1use crate::geometry::{Point, Rect};
16use thiserror::Error;
17
18const MAX_FLATTEN_DEPTH: u32 = 12;
20const FLATTEN_TOLERANCE: f32 = 0.05;
22const ARC_MAX_ANGLE_STEP: f32 = std::f32::consts::PI / 16.0;
24const SUBSAMPLES: usize = 4;
26
27#[derive(Debug, Clone, PartialEq, Eq, Error)]
29pub enum SvgPathError {
30 #[error("unexpected byte {byte:?} at offset {offset}")]
31 UnexpectedByte { byte: char, offset: usize },
32 #[error("expected a number at offset {offset}")]
33 ExpectedNumber { offset: usize },
34 #[error("expected an arc flag (0 or 1) at offset {offset}")]
35 ExpectedFlag { offset: usize },
36 #[error("path data must start with a moveto (M/m) command")]
37 MissingMoveTo,
38}
39
40#[derive(Debug, Clone, Copy, PartialEq, Eq, Default)]
42pub enum PathFillRule {
43 #[default]
45 NonZero,
46 EvenOdd,
48}
49
50#[derive(Debug, Clone)]
52pub struct VectorPath {
53 subpaths: Vec<Vec<Point>>,
55 fill_rule: PathFillRule,
56 bounds: Rect,
57}
58
59impl VectorPath {
60 pub fn parse(d: &str) -> Result<Self, SvgPathError> {
62 let subpaths = parse_path_data(d)?;
63 Ok(Self::from_subpaths(subpaths, PathFillRule::NonZero))
64 }
65
66 pub fn parse_with_fill_rule(d: &str, fill_rule: PathFillRule) -> Result<Self, SvgPathError> {
68 let subpaths = parse_path_data(d)?;
69 Ok(Self::from_subpaths(subpaths, fill_rule))
70 }
71
72 fn from_subpaths(subpaths: Vec<Vec<Point>>, fill_rule: PathFillRule) -> Self {
73 let mut min = Point::new(f32::INFINITY, f32::INFINITY);
74 let mut max = Point::new(f32::NEG_INFINITY, f32::NEG_INFINITY);
75 for point in subpaths.iter().flatten() {
76 min.x = min.x.min(point.x);
77 min.y = min.y.min(point.y);
78 max.x = max.x.max(point.x);
79 max.y = max.y.max(point.y);
80 }
81 let bounds = if min.x.is_finite() {
82 Rect {
83 x: min.x,
84 y: min.y,
85 width: (max.x - min.x).max(0.0),
86 height: (max.y - min.y).max(0.0),
87 }
88 } else {
89 Rect {
90 x: 0.0,
91 y: 0.0,
92 width: 0.0,
93 height: 0.0,
94 }
95 };
96 Self {
97 subpaths,
98 fill_rule,
99 bounds,
100 }
101 }
102
103 pub fn with_fill_rule(mut self, fill_rule: PathFillRule) -> Self {
105 self.fill_rule = fill_rule;
106 self
107 }
108
109 pub fn scaled(&self, factor: f32) -> Self {
112 let subpaths = self
113 .subpaths
114 .iter()
115 .map(|subpath| {
116 subpath
117 .iter()
118 .map(|point| Point::new(point.x * factor, point.y * factor))
119 .collect()
120 })
121 .collect();
122 Self::from_subpaths(subpaths, self.fill_rule)
123 }
124
125 pub fn fill_rule(&self) -> PathFillRule {
127 self.fill_rule
128 }
129
130 pub fn bounds(&self) -> Rect {
132 self.bounds
133 }
134
135 pub fn is_empty(&self) -> bool {
137 !self.subpaths.iter().any(|subpath| subpath.len() >= 3)
138 }
139
140 pub fn subpaths(&self) -> &[Vec<Point>] {
142 &self.subpaths
143 }
144
145 pub fn coverage_mask(&self, width: usize, height: usize, origin: Point, scale: f32) -> Vec<u8> {
149 let mut mask = vec![0u8; width * height];
150 if width == 0 || height == 0 || scale <= 0.0 {
151 return mask;
152 }
153
154 struct Edge {
156 top: Point,
157 bottom: Point,
158 winding: i32,
161 }
162 let mut edges = Vec::new();
163 for subpath in &self.subpaths {
164 if subpath.len() < 3 {
165 continue;
166 }
167 let map = |p: &Point| Point::new((p.x - origin.x) * scale, (p.y - origin.y) * scale);
168 for i in 0..subpath.len() {
