert(key);
|
|
edges.push(RbUEdge { u, v });
|
|
};
|
|
|
|
for i in 0..raw.len() {
|
|
per_segment[i].sort_by(|p, q| p.t.partial_cmp(&q.t).unwrap_or(std::cmp::Ordering::Equal));
|
|
let mut prev: Option<usize> = None;
|
|
let mut prev_t = f64::NEG_INFINITY;
|
|
for sp in &per_segment[i] {
|
|
if sp.t - prev_t < 1e-9 && prev.is_some() {
|
|
continue;
|
|
}
|
|
let idx = add_node(&mut nodes, sp.p);
|
|
if let Some(pr) = prev {
|
|
if idx != pr {
|
|
push_edge(&mut edges, &mut edge_set, pr, idx);
|
|
}
|
|
}
|
|
prev = Some(idx);
|
|
prev_t = sp.t;
|
|
}
|
|
}
|
|
|
|
(nodes, edges)
|
|
}
|
|
|
|
// ── Face-Extraktion ───────────────────────────────────────────────────────────
|
|
|
|
struct RbHalfEdge {
|
|
from: usize,
|
|
to: usize,
|
|
angle: f64,
|
|
used: bool,
|
|
}
|
|
|
|
/// Extrahiert die minimalen geschlossenen Maschen (Port von `extractFaces`).
|
|
fn extract_faces(nodes: &[RbNode], edges: &[RbUEdge]) -> Vec<Vec<usize>> {
|
|
let mut half_edges: Vec<RbHalfEdge> = Vec::new();
|
|
let mut outgoing: Vec<Vec<usize>> = (0..nodes.len()).map(|_| Vec::new()).collect();
|
|
|
|
let angle_of = |from: usize, to: usize| -> f64 {
|
|
let d = sub(nodes[to].p, nodes[from].p);
|
|
d.y.atan2(d.x)
|
|
};
|
|
|
|
for e in edges {
|
|
let h1 = half_edges.len();
|
|
half_edges.push(RbHalfEdge { from: e.u, to: e.v, angle: angle_of(e.u, e.v), used: false });
|
|
outgoing[e.u].push(h1);
|
|
let h2 = half_edges.len();
|
|
half_edges.push(RbHalfEdge { from: e.v, to: e.u, angle: angle_of(e.v, e.u), used: false });
|
|
outgoing[e.v].push(h2);
|
|
}
|
|
|
|
// Abgehende Halbkanten je Knoten nach Winkel sortieren (stabil).
|
|
for list in outgoing.iter_mut() {
|
|
list.sort_by(|&h1, &h2| half_edges[h1].angle.partial_cmp(&half_edges[h2].angle).unwrap_or(std::cmp::Ordering::Equal));
|
|
}
|
|
|
|
// Positionsindex je Halbkante in der sortierten Liste seines from-Knotens.
|
|
let mut pos_in_list: Vec<usize> = vec![0; half_edges.len()];
|
|
for list in &outgoing {
|
|
for (k, &h) in list.iter().enumerate() {
|
|
pos_in_list[h] = k;
|
|
}
|
|
}
|
|
|
|
// Zwilling: Paare liegen benachbart (2i, 2i+1).
|
|
let twin = |h: usize| -> usize { if h % 2 == 0 { h + 1 } else { h - 1 } };
|
|
|
|
let mut faces: Vec<Vec<usize>> = Vec::new();
|
|
let max_steps = half_edges.len() + 2;
|
|
|
|
for start in 0..half_edges.len() {
|
|
if half_edges[start].used {
|
|
continue;
|
|
}
|
|
let mut face_nodes: Vec<usize> = Vec::new();
|
|
let mut h = start;
|
|
let mut guard = 0;
|
|
loop {
|
|
half_edges[h].used = true;
|
|
face_nodes.push(half_edges[h].from);
|
|
let tw = twin(h);
|
|
let to = half_edges[h].to;
|
|
let list = &outgoing[to];
|
|
let pos = pos_in_list[tw];
|
|
let next_pos = if pos == 0 { list.len() - 1 } else { pos - 1 };
|
|
h = list[next_pos];
|
|
guard += 1;
|
|
if h == start || guard >= max_steps {
|
|
break;
|
|
}
|
|
}
|
|
if face_nodes.len() >= 3 {
|
|
faces.push(face_nodes);
|
|
}
|
|
}
|
|
|
|
// Aussenmaschen verwerfen: nur CCW (positive Flaeche) behalten.
