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kui_core/
text.rs

1//! Core-owned text stack. Shaping and line layout run through cosmic-text and
2//! are cached across frames keyed by (content, style, scale) — the layout pass
3//! measures through this cache, so shaping survives resizes and static text
4//! costs a hash lookup per frame. Rasterization feeds the shared glyph atlas;
5//! renderers only ever see positioned atlas quads.
6
7use cosmic_text::{
8    Attrs, Buffer, CacheKeyFlags, Ellipsize, EllipsizeHeightLimit, FontSystem, Metrics, Shaping,
9    Style as FontStyle, SwashContent, Weight, Wrap,
10};
11use rustc_hash::FxHashMap;
12
13use crate::atlas::GlyphAtlas;
14use crate::color::Color;
15use crate::display::{Clip, ClipId, Quad, QuadKind};
16use crate::geom::{Rect, Size, Vec2};
17use crate::key::Key;
18use crate::resources::Resources;
19use crate::retain::Kept;
20use crate::spec::{FontFamily, TextStyle, TextWrap, UnderlineStyle};
21use crate::tree::TextId;
22use crate::value::Value;
23
24/// The glyph rasterizer: swash's scaler, as cosmic-text's `SwashCache`
25/// drives it, for plain alpha masks, LCD subpixel masks and color bitmaps
26/// alike — our own so the subpixel format is ours to pick, and so a
27/// variable face is drawn at the `wght` coordinate its axis gives a CSS
28/// weight and a glyph marked for synthetic bold is drawn bold, neither of
29/// which cosmic-text's cache does.
30pub(crate) struct Raster {
31    ctx: swash::scale::ScaleContext,
32    /// Each face's `wght` axis, read once: `None` for a face without one.
33    axes: FxHashMap<cosmic_text::fontdb::ID, Option<crate::weights::WghtAxis>>,
34    /// Rasterize outline glyphs as per-channel subpixel coverage. Set by
35    /// the driver from what its renderer can blend; see
36    /// `Core::set_subpixel_text`.
37    pub(crate) subpixel: bool,
38}
39
40impl Raster {
41    fn new() -> Self {
42        Self {
43            ctx: swash::scale::ScaleContext::new(),
44            axes: FxHashMap::default(),
45            subpixel: false,
46        }
47    }
48
49    /// cosmic-text's `swash_image` in `format`: with `Format::Subpixel`,
50    /// three rasterizations shifted by a third of a pixel land in r, g and
51    /// b. Color sources are tried first so emoji still come out as bitmaps.
52    ///
53    /// A variable face is drawn where its `wght` axis puts the glyph's
54    /// weight ([`WghtAxis`](crate::weights::WghtAxis)) — cosmic-text takes
55    /// the CSS number itself as the coordinate, which draws Berkeley Mono
56    /// Variable's regular at its Bold — and a glyph marked
57    /// [`SYNTHETIC_BOLD`](crate::weights::SYNTHETIC_BOLD) at the axis's
58    /// bold, or, when the face has no heavier instance or no axis, with
59    /// its outline emboldened.
60    fn image(
61        &mut self,
62        fs: &mut FontSystem,
63        key: cosmic_text::CacheKey,
64        format: swash::zeno::Format,
65    ) -> Option<cosmic_text::SwashImage> {
66        use swash::scale::{Render, Source, StrikeWith};
67        use swash::zeno::{Angle, Transform, Vector};
68        let font = fs.get_font(key.font_id, key.font_weight)?;
69        let swash_font = font.as_swash();
70        let axis = self
71            .axes
72            .entry(key.font_id)
73            .or_insert_with(|| {
74                let weight = fs.db().face(key.font_id).map_or(400, |face| face.weight.0);
75                crate::weights::WghtAxis::read(swash_font, weight)
76            })
77            .as_ref();
78        let size = f32::from_bits(key.font_size_bits);
79        let face_weight = f32::from(key.font_weight.0);
80        let bold = key.flags.contains(crate::weights::SYNTHETIC_BOLD);
81        let asked = if bold {
82            f32::from(Weight::BOLD.0)
83        } else {
84            face_weight
85        };
86        let at = axis.map(|axis| axis.coordinate(asked));
87        // Bold that the axis cannot draw heavier than the face's own
88        // weight, or a face with no axis: the outline grown instead.
89        let embolden = bold
90            && match (axis, at) {
91                (Some(axis), Some(at)) => at <= axis.coordinate(face_weight),
92                _ => true,
93            };
94        let mut scaler = self
95            .ctx
96            .builder(swash_font)
97            .size(size)
98            .hint(!key.flags.contains(CacheKeyFlags::DISABLE_HINTING));
99        if let Some(at) = at {
100            scaler = scaler.normalized_coords(
101                swash_font
102                    .variations()
103                    .normalized_coords([(swash::Tag::from_be_bytes(*b"wght"), at)]),
104            );
105        }
106        let mut scaler = scaler.build();
107        let offset = if key.flags.contains(CacheKeyFlags::PIXEL_FONT) {
108            Vector::new(key.x_bin.as_float().round(), key.y_bin.as_float().round())
109        } else {
110            Vector::new(key.x_bin.as_float(), key.y_bin.as_float())
111        };
112        Render::new(&[
113            Source::ColorOutline(0),
114            Source::ColorBitmap(StrikeWith::BestFit),
115            Source::Outline,
116        ])
117        .format(format)
118        .offset(offset)
119        .embolden(if embolden {
120            crate::weights::embolden_strength(size)
121        } else {
122            0.0
123        })
124        .transform(
125            key.flags
126                .contains(CacheKeyFlags::FAKE_ITALIC)
127                .then(|| Transform::skew(Angle::from_degrees(14.0), Angle::from_degrees(0.0))),
128        )
129        .render(&mut scaler, key.glyph_id)
130    }
131}
132
133/// Rasterizes one glyph into the atlas (shared by static text and editors).
134pub(crate) fn raster_glyph(
135    key: cosmic_text::CacheKey,
136    fs: &mut FontSystem,
137    raster: &mut Raster,
138    atlas: &mut crate::atlas::GlyphAtlas,
139) -> Option<crate::atlas::GlyphSlot> {
140    atlas.get_or_insert(key, || {
141        let format = if raster.subpixel {
142            swash::zeno::Format::Subpixel
143        } else {
144            swash::zeno::Format::Alpha
145        };
146        let image = raster.image(fs, key, format)?;
147        if image.placement.width == 0 || image.placement.height == 0 {
148            return None;
149        }
150        let (data, is_color, subpixel) = match image.content {
151            SwashContent::Mask => {
152                let mut rgba = Vec::with_capacity(image.data.len() * 4);
153                for &a in image.data.iter() {
154                    rgba.extend_from_slice(&[255, 255, 255, a]);
155                }
156                (rgba, false, false)
157            }
158            SwashContent::Color => (image.data.to_vec(), true, false),
159            SwashContent::SubpixelMask => {
160                // rgb carry the per-channel coverages; alpha (which zeno
161                // leaves untouched) becomes the union, the value a backend
162                // without per-channel blending falls back to.
163                let mut rgba = image.data.to_vec();
164                for px in rgba.as_chunks_mut::<4>().0 {
165                    px[3] = px[0].max(px[1]).max(px[2]);
166                }
167                (rgba, false, true)
168            }
169        };
170        Some(crate::atlas::RasterGlyph {
171            w: image.placement.width,
172            h: image.placement.height,
173            left: image.placement.left,
174            top: image.placement.top,
175            color: is_color,
176            subpixel,
177            data,
178        })
179    })
180}
181
182/// The quad kind a rasterized glyph draws as.
183pub(crate) fn glyph_kind(slot: &crate::atlas::GlyphSlot) -> QuadKind {
184    if slot.color_glyph {
185        QuadKind::GlyphColor
186    } else if slot.subpixel {
187        QuadKind::GlyphSubpixel
188    } else {
189        QuadKind::GlyphMask
190    }
191}
192
193/// The default byte budget for the shaped-text cache. Sized
194/// so a screenful of code never meets it — two panes of 55 highlighted
195/// lines are ~900 short entries, a few megabytes — and a pane streaming
196/// new text meets it within seconds, which is when the clock alone let the
197/// cache reach gigabytes. `Core::set_text_cache_budget` changes it.
198pub const DEFAULT_TEXT_CACHE_BYTES: usize = 64 << 20;
199
200/// What one cache entry costs, estimated: a fixed floor (the `Buffer`, its
201/// line, the attrs list, the entry itself) plus a per-glyph rate that
202/// covers cosmic-text's `ShapeGlyph` and `LayoutGlyph`, our
203/// `GlyphTemplate`, and the entry's share of the shape-run cache. Measured
204/// on 2026-09-07 with a counting allocator around a `Core` drawing 50 new
205/// lines a frame: 7.6 KB per 10-glyph line, 22 KB per 40, 92 KB per 200
206/// (cosmic-text's own `Buffer` is 284 B/glyph of that and the shape-run
207/// cache 118 B/glyph). The estimate lands within ~10% of those, on the
208/// high side, so the budget errs toward evicting.
209const ENTRY_BASE_BYTES: usize = 4096;
210const ENTRY_GLYPH_BYTES: usize = 480;
211
212/// A non-wrapping text at least this long is shaped in chunks: a minified
213/// bundle, a log line with a blob in it, a base64 field.
214/// Shorter text takes the path it always took, so nothing below the line
215/// moves. Bytes, not characters, for the same reason a step line carries
216/// integers: every binding can count them.
217pub const LONG_LINE_BYTES: usize = 4096;
218/// How long a chunk is, at most: cut at the last whitespace in the second
219/// half of the window, else at a grapheme boundary. cosmic-text shapes
220/// per whitespace-delimited word and its shape-run cache keys on words, so
221/// a cut at whitespace loses nothing the whole line kept.
222const CHUNK_BYTES: usize = 1024;
223/// Mixed into a long line's key so it never collides with the entry a
224/// short text of the same content would get.
225const LONG_SALT: u64 = 0x5f5f_6c6f_6e67_5f5f;
226/// Mixed into the key of a long line's copies, one for each further node
227/// of a frame drawing the same line ([`TextSystem::claim_long`]).
228const COPY_SALT: u64 = 0x5f5f_636f_7079_5f5f;
229
230/// When the cache is over budget it is evicted down to this fraction of it,
231/// not to the line, so a stream that adds a little every frame walks the
232/// cache once per quarter-budget of new text rather than every frame.
233const EVICT_TO_NUMERATOR: usize = 3;
234const EVICT_TO_DENOMINATOR: usize = 4;
235
236pub(crate) struct CachedText {
237    buffer: Buffer,
238    /// The text itself (spans concatenated, for rich text): what the
239    /// access tree names a control by.
240    content: String,
241    /// Wrap width (physical px) the buffer is currently laid out at.
242    wrap: Option<f32>,
243    /// Unwrapped measurement, physical px.
244    intrinsic: Size,
245    /// Lines past this many are dropped (0 = unlimited): the buffer-wide
246    /// budget; cosmic-text's ellipsize limit is per paragraph.
247    max_lines: usize,
248    /// The content may run past the node's width (no-wrap, ellipsis):
249    /// report the box width and clip glyphs to it.
250    clamp_w: bool,
251    last_used: u64,
252    /// What this entry costs the budget (see `ENTRY_BASE_BYTES`).
253    bytes: usize,
254    /// Positioned glyph quads relative to the text origin, so steady-state
255    /// emission is a memcpy-style walk instead of per-glyph atlas lookups.
256    glyphs: Vec<GlyphTemplate>,
257    /// The decoration rects that go with them: a span's
258    /// background under its glyphs, its underline and strikethrough over
259    /// them, one rect per run of the span per line, so they wrap with it.
260    deco: Vec<DecoTemplate>,
261    /// What each span asked for, by the index its glyphs carry as
262    /// metadata; one entry for plain text.
263    span_deco: Vec<SpanDeco>,
264    /// (wrap, atlas stamp) the template cache was built for.
265    glyphs_built_for: Option<(Option<u32>, u64)>,
266    /// The frame a node last wrapped this run for, and the wrap it asked:
267    /// a second node of that frame asking another width wraps a copy of
268    /// its own ([`TextSystem::own_wrap`]), since the queries read the
269    /// buffer as it was left.
270    claimed: u64,
271    claimed_wrap: Option<f32>,
272    /// A break may fall between any two glyphs (`TextWrap::Glyph`), not
273    /// only where a line may break: what the min-content reads.
274    breaks_anywhere: bool,
275    /// The widest stretch no break falls inside, physical px — CSS's
276    /// min-content — measured the first time a shrink asks and kept for
277    /// the entry's life, since no width changes it.
278    min_content: Option<f32>,
279}
280
281struct GlyphTemplate {
282    x: f32,
283    y: f32,
284    w: f32,
285    h: f32,
286    uv: [u32; 4],
287    kind: QuadKind,
288    /// Per-span color override (rich text); falls back to the node color.
289    color: Option<Color>,
290    /// The byte the glyph starts at in the entry's content: what puts it
291    /// on a row when a wrapped long line's chunk is drawn.
292    byte: u32,
293}
294
295/// One decoration rect relative to the text origin, physical px.
296struct DecoTemplate {
297    x: f32,
298    y: f32,
299    w: f32,
300    h: f32,
301    /// The rect's colour; `None` is the text's own (an underline in the
302    /// text colour), which a background never is.
303    color: Option<Color>,
304    /// Painted before the glyphs (a background) rather than after (a line).
305    under: bool,
306    /// The shape, for an underline: the rect is where a solid line goes,
307    /// and a wave or dots are built around it at emission.
308    style: UnderlineStyle,
309    /// A background's radius, logical px; above zero the frame joins it
310    /// with the ones it meets ([`JoinBg`]).
311    radius: f32,
312}
313
314/// A rounded span background emitted this frame: the quad
315/// it is, square for now, which the frame's last pass turns into its part
316/// of one shape once every text has been painted and each can be told the
317/// ones it meets (`crate::join`). The radius is logical px. `outer` is the
318/// clip the text was given, and `own` its own box's physical x-range when
319/// it clips to it, as a no-wrap text does: a piece is no wider than that
320/// box shows, but a fillet past the end of a short line lies outside the
321/// box, beside it, and is clipped only as the text's parent is.
322#[derive(Clone, Copy, Debug)]
323pub(crate) struct JoinBg {
324    pub quad: u32,
325    pub radius: f32,
326    pub outer: ClipId,
327    pub own: Option<(f32, f32)>,
328}
329
330/// The decorations one span (or a plain text's whole content) asked for.
331#[derive(Clone, Copy, Default)]
332struct SpanDeco {
333    underline: bool,
334    underline_color: Option<Color>,
335    underline_style: UnderlineStyle,
336    strikethrough: bool,
337    bg: Option<Color>,
338    /// The background's radius, logical px: above zero it is joined with
339    /// the backgrounds it meets.
340    bg_radius: f32,
341}
342
343impl SpanDeco {
344    fn of_style(style: &TextStyle) -> Self {
345        Self {
346            underline: style.underline,
347            underline_color: style.underline_color,
348            underline_style: style.underline_style,
349            strikethrough: style.strikethrough,
350            bg: None,
351            bg_radius: 0.0,
352        }
353    }
354
355    fn any(&self) -> bool {
356        self.underline || self.strikethrough || self.bg.is_some()
357    }
358}
359
360/// One styled run inside a rich-text paragraph. Spans are shaped and wrapped
361/// together as a single flow; plain data, so every frontend can build them.
362#[derive(Clone, Copy, Debug)]
363pub struct Span<'a> {
364    pub text: &'a str,
365    pub color: Option<Color>,
366    pub bold: bool,
367    pub italic: bool,
368    /// A line under the span, where the face puts its underline.
369    pub underline: bool,
370    /// The underline's own colour; `None` is the span's.
371    pub underline_color: Option<Color>,
372    /// The underline's shape.
373    pub underline_style: UnderlineStyle,
374    /// A line through the span, where the face puts its strikeout.
375    pub strikethrough: bool,
376    /// A background behind the span's glyphs, one rect per line it spans,
377    /// so it follows the span across a wrap the way a box cannot.
378    pub bg: Option<Color>,
379    /// The background's corner radius, logical px. Above
380    /// zero, every background of the same colour and radius that meets
381    /// another edge to edge on the line above or below — in this text or
382    /// another — is one shape with it: its corners convex where a line
383    /// reaches past its neighbour, concave where it falls short, round
384    /// where nothing meets it. What a selection over lines looks like.
385    pub bg_radius: f32,
386    /// The span's own face, in place of the paragraph's: inline `code` in
387    /// `FontFamily::Mono` inside a sans line. `None` is the paragraph's.
388    /// The span keeps the paragraph's weights for its family (bold is the
389    /// family's bold), and its glyphs, carets and selection are measured
390    /// in the face they are drawn in, so byte positions stay exact across
391    /// the change.
392    pub family: Option<FontFamily>,
393    /// The span's own size in logical px, in place of the paragraph's: a
394    /// heading's larger first word, a smaller footnote mark. Its line
395    /// height scales with it at the paragraph's ratio, and a line is as
396    /// tall as its tallest span. `None` is the paragraph's. A paragraph
397    /// with a sized span is shaped whole, never chunked as a long line.