169 let a = map(&subpath[i]);
170 let b = map(&subpath[(i + 1) % subpath.len()]);
171 if a.y == b.y {
172 continue;
173 }
174 if a.y < b.y {
175 edges.push(Edge {
176 top: a,
177 bottom: b,
178 winding: 1,
179 });
180 } else {
181 edges.push(Edge {
182 top: b,
183 bottom: a,
184 winding: -1,
185 });
186 }
187 }
188 }
189 if edges.is_empty() {
190 return mask;
191 }
192
193 let mut crossings: Vec<(f32, i32)> = Vec::new();
194 let mut row_coverage = vec![0.0f32; width];
195 let subsample_weight = 1.0 / SUBSAMPLES as f32;
196
197 for row in 0..height {
198 row_coverage.fill(0.0);
199 let mut row_touched = false;
200
201 for sub in 0..SUBSAMPLES {
202 let sample_y = row as f32 + (sub as f32 + 0.5) * subsample_weight;
203
204 crossings.clear();
205 for edge in &edges {
206 if edge.top.y <= sample_y && sample_y < edge.bottom.y {
207 let t = (sample_y - edge.top.y) / (edge.bottom.y - edge.top.y);
208 let x = edge.top.x + t * (edge.bottom.x - edge.top.x);
209 crossings.push((x, edge.winding));
210 }
211 }
212 if crossings.len() < 2 {
213 continue;
214 }
215 crossings.sort_by(|a, b| a.0.total_cmp(&b.0));
216
217 let mut winding = 0i32;
219 let mut span_start = 0.0f32;
220 for &(x, direction) in crossings.iter() {
221 let was_inside = match self.fill_rule {
222 PathFillRule::NonZero => winding != 0,
223 PathFillRule::EvenOdd => winding % 2 != 0,
224 };
225 winding += match self.fill_rule {
226 PathFillRule::NonZero => direction,
227 PathFillRule::EvenOdd => 1,
228 };
229 let is_inside = match self.fill_rule {
230 PathFillRule::NonZero => winding != 0,
231 PathFillRule::EvenOdd => winding % 2 != 0,
232 };
233 if !was_inside && is_inside {
234 span_start = x;
235 } else if was_inside && !is_inside {
236 row_touched |= accumulate_span(
237 &mut row_coverage,
238 span_start,
239 x,
240 subsample_weight,
241 width,
242 );
243 }
244 }
245 }
246
247 if row_touched {
248 let mask_row = &mut mask[row * width..(row + 1) * width];
249 for (dst, coverage) in mask_row.iter_mut().zip(row_coverage.iter()) {
250 let existing = *dst as f32 / 255.0;
251 let combined = (existing + coverage).min(1.0);
252 *dst = (combined * 255.0 + 0.5) as u8;
253 }
254 }
255 }
256
257 mask
258 }
259}
260
261fn accumulate_span(row_coverage: &mut [f32], x0: f32, x1: f32, weight: f32, width: usize) -> bool {
265 let x0 = x0.max(0.0);
266 let x1 = x1.min(width as f32);
267 if x1 <= x0 {
268 return false;
269 }
270
271 let first = x0.floor() as usize;
272 let last = (x1.ceil() as usize).min(width);
273 for (pixel, coverage) in row_coverage.iter_mut().enumerate().take(last).skip(first) {
274 let pixel_start = pixel as f32;
275 let pixel_end = pixel_start + 1.0;
276 let covered = (x1.min(pixel_end) - x0.max(pixel_start)).max(0.0);
277 *coverage += covered * weight;
278 }
279 true
280}
281
282struct PathLexer<'a> {
287 bytes: &'a [u8],
288 pos: usize,
289}
290
291impl<'a> PathLexer<'a> {
292 fn new(d: &'a str) -> Self {
293 Self {
294 bytes: d.as_bytes(),
295 pos: 0,
296 }
297 }
298
299 fn skip_separators(&mut self) {
300 while self.pos < self.bytes.len() {
301 match self.bytes[self.pos] {
302 b' ' | b'\t' | b'\r' | b'\n' | b',' => self.pos += 1,
303 _ => break,
304 }
305 }
306 }
307
308 fn peek(&mut self) -> Option<u8> {
309 self.skip_separators();
310 self.bytes.get(self.pos).copied()