|
|
faces.into_iter().filter(|f| {
|
|
let poly: Vec<Vec2> = f.iter().map(|&n| nodes[n].p).collect();
|
|
signed_area(&poly) > RB_EPS
|
|
}).collect()
|
|
}
|
|
|
|
// ── Innen-Offset ──────────────────────────────────────────────────────────────
|
|
|
|
/// Versetzt ein CCW-Polygon um `d` nach innen (Port von `offsetInward`).
|
|
fn offset_inward(poly: &[Vec2], d: f64) -> Vec<Vec2> {
|
|
let n = poly.len();
|
|
if n < 3 || d <= 0.0 {
|
|
return poly.to_vec();
|
|
}
|
|
// CCW sicherstellen.
|
|
let pts_owned: Vec<Vec2>;
|
|
let pts: &[Vec2] = if signed_area(poly) > 0.0 {
|
|
poly
|
|
} else {
|
|
pts_owned = { let mut v = poly.to_vec(); v.reverse(); v };
|
|
&pts_owned
|
|
};
|
|
// Verschobene Kanten: linke Normale zeigt ins Innere bei CCW.
|
|
let shifted: Vec<(Vec2, Vec2)> = (0..n).map(|i| {
|
|
let a = pts[i];
|
|
let b = pts[(i + 1) % n];
|
|
let dir = rb_normalize(sub(b, a));
|
|
let nrm = left_normal(dir);
|
|
(add(a, scale(nrm, d)), dir)
|
|
}).collect();
|
|
|
|
let mut out: Vec<Vec2> = Vec::new();
|
|
for i in 0..n {
|
|
let prev = &shifted[(i + n - 1) % n];
|
|
let curr = &shifted[i];
|
|
let denom = rb_cross(prev.1, curr.1);
|
|
if denom.abs() < 1e-9 {
|
|
out.push(curr.0);
|
|
continue;
|
|
}
|
|
let t = rb_cross(sub(curr.0, prev.0), curr.1) / denom;
|
|
out.push(add(prev.0, scale(prev.1, t)));
|
|
}
|
|
out
|
|
}
|
|
|
|
/// Dedupliziert aufeinanderfolgende nahezu gleiche Punkte im Ring (Port von
|
|
/// `dedupeRing`, Toleranz 1e-7 wie TS).
|
|
fn dedupe_ring_rb(pts: &[Vec2]) -> Vec<Vec2> {
|
|
let tol = 1e-7_f64;
|
|
let mut out: Vec<Vec2> = Vec::new();
|
|
for &p in pts {
|
|
if let Some(&last) = out.last() {
|
|
if dist(last, p) <= tol {
|
|
continue;
|
|
}
|
|
}
|
|
out.push(p);
|
|
}
|
|
if out.len() > 1 {
|
|
let first = out[0];
|
|
if dist(first, *out.last().unwrap()) <= tol {
|
|
out.pop();
|
|
}
|
|
}
|
|
out
|
|
}
|
|
|
|
/// Durchschnittliche Wanddicke (Port von `averageThickness`).
|
|
fn average_thickness(walls: &[WallSegment]) -> f64 {
|
|
if walls.is_empty() {
|
|
return 0.0;
|
|
}
|
|
let s: f64 = walls.iter().map(|w| w.thickness).sum();
|
|
s / walls.len() as f64
|
|
}
|
|
|
|
// ── Oeffentliche Structs fuer die Batch-Fassade ───────────────────────────────
|
|
|
|
/// Wandsegment (Port von `WallSegment`): Mittellinie a→b mit Dicke.
|
|
#[derive(Serialize, Deserialize, Clone, Debug)]
|
|
pub struct WallSegment {
|
|
pub a: Vec2,
|
|
pub b: Vec2,
|
|
pub thickness: f64,
|
|
}
|
|
|
|
/// Wand-Innenflaeche (Port von `WallFace`).
|
|
#[derive(Serialize, Deserialize, Clone, Debug)]
|
|
pub struct WallFace {
|
|
pub a: Vec2,
|
|
pub b: Vec2,
|
|
}
|
|
|
|
// ── Oeffentliche Funktionen ───────────────────────────────────────────────────
|
|
|
|
/// pointInPolygon (roomBoundary-Variante, KEIN Nenner-Guard — `b.y - a.y + 0`).