398    pub size: Option<f32>,
399}
400
401impl<'a> Span<'a> {
402    pub fn new(text: &'a str) -> Self {
403        Self {
404            text,
405            color: None,
406            bold: false,
407            italic: false,
408            underline: false,
409            underline_color: None,
410            underline_style: UnderlineStyle::Solid,
411            strikethrough: false,
412            bg: None,
413            bg_radius: 0.0,
414            family: None,
415            size: None,
416        }
417    }
418
419    /// The span in its own face (see the `family` field).
420    pub fn family(mut self, family: FontFamily) -> Self {
421        self.family = Some(family);
422        self
423    }
424
425    /// The span in the monospace face: inline code.
426    ///
427    /// ```
428    /// # use kui_core::{FontFamily, text::Span};
429    /// let code = Span::new("cargo test").mono();
430    /// assert_eq!(code.family, Some(FontFamily::Mono));
431    /// ```
432    pub fn mono(self) -> Self {
433        self.family(FontFamily::Mono)
434    }
435
436    /// The span at its own size in logical px (see the `size` field); a
437    /// size that is not a positive number is the paragraph's.
438    pub fn size(mut self, px: f32) -> Self {
439        self.size = (px.is_finite() && px > 0.0).then_some(px);
440        self
441    }
442
443    pub fn color(mut self, c: Color) -> Self {
444        self.color = Some(c);
445        self
446    }
447
448    pub fn bold(mut self) -> Self {
449        self.bold = true;
450        self
451    }
452
453    pub fn italic(mut self) -> Self {
454        self.italic = true;
455        self
456    }
457
458    pub fn underline(mut self) -> Self {
459        self.underline = true;
460        self
461    }
462
463    /// An underline in its own colour; turns it on.
464    pub fn underline_color(mut self, c: Color) -> Self {
465        self.underline = true;
466        self.underline_color = Some(c);
467        self
468    }
469
470    /// An underline of this shape; turns it on.
471    pub fn underline_style(mut self, s: UnderlineStyle) -> Self {
472        self.underline = true;
473        self.underline_style = s;
474        self
475    }
476
477    pub fn strikethrough(mut self) -> Self {
478        self.strikethrough = true;
479        self
480    }
481
482    pub fn bg(mut self, c: Color) -> Self {
483        self.bg = Some(c);
484        self
485    }
486
487    /// Rounds the background, joined with the ones it meets (see
488    /// [`Span::bg_radius`](Self#structfield.bg_radius)).
489    pub fn bg_radius(mut self, r: f32) -> Self {
490        self.bg_radius = r.max(0.0);
491        self
492    }
493
494    /// The span without its text: what a long line keeps per span so a
495    /// chunk can be rebuilt from the content and the ranges.
496    fn attrs_only(&self) -> SpanAttrs {
497        SpanAttrs {
498            color: self.color,
499            bold: self.bold,
500            italic: self.italic,
501            underline: self.underline,
502            underline_color: self.underline_color,
503            underline_style: self.underline_style,
504            strikethrough: self.strikethrough,
505            bg: self.bg,
506            bg_radius: self.bg_radius,
507            family: self.family,
508            size: self.size,
509        }
510    }
511
512    fn attrs<'r>(
513        &self,
514        family: cosmic_text::Family<'r>,
515        weights: crate::weights::Weights,
516    ) -> Attrs<'r> {
517        // Pin the family (the paragraph base's) so weight/style variants
518        // stay in one typeface instead of falling back to whatever face
519        // matches first — at weights it has faces for (backlog F100).
520        let mut attrs = weights.apply(Attrs::new().family(family), self.bold);
521        if self.italic {
522            attrs = attrs.style(FontStyle::Italic);
523        }
524        if let Some(c) = self.color {
525            attrs = attrs.color(cosmic_text::Color::rgba(
526                (c.r * 255.0) as u8,
527                (c.g * 255.0) as u8,
528                (c.b * 255.0) as u8,
529                (c.a * 255.0) as u8,
530            ));
531        }
532        attrs
533    }
534}
535
536/// A [`Span`]'s attributes without its text, owned: what a long rich
537/// line keeps per span, with the range in [`OwnedSpan`], so a chunk can
538/// be handed the spans that intersect it, sliced.
539#[derive(Clone, Copy)]
540struct SpanAttrs {
541    color: Option<Color>,
542    bold: bool,
543    italic: bool,
544    underline: bool,
545    underline_color: Option<Color>,
546    underline_style: UnderlineStyle,
547    strikethrough: bool,
548    bg: Option<Color>,
549    bg_radius: f32,
550    family: Option<FontFamily>,
551    size: Option<f32>,
552}
553
554impl SpanAttrs {
555    fn span<'a>(&self, text: &'a str) -> Span<'a> {
556        Span {
557            text,
558            color: self.color,
559            bold: self.bold,
560            italic: self.italic,
561            underline: self.underline,
562            underline_color: self.underline_color,
563            underline_style: self.underline_style,
564            strikethrough: self.strikethrough,
565            bg: self.bg,
566            bg_radius: self.bg_radius,
567            family: self.family,
568            size: self.size,
569        }
570    }
571}
572
573/// One span of a long rich line: its byte range in the content and its
574/// attributes. The ranges are contiguous and cover the content.
575#[derive(Clone)]
576struct OwnedSpan {
577    start: usize,
578    end: usize,
579    attrs: SpanAttrs,
580}
581
582/// The spans of `spans` that intersect `start..end` of `content`, sliced
583/// to it and with the empty dropped: what a chunk of a long rich line is
584/// shaped from. A span cut by the chunk boundary becomes two, one a
585/// side, with the same attributes — its background rects meet at the cut.
586fn chunk_spans<'a>(
587    content: &'a str,
588    spans: &[OwnedSpan],
589    start: usize,
590    end: usize,
591) -> Vec<Span<'a>> {
592    let first = spans.partition_point(|s| s.end <= start);
593    spans[first..]
594        .iter()
595        .take_while(|s| s.start < end)
596        .filter_map(|s| {
597            let (a, b) = (s.start.max(start), s.end.min(end));
598            (a < b).then(|| s.attrs.span(&content[a..b]))
599        })
600        .collect()
601}
602
603struct FrameText {
604    cache_key: u64,
605    color: Color,
606}
607
608/// One entry of the text cache: a shaped run, or a long line whose chunks
609/// are runs of their own in the same map. Whether a text is
610/// long is decided once, at [`TextSystem::add`], and lives here as the
611/// variant; every operation after it asks the entry rather than carrying
612/// a flag beside the key. A long line joins a selection scope's
613/// concatenation like any run: being long is how it was shaped, not
614/// something a reader dragging across it should feel.
615pub(crate) enum Entry {
616    Run(CachedText),
617    Long(LongLine),
618}
619
620impl Entry {
621    pub(crate) fn content(&self) -> &str {
622        match self {
623            Entry::Run(e) => &e.content,
624            Entry::Long(l) => &l.content,
625        }
626    }
627
628    fn last_used(&self) -> u64 {
629        match self {
630            Entry::Run(e) => e.last_used,
631            Entry::Long(l) => l.last_used,
632        }
633    }
634
635    fn touch(&mut self, frame_no: u64) {
636        match self {
637            Entry::Run(e) => e.last_used = frame_no,
638            Entry::Long(l) => l.last_used = frame_no,
639        }
640    }
641
642    /// What the entry costs the budget.
643    fn bytes(&self) -> usize {
644        match self {
645            Entry::Run(e) => e.bytes,
646            Entry::Long(l) => l.bytes,
647        }
648    }
649
650    fn run(&self) -> Option<&CachedText> {
651        match self {
652            Entry::Run(e) => Some(e),
653            Entry::Long(_) => None,
654        }
655    }
656
657    fn run_mut(&mut self) -> Option<&mut CachedText> {
658        match self {
659            Entry::Run(e) => Some(e),
660            Entry::Long(_) => None,
661        }
662    }
663
664    fn long(&self) -> Option<&LongLine> {
665        match self {
666            Entry::Long(l) => Some(l),
667            Entry::Run(_) => None,
668        }
669    }
670
671    fn long_mut(&mut self) -> Option<&mut LongLine> {
672        match self {
673            Entry::Long(l) => Some(l),
674            Entry::Run(_) => None,
675        }
676    }
677}
678
679/// One chunk of a long line: its byte range in the content, the cache key
680/// its shaped entry has (an ordinary `CachedText`, budgeted like any), and
681/// its width once shaped.
682#[derive(Clone)]
683struct Chunk {
684    start: usize,
685    end: usize,
686    key: u64,
687    /// The run's own width: its tabs' stops measured from its start.
688    width: Option<f32>,
689    /// For a shaped chunk that starts off the line's tab stops and ends in
690    /// its one tab (`chunk_ranges`): where the tab starts in the run, and
691    /// the stops' interval, physical px. The run's width put that tab on
692    /// a stop of the chunk's own; the line puts it on one of its own, from
693    /// where the chunk starts (`LongLine::reprefix`, backlog RG76).
694    tab: Option<(f32, f32)>,
695    /// While the line is wrapped and this chunk is shaped: where each of
696    /// its rows starts. Empty otherwise (one row, or an estimate).
697    rows: Vec<RowStart>,
698}
699
700/// Where a row of a wrapped long line's chunk starts, relative to the
701/// chunk: the byte, and the x of that glyph in the chunk's unwrapped run,
702/// which the row's glyphs are shifted back by when drawn.
703#[derive(Clone, Copy, Debug)]
704struct RowStart {
705    byte: u32,
706    x: f32,
707}
708
709/// A non-wrapping text past [`LONG_LINE_BYTES`], shaped in chunks on demand.
710/// The line itself holds no buffer: its chunks are cache
711/// entries interned when emission, a hit-test or a caret query lands in
712/// them, and `prefix` is where each chunk starts — an estimate from the
713/// first chunk's mean advance until the chunk shapes, exact after. So a
714/// 100k-character line costs the screenful it shows, a keystroke into it
715/// costs the chunk it lands in, and the width the scrollbar sees can move
716/// a little as chunks fill in, exact under monospace.
717///
718/// Its rows are its own, so a line is laid out for one node a frame: a
719/// second node drawing the same content takes a copy
720/// ([`TextSystem::claim_long`]), which shares the chunks' shaped runs.
721#[derive(Clone)]
722pub(crate) struct LongLine {
723    content: String,
724    /// The spans, for a rich line: each chunk is shaped as a
725    /// rich run of the spans that intersect it, sliced. Empty for a plain
726    /// line, whose chunks are plain runs.
727    spans: Vec<OwnedSpan>,
728    /// The chunks' style: the text's with `wrap` set to `None`, since a
729    /// chunk is always shaped as one run and the line breaks it itself.
730    style: TextStyle,
731    /// The text's own line breaking. `None` is one row; `Word` and
732    /// `Glyph` break the chunks into rows once the line does not fit its
733    /// box (C19's step 5): a one-direction prefix computation over glyph
734    /// positions, each chunk's first row starting where the previous
735    /// chunk's last row ended, so it costs positions and not shaping.
736    wrap: TextWrap,
737    /// The physical width the rows are broken to, while they are; `None`
738    /// is one row — the line fits, or its style never wraps.
739    wrap_w: Option<f32>,
740    /// While wrapped: where each chunk begins, the row and the x on it —
741    /// one more than there are chunks, the last being where the text
742    /// ends. The wrapped counterpart of `prefix`, estimated the same way
743    /// for a chunk that never showed.
744    starts: Vec<(u32, f32)>,
745    chunks: Vec<Chunk>,
746    /// Physical px from the line's origin to each chunk's start, one more
747    /// than there are chunks: the last is the line's width.
748    prefix: Vec<f32>,
749    /// Physical line height, from the first chunk's buffer.
750    line_h: f32,
751    /// Physical px per byte, from the first chunk: the estimate an
752    /// unshaped chunk's width is.
753    avg: f32,
754    last_used: u64,
755    /// The frame a node last took this line to draw, `u64::MAX` before
756    /// one has.
757    claimed: u64,
758    /// The rows layout gave the node this frame, and the rows the last
759    /// frame asked for was owed for (`u32::MAX` before any): emission
760    /// breaks the rows again once the chunks it shapes are known, and
761    /// rows that differ from layout's owe a frame laid out on them —
762    /// once per count, so a cache too small to keep the chunks cannot
763    /// ask forever.
764    laid_rows: u32,
765    asked_rows: u32,
766    bytes: usize,
767}
768
769impl LongLine {
770    /// The chunk `x` (physical, from the line's origin) falls in.
771    fn chunk_at(&self, x: f32) -> usize {
772        match self.prefix[1..].partition_point(|&p| p <= x) {
773            i if i >= self.chunks.len() => self.chunks.len().saturating_sub(1),
774            i => i,
775        }
776    }
777
778    /// The chunk byte `byte` falls in (the last for the end).
779    fn chunk_of_byte(&self, byte: usize) -> usize {
780        match self.chunks.partition_point(|c| c.end <= byte) {
781            i if i >= self.chunks.len() => self.chunks.len().saturating_sub(1),
782            i => i,
783        }
784    }
785
786    fn width(&self) -> f32 {
787        self.prefix.last().copied().unwrap_or(0.0)
788    }
789
790    /// Rows while wrapped; one otherwise.
791    fn rows(&self) -> u32 {
792        match self.starts.last() {
793            Some(&(r, _)) if self.wrap_w.is_some() => r + 1,
794            _ => 1,
795        }
796    }
797
798    /// The chunks whose rows touch `ra..=rb`, while wrapped: chunk `i`
799    /// spans `starts[i].0..=starts[i + 1].0`.
800    fn chunks_on_rows(&self, ra: u32, rb: u32) -> Option<(usize, usize)> {
801        let n = self.chunks.len();
802        if n == 0 || self.starts.len() != n + 1 {
803            return None;
804        }
805        let first = self.starts[1..].partition_point(|s| s.0 < ra);
806        let last = self.starts[..n].partition_point(|s| s.0 <= rb);
807        (first < last).then_some((first, last - 1))
808    }
809
810    /// Recomputes `prefix` from the chunk widths, estimating the unshaped.
811    /// A chunk ending in a tab it started off the stops for is as wide as
812    /// takes that tab to the line's next stop (backlog RG76), so the chunk
813    /// after it starts on one; the stop is exact once every chunk since
814    /// the line's previous tab is shaped, and otherwise as near as the
815    /// estimate `prefix` already is.
816    fn reprefix(&mut self) {
817        let mut at = 0.0f32;
818        self.prefix.clear();
819        self.prefix.push(0.0);
820        for c in &self.chunks {
821            at = match (c.width, c.tab) {
822                (Some(_), Some((tab_x, every))) => next_tab_stop(at + tab_x, every),
823                (Some(w), None) => at + w,
824                (None, _) => at + (c.end - c.start) as f32 * self.avg,
825            };
826            self.prefix.push(at);
827        }
828    }
829
830    /// How far the line moves chunk `i`'s end from where its run ends:
831    /// nonzero only for a chunk whose tab the line places (`reprefix`).
832    fn tab_shift(&self, i: usize) -> f32 {
833        let c = &self.chunks[i];
834        match (c.width, c.tab) {
835            (Some(w), Some(_)) => self.prefix[i + 1] - self.prefix[i] - w,
836            _ => 0.0,
837        }
838    }
839
840    /// `tab_shift` for a caret `local` bytes into chunk `i`: only the
841    /// chunk's end is past a tab the line places, which is its last
842    /// character, so only the end caret moves — and with it the line's end
843    /// caret, which then agrees with the line's width (backlog RG122).
844    fn end_shift(&self, i: usize, local: usize) -> f32 {
845        let c = &self.chunks[i];
846        match local >= c.end - c.start {
847            true => self.tab_shift(i),
848            false => 0.0,
849        }
850    }
851
852    /// The byte a point at `x` along chunk `i`'s run answers when it is on
853    /// a tab the line places: the run's tab is as wide as the chunk's own
854    /// stops make it and the drawn one as wide as the line's (`reprefix`),
855    /// so the run's hit test splits it at the wrong place. The tab before
856    /// the drawn tab's middle, the byte after it from there (backlog
857    /// RG122). `None` off such a tab.
858    fn placed_tab_hit(&self, i: usize, x: f32) -> Option<usize> {
859        let c = &self.chunks[i];
860        let (tab_x, _) = c.tab?;
861        c.width?;
862        if x < tab_x {
863            return None;
864        }
865        let drawn_end = self.prefix[i + 1] - self.prefix[i];
866        Some(match x < (tab_x + drawn_end) / 2.0 {
867            true => c.end - 1,
868            false => c.end,
869        })
870    }
871}
872
873/// The tab stop after `x` (physical px from the line's start), stops
874/// `every` px apart: cosmic-text's rule, which moves a tab already on a
875/// stop to the next one. `x` is a sum of chunk widths, so a stop within a
876/// sixteenth of a pixel ahead counts as reached — the drift that sum has
877/// over a stretch without a tab, which a whole line's own sum has too.