311 }
312
313 fn at_number(&mut self) -> bool {
315 matches!(self.peek(), Some(b'0'..=b'9' | b'.' | b'-' | b'+'))
316 }
317
318 fn next_command(&mut self) -> Option<u8> {
319 let byte = self.peek()?;
320 if byte.is_ascii_alphabetic() {
321 self.pos += 1;
322 Some(byte)
323 } else {
324 None
325 }
326 }
327
328 fn next_number(&mut self) -> Result<f32, SvgPathError> {
331 self.skip_separators();
332 let start = self.pos;
333 let bytes = self.bytes;
334 let mut pos = self.pos;
335
336 if pos < bytes.len() && (bytes[pos] == b'+' || bytes[pos] == b'-') {
337 pos += 1;
338 }
339 let int_digits = Self::eat_digits(bytes, &mut pos);
340 let mut frac_digits = 0;
341 if pos < bytes.len() && bytes[pos] == b'.' {
342 pos += 1;
343 frac_digits = Self::eat_digits(bytes, &mut pos);
344 }
345 if int_digits == 0 && frac_digits == 0 {
346 return Err(SvgPathError::ExpectedNumber { offset: start });
347 }
348 if pos < bytes.len() && (bytes[pos] == b'e' || bytes[pos] == b'E') {
349 let mut exp_pos = pos + 1;
350 if exp_pos < bytes.len() && (bytes[exp_pos] == b'+' || bytes[exp_pos] == b'-') {
351 exp_pos += 1;
352 }
353 if Self::eat_digits(bytes, &mut exp_pos) > 0 {
354 pos = exp_pos;
355 }
356 }
357
358 let text = std::str::from_utf8(&bytes[start..pos])
359 .map_err(|_| SvgPathError::ExpectedNumber { offset: start })?;
360 let value = text
361 .parse::<f32>()
362 .map_err(|_| SvgPathError::ExpectedNumber { offset: start })?;
363 self.pos = pos;
364 Ok(value)
365 }
366
367 fn eat_digits(bytes: &[u8], pos: &mut usize) -> usize {
368 let start = *pos;
369 while *pos < bytes.len() && bytes[*pos].is_ascii_digit() {
370 *pos += 1;
371 }
372 *pos - start
373 }
374
375 fn next_flag(&mut self) -> Result<bool, SvgPathError> {
377 self.skip_separators();
378 match self.bytes.get(self.pos) {
379 Some(b'0') => {
380 self.pos += 1;
381 Ok(false)
382 }
383 Some(b'1') => {
384 self.pos += 1;
385 Ok(true)
386 }
387 _ => Err(SvgPathError::ExpectedFlag { offset: self.pos }),
388 }
389 }
390
391 fn at_end(&mut self) -> bool {
392 self.peek().is_none()
393 }
394}
395
396struct PathBuilder {
397 subpaths: Vec<Vec<Point>>,
398 current: Vec<Point>,
399 position: Point,
400 subpath_start: Point,
401 last_cubic_control: Option<Point>,
403 last_quad_control: Option<Point>,
404}
405
406impl PathBuilder {
407 fn new() -> Self {
408 Self {
409 subpaths: Vec::new(),
410 current: Vec::new(),
411 position: Point::ZERO,
412 subpath_start: Point::ZERO,
413 last_cubic_control: None,
414 last_quad_control: None,
415 }
416 }
417
418 fn flush_subpath(&mut self) {
419 if self.current.len() >= 2 {
420 self.subpaths.push(std::mem::take(&mut self.current));
421 } else {
422 self.current.clear();
423 }
424 }
425
426 fn move_to(&mut self, point: Point) {
427 self.flush_subpath();
428 self.position = point;
429 self.subpath_start = point;
430 self.current.push(point);
431 }
432
433 fn line_to(&mut self, point: Point) {
434 if self.current.is_empty() {
435 self.current.push(self.position);
436 }
437 self.current.push(point);
438 self.position = point;
439 }
440
441 fn close(&mut self) {
442 self.position = self.subpath_start;
443 self.flush_subpath();
444 self.current.push(self.subpath_start);
446 }
447
448 fn finish(mut self) -> Vec<Vec<Point>> {
449 self.flush_subpath();
450 self.subpaths