|
|
pub fn rb_point_in_polygon(p: Vec2, poly: &[Vec2]) -> bool {
|
|
let mut inside = false;
|
|
let n = poly.len();
|
|
if n == 0 {
|
|
return false;
|
|
}
|
|
let mut j = n - 1;
|
|
for i in 0..n {
|
|
let a = poly[i];
|
|
let b = poly[j];
|
|
let intersects =
|
|
(a.y > p.y) != (b.y > p.y)
|
|
&& p.x < (b.x - a.x) * (p.y - a.y) / (b.y - a.y) + a.x;
|
|
if intersects {
|
|
inside = !inside;
|
|
}
|
|
j = i;
|
|
}
|
|
inside
|
|
}
|
|
|
|
/// Erkennt geschlossene Raeume aus Wandsegmenten (Port von `detectRooms`).
|
|
pub fn detect_rooms(
|
|
walls: &[WallSegment],
|
|
gap_tol: f64,
|
|
min_area: f64,
|
|
offset_to_inner: bool,
|
|
) -> Vec<Vec<Vec2>> {
|
|
if walls.len() < 3 {
|
|
return Vec::new();
|
|
}
|
|
let segs: Vec<(Vec2, Vec2)> = walls.iter().map(|w| (w.a, w.b)).collect();
|
|
let (nodes, edges) = build_planar_graph(&segs, gap_tol);
|
|
if edges.len() < 3 {
|
|
return Vec::new();
|
|
}
|
|
let faces = extract_faces(&nodes, &edges);
|
|
let half = average_thickness(walls) / 2.0;
|
|
|
|
let mut rooms: Vec<Vec<Vec2>> = Vec::new();
|
|
for f in faces {
|
|
let raw: Vec<Vec2> = f.iter().map(|&n| nodes[n].p).collect();
|
|
let mut poly = dedupe_ring_rb(&raw);
|
|
if poly.len() < 3 {
|
|
continue;
|
|
}
|
|
if offset_to_inner && half > 0.0 {
|
|
poly = dedupe_ring_rb(&offset_inward(&poly, half));
|
|
if poly.len() < 3 {
|
|
continue;
|
|
}
|
|
}
|
|
if polygon_area(&poly) < min_area {
|
|
continue;
|
|
}
|
|
// Kanonisch CCW zurueckgeben.
|
|
if signed_area(&poly) < 0.0 {
|
|
poly.reverse();
|
|
}
|
|
rooms.push(poly);
|
|
}
|
|
rooms
|
|
}
|
|
|
|
/// Klick-in-Raum-Fallback (Port von `roomFromPointInside`).
|
|
pub fn room_from_point_inside(
|
|
point: Vec2,
|
|
walls: &[WallSegment],
|
|
gap_tol: f64,
|
|
offset_to_inner: bool,
|
|
) -> Option<Vec<Vec2>> {
|
|
if walls.len() < 3 {
|
|
return None;
|
|
}
|
|
let segs: Vec<(Vec2, Vec2)> = walls.iter().map(|w| (w.a, w.b)).collect();
|
|
let (nodes, edges) = build_planar_graph(&segs, gap_tol);
|
|
if edges.len() < 3 {
|
|
return None;
|
|
}
|
|
let faces = extract_faces(&nodes, &edges);
|
|
let half = average_thickness(walls) / 2.0;
|
|
|
|
let mut best: Option<Vec<Vec2>> = None;
|
|
let mut best_area = f64::INFINITY;
|
|
|
|
for f in faces {
|
|
let raw: Vec<Vec2> = f.iter().map(|&n| nodes[n].p).collect();
|
|
let raw = dedupe_ring_rb(&raw);
|
|
if raw.len() < 3 {
|
|
continue;
|
|
}
|
|
if !rb_point_in_polygon(point, &raw) {
|
|
continue;
|
|
}
|
|
let area = polygon_area(&raw);
|
|
if area >= best_area {
|
|
continue;
|
|
}
|
|
let mut inner = raw.clone();
|
|
if offset_to_inner && half > 0.0 {
|
|
let off = dedupe_ring_rb(&offset_inward(&raw, half));
|
|
if off.len() >= 3 {
|
|
inner = off;
|
|
}
|
|
}
|
|
if signed_area(&inner) < 0.0 {
|
|
inner.reverse();
|
|
}
|
|
best = Some(inner);
|
|
best_area = area;
|
|
}
|
|
|
|
best
|
|
}
|
|
|
|
/// Klick-Tracer auf bereits berechneten Wand-Innenflaechen (Port von
|
|
/// `roomFromPointInsideFaces`).