878fn next_tab_stop(x: f32, every: f32) -> f32 {
879    if every <= 0.0 {
880        return x;
881    }
882    (((x + 1.0 / 16.0) / every).floor() + 1.0) * every
883}
884
885/// Where a long line is cut: after the last tab in the second half of each
886/// window, else after the last whitespace there, else at the last grapheme
887/// boundary inside it — except that a chunk starting anywhere but after a
888/// tab ends after its first tab, wherever in the window that falls. A line
889/// under [`LONG_LINE_BYTES`] — long only by its `break-spaces` — is one
890/// chunk, shaped whole as the run it would otherwise be.
891///
892/// Tab stops are why: cosmic-text measures them from where
893/// the shaped text starts, so a chunk shaped alone put a tab after its
894/// start at a stop measured from there and not from the line's. A chunk
895/// cut just after a tab ends on a stop, so the next one starts on one and
896/// its stops are the line's (RG75). A chunk that starts off the stops —
897/// after a stretch of more than half a window without a tab — holds at
898/// most one tab, its last character, whose advance the line places from
899/// where the chunk starts (`Chunk::tab`, backlog RG76): nothing in the
900/// chunk follows that tab, so its run needs no reshaping for the line's x.
901fn chunk_ranges(content: &str) -> Vec<(usize, usize)> {
902    use unicode_segmentation::UnicodeSegmentation;
903    if content.len() < LONG_LINE_BYTES {
904        return vec![(0, content.len())];
905    }
906    let bytes = content.as_bytes();
907    let mut out = Vec::with_capacity(content.len() / CHUNK_BYTES + 1);
908    let mut start = 0usize;
909    while start < content.len() {
910        // The window's end floored to a char boundary: a multibyte
911        // character straddling `start + CHUNK_BYTES` is the window's, not
912        // the next one's, and slicing inside it was a panic (backlog C44).
913        let mut window_end = (start + CHUNK_BYTES).min(content.len());
914        while !content.is_char_boundary(window_end) {
915            window_end -= 1;
916        }
917        let window = &content[start..window_end];
918        // Where the window's second half starts, on a char boundary.
919        let mut from = (CHUNK_BYTES / 2).min(window.len());
920        while !window.is_char_boundary(from) {
921            from += 1;
922        }
923        // Off the stops (after anything but a tab), a tab in the first
924        // half ends the chunk: `find` is a memchr, so a tab-free line pays
925        // a search per window and not a second walk of it (RG75's cost).
926        let off_stops = start > 0 && bytes[start - 1] != b'\t';
927        let early_tab = match off_stops {
928            true => window[..from].find('\t'),
929            false => None,
930        };
931        let end = if let Some(t) = early_tab {
932            start + t + 1
933        } else if window_end == content.len() && !(off_stops && window[from..].contains('\t')) {
934            window_end
935        } else {
936            // One pass over the second half, noting its first and last
937            // tab and its last whitespace: a line re-cut on every edit
938            // (C19) must not walk each window twice.
939            let (mut first_tab, mut last_tab, mut space) = (None, None, None);
940            for (i, c) in window[from..].char_indices() {
941                if c.is_whitespace() {
942                    let end = from + i + c.len_utf8();
943                    space = Some(end);
944                    if c == '\t' {
945                        first_tab = first_tab.or(Some(end));
946                        last_tab = Some(end);
947                    }
948                }
949            }
950            let tab = if off_stops { first_tab } else { last_tab };
951            match tab.or(space) {
952                Some(i) => start + i,
953                None => {
954                    // The last grapheme boundary at or before the window's end.
955                    let mut cut = 0usize;
956                    for (i, _) in window.grapheme_indices(true) {
957                        if i == 0 {
958                            continue;
959                        }
960                        cut = i;
961                    }
962                    if cut == 0 { window_end } else { start + cut }
963                }
964            }
965        };
966        out.push((start, end));
967        start = end;
968    }
969    out
970}
971
972/// How many enclosing keys a place remembers: a text run answers to its
973/// own key and to any of this many ancestors, which is a `line` row, a
974/// selection wrapper around a run, and two to spare. A text further than
975/// this below its `line` raises `text-beyond-line`.
976pub(crate) const PLACE_ANCESTORS: usize = 4;
977
978/// The keys above a text node, nearest first, as many as a place
979/// remembers, and where among them a `role="none"` ancestor sits — what
980/// `Core::text_ancestors` gathers for [`TextSystem::place`].
981pub(crate) struct Ancestry {
982    pub(crate) keys: [Key; PLACE_ANCESTORS],
983    pub(crate) depth: usize,
984    pub(crate) none_at: Option<usize>,
985}
986
987/// Where a text node was drawn: what `Core::text_hit` and
988/// `Core::caret_rect` answer from. Recorded at emission, so
989/// a node the frame culled — scrolled out of its clip — has no place and
990/// answers nothing, which is also true of a point nobody can click.
991pub(crate) struct TextPlace {
992    pub(crate) key: Key,
993    /// The keys above it, nearest first, as many as `depth` says.
994    ancestors: [Key; PLACE_ANCESTORS],
995    depth: u8,
996    /// The nearest ancestor (an index into `ancestors`) declaring
997    /// `role="none"`, or `u8::MAX` for none within reach: a query by a key
998    /// above it does not reach this run, the way the access tree skips a
999    /// gutter's text when it reads a `line`; a query by the
1000    /// gutter itself still does.
1001    none_at: u8,
1002    cache_key: u64,
1003    /// The node's origin, logical viewport px.
1004    origin: Vec2,
1005    /// The innermost `selectable` node above this run, when there is one.
1006    /// What `scope_runs` gathers by, and the reason a place
1007    /// is recorded for a run that was never drawn — see `drawn`.
1008    scope: Option<Key>,
1009    /// Whether the run was painted. False for a run inside a selection
1010    /// scope that the frame culled: emission skips a node clipped
1011    /// entirely away, but a selection reaching past the viewport needs
1012    /// that node's content and its place in the order, so a scoped run
1013    /// records where it *would* have been. Hit tests and the public
1014    /// `text_hit` / `caret_rect` queries ignore these, because a point
1015    /// nobody can click still answers nothing.
1016    drawn: bool,
1017}
1018
1019impl TextPlace {
1020    fn answers_to(&self, key: Key) -> bool {
1021        if self.key == key {
1022            return true;
1023        }
1024        // Found among the ancestors, and not through a `role="none"`
1025        // subtree below the key: a gutter's text is not the line's, and
1026        // is still the gutter's own.
1027        self.ancestors[..self.depth as usize]
1028            .iter()
1029            .position(|k| *k == key)
1030            .is_some_and(|d| d <= self.none_at as usize)
1031    }
1032}
1033
1034/// One run inside a selection scope: where it was placed, its text, and
1035/// the byte offset its content starts at in the scope's concatenation.
1036/// The bases count content only — a separator between two runs is a
1037/// decision the *copy* makes (see `TextSystem::scope_slice`), so an
1038/// offset means the same thing whoever asks for it.
1039pub(crate) struct ScopeRun<'a> {
1040    pub place: &'a TextPlace,
1041    /// The run's entry, whichever way it was shaped.
1042    pub text: &'a Entry,
1043    pub base: usize,
1044}
1045
1046impl ScopeRun<'_> {
1047    /// The half-open byte range this run occupies in the concatenation.
1048    /// The run's `[start, end)` in the scope's concatenation.
1049    pub(crate) fn span(&self) -> (usize, usize) {
1050        (self.base, self.base + self.text.content().len())
1051    }
1052}
1053
1054/// Where a point landed in the text a keyed node drew: a byte offset and
1055/// the visual row it is on. `byte` is a caret position: between two
1056/// characters, past the last one at the end, and cosmic-text's rule for
1057/// which side of a glyph the point fell on. For a node holding several
1058/// text runs the offset runs across them in tree order, the way the
1059/// access tree reads a `line`. `line` is the **visual row** within the
1060/// node, 0-based, counted across every run the key covers by where the
1061/// rows sit: a `line` row of three inline runs is one row, a run that
1062/// wrapped is as many as it wrapped to, and two runs stacked are two —
1063/// not the wrapped line within one run's buffer, and not the ordinal `role="line"` node a pointer
1064/// event's `line` names (that one counts rows of the editor, this one
1065/// rows of the text asked about).
1066#[derive(Clone, Copy, Debug, Default, PartialEq, Eq)]
1067pub struct TextHit {
1068    pub byte: usize,
1069    pub line: u32,
1070}
1071
1072impl TextHit {
1073    /// `{byte, line}`.
1074    pub fn to_value(self) -> Value {
1075        Value::map([
1076            ("byte", Value::Int(self.byte as i64)),
1077            ("line", Value::Int(self.line as i64)),
1078        ])
1079    }
1080}
1081
1082/// What a piece of text measures, in logical px at the current scale —
1083/// the same numbers layout uses for a text node with that content and
1084/// style, so a view can size a column to its widest label or pick a tier
1085/// that fits without hand-tuned magic numbers.
1086#[derive(Clone, Copy, Debug, Default, PartialEq)]
1087pub struct TextMetrics {
1088    pub width: f32,
1089    pub height: f32,
1090    /// Lines after wrapping (capped by `max_lines`).
1091    pub lines: u32,
1092}
1093
1094impl TextMetrics {
1095    /// `{width, height, lines}`.
1096    pub fn to_value(self) -> Value {
1097        Value::map([
1098            ("width", Value::float(self.width)),
1099            ("height", Value::float(self.height)),
1100            ("lines", Value::Int(self.lines as i64)),
1101        ])
1102    }
1103}
1104
1105/// The shaping and rasterization state of one window. The font database
1106/// it shapes against is not in here — that is the session's
1107/// ([`crate::session::Session`]), passed in as `fs` — because a font
1108/// registered in one window has to shape in every window of the session.
1109/// What is here is coupled to this window's glyph atlas: the shaped-buffer
1110/// cache stamps its positioned glyphs with the atlas stamp they were
1111/// packed against, and the frame lists are what `TextId` indexes.
1112pub struct TextSystem {
1113    raster: Raster,
1114    /// The rounded span backgrounds this frame emitted, for the pass that
1115    /// joins them once every text is painted.
1116    joins: Vec<JoinBg>,
1117    /// Every shaped run and every long line, by key — a long line's key
1118    /// is salted (`LONG_SALT`) and its chunks are runs beside it.
1119    entries: FxHashMap<u64, Entry>,
1120    /// The sum of the entries' `bytes`, kept exact against inserts and
1121    /// removals so a frame inside its budget costs one comparison.
1122    bytes: usize,
1123    budget: usize,
1124    /// This frame's text nodes, and the previous frame's kept the same way
1125    /// and on the same condition as `Core`'s previous tree: a departing
1126    /// subtree's text nodes carry that frame's `TextId`s, and this is what
1127    /// they index (see [`Self::prev_frame_text`]).
1128    frame: Kept<FrameText>,
1129    /// Where this frame's text nodes were drawn, and where the last
1130    /// frame's were — always kept: a query during a build answers from the
1131    /// frame that finished, which is the layout a click was made against.
1132    places: Kept<TextPlace>,
1133    scale: f32,
1134    frame_no: u64,
1135    /// Emission broke a long line into rows other than the ones layout
1136    /// used: the frame laid out on them is owed. Taken by [`Self::take_owed`].
1137    owed: bool,
1138}
1139
1140/// A style's features in cosmic-text's terms. Empty stays empty, which is
1141/// the shaper's own defaults.
1142pub(crate) fn cosmic_features(f: &crate::spec::FontFeatures) -> cosmic_text::FontFeatures {
1143    let mut out = cosmic_text::FontFeatures::new();
1144    for (tag, value) in f.iter() {
1145        out.set(cosmic_text::FeatureTag::new(tag), value);
1146    }
1147    out
1148}
1149
1150/// The faces the three generic families resolve to, per platform, in
1151/// order of preference. cosmic-text's own defaults are `Open Sans`,
1152/// `DejaVu Serif` and `Noto Sans Mono`, none of which a stock Windows or
1153/// macOS machine has; sans survives that through the platform fallback
1154/// list, but a missing monospace family falls to the *lowest-id*
1155/// monospaced face in the database — style is not in that ranking's key,
1156/// so on a machine whose first monospaced face is an italic instance every
1157/// `Mono` glyph is italic. The first installed name in each
1158/// list wins; when none is, cosmic-text's own name stays so its fallback
1159/// still runs.
1160#[cfg(target_os = "macos")]
1161const DEFAULT_FAMILIES: [&[&str]; 3] = [
1162    &["Helvetica Neue", "Helvetica"],
1163    &["Times New Roman", "Times"],
1164    &["SF Mono", "Menlo", "Monaco"],
1165];
1166#[cfg(target_os = "windows")]
1167const DEFAULT_FAMILIES: [&[&str]; 3] = [
1168    &["Segoe UI", "Arial"],
1169    &["Times New Roman"],
1170    &["Cascadia Mono", "Consolas", "Courier New"],
1171];
1172#[cfg(not(any(target_os = "macos", target_os = "windows")))]
1173const DEFAULT_FAMILIES: [&[&str]; 3] = [
1174    &["DejaVu Sans", "Noto Sans", "Liberation Sans", "Ubuntu"],
1175    &["DejaVu Serif", "Noto Serif", "Liberation Serif"],
1176    &[
1177        "DejaVu Sans Mono",
1178        "Noto Sans Mono",
1179        "Liberation Mono",
1180        "Ubuntu Mono",
1181    ],
1182];
1183
1184/// The first family on `list` that some installed face is a member of,
1185/// matched the way `fontdb::Database::query` matches a name.
1186fn first_installed<'a>(db: &cosmic_text::fontdb::Database, list: &[&'a str]) -> Option<&'a str> {
1187    list.iter().copied().find(|name| {
1188        db.faces()
1189            .any(|face| face.families.iter().any(|(f, _)| f == name))
1190    })
1191}
1192
1193/// The session's font database, set up the way kui shapes against it: the
1194/// generic sans, serif and monospace families pinned to an installed face
1195/// (see [`DEFAULT_FAMILIES`]), so weight and style matching starts from a
1196/// face with real variants rather than whatever the fallback pops.
1197/// Faces whose glyphs cannot be measured are taken out first.
1198///
1199/// The system's faces are scanned and checked once a process
1200/// ([`system_fonts`]); every session after the first starts from a copy of
1201/// that database. The scan opens every font file twice (fontdb's, then
1202/// [`keep_measurable`]'s) — on a Mac 1312 faces in ~850 files, 20–70 ms and
1203/// most of it `open`, paid again by every `Core::new` — where a copy is a
1204/// list of names. A font installed while the process runs is seen when
1205/// something asks for a new scan (`Core::reload_system_fonts`).
1206pub(crate) fn new_font_system() -> (FontSystem, std::sync::Arc<SystemFonts>) {
1207    let system = system_fonts();
1208    let fonts = font_system_over(system.locale.clone(), system.db.clone(), &[]);
1209    (fonts, system)
1210}
1211
1212/// A font system over `db` whose fallback asks `first`'s families before
1213/// the platform's ([`AppFallback`]). cosmic-text reads its fallback lists
1214/// when the system is built and keeps them, so a new list is a new system
1215/// over the same database: the ids stay.
1216pub(crate) fn font_system_over(
1217    locale: String,
1218    db: cosmic_text::fontdb::Database,
1219    first: &[String],
1220) -> FontSystem {
1221    FontSystem::new_with_locale_and_db_and_fallback(locale, db, AppFallback::new(first))
1222}
1223
1224/// The platform's fallback lists with the app's families ahead of them
1225/// (`Core::set_fallback_fonts`, backlog F121): a character the text's own
1226/// family has no glyph for is asked of each of the app's, in order, before
1227/// the script's faces and the platform's common ones — on macOS the
1228/// system's proportional face, which is no editor's second choice.
1229/// With none it is the platform's lists as they are.
1230pub(crate) struct AppFallback {
1231    platform: cosmic_text::PlatformFallback,
1232    first: &'static [&'static str],
1233    common: &'static [&'static str],
1234    /// A script's list with `first` ahead of it, made when first asked
1235    /// for.
1236    scripts: std::sync::Mutex<
1237        rustc_hash::FxHashMap<(unicode_script::Script, String), &'static [&'static str]>,
1238    >,
1239}
1240
1241/// `names` for the life of the process, each spelling and each list kept
1242/// once: cosmic-text's lists are `&'static`, and an app sets a handful.