451 }
452}
453
454fn parse_path_data(d: &str) -> Result<Vec<Vec<Point>>, SvgPathError> {
455 let mut lexer = PathLexer::new(d);
456 let mut builder = PathBuilder::new();
457 let mut command: Option<u8> = None;
458 let mut seen_moveto = false;
459
460 loop {
461 if lexer.at_end() {
462 break;
463 }
464
465 if let Some(next) = lexer.next_command() {
466 command = Some(next);
467 } else if command.is_none() || !lexer.at_number() {
468 let offset = lexer.pos;
469 let byte = lexer.bytes.get(offset).copied().unwrap_or(b'?') as char;
470 return Err(SvgPathError::UnexpectedByte { byte, offset });
471 }
472
473 let Some(cmd) = command else {
474 return Err(SvgPathError::MissingMoveTo);
475 };
476 if !seen_moveto && !matches!(cmd, b'M' | b'm') {
477 return Err(SvgPathError::MissingMoveTo);
478 }
479 let relative = cmd.is_ascii_lowercase();
480 let pos = builder.position;
481 let rel = |value: Point| {
482 if relative {
483 Point::new(pos.x + value.x, pos.y + value.y)
484 } else {
485 value
486 }
487 };
488
489 match cmd.to_ascii_uppercase() {
490 b'M' => {
491 let point = rel(read_point(&mut lexer)?);
492 builder.move_to(point);
493 seen_moveto = true;
494 builder.last_cubic_control = None;
495 builder.last_quad_control = None;
496 command = Some(if relative { b'l' } else { b'L' });
498 }
499 b'L' => {
500 let point = rel(read_point(&mut lexer)?);
501 builder.line_to(point);
502 builder.last_cubic_control = None;
503 builder.last_quad_control = None;
504 }
505 b'H' => {
506 let x = lexer.next_number()?;
507 let x = if relative { pos.x + x } else { x };
508 builder.line_to(Point::new(x, pos.y));
509 builder.last_cubic_control = None;
510 builder.last_quad_control = None;
511 }
512 b'V' => {
513 let y = lexer.next_number()?;
514 let y = if relative { pos.y + y } else { y };
515 builder.line_to(Point::new(pos.x, y));
516 builder.last_cubic_control = None;
517 builder.last_quad_control = None;
518 }
519 b'C' => {
520 let c1 = rel(read_point(&mut lexer)?);
521 let c2 = rel(read_point(&mut lexer)?);
522 let end = rel(read_point(&mut lexer)?);
523 emit_cubic(&mut builder, c1, c2, end);
524 }
525 b'S' => {
526 let c1 = match builder.last_cubic_control {
527 Some(control) => reflect(pos, control),
528 None => pos,
529 };
530 let c2 = rel(read_point(&mut lexer)?);
531 let end = rel(read_point(&mut lexer)?);
532 emit_cubic(&mut builder, c1, c2, end);
533 }
534 b'Q' => {
535 let control = rel(read_point(&mut lexer)?);
536 let end = rel(read_point(&mut lexer)?);
537 emit_quad(&mut builder, control, end);
538 }
539 b'T' => {
540 let control = match builder.last_quad_control {
541 Some(control) => reflect(pos, control),
542 None => pos,
543 };
544 let end = rel(read_point(&mut lexer)?);
545 emit_quad(&mut builder, control, end);
546 }
547 b'A' => {
548 let rx = lexer.next_number()?;
549 let ry = lexer.next_number()?;
550 let x_rotation_deg = lexer.next_number()?;
551 let large_arc = lexer.next_flag()?;
552 let sweep = lexer.next_flag()?;
553 let end = rel(read_point(&mut lexer)?);
554 emit_arc(&mut builder, rx, ry, x_rotation_deg, large_arc, sweep, end);
555 builder.last_cubic_control = None;
556 builder.last_quad_control = None;
557 }
558 b'Z' => {
559 builder.close();
560 builder.last_cubic_control = None;
561 builder.last_quad_control = None;
562 command = None;