|
|
pub fn room_from_point_inside_faces(
|
|
point: Vec2,
|
|
wall_faces: &[WallFace],
|
|
gap_tol: f64,
|
|
) -> Option<Vec<Vec2>> {
|
|
if wall_faces.len() < 3 {
|
|
return None;
|
|
}
|
|
let segs: Vec<(Vec2, Vec2)> = wall_faces.iter().map(|f| (f.a, f.b)).collect();
|
|
let (nodes, edges) = build_planar_graph(&segs, gap_tol);
|
|
if edges.len() < 3 {
|
|
return None;
|
|
}
|
|
let faces = extract_faces(&nodes, &edges);
|
|
|
|
let mut best: Option<Vec<Vec2>> = None;
|
|
let mut best_area = f64::INFINITY;
|
|
|
|
for f in faces {
|
|
let raw: Vec<Vec2> = f.iter().map(|&n| nodes[n].p).collect();
|
|
let poly = dedupe_ring_rb(&raw);
|
|
if poly.len() < 3 {
|
|
continue;
|
|
}
|
|
if !rb_point_in_polygon(point, &poly) {
|
|
continue;
|
|
}
|
|
let area = polygon_area(&poly);
|
|
if area < best_area {
|
|
let mut out = poly;
|
|
if signed_area(&out) < 0.0 {
|
|
out.reverse();
|
|
}
|
|
best = Some(out);
|
|
best_area = area;
|
|
}
|
|
}
|
|
|
|
best
|
|
}
|
|
|
|
// --- Batch-Fassaden: roomArea / ceiling (Slice 1) ----------------------------
|
|
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn polygon_area_batch_json(input_json: &str) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let polys: Vec<Vec<Vec2>> = from_js(input_json)?;
|
|
let out: Vec<f64> = polys.iter().map(|p| polygon_area(p)).collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn perimeter_batch_json(input_json: &str) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let polys: Vec<Vec<Vec2>> = from_js(input_json)?;
|
|
let out: Vec<f64> = polys.iter().map(|p| perimeter(p)).collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn centroid_batch_json(input_json: &str) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let polys: Vec<Vec<Vec2>> = from_js(input_json)?;
|
|
let out: Vec<Vec2> = polys.iter().map(|p| centroid(p)).collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
/// Query-Struct fuer normalize_outline: optional (None bei ungueltigem Umriss).
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn normalize_outline_batch_json(input_json: &str) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let polys: Vec<Vec<Vec2>> = from_js(input_json)?;
|
|
let out: Vec<Option<Vec<Vec2>>> = polys.iter().map(|p| normalize_outline(p)).collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn is_valid_outline_batch_json(input_json: &str) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let polys: Vec<Vec<Vec2>> = from_js(input_json)?;
|
|
let out: Vec<bool> = polys.iter().map(|p| is_valid_outline(p)).collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn ceiling_area_batch_json(input_json: &str) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let polys: Vec<Vec<Vec2>> = from_js(input_json)?;
|
|
let out: Vec<f64> = polys.iter().map(|p| ceiling_area(p)).collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn outline_bbox_batch_json(input_json: &str) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let polys: Vec<Vec<Vec2>> = from_js(input_json)?;
|
|
let out: Vec<BBox> = polys.iter().map(|p| outline_bbox(p)).collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn outline_centroid_batch_json(input_json: &str) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let polys: Vec<Vec<Vec2>> = from_js(input_json)?;
|
|
let out: Vec<Vec2> = polys.iter().map(|p| outline_centroid(p)).collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[derive(Deserialize)]
|
|
struct PointInOutlineQuery {
|
|
p: Vec2,
|
|
outline: Vec<Vec2>,
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn point_in_outline_batch_json(input_json: &str) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let qs: Vec<PointInOutlineQuery> = from_js(input_json)?;
|
|
let out: Vec<bool> = qs.iter().map(|q| point_in_outline(q.p, &q.outline)).collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