1243fn keep(names: Vec<&'static str>) -> &'static [&'static str] {
1244    static LISTS: std::sync::Mutex<Vec<&'static [&'static str]>> =
1245        std::sync::Mutex::new(Vec::new());
1246    let mut lists = LISTS.lock().unwrap_or_else(|e| e.into_inner());
1247    if let Some(&kept) = lists.iter().find(|l| ***l == names[..]) {
1248        return kept;
1249    }
1250    let kept: &'static [&'static str] = Box::leak(names.into_boxed_slice());
1251    lists.push(kept);
1252    kept
1253}
1254
1255fn keep_name(name: &str) -> &'static str {
1256    static NAMES: std::sync::Mutex<Vec<&'static str>> = std::sync::Mutex::new(Vec::new());
1257    let mut names = NAMES.lock().unwrap_or_else(|e| e.into_inner());
1258    if let Some(&kept) = names.iter().find(|n| **n == name) {
1259        return kept;
1260    }
1261    let kept: &'static str = Box::leak(name.to_string().into_boxed_str());
1262    names.push(kept);
1263    kept
1264}
1265
1266impl AppFallback {
1267    pub(crate) fn new(first: &[String]) -> Self {
1268        use cosmic_text::Fallback;
1269        let platform = cosmic_text::PlatformFallback;
1270        let first = keep(first.iter().map(|n| keep_name(n)).collect());
1271        let common = keep(
1272            first
1273                .iter()
1274                .chain(platform.common_fallback())
1275                .copied()
1276                .collect(),
1277        );
1278        Self {
1279            platform,
1280            first,
1281            common,
1282            scripts: Default::default(),
1283        }
1284    }
1285}
1286
1287impl cosmic_text::Fallback for AppFallback {
1288    fn common_fallback(&self) -> &[&'static str] {
1289        self.common
1290    }
1291
1292    fn forbidden_fallback(&self) -> &[&'static str] {
1293        self.platform.forbidden_fallback()
1294    }
1295
1296    fn script_fallback(&self, script: unicode_script::Script, locale: &str) -> &[&'static str] {
1297        let theirs = self.platform.script_fallback(script, locale);
1298        if self.first.is_empty() {
1299            return theirs;
1300        }
1301        let mut scripts = self.scripts.lock().unwrap_or_else(|e| e.into_inner());
1302        scripts
1303            .entry((script, locale.to_string()))
1304            .or_insert_with(|| keep(self.first.iter().chain(theirs).copied().collect()))
1305    }
1306}
1307
1308/// One scan of the system's fonts, checked and pinned the way kui shapes
1309/// against them, and which files' faces it found — what a session started
1310/// from, so a later scan can say what came and went since.
1311pub(crate) struct SystemFonts {
1312    locale: String,
1313    db: cosmic_text::fontdb::Database,
1314    /// Each face the scan kept, by its file and its index in the file.
1315    pub(crate) faces: rustc_hash::FxHashSet<(std::path::PathBuf, u32)>,
1316}
1317
1318/// The process's scan; `None` until the first session asks.
1319static SYSTEM: std::sync::Mutex<Option<std::sync::Arc<SystemFonts>>> = std::sync::Mutex::new(None);
1320
1321/// The process's scan of the system's fonts, made on the first call. Held
1322/// under the lock while it scans, so sessions made at once on several
1323/// threads wait for one scan rather than each making its own.
1324pub(crate) fn system_fonts() -> std::sync::Arc<SystemFonts> {
1325    let mut held = SYSTEM.lock().unwrap_or_else(|e| e.into_inner());
1326    held.get_or_insert_with(|| std::sync::Arc::new(scan_system_fonts()))
1327        .clone()
1328}
1329
1330/// Scans the system's fonts again and makes that the process's scan, so
1331/// sessions made from here on start from it; returns it.
1332pub(crate) fn rescan_system_fonts() -> std::sync::Arc<SystemFonts> {
1333    let fresh = std::sync::Arc::new(scan_system_fonts());
1334    *SYSTEM.lock().unwrap_or_else(|e| e.into_inner()) = Some(fresh.clone());
1335    fresh
1336}
1337
1338fn scan_system_fonts() -> SystemFonts {
1339    let (locale, db) = FontSystem::new().into_locale_and_db();
1340    SystemFonts::from_db(locale, db)
1341}
1342
1343impl SystemFonts {
1344    /// A scan from a database already loaded: the unmeasurable faces taken
1345    /// out and the generic families pinned.
1346    pub(crate) fn from_db(locale: String, mut db: cosmic_text::fontdb::Database) -> Self {
1347        let all: Vec<_> = db.faces().map(|face| face.id).collect();
1348        keep_measurable(&mut db, all);
1349        pin_default_families(&mut db);
1350        let faces = db.faces().filter_map(face_file).collect();
1351        Self { locale, db, faces }
1352    }
1353
1354    /// This scan's database, to build a test's own scan from.
1355    #[cfg(test)]
1356    pub(crate) fn db(&self) -> &cosmic_text::fontdb::Database {
1357        &self.db
1358    }
1359
1360    #[cfg(test)]
1361    pub(crate) fn locale(&self) -> &str {
1362        &self.locale
1363    }
1364}
1365
1366/// The file a face was read from and its index there; `None` for a face
1367/// loaded from bytes.
1368pub(crate) fn face_file(face: &cosmic_text::fontdb::FaceInfo) -> Option<(std::path::PathBuf, u32)> {
1369    use cosmic_text::fontdb::Source;
1370    match &face.source {
1371        Source::File(path) | Source::SharedFile(path, _) => Some((path.clone(), face.index)),
1372        Source::Binary(_) => None,
1373    }
1374}
1375
1376/// Points the generic sans, serif and monospace families at the first
1377/// installed family of [`DEFAULT_FAMILIES`]' lists; a list with none
1378/// installed leaves its generic as it was.
1379pub(crate) fn pin_default_families(db: &mut cosmic_text::fontdb::Database) {
1380    let [sans, serif, mono] = DEFAULT_FAMILIES;
1381    if let Some(name) = first_installed(db, sans) {
1382        db.set_sans_serif_family(name);
1383    }
1384    if let Some(name) = first_installed(db, serif) {
1385        db.set_serif_family(name);
1386    }
1387    if let Some(name) = first_installed(db, mono) {
1388        db.set_monospace_family(name);
1389    }
1390}
1391
1392/// [`new_font_system`] over a database already loaded. The font system is
1393/// built after the unmeasurable faces are out, so cosmic-text's list of
1394/// monospaced faces, which `Mono`'s fallback walks, never names one.
1395#[cfg(test)]
1396fn font_system_with(locale: String, db: cosmic_text::fontdb::Database) -> FontSystem {
1397    let system = SystemFonts::from_db(locale, db);
1398    FontSystem::new_with_locale_and_db(system.locale, system.db)
1399}
1400
1401/// Whether the shaper can say how wide a face's glyphs are:
1402/// a `head` whose units per em are in the range the spec allows
1403/// (16–16384), an `hhea` with at least one horizontal metric, and an
1404/// `hmtx` as long as that says. Every advance is design units over units
1405/// per em, so a face without a readable `head` shapes to infinitely wide
1406/// glyphs — macOS's GB18030 Bitmap, which carries Apple's `bhed` in its
1407/// place — and swash, which reads `hmtx` for the raster, subtracts one
1408/// from a zero count. Read with skrifa, the reader the shaper measures
1409/// with, from the table directory, two fixed-size headers and `hmtx`'s
1410/// length: nothing that can panic on the face it is there to catch.
1411pub(crate) fn measurable(data: &[u8], index: u32) -> bool {
1412    use cosmic_text::skrifa::raw::{FontRef, TableProvider};
1413    let Ok(font) = FontRef::from_index(data, index) else {
1414        return false;
1415    };
1416    font.head()
1417        .is_ok_and(|head| (16..=16384).contains(&head.units_per_em()))
1418        && font.hhea().is_ok_and(|hhea| hhea.number_of_h_metrics() > 0)
1419        && font.hmtx().is_ok()
1420}
1421
1422/// Files per checking thread, below which [`keep_measurable`] checks on
1423/// the caller's thread: a font added from bytes, or a folder of a few.
1424const FILES_PER_CHECKER: usize = 64;
1425
1426/// Takes the faces of `ids` the shaper cannot measure out of `db` (see
1427/// [`measurable`]) and returns the rest, so a face that would shape to
1428/// infinitely wide glyphs is not a family to list, to name or to fall
1429/// back to. A face whose file cannot be read goes too: the
1430/// shaper could not load it either.
1431///
1432/// Each file is opened once for all its faces, and the files are spread
1433/// over a few threads: opening one is most of the cost. Measured over the
1434/// 1312 faces in 850 files of a Mac, the check adds about 4.5 ms to the
1435/// ~20 ms fontdb takes to scan them warm (release build); on one thread
1436/// it took 15–22 ms.
1437pub(crate) fn keep_measurable(
1438    db: &mut cosmic_text::fontdb::Database,
1439    ids: Vec<cosmic_text::fontdb::ID>,
1440) -> Vec<cosmic_text::fontdb::ID> {
1441    use cosmic_text::fontdb::{ID, Source};
1442    // The faces of one file together; bytes already in memory each alone.
1443    let mut by_file = FxHashMap::<&std::path::Path, Vec<ID>>::default();
1444    let mut groups = Vec::new();
1445    for &id in &ids {
1446        match db.face(id).map(|face| &face.source) {
1447            Some(Source::File(path) | Source::SharedFile(path, _)) => {
1448                by_file.entry(path).or_default().push(id);
1449            }
1450            Some(Source::Binary(_)) => groups.push(vec![id]),
1451            None => {}
1452        }
1453    }
1454    groups.extend(by_file.into_values());
1455    let db_ref = &*db;
1456    let unmeasurable_in = |groups: &[Vec<ID>]| -> Vec<ID> {
1457        let mut out = Vec::new();
1458        for group in groups {
1459            let read = db_ref.with_face_data(group[0], |data, _| {
1460                group
1461                    .iter()
1462                    .filter(|&&id| {
1463                        db_ref
1464                            .face(id)
1465                            .is_none_or(|face| !measurable(data, face.index))
1466                    })
1467                    .copied()
1468                    .collect::<Vec<_>>()
1469            });
1470            out.extend(read.unwrap_or_else(|| group.clone()));
1471        }
1472        out
1473    };
1474    let checkers = std::thread::available_parallelism()
1475        .map_or(1, |n| n.get())
1476        .min(groups.len().div_ceil(FILES_PER_CHECKER));
1477    let unmeasurable = if checkers <= 1 {
1478        unmeasurable_in(&groups)
1479    } else {
1480        let per = groups.len().div_ceil(checkers);
1481        std::thread::scope(|scope| {
1482            let parts: Vec<_> = groups
1483                .chunks(per)
1484                .map(|part| {
1485                    let spawned = std::thread::Builder::new()
1486                        .name("kui-font-check".into())
1487                        .spawn_scoped(scope, move || unmeasurable_in(part));
1488                    (part, spawned.ok())
1489                })
1490                .collect();
1491            let mut out = Vec::new();
1492            for (part, checker) in parts {
1493                out.extend(match checker {
1494                    Some(checker) => checker
1495                        .join()
1496                        .unwrap_or_else(|panic| std::panic::resume_unwind(panic)),
1497                    // No thread to be had: check that part here.
1498                    None => unmeasurable_in(part),
1499                });
1500            }
1501            out
1502        })
1503    };
1504    for &id in &unmeasurable {
1505        db.remove_face(id);
1506    }
1507    ids.into_iter()
1508        .filter(|id| !unmeasurable.contains(id))
1509        .collect()
1510}
1511
1512/// The family names `Sans`, `Serif` and `Mono` shape with, in that order —
1513/// what [`new_font_system`] pinned, or cosmic-text's own name where nothing
1514/// on the list was installed.
1515pub(crate) fn default_families(fs: &FontSystem) -> [&str; 3] {
1516    let db = fs.db();
1517    [
1518        db.family_name(&cosmic_text::Family::SansSerif),
1519        db.family_name(&cosmic_text::Family::Serif),
1520        db.family_name(&cosmic_text::Family::Monospace),
1521    ]
1522}
1523
1524impl TextSystem {
1525    pub fn new() -> Self {
1526        Self {
1527            raster: Raster::new(),
1528            joins: Vec::new(),
1529            entries: FxHashMap::default(),
1530            bytes: 0,
1531            budget: DEFAULT_TEXT_CACHE_BYTES,
1532            frame: Kept::default(),
1533            places: Kept::default(),
1534            scale: 1.0,
1535            frame_no: 0,
1536            owed: false,
1537        }
1538    }
1539
1540    /// Whether this frame's emission owes another frame,
1541    /// clearing it.
1542    pub(crate) fn take_owed(&mut self) -> bool {
1543        std::mem::take(&mut self.owed)
1544    }
1545
1546    /// The rounded backgrounds emitted since the last call: what the
1547    /// frame's join pass shapes (`crate::join`).
1548    pub(crate) fn take_joins(&mut self) -> Vec<JoinBg> {
1549        std::mem::take(&mut self.joins)
1550    }
1551
1552    /// This window's rasterizer, for glyph raster against its atlas.
1553    pub(crate) fn raster_mut(&mut self) -> &mut Raster {
1554        &mut self.raster
1555    }
1556
1557    pub(crate) fn subpixel(&self) -> bool {
1558        self.raster.subpixel
1559    }
1560
1561    /// Switches outline rasterization between alpha masks and LCD subpixel
1562    /// coverage. Returns whether it changed (the caller resets the atlas).
1563    pub(crate) fn set_subpixel(&mut self, on: bool) -> bool {
1564        let changed = self.raster.subpixel != on;
1565        self.raster.subpixel = on;
1566        changed
1567    }
1568
1569    /// The byte budget the cache is evicted to; see
1570    /// `Core::set_text_cache_budget`.
1571    pub fn budget(&self) -> usize {
1572        self.budget
1573    }
1574
1575    /// Sets the budget. Takes effect at the next frame's start, where
1576    /// eviction runs; nothing is evicted here.
1577    pub fn set_budget(&mut self, bytes: usize) {
1578        self.budget = bytes;
1579    }
1580
1581    /// The estimated bytes the cache holds (see `ENTRY_BASE_BYTES`).
1582    pub fn bytes(&self) -> usize {
1583        self.bytes
1584    }
1585
1586    /// How many shaped texts the cache holds (a long line's chunks each
1587    /// count; the line itself does not).
1588    pub fn len(&self) -> usize {
1589        self.entries.len() - self.long_lines()
1590    }
1591
1592    /// How many long lines are held.
1593    pub fn long_lines(&self) -> usize {
1594        self.entries.values().filter(|e| e.long().is_some()).count()
1595    }
1596
1597    pub fn is_empty(&self) -> bool {
1598        self.len() == 0
1599    }
1600
1601    /// Evicts the least recently used entries until the cache is under
1602    /// three quarters of its budget. Never an entry the frame that just
1603    /// finished drew: what is on screen stays shaped whatever the budget
1604    /// says, the way F26's declared state is never evicted. Ordered by
1605    /// last use and then by key, so the same history evicts the same
1606    /// entries whatever order the map iterated.
1607    fn evict_to_budget(&mut self, fs: &mut FontSystem) {
1608        if self.bytes <= self.budget {
1609            return;
1610        }
1611        let floor = self.budget / EVICT_TO_DENOMINATOR * EVICT_TO_NUMERATOR;
1612        let drawn_last_frame = self.frame_no.saturating_sub(1);
1613        // Oldest first, runs and long lines alike: a long line's record is
1614        // charged to `bytes` like any entry (its shaped chunks are entries
1615        // in their own right), so the budget reaches it too rather than
1616        // leaving the records to the 300-frame sweep alone.
1617        let mut order: Vec<(u64, u64)> = self
1618            .entries
1619            .iter()
1620            .filter(|(_, e)| e.last_used() < drawn_last_frame)
1621            .map(|(k, e)| (e.last_used(), *k))
1622            .collect();
1623        order.sort_unstable();
1624        for (_, key) in order {
1625            if self.bytes <= floor {
1626                break;
1627            }
1628            let freed = self.entries.remove(&key).map(|e| e.bytes());
1629            self.bytes -= freed.unwrap_or(0);
1630        }
1631        // The words those entries shaped are still in cosmic-text's
1632        // shape-run cache, which has no byte budget of its own and ages
1633        // only when trimmed: drop what has not been used since the last
1634        // eviction. Measured with the 2 MB budget in `tests/text_budget.rs`,
1635        // leaving it on its 240-frame clock held nine times the budget in
1636        // words alone. A line still on screen keeps its shaped entry
1637        // whatever happens here; only a line edited afterwards shapes its
1638        // words again, once.
1639        fs.shape_run_cache.trim(0);
1640    }
1641
1642    /// Starts a frame. `keep_prev` retains the list just finished so the
1643    /// next frame can still read its texts — `Core` sets it exactly when it
1644    /// keeps the previous tree, and the two are read together.
1645    pub(crate) fn begin_frame(
1646        &mut self,
1647        fs: &mut FontSystem,
1648        scale: f32,
1649        keep_prev: bool,
1650        frame_no: u64,
1651    ) {
1652        self.joins.clear();
1653        // Scale change invalidates every physical-px measurement.
1654        if (scale - self.scale).abs() > f32::EPSILON {
1655            self.entries.clear();
1656            self.bytes = 0;
1657        }
1658        self.scale = scale;
1659        self.frame.begin(keep_prev);
1660        // Always kept, unlike `frame`: a query while this frame builds
1661        // answers from the last one, and this is what it answers from.