564 }
565 other => {
566 return Err(SvgPathError::UnexpectedByte {
567 byte: other as char,
568 offset: lexer.pos.saturating_sub(1),
569 });
570 }
571 }
572 }
573
574 if !seen_moveto {
575 return Err(SvgPathError::MissingMoveTo);
576 }
577 Ok(builder.finish())
578}
579
580fn read_point(lexer: &mut PathLexer<'_>) -> Result<Point, SvgPathError> {
581 let x = lexer.next_number()?;
582 let y = lexer.next_number()?;
583 Ok(Point::new(x, y))
584}
585
586fn reflect(origin: Point, point: Point) -> Point {
587 Point::new(2.0 * origin.x - point.x, 2.0 * origin.y - point.y)
588}
589
590fn emit_cubic(builder: &mut PathBuilder, c1: Point, c2: Point, end: Point) {
591 let start = builder.position;
592 flatten_cubic(builder, start, c1, c2, end, 0);
593 builder.position = end;
594 builder.last_cubic_control = Some(c2);
595 builder.last_quad_control = None;
596}
597
598fn emit_quad(builder: &mut PathBuilder, control: Point, end: Point) {
599 let start = builder.position;
601 let c1 = Point::new(
602 start.x + 2.0 / 3.0 * (control.x - start.x),
603 start.y + 2.0 / 3.0 * (control.y - start.y),
604 );
605 let c2 = Point::new(
606 end.x + 2.0 / 3.0 * (control.x - end.x),
607 end.y + 2.0 / 3.0 * (control.y - end.y),
608 );
609 flatten_cubic(builder, start, c1, c2, end, 0);
610 builder.position = end;
611 builder.last_quad_control = Some(control);
612 builder.last_cubic_control = None;
613}
614
615fn flatten_cubic(
616 builder: &mut PathBuilder,
617 p0: Point,
618 p1: Point,
619 p2: Point,
620 p3: Point,
621 depth: u32,
622) {
623 if depth >= MAX_FLATTEN_DEPTH || cubic_is_flat(p0, p1, p2, p3) {
624 builder.line_to(p3);
625 return;
626 }
627
628 let mid = |a: Point, b: Point| Point::new((a.x + b.x) * 0.5, (a.y + b.y) * 0.5);
629 let p01 = mid(p0, p1);
630 let p12 = mid(p1, p2);
631 let p23 = mid(p2, p3);
632 let p012 = mid(p01, p12);
633 let p123 = mid(p12, p23);
634 let p0123 = mid(p012, p123);
635
636 flatten_cubic(builder, p0, p01, p012, p0123, depth + 1);
637 flatten_cubic(builder, p0123, p123, p23, p3, depth + 1);
638}
639
640fn cubic_is_flat(p0: Point, p1: Point, p2: Point, p3: Point) -> bool {
642 let d1 = point_to_chord_distance_squared(p1, p0, p3);
643 let d2 = point_to_chord_distance_squared(p2, p0, p3);
644 let tolerance = FLATTEN_TOLERANCE * FLATTEN_TOLERANCE;
645 d1 <= tolerance && d2 <= tolerance
646}
647
648fn point_to_chord_distance_squared(point: Point, a: Point, b: Point) -> f32 {
649 let ab = Point::new(b.x - a.x, b.y - a.y);
650 let ap = Point::new(point.x - a.x, point.y - a.y);
651 let ab_len_sq = ab.x * ab.x + ab.y * ab.y;
652 if ab_len_sq <= f32::EPSILON {
653 return ap.x * ap.x + ap.y * ap.y;
654 }
655 let cross = ab.x * ap.y - ab.y * ap.x;
656 cross * cross / ab_len_sq
657}
658
659fn emit_arc(
662 builder: &mut PathBuilder,
663 rx: f32,
664 ry: f32,
665 x_rotation_deg: f32,
666 large_arc: bool,
667 sweep: bool,
668 end: Point,
669) {
670 let start = builder.position;
671 if (start.x - end.x).abs() <= f32::EPSILON && (start.y - end.y).abs() <= f32::EPSILON {
672 return;
673 }
674 let mut rx = rx.abs();
675 let mut ry = ry.abs();
676 if rx <= f32::EPSILON || ry <= f32::EPSILON {
677 builder.line_to(end);
678 return;
679 }
680
681 let phi = x_rotation_deg.to_radians();
682 let (sin_phi, cos_phi) = phi.sin_cos();
683