// --- Batch-Fassaden: stair (Slice 2) -----------------------------------------
|
|
|
|
#[cfg(feature = "web")]
|
|
#[derive(Deserialize)]
|
|
struct DefaultStepCountQuery {
|
|
#[serde(rename = "totalRise")]
|
|
total_rise: f64,
|
|
#[serde(rename = "runLength")]
|
|
run_length: f64,
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn default_step_count_batch_json(input_json: &str) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let qs: Vec<DefaultStepCountQuery> = from_js(input_json)?;
|
|
let out: Vec<i64> = qs.iter().map(|q| default_step_count(q.total_rise, q.run_length)).collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[derive(Deserialize)]
|
|
struct StairGeoQuery {
|
|
stair: StairParams,
|
|
#[serde(rename = "totalRise")]
|
|
total_rise: f64,
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn stair_geometry_batch_json(input_json: &str) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let qs: Vec<StairGeoQuery> = from_js(input_json)?;
|
|
let out: Vec<StairGeometry> = qs.iter().map(|q| stair_geometry(&q.stair, q.total_rise)).collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[derive(Deserialize)]
|
|
struct StairCutQuery {
|
|
geo: StairGeometry,
|
|
#[serde(rename = "cutRise")]
|
|
cut_rise: f64,
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn stair_cut_batch_json(input_json: &str) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let qs: Vec<StairCutQuery> = from_js(input_json)?;
|
|
let out: Vec<StairCut> = qs.iter().map(|q| stair_cut(&q.geo, q.cut_rise)).collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn stair_bbox_batch_json(input_json: &str) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let geos: Vec<StairGeometry> = from_js(input_json)?;
|
|
let out: Vec<StairBBox> = geos.iter().map(|g| stair_bbox(g)).collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[derive(Deserialize)]
|
|
struct PointHitsStairQuery {
|
|
p: Vec2,
|
|
geo: StairGeometry,
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn point_hits_stair_batch_json(input_json: &str) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let qs: Vec<PointHitsStairQuery> = from_js(input_json)?;
|
|
let out: Vec<bool> = qs.iter().map(|q| point_hits_stair(q.p, &q.geo)).collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[derive(Deserialize)]
|
|
struct PointInPolygonQuery {
|
|
p: Vec2,
|
|
poly: Vec<Vec2>,
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn point_in_polygon_batch_json(input_json: &str) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let qs: Vec<PointInPolygonQuery> = from_js(input_json)?;
|
|
let out: Vec<bool> = qs.iter().map(|q| point_in_polygon(q.p, &q.poly)).collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
// --- Batch-Fassaden: roomBoundary (Slice 3) -----------------------------------
|
|
|
|
#[cfg(feature = "web")]
|
|
#[derive(Deserialize)]
|
|
struct DetectRoomsQuery {
|
|
walls: Vec<WallSegment>,
|
|
#[serde(rename = "gapTol", default = "default_gap_tol")]
|
|
gap_tol: f64,
|
|
#[serde(rename = "minArea", default = "default_min_area")]
|
|
min_area: f64,
|
|
#[serde(rename = "offsetToInner", default = "default_true")]
|
|
offset_to_inner: bool,
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
fn default_gap_tol() -> f64 { 0.05 }
|
|
#[cfg(feature = "web")]
|
|
fn default_min_area() -> f64 { 0.05 }
|
|
#[cfg(feature = "web")]
|
|
fn default_true() -> bool { true }
|
|
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn detect_rooms_batch_json(input_json: &str) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let qs: Vec<DetectRoomsQuery> = from_js(input_json)?;
|
|
let out: Vec<Vec<Vec<Vec2>>> = qs.iter().map(|q| detect_rooms(&q.walls, q.gap_tol, q.min_area, q.offset_to_inner)).collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[derive(Deserialize)]