1662        self.places.begin(true);
1663        // The core's counter, not one of this store's own (backlog AR45).
1664        self.frame_no = frame_no;
1665        if let Some(cutoff) = crate::retain::sweep_cutoff(self.frame_no) {
1666            let mut freed = 0usize;
1667            self.entries.retain(|_, e| {
1668                let keep = e.last_used() >= cutoff;
1669                if !keep {
1670                    freed += e.bytes();
1671                }
1672                keep
1673            });
1674            self.bytes -= freed;
1675            // The shape-run cache makes single-line reshapes ~free while
1676            // editing; trim it so long sessions don't grow unboundedly.
1677            fs.shape_run_cache.trim(2);
1678        }
1679        // The clock above frees what nobody has shown for five seconds;
1680        // the budget frees what a stream of new text piles up faster than
1681        // that (backlog C16).
1682        self.evict_to_budget(fs);
1683    }
1684
1685    /// Drops every shaped entry, to shape again on its next draw: the
1686    /// weights a family is asked at changed under them.
1687    pub(crate) fn forget_shaped(&mut self) {
1688        self.entries.clear();
1689        self.bytes = 0;
1690    }
1691
1692    /// Inserts a fresh entry, charging it to the budget.
1693    fn insert(&mut self, key: u64, entry: Entry) {
1694        self.bytes += entry.bytes();
1695        if let Some(old) = self.entries.insert(key, entry) {
1696            self.bytes -= old.bytes();
1697        }
1698    }
1699
1700    /// The shaped run under `key`, if the entry there is one.
1701    fn run(&self, key: u64) -> Option<&CachedText> {
1702        self.entries.get(&key)?.run()
1703    }
1704
1705    fn run_mut(&mut self, key: u64) -> Option<&mut CachedText> {
1706        self.entries.get_mut(&key)?.run_mut()
1707    }
1708
1709    /// The long line under `key`, if the entry there is one.
1710    fn long(&self, key: u64) -> Option<&LongLine> {
1711        self.entries.get(&key)?.long()
1712    }
1713
1714    fn long_mut(&mut self, key: u64) -> Option<&mut LongLine> {
1715        self.entries.get_mut(&key)?.long_mut()
1716    }
1717
1718    pub(crate) fn style_key(content: &str, style: &TextStyle, scale: f32) -> u64 {
1719        // The content (word-wide past a few bytes, backlog C43) and the
1720        // shaping-relevant style bits (color excluded).
1721        let mut h = crate::key::mix_content(crate::key::FNV_OFFSET, content.as_bytes());
1722        let mut mix = |bytes: &[u8]| h = crate::key::fnv(h, bytes);
1723        mix(&style.size.to_bits().to_le_bytes());
1724        mix(&style.line_height.to_bits().to_le_bytes());
1725        mix(&scale.to_bits().to_le_bytes());
1726        mix(&[style.wrap as u8, style.ellipsis as u8]);
1727        mix(&style.max_lines.to_le_bytes());
1728        let (tag, font) = match style.family {
1729            FontFamily::Sans => (0u8, 0u64),
1730            FontFamily::Serif => (1, 0),
1731            FontFamily::Mono => (2, 0),
1732            FontFamily::Custom(id) => (3, id.to_ffi()),
1733        };
1734        mix(&[tag]);
1735        mix(&font.to_le_bytes());
1736        for (t, v) in style.features.iter() {
1737            mix(t);
1738            mix(&v.to_le_bytes());
1739        }
1740        // Paint only, but a decorated text is a different entry: the
1741        // decoration rects are built beside the glyph templates — and
1742        // their shape and colour with them (backlog K4).
1743        mix(&[
1744            style.underline as u8,
1745            style.strikethrough as u8,
1746            style.underline_style as u8,
1747            style.underline_color.is_some() as u8,
1748        ]);
1749        if let Some(c) = style.underline_color {
1750            mix(&c.to_hex().to_le_bytes());
1751        }
1752        h
1753    }
1754
1755    /// Shapes (or reuses) the buffer for `content` in `style`; returns its
1756    /// cache key. Shared by text nodes and measurement, so measuring a
1757    /// string and then drawing it shapes once.
1758    fn intern(
1759        &mut self,
1760        content: &str,
1761        style: &TextStyle,
1762        res: &Resources,
1763        fs: &mut FontSystem,
1764    ) -> u64 {
1765        let key = Self::style_key(content, style, self.scale);
1766        self.intern_keyed(key, content, style, res, fs)
1767    }
1768
1769    /// [`Self::intern`] under a key already computed.
1770    fn intern_keyed(
1771        &mut self,
1772        key: u64,
1773        content: &str,
1774        style: &TextStyle,
1775        res: &Resources,
1776        fs: &mut FontSystem,
1777    ) -> u64 {
1778        let frame_no = self.frame_no;
1779        let scale = self.scale;
1780        if !self.entries.contains_key(&key) {
1781            let mut buffer = new_buffer(fs, style, scale);
1782            // At the family's regular, as a span or a cell is: a family
1783            // with no 400 face asked at 400 falls back to another family
1784            // (F100).
1785            buffer.set_text(
1786                content,
1787                &res.weights_of(style.family).apply(
1788                    Attrs::new()
1789                        .family(res.family_of(style.family))
1790                        .font_features(cosmic_features(&style.features)),
1791                    false,
1792                ),
1793                Shaping::Advanced,
1794                None,
1795            );
1796            let entry = CachedText::new(
1797                buffer,
1798                content.to_string(),
1799                style,
1800                vec![SpanDeco::of_style(style)],
1801                fs,
1802                frame_no,
1803            );
1804            self.insert(key, Entry::Run(entry));
1805        }
1806        self.entries
1807            .get_mut(&key)
1808            .expect("just inserted")
1809            .touch(frame_no);
1810        key
1811    }
1812
1813    /// The content of one of this frame's texts (spans concatenated).
1814    pub(crate) fn content(&self, id: TextId) -> &str {
1815        let key = self.frame[id.0 as usize].cache_key;
1816        self.entries.get(&key).map_or("", |e| e.content())
1817    }
1818
1819    /// Appends the access runs of one of this frame's texts, as `src`
1820    /// places them (a custom editor's `line`s are read this way): a run's
1821    /// laid-out lines, or a long line's rows of the chunks it has shaped —
1822    /// one that never showed is not walked, the way a tall document's
1823    /// off-screen lines are not. Every `break-spaces` text is a long line.
1824    pub(crate) fn access_runs(
1825        &self,
1826        id: TextId,
1827        src: crate::access::RunSource,
1828        run_no: &mut usize,
1829        out: &mut Vec<crate::access::AccessRun>,
1830    ) {
1831        use crate::access::{RowGlyphs, push_row_runs};
1832        let Some(ft) = self.frame.get(id.0 as usize) else {
1833            return;
1834        };
1835        let line = match self.entries.get(&ft.cache_key) {
1836            Some(Entry::Run(e)) => {
1837                crate::access::runs_of_buffer(&e.buffer, src, run_no, out);
1838                return;
1839            }
1840            Some(Entry::Long(line)) => line,
1841            None => return,
1842        };
1843        let whole = [RowStart { byte: 0, x: 0.0 }];
1844        for (i, c) in line.chunks.iter().enumerate() {
1845            let Some(run) = c
1846                .width
1847                .and_then(|_| self.run(c.key))
1848                .and_then(|e| e.buffer.layout_runs().next())
1849            else {
1850                continue;
1851            };
1852            // Wrapped, the chunk's rows from where its first begins;
1853            // else one row at its place along the line.
1854            let (rows, row0, head_x) = match (line.wrap_w, line.starts.get(i)) {
1855                (Some(_), Some(&(row0, head_x))) if !c.rows.is_empty() => {
1856                    (&c.rows[..], row0, head_x)
1857                }
1858                (Some(_), _) => continue,
1859                (None, _) => (&whole[..], 0, line.prefix[i]),
1860            };
1861            for (r, rs) in rows.iter().enumerate() {
1862                let hi = rows.get(r + 1).map_or(usize::MAX, |n| n.byte as usize);
1863                let a = run.glyphs.partition_point(|g| g.start < rs.byte as usize);
1864                let b = run.glyphs.partition_point(|g| g.start < hi).max(a);
1865                if a == b {
1866                    continue;
1867                }
1868                let last = i + 1 == line.chunks.len() && r + 1 == rows.len();
1869                push_row_runs(
1870                    &RowGlyphs {
1871                        glyphs: &run.glyphs[a..b],
1872                        text: run.text,
1873                        line: 0,
1874                        top: (row0 as usize + r) as f32 * line.line_h,
1875                        height: line.line_h,
1876                        rtl: run.rtl,
1877                        dx: if r == 0 { head_x } else { 0.0 } - rs.x,
1878                        base: c.start,
1879                        newline: last && src.newline_after_last,
1880                    },
1881                    &src,
1882                    run_no,
1883                    out,
1884                );
1885            }
1886        }
1887    }
1888
1889    /// The cache key and colour behind one of the *previous* frame's texts
1890    /// — what a departing subtree keeps instead of its `TextId`, which
1891    /// indexes a list rebuilt every frame. The subtree is copied out of the
1892    /// previous frame's tree, so this is the list its ids belong to (see
1893    /// [`crate::depart`]).
1894    pub(crate) fn prev_frame_text(&self, id: TextId) -> (u64, Color) {
1895        match self.frame.prev().get(id.0 as usize) {
1896            Some(t) => (t.cache_key, t.color),
1897            None => (0, Color::TRANSPARENT),
1898        }
1899    }
1900
1901    /// Registers an already-shaped buffer as one of this frame's texts, by
1902    /// the cache key [`Self::frame_text`] handed out. None once the entry
1903    /// has been evicted — a ghost older than the cache draws no text
1904    /// rather than a wrong one. Touching it here keeps it alive for as
1905    /// long as something still draws it.
1906    pub(crate) fn readd(&mut self, cache_key: u64, color: Color) -> Option<TextId> {
1907        let frame_no = self.frame_no;
1908        let e = self.entries.get_mut(&cache_key)?;
1909        e.touch(frame_no);
1910        let cache_key = if e.long().is_some() {
1911            self.claim_long(cache_key)
1912        } else {
1913            cache_key
1914        };
1915        self.frame.push(FrameText { cache_key, color });
1916        Some(TextId((self.frame.len() - 1) as u32))
1917    }
1918
1919    /// Registers a text for this frame, shaping (or reusing) its buffer.
1920    pub fn add(
1921        &mut self,
1922        content: &str,
1923        style: &TextStyle,
1924        res: &Resources,
1925        fs: &mut FontSystem,
1926    ) -> TextId {
1927        // The one place the long/short decision is made: the entry's
1928        // variant carries it from here.
1929        let key = self.intern_any(content, style, res, fs);
1930        let key = if could_be_long(content.len(), style) {
1931            self.claim_long(key)
1932        } else {
1933            key
1934        };
1935        self.frame.push(FrameText {
1936            cache_key: key,
1937            color: style.color_or_default(),
1938        });
1939        TextId((self.frame.len() - 1) as u32)
1940    }
1941
1942    /// The key a node drawing the entry `key` holds it by. A run is
1943    /// shared, re-wrapped to each node as it is drawn; a long line's rows
1944    /// are the line's own and every query reads them, so the first node
1945    /// of a frame takes the line and each further one a copy of its own —
1946    /// the n-th node the n-th copy, so a frame like the last finds the
1947    /// copies it made laid out already. The copies share the chunks'
1948    /// shaped runs. Without it one `break-spaces` file open in two panes
1949    /// of different widths would draw and answer at the width laid out last.
1950    #[inline(never)]
1951    fn claim_long(&mut self, key: u64) -> u64 {
1952        let frame_no = self.frame_no;
1953        let mut at = key;
1954        let mut n = 0u64;
1955        loop {
1956            match self.entries.get_mut(&at) {
1957                Some(Entry::Long(l)) if l.claimed != frame_no => {
1958                    l.claimed = frame_no;
1959                    l.last_used = frame_no;
1960                    return at;
1961                }
1962                // A run is never a long line's copy: its key is.
1963                Some(Entry::Run(_)) if n == 0 => return key,
1964                Some(_) => {}
1965                None => {
1966                    let Some(line) = self.long(key) else {
1967                        return key;
1968                    };
1969                    let mut copy = line.clone();
1970                    copy.claimed = frame_no;
1971                    copy.last_used = frame_no;
1972                    self.insert(at, Entry::Long(copy));
1973                    return at;
1974                }
1975            }
1976            n += 1;
1977            at = crate::key::fnv(key ^ COPY_SALT, &n.to_le_bytes());
1978        }
1979    }
1980
1981    /// Interns `content` as the long line it is or the run it is, one
1982    /// hash either way: a text that could be long by its length and style
1983    /// is looked up under both keys before its bytes are scanned for a
1984    /// line break, so the steady state of a megabyte line is its hash and
1985    /// two lookups.
1986    fn intern_any(
1987        &mut self,
1988        content: &str,
1989        style: &TextStyle,
1990        res: &Resources,
1991        fs: &mut FontSystem,
1992    ) -> u64 {
1993        if !could_be_long(content.len(), style) {
1994            return self.intern(content, style, res, fs);
1995        }
1996        let key = Self::style_key(content, style, self.scale);
1997        let long_key = key ^ LONG_SALT;
1998        let frame_no = self.frame_no;
1999        if let Some(e) = self.entries.get_mut(&long_key) {
2000            e.touch(frame_no);
2001            return long_key;
2002        }
2003        if let Some(e) = self.entries.get_mut(&key) {
2004            e.touch(frame_no);
2005            return key;
2006        }
2007        if has_line_break(content) || content.len() < LONG_LINE_BYTES && has_rtl(content) {
2008            self.intern_keyed(key, content, style, res, fs)
2009        } else {
2010            self.build_long(long_key, content.to_string(), Vec::new(), style, res, fs)
2011        }
2012    }
2013
2014    /// The rich counterpart of [`Self::intern_any`]: a paragraph past the
2015    /// threshold with no line break is a long line whose chunks are rich
2016    /// runs; its content is concatenated only when the line
2017    /// is built.
2018    fn intern_rich_any(
2019        &mut self,
2020        spans: &[Span<'_>],
2021        base: &TextStyle,
2022        res: &Resources,
2023        fs: &mut FontSystem,
2024    ) -> u64 {
2025        let len: usize = spans.iter().map(|s| s.text.len()).sum();
2026        if !could_be_long(len, base) {
2027            return self.intern_rich(spans, base, res, fs);
2028        }
2029        let key = Self::rich_key(spans, base, self.scale);
2030        let long_key = key ^ LONG_SALT;
2031        let frame_no = self.frame_no;
2032        if let Some(e) = self.entries.get_mut(&long_key) {
2033            e.touch(frame_no);
2034            return long_key;
2035        }
2036        if let Some(e) = self.entries.get_mut(&key) {
2037            e.touch(frame_no);
2038            return key;
2039        }
2040        // A sized span makes a line as tall as it is, which the long
2041        // line's one estimated row height cannot follow: shaped whole.
2042        if spans
2043            .iter()
2044            .any(|s| has_line_break(s.text) || s.size.is_some())
2045            || len < LONG_LINE_BYTES && spans.iter().any(|s| has_rtl(s.text))
2046        {
2047            return self.intern_rich_keyed(key, spans, base, res, fs);
2048        }
2049        let mut content = String::with_capacity(len);
2050        let mut owned = Vec::with_capacity(spans.len());
2051        for s in spans {
2052            let start = content.len();
2053            content.push_str(s.text);
2054            owned.push(OwnedSpan {
2055                start,
2056                end: content.len(),
2057                attrs: s.attrs_only(),
2058            });
2059        }
2060        self.build_long(long_key, content, owned, base, res, fs)
2061    }
2062
2063    /// Builds the long line `content` is under `key` — plain, or rich
2064    /// with `spans` — shaping its first chunk for the line
2065    /// height and the advance the rest are estimated from; see
2066    /// [`LongLine`]. The callers have looked `key` up already.
2067    fn build_long(
2068        &mut self,
2069        key: u64,
2070        content: String,
2071        spans: Vec<OwnedSpan>,
2072        style: &TextStyle,
2073        res: &Resources,
2074        fs: &mut FontSystem,
2075    ) -> u64 {
2076        let frame_no = self.frame_no;
2077        let wrap = style.wrap;
2078        let style = &TextStyle {
2079            wrap: TextWrap::None,
2080            ..*style
2081        };
2082        let scale = self.scale;
2083        let chunks: Vec<Chunk> = chunk_ranges(&content)
2084            .into_iter()
2085            .map(|(start, end)| Chunk {
2086                start,
2087                end,
2088                key: if spans.is_empty() {
2089                    Self::style_key(&content[start..end], style, scale)
2090                } else {
2091                    Self::rich_key(&chunk_spans(&content, &spans, start, end), style, scale)
2092                },
2093                width: None,
2094                tab: None,
2095                rows: Vec::new(),
2096            })
2097            .collect();
2098        // The first chunk is shaped now: the line's height and the mean
2099        // advance the estimates need come from it.