684 let dx2 = (start.x - end.x) * 0.5;
686 let dy2 = (start.y - end.y) * 0.5;
687 let x1p = cos_phi * dx2 + sin_phi * dy2;
688 let y1p = -sin_phi * dx2 + cos_phi * dy2;
689
690 let lambda = (x1p * x1p) / (rx * rx) + (y1p * y1p) / (ry * ry);
692 if lambda > 1.0 {
693 let scale = lambda.sqrt();
694 rx *= scale;
695 ry *= scale;
696 }
697
698 let rx_sq = rx * rx;
700 let ry_sq = ry * ry;
701 let numerator = (rx_sq * ry_sq - rx_sq * y1p * y1p - ry_sq * x1p * x1p).max(0.0);
702 let denominator = rx_sq * y1p * y1p + ry_sq * x1p * x1p;
703 let mut coefficient = if denominator <= f32::EPSILON {
704 0.0
705 } else {
706 (numerator / denominator).sqrt()
707 };
708 if large_arc == sweep {
709 coefficient = -coefficient;
710 }
711 let cxp = coefficient * rx * y1p / ry;
712 let cyp = -coefficient * ry * x1p / rx;
713
714 let cx = cos_phi * cxp - sin_phi * cyp + (start.x + end.x) * 0.5;
716 let cy = sin_phi * cxp + cos_phi * cyp + (start.y + end.y) * 0.5;
717
718 let angle_of = |x: f32, y: f32| y.atan2(x);
720 let theta1 = angle_of((x1p - cxp) / rx, (y1p - cyp) / ry);
721 let theta2 = angle_of((-x1p - cxp) / rx, (-y1p - cyp) / ry);
722 let two_pi = std::f32::consts::TAU;
723 let mut delta = theta2 - theta1;
724 if sweep {
725 if delta < 0.0 {
726 delta += two_pi;
727 }
728 } else if delta > 0.0 {
729 delta -= two_pi;
730 }
731
732 let segments = ((delta.abs() / ARC_MAX_ANGLE_STEP).ceil() as usize).max(2);
733 for i in 1..=segments {
734 let theta = theta1 + delta * (i as f32 / segments as f32);
735 let (sin_theta, cos_theta) = theta.sin_cos();
736 let x = cos_phi * rx * cos_theta - sin_phi * ry * sin_theta + cx;
737 let y = sin_phi * rx * cos_theta + cos_phi * ry * sin_theta + cy;
738 builder.line_to(Point::new(x, y));
739 }
740 builder.line_to(end);
742 builder.position = end;
743}
744
745#[cfg(test)]
746mod tests {
747 use super::*;
748
749 fn mask_at(mask: &[u8], width: usize, x: usize, y: usize) -> u8 {
750 mask[y * width + x]
751 }
752
753 #[test]
756 fn parses_absolute_triangle() {
757 let path = VectorPath::parse("M 0 0 L 10 0 L 10 10 Z").expect("valid path");
758 assert_eq!(path.subpaths().len(), 1);
759 assert_eq!(
760 path.subpaths()[0],
761 vec![
762 Point::new(0.0, 0.0),
763 Point::new(10.0, 0.0),
764 Point::new(10.0, 10.0)
765 ]
766 );
767 let bounds = path.bounds();
768 assert_eq!((bounds.x, bounds.y), (0.0, 0.0));
769 assert_eq!((bounds.width, bounds.height), (10.0, 10.0));
770 }
771
772 #[test]
773 fn parses_relative_commands_and_h_v() {
774 let path = VectorPath::parse("m 5 5 l 10 0 v 10 h -10 z").expect("valid path");
775 assert_eq!(
776 path.subpaths()[0],
777 vec![
778 Point::new(5.0, 5.0),
779 Point::new(15.0, 5.0),
780 Point::new(15.0, 15.0),
781 Point::new(5.0, 15.0)
782 ]
783 );
784 }
785
786 #[test]
787 fn parses_packed_numbers_and_negative_shorthand() {
788 let path = VectorPath::parse("M10-5L.5.5Z").expect("valid path");
790 assert_eq!(
791 path.subpaths()[0],
792 vec![Point::new(10.0, -5.0), Point::new(0.5, 0.5)]
793 );
794 }
795
796 #[test]
797 fn implicit_lineto_after_moveto() {
798 let path = VectorPath::parse("M 0 0 10 0 10 10").expect("valid path");
799 assert_eq!(path.subpaths()[0].len(), 3);
800 assert_eq!(path.subpaths()[0][2], Point::new(10.0, 10.0));
801 }
802
803 #[test]
804 fn cubic_flattening_hits_endpoints() {