|
|
struct RoomFromPointQuery {
|
|
point: Vec2,
|
|
walls: Vec<WallSegment>,
|
|
#[serde(rename = "gapTol", default = "default_gap_tol")]
|
|
gap_tol: f64,
|
|
#[serde(rename = "offsetToInner", default = "default_true")]
|
|
offset_to_inner: bool,
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn room_from_point_inside_batch_json(input_json: &str) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let qs: Vec<RoomFromPointQuery> = from_js(input_json)?;
|
|
let out: Vec<Option<Vec<Vec2>>> = qs.iter().map(|q| room_from_point_inside(q.point, &q.walls, q.gap_tol, q.offset_to_inner)).collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[derive(Deserialize)]
|
|
struct RoomFromFacesQuery {
|
|
point: Vec2,
|
|
#[serde(rename = "wallFaces")]
|
|
wall_faces: Vec<WallFace>,
|
|
#[serde(rename = "gapTol", default = "default_gap_tol")]
|
|
gap_tol: f64,
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn room_from_point_inside_faces_batch_json(input_json: &str) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let qs: Vec<RoomFromFacesQuery> = from_js(input_json)?;
|
|
let out: Vec<Option<Vec<Vec2>>> = qs.iter().map(|q| room_from_point_inside_faces(q.point, &q.wall_faces, q.gap_tol)).collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[derive(Deserialize)]
|
|
struct RbPointInPolygonQuery {
|
|
p: Vec2,
|
|
poly: Vec<Vec2>,
|
|
}
|
|
|
|
#[cfg(feature = "web")]
|
|
#[wasm_bindgen::prelude::wasm_bindgen]
|
|
pub fn rb_point_in_polygon_batch_json(input_json: &str) -> Result<String, wasm_bindgen::JsValue> {
|
|
console_error_panic_hook::set_once();
|
|
let qs: Vec<RbPointInPolygonQuery> = from_js(input_json)?;
|
|
let out: Vec<bool> = qs.iter().map(|q| rb_point_in_polygon(q.p, &q.poly)).collect();
|
|
to_js(&out)
|
|
}
|
|
|
|
#[cfg(test)]
|
|
mod tests {
|
|
use super::*;
|
|
|
|
const T: f64 = 1e-12;
|
|
|
|
#[test]
|
|
fn len_uses_hypot() {
|
|
assert!((len(Vec2::new(3.0, 4.0)) - 5.0).abs() < T);
|
|
}
|
|
|
|
#[test]
|
|
fn normalize_zero_guard_yields_origin_not_nan() {
|
|
let n = normalize(Vec2::new(0.0, 0.0));
|
|
assert_eq!(n, Vec2::new(0.0, 0.0));
|
|
}
|
|
|
|
#[test]
|
|
fn cross_dot_term_order() {
|
|
let p = Vec2::new(1.0, 2.0);
|
|
let q = Vec2::new(3.0, 4.0);
|
|
assert!((cross(p, q) - (1.0 * 4.0 - 2.0 * 3.0)).abs() < T);
|
|
assert!((dot(p, q) - (1.0 * 3.0 + 2.0 * 4.0)).abs() < T);
|
|
}
|
|
|
|
#[test]
|
|
fn line_intersect_parallel_is_none() {
|
|
let a = Vec2::new(0.0, 0.0);
|
|
let da = Vec2::new(1.0, 0.0);
|
|
let b = Vec2::new(0.0, 1.0);
|
|
let db = Vec2::new(1.0, 0.0);
|
|
assert!(line_intersect(a, da, b, db).is_none());
|
|
}
|
|
|
|
#[test]
|
|
fn line_intersect_crossing() {
|
|
let hit = line_intersect(
|
|
Vec2::new(0.0, 0.0),
|
|
Vec2::new(1.0, 0.0),
|
|
Vec2::new(2.0, -1.0),
|
|
Vec2::new(0.0, 1.0),
|
|
)
|
|
.unwrap();
|
|
assert!((hit.x - 2.0).abs() < T && hit.y.abs() < T);
|
|
}
|
|
|
|
#[test]
|
|
fn signed_area_unit_square_ccw() {
|
|
let sq = [
|
|
Vec2::new(0.0, 0.0),
|
|
Vec2::new(1.0, 0.0),
|
|
Vec2::new(1.0, 1.0),
|
|
Vec2::new(0.0, 1.0),
|
|
];
|
|
assert!((signed_area(&sq) - 1.0).abs() < T);
|
|
assert!(is_ccw(&sq));
|
|
// Umgekehrte Reihenfolge → CW, Flaeche negativ.
|
|
let mut cw = sq;
|
|
cw.reverse();
|
|
assert!((signed_area(&cw) + 1.0).abs() < T);
|
|
assert!(!is_ccw(&cw));
|
|
}
|
|
|
|
#[test]
|
|
fn segment_intersect_crossing_and_miss() {
|
|
let hit = segment_intersect(
|
|
Vec2::new(0.0, 0.0),
|
|
Vec2::new(2.0, 2.0),
|
|
Vec2::new(0.0, 2.0),
|
|
Vec2::new(2.0, 0.0),
|
|
EPS,
|
|
)
|
|
.unwrap();
|
|
assert!((hit.point.x - 1.0).abs() < T && (hit.point.y - 1.0).abs() < T);
|
|
assert!((hit.t - 0.5).abs() < T && (hit.s - 0.5).abs() < T);
|
|
// Kein Treffer: zweite Strecke zu kurz.