2100        let (w0, line_h) = match chunks.first() {
2101            Some(c) => {
2102                let k = self.shape_chunk(&content, &spans, c.start, c.end, style, res, fs);
2103                let e = self.run(k).expect("just interned");
2104                (e.intrinsic.w, e.buffer.metrics().line_height)
2105            }
2106            None => (0.0, style.line_height * self.scale),
2107        };
2108        let avg = chunks
2109            .first()
2110            .map_or(0.0, |c| w0 / (c.end - c.start).max(1) as f32);
2111        let mut line = LongLine {
2112            content,
2113            spans,
2114            style: *style,
2115            wrap,
2116            wrap_w: None,
2117            starts: Vec::new(),
2118            chunks,
2119            prefix: Vec::new(),
2120            line_h,
2121            avg,
2122            last_used: frame_no,
2123            claimed: u64::MAX,
2124            laid_rows: 1,
2125            asked_rows: u32::MAX,
2126            bytes: 0,
2127        };
2128        if let Some(c) = line.chunks.first_mut() {
2129            c.width = Some(w0);
2130        }
2131        line.reprefix();
2132        line.bytes = ENTRY_BASE_BYTES
2133            + line.content.len()
2134            + line.chunks.len() * 48
2135            + line.spans.len() * std::mem::size_of::<OwnedSpan>();
2136        // A line long only by its `break-spaces` is one chunk
2137        // (`chunk_ranges`), shaped now: its first frame is laid out on the
2138        // rows it has, not on an estimate (RG68).
2139        self.insert(key, Entry::Long(line));
2140        key
2141    }
2142
2143    /// Shapes (or touches) the run for `start..end` of a long line's
2144    /// content: a plain run, or a rich one of the spans that intersect
2145    /// the range. Returns its key.
2146    #[allow(clippy::too_many_arguments)]
2147    fn shape_chunk(
2148        &mut self,
2149        content: &str,
2150        spans: &[OwnedSpan],
2151        start: usize,
2152        end: usize,
2153        style: &TextStyle,
2154        res: &Resources,
2155        fs: &mut FontSystem,
2156    ) -> u64 {
2157        if spans.is_empty() {
2158            self.intern(&content[start..end], style, res, fs)
2159        } else {
2160            let spans = chunk_spans(content, spans, start, end);
2161            self.intern_rich(&spans, style, res, fs)
2162        }
2163    }
2164
2165    /// Makes sure chunk `i` of the long line `key` is shaped, and moves
2166    /// the prefix sums if its width was an estimate. Returns whether it
2167    /// shaped now — what tells a wrapped line its rows need breaking.
2168    fn ensure_chunk(&mut self, key: u64, i: usize, res: &Resources, fs: &mut FontSystem) -> bool {
2169        let (chunk_key, known) = {
2170            let c = &self.long(key).expect("a long line").chunks[i];
2171            (c.key, c.width)
2172        };
2173        let frame_no = self.frame_no;
2174        if known.is_some()
2175            && let Some(e) = self.run_mut(chunk_key)
2176        {
2177            e.last_used = frame_no;
2178            return false;
2179        }
2180        // Shaping now: the chunk's text and its spans rebased to the
2181        // slice, copied out so the line stays in the map meanwhile.
2182        let (text, spans, style, off_stops) = {
2183            let line = self.long(key).expect("a long line");
2184            let c = &line.chunks[i];
2185            let first = line.spans.partition_point(|s| s.end <= c.start);
2186            let spans: Vec<OwnedSpan> = line.spans[first..]
2187                .iter()
2188                .take_while(|s| s.start < c.end)
2189                .map(|s| OwnedSpan {
2190                    start: s.start.max(c.start) - c.start,
2191                    end: s.end.min(c.end) - c.start,
2192                    attrs: s.attrs,
2193                })
2194                .collect();
2195            let bytes = line.content.as_bytes();
2196            let off_stops = c.start > 0 && bytes[c.start - 1] != b'\t';
2197            (
2198                line.content[c.start..c.end].to_string(),
2199                spans,
2200                line.style,
2201                off_stops,
2202            )
2203        };
2204        let k = self.shape_chunk(&text, &spans, 0, text.len(), &style, res, fs);
2205        let w = self.run(k).expect("just interned").intrinsic.w;
2206        let tab = match off_stops && text.ends_with('\t') {
2207            true => self.chunk_tab(k, &text, &spans, &style, res, fs),
2208            false => None,
2209        };
2210        let line = self.long_mut(key).expect("just read");
2211        line.chunks[i].key = k;
2212        line.chunks[i].tab = tab;
2213        if line.chunks[i].width != Some(w) {
2214            line.chunks[i].width = Some(w);
2215            line.reprefix();
2216        }
2217        true
2218    }
2219
2220    /// For a chunk that starts off the line's tab stops and ends in its one
2221    /// tab, shaped as `chunk`: where the tab starts in that run, and the
2222    /// stops' interval — the width of the tab shaped alone in its own
2223    /// span's style, which starts on a stop (backlog RG76). `None` for a
2224    /// right-to-left run, whose tab is not at its end.
2225    #[inline(never)]
2226    #[allow(clippy::too_many_arguments)]
2227    fn chunk_tab(
2228        &mut self,
2229        chunk: u64,
2230        text: &str,
2231        spans: &[OwnedSpan],
2232        style: &TextStyle,
2233        res: &Resources,
2234        fs: &mut FontSystem,
2235    ) -> Option<(f32, f32)> {
2236        let at = text.len() - 1;
2237        let tab_x = {
2238            let run = self.run(chunk)?.buffer.layout_runs().next()?;
2239            if run.rtl {
2240                return None;
2241            }
2242            run.glyphs.iter().rev().find(|g| g.start == at)?.x
2243        };
2244        let alone = self.shape_chunk(text, spans, at, text.len(), style, res, fs);
2245        let every = self.run(alone)?.intrinsic.w;
2246        Some((tab_x, every))
2247    }
2248
2249    /// Breaks the long line `key` into rows at `w` (physical px), or lays
2250    /// it as one row for `None`. Positions, not glyphs: each chunk's rows
2251    /// start where the previous chunk's last row ended; a shaped chunk
2252    /// breaks exactly ([`break_rows`]), one that never showed contributes
2253    /// the estimate its width is, corrected when it shapes — the way
2254    /// `prefix` is, so the height the scrollbar sees can move a little as
2255    /// chunks fill in.
2256    fn relayout_long(&mut self, key: u64, w: Option<f32>) {
2257        let Some(w) = w else {
2258            let line = self.long_mut(key).expect("a long line");
2259            line.wrap_w = None;
2260            line.starts.clear();
2261            for c in &mut line.chunks {
2262                c.rows.clear();
2263            }
2264            return;
2265        };
2266        let w = w.max(1.0);
2267        // Read every chunk's rows off its shaped run first — the runs and
2268        // the line are entries of one map — then write them back.
2269        let line = self.long(key).expect("a long line");
2270        let mut starts = Vec::with_capacity(line.chunks.len() + 1);
2271        starts.push((0, 0.0));
2272        let (mut row, mut x) = (0u32, 0.0f32);
2273        let rows: Vec<Vec<RowStart>> = line
2274            .chunks
2275            .iter()
2276            .enumerate()
2277            .map(|(i, c)| {
2278                let shaped = c.width.and_then(|_| self.run(c.key));
2279                let rows = match shaped {
2280                    Some(e) => {
2281                        let text = &line.content[c.start..c.end];
2282                        let (rows, end) = break_rows(&e.buffer, text, line.wrap, w, x);
2283                        row += rows.len() as u32 - 1;
2284                        // A tab the line places ends the chunk where the
2285                        // unwrapped line puts it, as a whole run's tab is
2286                        // measured before its rows are broken (RG76).
2287                        x = end + line.tab_shift(i);
2288                        rows
2289                    }
2290                    None => {
2291                        let est = x + c
2292                            .width
2293                            .unwrap_or_else(|| (c.end - c.start) as f32 * line.avg);
2294                        let added = (est / w).floor();
2295                        row += added as u32;
2296                        x = est - added * w;
2297                        Vec::new()
2298                    }
2299                };
2300                starts.push((row, x));
2301                rows
2302            })
2303            .collect();
2304        let line = self.long_mut(key).expect("a long line");
2305        line.wrap_w = Some(w);
2306        line.starts = starts;
2307        for (c, rows) in line.chunks.iter_mut().zip(rows) {
2308            c.rows = rows;
2309        }
2310    }
2311
2312    /// A long line's size at `max_w` (physical px): one row clamped to it,
2313    /// or, when the style wraps and the line does not fit, its rows broken
2314    /// to it. Returns the physical size and the row count.
2315    fn long_size(&mut self, key: u64, max_w: Option<f32>) -> (Size, u32) {
2316        let (wrap, width, line_h, cur) = {
2317            let l = self.long(key).expect("a long line");
2318            (l.wrap, l.width(), l.line_h, l.wrap_w)
2319        };
2320        let target = match max_w {
2321            Some(w) if wrap != TextWrap::None && width > w + 0.5 => Some(w.max(1.0)),
2322            _ => None,
2323        };
2324        let differs = match (cur, target) {
2325            (None, None) => false,
2326            (Some(a), Some(b)) => (a - b).abs() > 0.5,
2327            _ => true,
2328        };
2329        if differs {
2330            self.relayout_long(key, target);
2331        }
2332        match target {
2333            Some(w) => {
2334                let rows = self.long(key).expect("a long line").rows();
2335                (Size::new(w, rows as f32 * line_h), rows)
2336            }
2337            None => (Size::new(max_w.map_or(width, |m| width.min(m)), line_h), 1),
2338        }
2339    }
2340
2341    /// Measures `content` in `style` without adding a node: its unwrapped
2342    /// size, or with `max_w` (logical px) its size once wrapped to that
2343    /// width. The answer is what layout would give a text node with the
2344    /// same content and style at the current scale, `wrap` / `max_lines` /
2345    /// `ellipsis` included.
2346    pub fn measure(
2347        &mut self,
2348        content: &str,
2349        style: &TextStyle,
2350        res: &Resources,
2351        fs: &mut FontSystem,
2352        max_w: Option<f32>,
2353    ) -> TextMetrics {
2354        let key = self.intern_any(content, style, res, fs);
2355        self.measure_any(key, fs, max_w)
2356    }
2357
2358    /// `measure` for the entry under `key`, a long line or a run.
2359    fn measure_any(&mut self, key: u64, fs: &mut FontSystem, max_w: Option<f32>) -> TextMetrics {
2360        if self.long(key).is_some() {
2361            let scale = self.scale;
2362            // Without a width nothing is broken, and the layout the frame
2363            // holds is left as it is.
2364            let (size, lines) = match max_w {
2365                Some(m) => {
2366                    // Nor with one: the rows are put back for the node
2367                    // that drew the line, which queries read.
2368                    let held = self.long(key).expect("checked").wrap_w;
2369                    let measured = self.long_size(key, Some(m * scale));
2370                    if wrap_differs(held, self.long(key).expect("checked").wrap_w) {
2371                        self.relayout_long(key, held);
2372                    }
2373                    measured
2374                }
2375                None => {
2376                    let line = self.long(key).expect("checked");
2377                    (Size::new(line.width(), line.line_h), 1)
2378                }
2379            };
2380            return TextMetrics {
2381                width: size.w / scale,
2382                height: size.h / scale,
2383                lines,
2384            };
2385        }
2386        self.measure_key(key, fs, max_w)
2387    }
2388
2389    /// `measure` for a rich-text paragraph.
2390    pub fn measure_rich(
2391        &mut self,
2392        spans: &[Span<'_>],
2393        base: &TextStyle,
2394        res: &Resources,
2395        fs: &mut FontSystem,
2396        max_w: Option<f32>,
2397    ) -> TextMetrics {
2398        let key = self.intern_rich_any(spans, base, res, fs);
2399        self.measure_any(key, fs, max_w)
2400    }
2401
2402    fn measure_key(&mut self, key: u64, fs: &mut FontSystem, max_w: Option<f32>) -> TextMetrics {
2403        let scale = self.scale;
2404        let entry = self.run_mut(key).expect("just interned");
2405        let target = wrap_target(entry, max_w, scale);
2406        // A run a node has drawn keeps the rows it was drawn at: its
2407        // `text_hit` and `caret_rect` read them until the next frame, which
2408        // would only wrap them back. A measure at another width lays out a
2409        // copy at that width instead, kept for the next measure there —
2410        // between frames as well as within one, where RG72's claim is
2411        // (backlog RG76).
2412        let key = if entry.claimed != u64::MAX && wrap_differs(entry.wrap, target) {
2413            self.wrap_copy(key, target, fs)
2414        } else {
2415            key
2416        };
2417        let entry = self.run_mut(key).expect("just interned");
2418        wrap_entry(entry, fs, target);
2419        let (mut m, lines) = measure_buffer(&entry.buffer, entry.max_lines);
2420        if entry.clamp_w
2421            && let Some(t) = target
2422        {
2423            m.w = m.w.min(t);
2424        }
2425        TextMetrics {
2426            width: m.w / scale,
2427            height: m.h / scale,
2428            lines,
2429        }
2430    }
2431
2432    /// Registers a rich-text paragraph for this frame. Spans shape as one
2433    /// flow, so wrapping crosses style boundaries correctly; past the
2434    /// long-line threshold the flow is chunked like a plain line's.
2435    pub fn add_rich(
2436        &mut self,
2437        spans: &[Span<'_>],
2438        base: &TextStyle,
2439        res: &Resources,
2440        fs: &mut FontSystem,
2441    ) -> TextId {
2442        let key = self.intern_rich_any(spans, base, res, fs);
2443        let len = spans.iter().map(|s| s.text.len()).sum();
2444        let key = if could_be_long(len, base) {
2445            self.claim_long(key)
2446        } else {
2447            key
2448        };
2449        self.frame.push(FrameText {
2450            cache_key: key,
2451            color: base.color_or_default(),
2452        });
2453        TextId((self.frame.len() - 1) as u32)
2454    }
2455
2456    fn intern_rich(
2457        &mut self,
2458        spans: &[Span<'_>],
2459        base: &TextStyle,
2460        res: &Resources,
2461        fs: &mut FontSystem,
2462    ) -> u64 {
2463        let key = Self::rich_key(spans, base, self.scale);
2464        self.intern_rich_keyed(key, spans, base, res, fs)
2465    }
2466
2467    /// The cache key of a rich paragraph: the base style's, then every
2468    /// span's text and attributes in order. Never a plain text's key for
2469    /// the same content.
2470    fn rich_key(spans: &[Span<'_>], base: &TextStyle, scale: f32) -> u64 {
2471        let mut key = Self::style_key("", base, scale) ^ 0x9e37_79b9_7f4a_7c15;
2472        for s in spans {
2473            key = crate::key::mix_content(key, s.text.as_bytes());
2474            let mut mix = |bytes: &[u8]| key = crate::key::fnv(key, bytes);
2475            mix(&[
2476                s.bold as u8,
2477                s.italic as u8,
2478                s.color.is_some() as u8,
2479                s.underline as u8,
2480                s.strikethrough as u8,
2481                s.bg.is_some() as u8,
2482                s.underline_style as u8,
2483                s.underline_color.is_some() as u8,
2484            ]);
2485            mix(&s.bg_radius.to_bits().to_le_bytes());
2486            // The span's own face and size: a different shaping, so a
2487            // different entry.
2488            let (tag, font) = match s.family {
2489                None => (0u8, 0u64),
2490                Some(FontFamily::Sans) => (1, 0),
2491                Some(FontFamily::Serif) => (2, 0),
2492                Some(FontFamily::Mono) => (3, 0),
2493                Some(FontFamily::Custom(id)) => (4, id.to_ffi()),
2494            };
2495            mix(&[tag]);
2496            mix(&font.to_le_bytes());
2497            mix(&s.size.map_or(0, f32::to_bits).to_le_bytes());
2498            for c in [s.color, s.bg, s.underline_color].into_iter().flatten() {
2499                mix(&c.r.to_bits().to_le_bytes());
2500                mix(&c.g.to_bits().to_le_bytes());
2501                mix(&c.b.to_bits().to_le_bytes());
2502                mix(&c.a.to_bits().to_le_bytes());
2503            }
2504        }
2505        key
2506    }
2507
2508    /// [`Self::intern_rich`] under a key already computed.
2509    fn intern_rich_keyed(
2510        &mut self,
2511        key: u64,
2512        spans: &[Span<'_>],
2513        base: &TextStyle,
2514        res: &Resources,
2515        fs: &mut FontSystem,
2516    ) -> u64 {
2517        let frame_no = self.frame_no;
2518        let scale = self.scale;
2519        if !self.entries.contains_key(&key) {
2520            let mut buffer = new_buffer(fs, base, scale);
2521            let family = res.family_of(base.family);
2522            let weights = res.weights_of(base.family);
2523            let features = cosmic_features(&base.features);
2524            // Once one span has a size of its own every span carries its
2525            // metrics: cosmic-text makes a line as tall as the tallest
2526            // glyph that names its own, so a line holding only a smaller
2527            // span would otherwise come out shorter than the paragraph's.