805 let path = VectorPath::parse("M 0 0 C 0 10 10 10 10 0").expect("valid path");
806 let points = &path.subpaths()[0];
807 assert_eq!(points[0], Point::new(0.0, 0.0));
808 assert_eq!(*points.last().unwrap(), Point::new(10.0, 0.0));
809 assert!(points.len() > 4, "curve must be subdivided");
810 let mid = points
812 .iter()
813 .min_by(|a, b| (a.x - 5.0).abs().total_cmp(&(b.x - 5.0).abs()))
814 .unwrap();
815 assert!(
816 (mid.y - 7.5).abs() < 0.2,
817 "flattened curve must pass near the true midpoint, got {mid:?}"
818 );
819 }
820
821 #[test]
822 fn smooth_cubic_reflects_control_point() {
823 let path = VectorPath::parse("M 0 0 C 0 5 2 5 5 5 S 10 5 10 10").expect("valid path");
826 let points = &path.subpaths()[0];
827 assert_eq!(*points.last().unwrap(), Point::new(10.0, 10.0));
828 assert!(points
829 .iter()
830 .any(|p| (p.x - 5.0).abs() < 0.1 && (p.y - 5.0).abs() < 0.1));
831 }
832
833 #[test]
834 fn quadratic_and_smooth_quadratic() {
835 let path = VectorPath::parse("M 0 0 Q 5 10 10 0 T 20 0").expect("valid path");
836 let points = &path.subpaths()[0];
837 assert_eq!(*points.last().unwrap(), Point::new(20.0, 0.0));
838 assert!(points
840 .iter()
841 .any(|p| (p.x - 5.0).abs() < 0.3 && (p.y - 5.0).abs() < 0.3));
842 assert!(points
844 .iter()
845 .any(|p| (p.x - 15.0).abs() < 0.3 && (p.y + 5.0).abs() < 0.3));
846 }
847
848 #[test]
849 fn arc_travels_through_expected_quadrant() {
850 let path = VectorPath::parse("M 0 0 A 5 5 0 0 1 10 0").expect("valid path");
852 let points = &path.subpaths()[0];
853 assert_eq!(*points.last().unwrap(), Point::new(10.0, 0.0));
854 let lowest = points.iter().fold(0.0f32, |acc, p| acc.min(p.y));
855 assert!(
856 (lowest + 5.0).abs() < 0.1,
857 "sweep=1 arc must pass through (5,-5), lowest y = {lowest}"
858 );
859
860 let path = VectorPath::parse("M 0 0 A 5 5 0 0 0 10 0").expect("valid path");
861 let highest = path.subpaths()[0]
862 .iter()
863 .fold(0.0f32, |acc, p| acc.max(p.y));
864 assert!(
865 (highest - 5.0).abs() < 0.1,
866 "sweep=0 arc must pass through (5,5), highest y = {highest}"
867 );
868 }
869
870 #[test]
871 fn arc_flags_may_be_packed() {
872 let spaced = VectorPath::parse("M 0 0 A 5 5 0 0 1 10 0").expect("valid path");
873 let packed = VectorPath::parse("M0 0A5 5 0 0110 0").expect("valid path");
874 assert_eq!(
875 spaced.subpaths()[0].len(),
876 packed.subpaths()[0].len(),
877 "packed arc flags must parse identically"
878 );
879 }
880
881 #[test]
882 fn multiple_subpaths() {
883 let path =
884 VectorPath::parse("M 0 0 h 4 v 4 h -4 Z M 10 10 h 4 v 4 h -4 Z").expect("valid path");
885 assert_eq!(path.subpaths().len(), 2);
886 }
887
888 #[test]
889 fn rejects_garbage() {
890 assert!(VectorPath::parse("this is not a path").is_err());
891 assert!(
892 VectorPath::parse("L 10 10").is_err(),
893 "must start with moveto"
894 );
895 assert!(VectorPath::parse("M 10").is_err(), "missing y coordinate");
896 assert!(
897 VectorPath::parse("M 0 0 A 5 5 0 2 1 10 0").is_err(),
898 "bad flag"
899 );
900 assert_eq!(
901 VectorPath::parse("").unwrap_err(),
902 SvgPathError::MissingMoveTo
903 );
904 }
905
906 #[test]
909 fn fills_axis_aligned_rectangle() {
910 let path = VectorPath::parse("M 2 2 H 8 V 8 H 2 Z").expect("valid path");
911 let mask = path.coverage_mask(10, 10, Point::ZERO, 1.0);
912