|
|
assert!(segment_intersect(
|
|
Vec2::new(0.0, 0.0),
|
|
Vec2::new(2.0, 2.0),
|
|
Vec2::new(0.0, 2.0),
|
|
Vec2::new(0.9, 1.1),
|
|
EPS,
|
|
)
|
|
.is_none());
|
|
}
|
|
|
|
#[test]
|
|
fn circle_circle_two_points() {
|
|
// Zwei Einheitskreise, Zentren Abstand 1 → Schnitt bei x=0.5, y=±√3/2.
|
|
let pts = circle_circle_intersect(Vec2::new(0.0, 0.0), 1.0, Vec2::new(1.0, 0.0), 1.0);
|
|
assert_eq!(pts.len(), 2);
|
|
let expect_y = (3.0_f64).sqrt() / 2.0;
|
|
for p in &pts {
|
|
assert!((p.x - 0.5).abs() < 1e-9);
|
|
assert!((p.y.abs() - expect_y).abs() < 1e-9);
|
|
}
|
|
}
|
|
|
|
#[test]
|
|
fn line_circle_tangent_one_point() {
|
|
// Gerade y=1 tangiert Einheitskreis in (0,1).
|
|
let pts = line_circle_intersect(
|
|
Vec2::new(-1.0, 1.0),
|
|
Vec2::new(1.0, 1.0),
|
|
Vec2::new(0.0, 0.0),
|
|
1.0,
|
|
);
|
|
assert_eq!(pts.len(), 1);
|
|
assert!(pts[0].x.abs() < 1e-9 && (pts[0].y - 1.0).abs() < 1e-9);
|
|
}
|
|
|
|
#[test]
|
|
fn polyline_edges_open_and_closed() {
|
|
let pts = [
|
|
Vec2::new(0.0, 0.0),
|
|
Vec2::new(1.0, 0.0),
|
|
Vec2::new(1.0, 1.0),
|
|
];
|
|
assert_eq!(polyline_edges(&pts, false).len(), 2);
|
|
assert_eq!(polyline_edges(&pts, true).len(), 3);
|
|
assert!(polyline_edges(&[], true).is_empty());
|
|
assert!(polyline_edges(&[Vec2::new(0.0, 0.0)], true).is_empty());
|
|
}
|
|
|
|
#[test]
|
|
fn offset_segment_left_positive() {
|
|
// Strecke (0,0)->(1,0), Offset +0.5 → linke Normale (0,1) → y=0.5.
|
|
let (a, b) = offset_segment(Vec2::new(0.0, 0.0), Vec2::new(1.0, 0.0), 0.5);
|
|
assert!((a.x).abs() < T && (a.y - 0.5).abs() < T);
|
|
assert!((b.x - 1.0).abs() < T && (b.y - 0.5).abs() < T);
|
|
}
|
|
|
|
#[test]
|
|
fn offset_polyline_right_angle_miter() {
|
|
// L-Ecke (0,0)->(1,0)->(1,1), offen, Offset +0.5 (nach innen/links).
|
|
// Innerer Gehrungspunkt = Schnitt der beiden verschobenen Kanten bei (0.5,0.5).
|
|
let l = [
|
|
Vec2::new(0.0, 0.0),
|
|
Vec2::new(1.0, 0.0),
|
|
Vec2::new(1.0, 1.0),
|
|
];
|
|
let out = offset_polyline(&l, 0.5, false);
|
|
assert_eq!(out.len(), 3);
|
|
assert!((out[1].x - 0.5).abs() < 1e-9 && (out[1].y - 0.5).abs() < 1e-9);
|
|
}
|
|
|
|
#[test]
|
|
fn fillet_right_angle() {
|
|
// Rechter Winkel bei (0,0), Schenkel entlang +x und +y, r=1.
|
|
// setback = r/tan(45°) = 1; center auf Winkelhalbierender bei (1,1).
|
|
let f = fillet_corner(
|
|
Vec2::new(0.0, 0.0),
|
|
Vec2::new(5.0, 0.0),
|
|
Vec2::new(0.0, 5.0),
|
|
1.0,
|
|
)
|
|
.unwrap();
|
|
assert!((f.tangent_a.x - 1.0).abs() < 1e-9 && f.tangent_a.y.abs() < 1e-9);
|
|
assert!(f.tangent_b.x.abs() < 1e-9 && (f.tangent_b.y - 1.0).abs() < 1e-9);
|
|
assert!((f.center.x - 1.0).abs() < 1e-9 && (f.center.y - 1.0).abs() < 1e-9);
|
|
assert!((f.radius - 1.0).abs() < T);
|
|
}
|
|
|
|
#[test]
|
|
fn fillet_collinear_is_none() {
|
|
// Gestreckt (180°) → kollinear → None.