2528            let sized = spans.iter().any(|s| s.size.is_some());
2529            let metrics_of = |size: Option<f32>| {
2530                let size = size.unwrap_or(base.size);
2531                let ratio = if base.size > 0.0 {
2532                    base.line_height / base.size
2533                } else {
2534                    1.0
2535                };
2536                shaper_metrics(size * scale, size * ratio * scale)
2537            };
2538            // Each span's index rides its glyphs as metadata, which is how
2539            // the decoration rects find their span after layout. A span
2540            // with a face of its own is shaped in it, at its weights.
2541            buffer.set_rich_text(
2542                spans.iter().enumerate().map(|(i, s)| {
2543                    let (family, weights) = match s.family {
2544                        Some(f) => (res.family_of(f), res.weights_of(f)),
2545                        None => (family, weights),
2546                    };
2547                    let mut attrs = s
2548                        .attrs(family, weights)
2549                        .font_features(features.clone())
2550                        .metadata(i);
2551                    if sized {
2552                        attrs = attrs.metrics(metrics_of(s.size));
2553                    }
2554                    (s.text, attrs)
2555                }),
2556                &{
2557                    let attrs = weights.apply(
2558                        Attrs::new().family(family).font_features(features.clone()),
2559                        false,
2560                    );
2561                    if sized {
2562                        attrs.metrics(metrics_of(None))
2563                    } else {
2564                        attrs
2565                    }
2566                },
2567                Shaping::Advanced,
2568                None,
2569            );
2570            let content = spans.iter().map(|s| s.text).collect::<String>();
2571            let decos = spans
2572                .iter()
2573                .map(|s| SpanDeco {
2574                    underline: s.underline || base.underline,
2575                    // The span's own where it says, else the paragraph's.
2576                    underline_color: s.underline_color.or(base.underline_color),
2577                    underline_style: if s.underline {
2578                        s.underline_style
2579                    } else {
2580                        base.underline_style
2581                    },
2582                    strikethrough: s.strikethrough || base.strikethrough,
2583                    bg: s.bg,
2584                    bg_radius: s.bg_radius,
2585                })
2586                .collect();
2587            let entry = CachedText::new(buffer, content, base, decos, fs, frame_no);
2588            self.insert(key, Entry::Run(entry));
2589        }
2590        self.entries
2591            .get_mut(&key)
2592            .expect("just inserted")
2593            .touch(frame_no);
2594        key
2595    }
2596
2597    /// The shaped run behind one of this frame's texts; callers have
2598    /// already taken the long line's path when it is one.
2599    fn entry_mut(&mut self, id: TextId) -> &mut CachedText {
2600        let key = self.frame[id.0 as usize].cache_key;
2601        self.run_mut(key).expect("frame text missing from cache")
2602    }
2603
2604    /// Wraps text `id`'s run to `max_w_logical`: layout at the node's
2605    /// width, and emission again, since the run is shared by every node
2606    /// drawing the same text. The first node of a frame claims it; one
2607    /// asking another width the same frame moves to a copy of its own.
2608    fn ensure_wrap(&mut self, id: TextId, max_w_logical: f32, fs: &mut FontSystem) {
2609        let (scale, frame_no) = (self.scale, self.frame_no);
2610        let entry = self.entry_mut(id);
2611        let target = wrap_target(entry, Some(max_w_logical), scale);
2612        if entry.claimed == frame_no && wrap_differs(entry.claimed_wrap, target) {
2613            self.own_wrap(id, target, fs);
2614            return;
2615        }
2616        entry.claimed = frame_no;
2617        entry.claimed_wrap = target;
2618        wrap_entry(entry, fs, target);
2619    }
2620
2621    /// `ensure_wrap` for a node drawing a run another node of this frame
2622    /// wrapped to another width — the same label in two panes: the node
2623    /// takes the copy of the run at its width, made the first time and
2624    /// found by width after, so each answers `text_hit` and `caret_rect`
2625    /// at its own rows and neither re-wraps the other's (a
2626    /// long line's twin is [`Self::claim_long`]). Off the path every other
2627    /// text takes: a copy costs a buffer clone once and a lookup a frame.
2628    #[inline(never)]
2629    fn own_wrap(&mut self, id: TextId, target: Option<f32>, fs: &mut FontSystem) {
2630        let frame_no = self.frame_no;
2631        let key = self.frame[id.0 as usize].cache_key;
2632        let copy = self.wrap_copy(key, target, fs);
2633        self.frame[id.0 as usize].cache_key = copy;
2634        let entry = self.run_mut(copy).expect("just made");
2635        entry.claimed = frame_no;
2636        entry.claimed_wrap = target;
2637    }
2638
2639    /// The copy of run `key` laid out at `target`, made the first time a
2640    /// width asks for it and found by width after: what a second node
2641    /// drawing the run at another width ([`Self::own_wrap`]) and a
2642    /// `measure_text` at a width no node drew it at ([`Self::measure_key`])
2643    /// lay out instead of the run a node drew.
2644    #[inline(never)]
2645    fn wrap_copy(&mut self, key: u64, target: Option<f32>, fs: &mut FontSystem) -> u64 {
2646        let frame_no = self.frame_no;
2647        // By the half pixel `wrap_differs` tells widths apart by.
2648        let slot = target.map_or(u64::MAX, |t| (t * 2.0).round() as u64);
2649        let copy = crate::key::fnv(key ^ COPY_SALT, &slot.to_le_bytes());
2650        if self.run(copy).is_none() {
2651            let fork = self.run(key).expect("a run").fork(frame_no);
2652            self.insert(copy, Entry::Run(fork));
2653        }
2654        let entry = self.run_mut(copy).expect("just made");
2655        entry.last_used = frame_no;
2656        wrap_entry(entry, fs, target);
2657        copy
2658    }
2659
2660    /// Emits positioned glyph quads for a laid-out text node.
2661    /// `origin` and `node` are logical; output quads are physical px. The
2662    /// rounded backgrounds it notes are clipped as its parent is, whatever
2663    /// its own box does (`JoinBg::outer`).
2664    #[allow(clippy::too_many_arguments)]
2665    pub(crate) fn emit(
2666        &mut self,
2667        id: TextId,
2668        origin: Vec2,
2669        node: Size,
2670        clip: Clip,
2671        clip_id: ClipId,
2672        clips: &mut Vec<Clip>,
2673        res: &Resources,
2674        fs: &mut FontSystem,
2675        atlas: &mut GlyphAtlas,
2676        out: &mut Vec<Quad>,
2677        sel: Option<((usize, usize), Color)>,
2678    ) {
2679        let from = self.joins.len();
2680        self.emit_text(
2681            id, origin, node, clip, clip_id, clips, res, fs, atlas, out, sel,
2682        );
2683        if self.joins.len() == from {
2684            return;
2685        }
2686        // The box a long line or an overflowing text clips to, as
2687        // `emit_text` works it out.
2688        let key = self.frame[id.0 as usize].cache_key;
2689        let clamps = match self.entries.get(&key) {
2690            Some(Entry::Long(l)) => l.wrap == TextWrap::None,
2691            Some(Entry::Run(e)) => e.clamp_w,
2692            None => false,
2693        };
2694        let own = clamps.then(|| {
2695            let ox = crate::geom::snap_px(origin.x * self.scale);
2696            (ox, ox + (node.w * self.scale).ceil())
2697        });
2698        for j in &mut self.joins[from..] {
2699            j.outer = clip_id;
2700            j.own = own;
2701        }
2702    }
2703
2704    /// `emit_text` for a long line, kept off the run's path: it draws the
2705    /// chunks inside the clip plus one either side, shaping them now if
2706    /// this is the first time they show. Layout broke its
2707    /// rows at the node's final width (`wrapped`), and the line is this
2708    /// node's alone (`claim_long`).
2709    #[allow(clippy::too_many_arguments)]
2710    #[inline(never)]
2711    fn emit_long(
2712        &mut self,
2713        key: u64,
2714        node: Size,
2715        ox: f32,
2716        oy: f32,
2717        nudge: Vec2,
2718        color: Color,
2719        clip: Clip,
2720        clip_id: ClipId,
2721        clips: &mut Vec<Clip>,
2722        res: &Resources,
2723        fs: &mut FontSystem,
2724        atlas: &mut GlyphAtlas,
2725        out: &mut Vec<Quad>,
2726        sel: Option<((usize, usize), Color)>,
2727    ) {
2728        let scale = self.scale;
2729        let line = self.long(key).expect("a long line");
2730        // A line that does not wrap owns its box, as a run that does not
2731        // does; one that wraps draws under its parent's clip, as a
2732        // wrapped run does, so a glyph overhanging a tight row is not cut
2733        // (the alpha.22 regression pass: every `break-spaces` text is a
2734        // long line).
2735        let (clip, clip_id) = if line.wrap == TextWrap::None {
2736            let own = Rect::new(ox, oy, (node.w * scale).ceil(), (node.h * scale).ceil());
2737            let clip = clip.intersect(own, crate::display::SQUARE);
2738            let vis = clip.visible();
2739            if vis.w <= 0.0 || vis.h <= 0.0 {
2740                return;
2741            }
2742            (clip, crate::display::intern_clip(clips, clip))
2743        } else {
2744            (clip, clip_id)
2745        };
2746        // What can show, in the glyphs' own space (ADR 0043).
2747        let vis = clip.visible();
2748        if let Some(((from, to), tint)) = sel {
2749            let rects = self.long_highlight(line, from, to);
2750            push_highlight(&rects, ox, oy, nudge, tint, clip_id, out);
2751        }
2752        if let Some(w) = line.wrap_w {
2753            self.emit_long_rows(
2754                key, w, ox, oy, nudge, color, clip, clip_id, res, fs, atlas, out,
2755            );
2756            return;
2757        }
2758        let (first, last) = {
2759            if line.chunks.is_empty() {
2760                return;
2761            }
2762            let a = line.chunk_at(vis.x - ox).saturating_sub(1);
2763            let b = (line.chunk_at(vis.x + vis.w - ox) + 1).min(line.chunks.len() - 1);
2764            (a, b)
2765        };
2766        for i in first..=last {
2767            self.ensure_chunk(key, i, res, fs);
2768        }
2769        let frame_no = self.frame_no;
2770        self.long_mut(key).expect("checked").last_used = frame_no;
2771        for i in first..=last {
2772            let (chunk_key, x) = {
2773                let line = self.long(key).expect("checked");
2774                (line.chunks[i].key, line.prefix[i])
2775            };
2776            let raster = &mut self.raster;
2777            let entry = self
2778                .entries
2779                .get_mut(&chunk_key)
2780                .and_then(Entry::run_mut)
2781                .expect("just ensured");
2782            emit_entry(
2783                entry,
2784                ox + x,
2785                oy,
2786                nudge,
2787                color,
2788                clip,
2789                clip_id,
2790                raster,
2791                fs,
2792                atlas,
2793                out,
2794                &mut self.joins,
2795            );
2796        }
2797    }
2798
2799    /// [`Self::emit`]'s body.
2800    #[allow(clippy::too_many_arguments)]
2801    fn emit_text(
2802        &mut self,
2803        id: TextId,
2804        origin: Vec2,
2805        node: Size,
2806        clip: Clip,
2807        clip_id: ClipId,
2808        clips: &mut Vec<Clip>,
2809        res: &Resources,
2810        fs: &mut FontSystem,
2811        atlas: &mut GlyphAtlas,
2812        out: &mut Vec<Quad>,
2813        // `sel`: the bytes of this run the window's selection covers and
2814        // the colour to paint them under (ADR 0017). Resolved by the
2815        // caller, the only place that knows this run's ordinal in its
2816        // scope.
2817        sel: Option<((usize, usize), Color)>,
2818    ) {
2819        let FrameText {
2820            cache_key: key,
2821            color,
2822        } = self.frame[id.0 as usize];
2823        let scale = self.scale;
2824        let ox = crate::geom::snap_px(origin.x * scale);
2825        let oy = crate::geom::snap_px(origin.y * scale);
2826        // Where layout put the text, less where it is drawn: what a
2827        // background's edges are snapped from (`on_pixels`).
2828        let nudge = Vec2::new(origin.x * scale - ox, origin.y * scale - oy);
2829        // A long line is drawn by chunks, off the run's path (backlog
2830        // C19).
2831        if self.long(key).is_some() {
2832            self.emit_long(
2833                key, node, ox, oy, nudge, color, clip, clip_id, clips, res, fs, atlas, out, sel,
2834            );
2835            return;
2836        }
2837        self.ensure_wrap(id, node.w, fs);
2838        let raster = &mut self.raster;
2839        let entry = self
2840            .entries
2841            .get_mut(&key)
2842            .and_then(Entry::run_mut)
2843            .expect("frame text missing from cache");
2844
2845        // Overflowing modes own their box: a line that runs past the node's
2846        // width is clipped there rather than painted over siblings.
2847        let (clip, clip_id) = if entry.clamp_w {
2848            let own = Rect::new(ox, oy, (node.w * scale).ceil(), (node.h * scale).ceil());
2849            let clip = clip.intersect(own, crate::display::SQUARE);
2850            (clip, crate::display::intern_clip(clips, clip))
2851        } else {
2852            (clip, clip_id)
2853        };
2854        if let Some(((from, to), tint)) = sel {
2855            let rects = Self::run_highlight(entry, from, to);
2856            push_highlight(&rects, ox, oy, nudge, tint, clip_id, out);
2857        }
2858        emit_entry(
2859            entry,
2860            ox,
2861            oy,
2862            nudge,
2863            color,
2864            clip,
2865            clip_id,
2866            raster,
2867            fs,
2868            atlas,
2869            out,
2870            &mut self.joins,
2871        );
2872    }
2873}
2874
2875/// A text's background rect at physical (`x`, `y`) with each edge
2876/// snapped to a whole pixel, so it meets another text's — the next run's,
2877/// the next row's — on a pixel line and not inside one, where each drew
2878/// part of the pixel and the two left a seam. A box is drawn where layout
2879/// put it, so a gap between two boxes is there at any scale, unless it
2880/// asks for this too (`pixelSnap`), from its layout rect.
2881///
2882/// The edges are snapped from where layout put them, `nudge` (layout's
2883/// origin less the drawn, snapped one) past `x` and `y`, so the next
2884/// text's edge, snapped from its own layout origin, lands on the same
2885/// pixel. From the drawn origin a row's rect ended a pixel into the next
2886/// row wherever their pitch was not whole pixels, and the join drew
2887/// twice.
2888fn on_pixels(x: f32, y: f32, w: f32, h: f32, nudge: Vec2) -> Rect {
2889    Rect::new(x + nudge.x, y + nudge.y, w, h).on_pixels()
2890}
2891
2892/// Pushes selection rects as quads at a run's origin — before its glyphs,
2893/// so the text stays on top of its own highlight.
2894fn push_highlight(
2895    rects: &[Rect],
2896    ox: f32,
2897    oy: f32,
2898    nudge: Vec2,
2899    tint: Color,
2900    clip: ClipId,
2901    out: &mut Vec<Quad>,
2902) {
2903    for r in rects {
2904        out.push(Quad {
2905            rect: on_pixels(ox + r.x, oy + r.y, r.w, r.h, nudge),
2906            color: tint,
2907            border_color: Color::TRANSPARENT,
2908            radius: [0.0; 4],
2909            border_w: 0.0,
2910            blur: 0.0,
2911            kind: QuadKind::Solid,
2912            uv: [0; 4],
2913            clip,
2914        });
2915    }
2916}
2917
2918impl TextSystem {
2919    /// `emit` for a wrapped long line: the chunks whose rows touch the
2920    /// clip, plus one either side, each drawn row by row from its
2921    /// unwrapped templates.
2922    #[allow(clippy::too_many_arguments)]
2923    fn emit_long_rows(
2924        &mut self,
2925        key: u64,
2926        w: f32,
2927        ox: f32,
2928        oy: f32,
2929        nudge: Vec2,
2930        color: Color,
2931        clip: Clip,
2932        clip_id: ClipId,
2933        res: &Resources,
2934        fs: &mut FontSystem,
2935        atlas: &mut GlyphAtlas,
2936        out: &mut Vec<Quad>,
2937    ) {
2938        let vis = clip.visible();
2939        let (first, last) = {
2940            let line = self.long(key).expect("a long line");
2941            let ra = ((vis.y - oy) / line.line_h).floor().max(0.0) as u32;
2942            let rb = ((vis.y + vis.h - oy) / line.line_h).floor().max(0.0) as u32;
2943            let Some((a, b)) = line.chunks_on_rows(ra, rb) else {
2944                return;
2945            };
2946            (a.saturating_sub(1), (b + 1).min(line.chunks.len() - 1))
2947        };
2948        let mut fresh = false;
2949        for i in first..=last {
2950            fresh |= self.ensure_chunk(key, i, res, fs);
2951        }
2952        if fresh {
2953            // A chunk shaped now moves every row after it — and the box
2954            // layout gave the line, which was the estimate's.