913 assert_eq!(mask_at(&mask, 10, 5, 5), 255, "interior must be opaque");
914 assert_eq!(mask_at(&mask, 10, 4, 2), 255, "top edge row is inside");
915 assert_eq!(mask_at(&mask, 10, 0, 0), 0, "outside must stay empty");
916 assert_eq!(mask_at(&mask, 10, 9, 9), 0, "outside must stay empty");
917 }
918
919 #[test]
920 fn triangle_edge_is_antialiased() {
921 let path = VectorPath::parse("M 0 0 L 8 0 L 0 8 Z").expect("valid path");
922 let mask = path.coverage_mask(8, 8, Point::ZERO, 1.0);
923
924 assert_eq!(mask_at(&mask, 8, 1, 1), 255, "deep interior is opaque");
925 assert_eq!(mask_at(&mask, 8, 7, 7), 0, "far corner is empty");
926 let diagonal = mask_at(&mask, 8, 4, 3);
928 assert!(
929 diagonal > 30 && diagonal < 225,
930 "diagonal pixel should be partially covered, got {diagonal}"
931 );
932 }
933
934 #[test]
935 fn even_odd_ring_has_a_hole() {
936 let d = "M 0 0 H 12 V 12 H 0 Z M 4 4 H 8 V 8 H 4 Z";
939 let even_odd =
940 VectorPath::parse_with_fill_rule(d, PathFillRule::EvenOdd).expect("valid path");
941 let non_zero = VectorPath::parse(d).expect("valid path");
942
943 let even_odd_mask = even_odd.coverage_mask(12, 12, Point::ZERO, 1.0);
944 let non_zero_mask = non_zero.coverage_mask(12, 12, Point::ZERO, 1.0);
945
946 assert_eq!(mask_at(&even_odd_mask, 12, 6, 6), 0, "even-odd hole");
947 assert_eq!(mask_at(&even_odd_mask, 12, 2, 6), 255, "even-odd ring");
948 assert_eq!(mask_at(&non_zero_mask, 12, 6, 6), 255, "non-zero solid");
949 }
950
951 #[test]
952 fn non_zero_ring_with_reversed_inner_winding_has_a_hole() {
953 let d = "M 0 0 H 12 V 12 H 0 Z M 4 4 V 8 H 8 V 4 Z";
955 let path = VectorPath::parse(d).expect("valid path");
956 let mask = path.coverage_mask(12, 12, Point::ZERO, 1.0);
957 assert_eq!(mask_at(&mask, 12, 6, 6), 0, "reversed winding hole");
958 assert_eq!(mask_at(&mask, 12, 2, 6), 255, "ring stays filled");
959 }
960
961 #[test]
962 fn circle_from_arcs_fills_center_and_respects_radius() {
963 let path =
965 VectorPath::parse("M 0 8 A 8 8 0 1 1 16 8 A 8 8 0 1 1 0 8 Z").expect("valid path");
966 let mask = path.coverage_mask(16, 16, Point::ZERO, 1.0);
967
968 assert_eq!(mask_at(&mask, 16, 8, 8), 255, "circle center is opaque");
969 assert_eq!(mask_at(&mask, 16, 0, 0), 0, "circle corner is empty");
970 assert_eq!(mask_at(&mask, 16, 15, 0), 0, "circle corner is empty");
971 let area: f32 = mask.iter().map(|&value| value as f32 / 255.0).sum();
973 let expected = std::f32::consts::PI * 8.0 * 8.0;
974 assert!(
975 (area - expected).abs() / expected < 0.05,
976 "filled area {area} should be close to {expected}"
977 );
978 }
979
980 #[test]
981 fn scale_and_origin_map_path_units_to_pixels() {
982 let path = VectorPath::parse("M 10 10 H 14 V 14 H 10 Z").expect("valid path");
983 let mask = path.coverage_mask(8, 8, Point::new(10.0, 10.0), 2.0);
985 assert_eq!(mask_at(&mask, 8, 4, 4), 255, "scaled interior");
986 let full: usize = mask.iter().filter(|&&value| value == 255).count();
987 assert_eq!(full, 64, "the 8x8 pixel mask must be fully covered");
988 }
989
990 #[test]
991 fn empty_and_degenerate_paths_produce_empty_masks() {
992 let path = VectorPath::parse("M 5 5 L 6 6").expect("valid path");
993 assert!(path.is_empty());
994 let mask = path.coverage_mask(8, 8, Point::ZERO, 1.0);
995 assert!(mask.iter().all(|&value| value == 0));
996 }
997}