|
|
assert!(fillet_corner(
|
|
Vec2::new(0.0, 0.0),
|
|
Vec2::new(1.0, 0.0),
|
|
Vec2::new(-1.0, 0.0),
|
|
0.5,
|
|
)
|
|
.is_none());
|
|
// Zu grosser Radius für die Schenkellänge → None.
|
|
assert!(fillet_corner(
|
|
Vec2::new(0.0, 0.0),
|
|
Vec2::new(0.1, 0.0),
|
|
Vec2::new(0.0, 0.1),
|
|
10.0,
|
|
)
|
|
.is_none());
|
|
}
|
|
|
|
fn poly(pts: &[(f64, f64)], closed: bool) -> Polyline {
|
|
Polyline {
|
|
pts: pts.iter().map(|&(x, y)| Vec2::new(x, y)).collect(),
|
|
closed,
|
|
}
|
|
}
|
|
|
|
#[test]
|
|
fn trim_segment_removes_picked_piece() {
|
|
// Strecke (0,0)->(4,0), ein vertikaler Cutter bei x=2 → zwei Stuecke.
|
|
// Pick bei (0.5,0) → linkes Stueck faellt weg, rechtes bleibt.
|
|
let cutters = [poly(&[(2.0, -1.0), (2.0, 1.0)], false)];
|
|
let rest = trim_segment(
|
|
Vec2::new(0.0, 0.0),
|
|
Vec2::new(4.0, 0.0),
|
|
&cutters,
|
|
Vec2::new(0.5, 0.0),
|
|
);
|
|
assert_eq!(rest.len(), 1);
|
|
assert!((rest[0].0.x - 2.0).abs() < 1e-9 && (rest[0].1.x - 4.0).abs() < 1e-9);
|
|
}
|
|
|
|
#[test]
|
|
fn split_at_intersections_closed_square_by_two_cuts() {
|
|
// Einheitsquadrat, ein waagerechter Schneider y=0.5 quer → zwei Ringe.
|
|
let square = [
|
|
Vec2::new(0.0, 0.0),
|
|
Vec2::new(1.0, 0.0),
|
|
Vec2::new(1.0, 1.0),
|
|
Vec2::new(0.0, 1.0),
|
|
];
|
|
let others = vec![vec![Vec2::new(-1.0, 0.5), Vec2::new(2.0, 0.5)]];
|
|
let parts = split_at_intersections(&square, true, &others);
|
|
assert_eq!(parts.len(), 2, "zwei geschlossene Teilpolygone");
|
|
for p in &parts {
|
|
assert!(p.len() >= 3);
|
|
}
|
|
}
|
|
|
|
#[test]
|
|
fn join_chains_merges_and_closes() {
|
|
// Drei offene Kanten eines Dreiecks → eine geschlossene Kette.
|
|
let input = vec![
|
|
poly(&[(0.0, 0.0), (1.0, 0.0)], false),
|
|
poly(&[(1.0, 0.0), (0.5, 1.0)], false),
|
|
poly(&[(0.5, 1.0), (0.0, 0.0)], false),
|
|
];
|
|
let out = join_chains(&input);
|
|
assert_eq!(out.len(), 1);
|
|
assert!(out[0].closed, "Dreieck schliesst sich");
|
|
assert_eq!(out[0].pts.len(), 3, "Schlusspunkt-Duplikat entfernt");
|
|
}
|
|
|
|
#[test]
|
|
fn remove_segment_open_keeps_longer_piece() {
|
|
// Offene Polylinie mit 5 Punkten; innere Kante 1 entfernen → laengeres Stueck.
|
|
let pts: Vec<Vec2> = (0..5).map(|i| Vec2::new(i as f64, 0.0)).collect();
|
|
let out = remove_segment(&pts, false, 1);
|
|
assert!(!out.closed);
|
|
assert_eq!(out.pts.len(), 3, "rechtes (laengeres) Stueck pts[2..5]");
|
|
assert!((out.pts[0].x - 2.0).abs() < 1e-9);
|
|
}
|
|
}
|