2955            self.relayout_long(key, Some(w));
2956            let line = self.long_mut(key).expect("checked");
2957            let rows = line.rows();
2958            if rows != line.laid_rows && rows != line.asked_rows {
2959                line.asked_rows = rows;
2960                self.owed = true;
2961            }
2962        }
2963        let frame_no = self.frame_no;
2964        self.long_mut(key).expect("checked").last_used = frame_no;
2965        for i in first..=last {
2966            let chunk_key = self.long(key).expect("checked").chunks[i].key;
2967            // The line and the chunk's run are two entries of one map, so
2968            // the pair is borrowed together; a chunk's key is never the
2969            // line's own (`LONG_SALT`).
2970            let [Some(Entry::Long(line)), Some(Entry::Run(entry))] =
2971                self.entries.get_disjoint_mut([&key, &chunk_key])
2972            else {
2973                continue;
2974            };
2975            let (row0, head_x) = line.starts[i];
2976            let chunk = &line.chunks[i];
2977            if chunk.rows.is_empty() {
2978                continue;
2979            }
2980            let raster = &mut self.raster;
2981            emit_entry_rows(
2982                entry,
2983                ox,
2984                oy + row0 as f32 * line.line_h,
2985                nudge,
2986                head_x,
2987                &chunk.rows,
2988                line.line_h,
2989                color,
2990                clip,
2991                clip_id,
2992                raster,
2993                fs,
2994                atlas,
2995                out,
2996                &mut self.joins,
2997            );
2998        }
2999    }
3000}
3001
3002/// `emit_entry` for one chunk of a wrapped long line: the templates are
3003/// the chunk's unwrapped run, and each row's glyphs are shifted back by
3004/// where the row starts in it and down by the row. `oy` is the chunk's
3005/// first row; `head_x` where that row begins.
3006#[allow(clippy::too_many_arguments)]
3007fn emit_entry_rows(
3008    entry: &mut CachedText,
3009    ox: f32,
3010    oy: f32,
3011    nudge: Vec2,
3012    head_x: f32,
3013    rows: &[RowStart],
3014    line_h: f32,
3015    color: Color,
3016    clip: Clip,
3017    clip_id: ClipId,
3018    raster: &mut Raster,
3019    fs: &mut FontSystem,
3020    atlas: &mut GlyphAtlas,
3021    out: &mut Vec<Quad>,
3022    joins: &mut Vec<JoinBg>,
3023) {
3024    build_templates(entry, raster, fs, atlas);
3025    // What can show, in the glyphs' own space (ADR 0043).
3026    let vis = clip.visible();
3027    // A decoration rect spans glyphs of the unwrapped run; the row a
3028    // glyph is on is decided by its byte, and a rect by its x — row `r`
3029    // covers `rows[r].x..rows[r + 1].x` of the run — so a rect a row
3030    // break falls inside is cut there, one piece a row, each shifted as
3031    // the row's glyphs are (backlog C42: a rich chunk's spans).
3032    let mut row_pieces = |d: &DecoTemplate, out: &mut Vec<Quad>| {
3033        let (x0, x1) = (d.x, d.x + d.w);
3034        for r in 0..rows.len() {
3035            let ra = rows[r].x;
3036            let rb = rows.get(r + 1).map_or(f32::INFINITY, |n| n.x);
3037            let (a, b) = (x0.max(ra), x1.min(rb));
3038            if b <= a {
3039                continue;
3040            }
3041            let dx = if r == 0 { head_x } else { 0.0 } - ra;
3042            let x = ox + a + dx;
3043            let y = oy + d.y + r as f32 * line_h;
3044            if y >= vis.y + vis.h {
3045                break;
3046            }
3047            if y + d.h <= vis.y || x >= vis.x + vis.w || x + (b - a) <= vis.x {
3048                continue;
3049            }
3050            let quad = Quad {
3051                rect: if d.under {
3052                    on_pixels(x, y, b - a, d.h, nudge)
3053                } else {
3054                    Rect::new(x, y, b - a, d.h)
3055                },
3056                color: d.color.unwrap_or(color),
3057                border_color: Color::TRANSPARENT,
3058                radius: [0.0; 4],
3059                border_w: 0.0,
3060                blur: 0.0,
3061                kind: QuadKind::Solid,
3062                clip: clip_id,
3063                uv: [0; 4],
3064            };
3065            // A background or a solid line is its rect; a wave or dots
3066            // are pieces built around it, as in `emit_entry`. A rounded
3067            // background is noted for the join pass (backlog F101).
3068            if d.under && d.radius > 0.0 {
3069                joins.push(JoinBg {
3070                    quad: out.len() as u32,
3071                    radius: d.radius,
3072                    outer: clip_id,
3073                    own: None,
3074                });
3075            }
3076            if d.under || d.style == UnderlineStyle::Solid {
3077                out.push(quad);
3078            } else {
3079                crate::deco::push_line(
3080                    out,
3081                    d.style,
3082                    x,
3083                    y,
3084                    b - a,
3085                    d.h,
3086                    d.color.unwrap_or(color),
3087                    clip_id,
3088                );
3089            }
3090        }
3091    };
3092    for d in entry.deco.iter().filter(|d| d.under) {
3093        row_pieces(d, out);
3094    }
3095    let mut r = 0usize;
3096    for g in &entry.glyphs {
3097        while r + 1 < rows.len() && g.byte >= rows[r + 1].byte {
3098            r += 1;
3099        }
3100        let dx = if r == 0 { head_x } else { 0.0 } - rows[r].x;
3101        let x = ox + g.x + dx;
3102        let y = oy + g.y + r as f32 * line_h;
3103        // Rows only go down: past the clip's bottom nothing comes back.
3104        // Both edges are inclusive, as the x test's are: a glyph whose ink
3105        // ends exactly at the clip's top or starts exactly at its bottom
3106        // has no pixel inside it, and which glyph that is depends on the
3107        // face the machine resolved `Mono` to (the alpha.12 Windows round
3108        // saw two, after C32 moved the face).
3109        if y >= vis.y + vis.h {
3110            break;
3111        }
3112        if y + g.h <= vis.y || x >= vis.x + vis.w || x + g.w <= vis.x {
3113            continue;
3114        }
3115        out.push(Quad {
3116            rect: Rect::new(x, y, g.w, g.h),
3117            color: g.color.unwrap_or(color),
3118            border_color: Color::TRANSPARENT,
3119            radius: [0.0; 4],
3120            border_w: 0.0,
3121            blur: 0.0,
3122            kind: g.kind,
3123            clip: clip_id,
3124            uv: g.uv,
3125        });
3126    }
3127    for d in entry.deco.iter().filter(|d| !d.under) {
3128        row_pieces(d, out);
3129    }
3130}
3131
3132/// The rows a chunk's unwrapped run breaks into at width `w` when its
3133/// first row starts `head_x` in: greedy, at the break opportunities UAX
3134/// #14 gives (what cosmic-text's `WordOrGlyph` takes) or at every glyph
3135/// for `Glyph`, a piece wider than a row breaking by glyph, trailing
3136/// whitespace hanging past the edge as cosmic-text lets it — except under
3137/// `BreakSpaces`, where each whitespace character is a piece of its own
3138/// and takes its room like ink, so one that does not fit starts the next
3139/// row and none hangs (CSS's `break-spaces`, a break before the run too).
3140/// Returns the
3141/// row starts — the first is the chunk's own — and the x its last row
3142/// ends at. Positions are read left to right: a bidi run breaks by its
3143/// glyph order.
3144fn break_rows(
3145    buffer: &Buffer,
3146    text: &str,
3147    wrap: TextWrap,
3148    w: f32,
3149    head_x: f32,
3150) -> (Vec<RowStart>, f32) {
3151    let mut rows = vec![RowStart { byte: 0, x: 0.0 }];
3152    let Some(run) = buffer.layout_runs().next() else {
3153        return (rows, head_x);
3154    };
3155    let glyphs = run.glyphs;
3156    let blank = |g: &cosmic_text::LayoutGlyph| {
3157        text.get(g.start..g.end)
3158            .is_some_and(|s| s.chars().all(char::is_whitespace))
3159    };
3160    let spaces = wrap == TextWrap::BreakSpaces;
3161    let mut pieces: Vec<(usize, usize)> = Vec::new();
3162    match wrap {
3163        TextWrap::Word | TextWrap::BreakSpaces => {
3164            let mut at = 0usize;
3165            let mut piece = |from: usize, to: usize| {
3166                if !spaces {
3167                    pieces.push((from, to));
3168                    return;
3169                }
3170                // The trailing whitespace a break follows, a piece a
3171                // character: the break is before each of them as well.
3172                let ink = text[from..to].trim_end_matches(char::is_whitespace).len();
3173                if ink > 0 {
3174                    pieces.push((from, from + ink));
3175                }
3176                for (i, c) in text[from + ink..to].char_indices() {
3177                    let at = from + ink + i;
3178                    pieces.push((at, at + c.len_utf8()));
3179                }
3180            };
3181            for (i, _) in unicode_linebreak::linebreaks(text) {
3182                if i > at {
3183                    piece(at, i);
3184                    at = i;
3185                }
3186            }
3187            if at < text.len() {
3188                piece(at, text.len());
3189            }
3190        }
3191        TextWrap::Glyph | TextWrap::None => {
3192            pieces.extend(glyphs.iter().map(|g| (g.start, g.end)));
3193        }
3194    }
3195    let mut row_x0 = 0.0f32;
3196    let mut avail = w - head_x;
3197    let mut gi = 0usize;
3198    for (s, e) in pieces {
3199        let g0 = gi;
3200        while gi < glyphs.len() && glyphs[gi].start < e {
3201            gi += 1;
3202        }
3203        if g0 == gi {
3204            continue;
3205        }
3206        let piece = &glyphs[g0..gi];
3207        let x0 = piece[0].x;
3208        let ink_end = piece
3209            .iter()
3210            .rev()
3211            .find(|g| spaces || !blank(g))
3212            .map_or(x0, |g| g.x + g.w);
3213        // A piece at the row's start has nowhere to go — except the
3214        // chunk's first, whose row is the one the previous chunk left off
3215        // on `head_x` in: that row holds something, so the piece can open
3216        // the next (the alpha.22 regression pass; the chunk's first row
3217        // is then empty, which the rest reads by byte).
3218        let opens = x0 > row_x0 || (rows.len() == 1 && head_x > 0.0);
3219        if ink_end - row_x0 > avail && opens {
3220            rows.push(RowStart {
3221                byte: s as u32,
3222                x: x0,
3223            });
3224            row_x0 = x0;
3225            avail = w;
3226        }
3227        if ink_end - row_x0 > avail {
3228            // Wider than a row on its own: by glyph.
3229            for g in piece {
3230                if g.x + g.w - row_x0 > avail && g.x > row_x0 && (spaces || !blank(g)) {
3231                    rows.push(RowStart {
3232                        byte: g.start as u32,
3233                        x: g.x,
3234                    });
3235                    row_x0 = g.x;
3236                    avail = w;
3237                }
3238            }
3239        }
3240    }
3241    let end = if rows.len() == 1 {
3242        head_x + run.line_w
3243    } else {
3244        run.line_w - row_x0
3245    };
3246    (rows, end)
3247}
3248
3249/// Builds the entry's positioned templates if the wrap or the atlas moved
3250/// since they were: the steady state reuses them.
3251fn build_templates(
3252    entry: &mut CachedText,
3253    raster: &mut Raster,
3254    fs: &mut FontSystem,
3255    atlas: &mut GlyphAtlas,
3256) {
3257    {
3258        // Steady state: same wrap, same atlas — reuse positioned templates.
3259        let built_for = (entry.wrap.map(f32::to_bits), atlas.stamp);
3260        if entry.glyphs_built_for != Some(built_for) {
3261            entry.glyphs.clear();
3262            entry.deco.clear();
3263            let lines = line_cap(entry.max_lines);
3264            let decorated = entry.span_deco.iter().any(SpanDeco::any);
3265            for run in entry.buffer.layout_runs().take(lines) {
3266                if decorated {
3267                    build_decorations(&run, &entry.span_deco, fs, &mut entry.deco);
3268                }
3269                for glyph in run.glyphs.iter() {
3270                    let physical = glyph.physical((0.0, 0.0), 1.0);
3271                    let Some(slot) = raster_glyph(physical.cache_key, fs, raster, atlas) else {
3272                        continue;
3273                    };
3274                    entry.glyphs.push(GlyphTemplate {
3275                        x: physical.x as f32 + slot.left as f32,
3276                        y: run.line_y.round() + physical.y as f32 - slot.top as f32,
3277                        w: slot.w as f32,
3278                        h: slot.h as f32,
3279                        uv: [slot.x, slot.y, slot.w, slot.h],
3280                        kind: glyph_kind(&slot),
3281                        color: glyph
3282                            .color_opt
3283                            .map(|c| Color::rgba8(c.r(), c.g(), c.b(), c.a())),
3284                        byte: glyph.start as u32,
3285                    });
3286                }
3287            }
3288            // Rasterizing may have extended the page mid-build, which
3289            // keeps every slot where it was but moves the stamp: keep the
3290            // one we ended on.
3291            entry.glyphs_built_for = Some((entry.wrap.map(f32::to_bits), atlas.stamp));
3292        }
3293    }
3294}
3295
3296/// Emits one cache entry's glyphs and decorations at the physical origin
3297/// (`ox`, `oy`): the steady-state template walk, shared by a text node and
3298/// by each chunk of a long line.
3299#[allow(clippy::too_many_arguments)]
3300fn emit_entry(
3301    entry: &mut CachedText,
3302    ox: f32,
3303    oy: f32,
3304    nudge: Vec2,
3305    color: Color,
3306    clip: Clip,
3307    clip_id: ClipId,
3308    raster: &mut Raster,
3309    fs: &mut FontSystem,
3310    atlas: &mut GlyphAtlas,
3311    out: &mut Vec<Quad>,
3312    joins: &mut Vec<JoinBg>,
3313) {
3314    build_templates(entry, raster, fs, atlas);
3315    // What can show, in the glyphs' own space (ADR 0043).
3316    let vis = clip.visible();
3317    {
3318        let inside = |x: f32, y: f32, w: f32, h: f32| {
3319            oy + y + h >= vis.y
3320                && oy + y <= vis.y + vis.h
3321                && ox + x < vis.x + vis.w
3322                && ox + x + w > vis.x
3323        };
3324        let deco_quad = |d: &DecoTemplate| Quad {
3325            rect: Rect::new(ox + d.x, oy + d.y, d.w, d.h),
3326            color: d.color.unwrap_or(color),
3327            border_color: Color::TRANSPARENT,
3328            radius: [0.0; 4],
3329            border_w: 0.0,
3330            blur: 0.0,
3331            kind: QuadKind::Solid,
3332            clip: clip_id,
3333            uv: [0; 4],
3334        };
3335        // A span's background goes under its glyphs, on whole pixels;
3336        // its lines go over. A rounded one is noted for the join pass,
3337        // which gives it its corners once every text is painted (backlog
3338        // F101).
3339        for d in entry
3340            .deco
3341            .iter()
3342            .filter(|d| d.under && inside(d.x, d.y, d.w, d.h))
3343        {
3344            if d.radius > 0.0 {
3345                joins.push(JoinBg {
3346                    quad: out.len() as u32,
3347                    radius: d.radius,
3348                    outer: clip_id,
3349                    own: None,
3350                });
3351            }
3352            out.push(Quad {
3353                rect: on_pixels(ox + d.x, oy + d.y, d.w, d.h, nudge),
3354                ..deco_quad(d)
3355            });
3356        }
3357
3358        // Glyph templates are in layout order; skip everything above the clip
3359        // and stop at the first glyph past it (rows below never come back).
3360        // Horizontally clipped glyphs (an unwrapped line) are dropped too.
3361        out.extend(
3362            entry
3363                .glyphs
3364                .iter()
3365                .filter(|g| {
3366                    oy + g.y + g.h >= vis.y && ox + g.x < vis.x + vis.w && ox + g.x + g.w > vis.x
3367                })
3368                .take_while(|g| oy + g.y <= vis.y + vis.h)
3369                .map(|g| Quad {
3370                    rect: Rect::new(ox + g.x, oy + g.y, g.w, g.h),
3371                    color: g.color.unwrap_or(color),
3372                    border_color: Color::TRANSPARENT,
3373                    radius: [0.0; 4],
3374                    border_w: 0.0,
3375                    blur: 0.0,
3376                    kind: g.kind,
3377                    clip: clip_id,
3378                    uv: g.uv,
3379                }),
3380        );
3381        for d in entry
3382            .deco
3383            .iter()
3384            .filter(|d| !d.under && inside(d.x, d.y, d.w, d.h))
3385        {
3386            // A solid line is its rect; a wave or dots are pieces built
3387            // around it (`crate::deco`, backlog K4).
3388            match d.style {
3389                UnderlineStyle::Solid => out.push(deco_quad(d)),
3390                style => crate::deco::push_line(
3391                    out,
3392                    style,
3393                    ox + d.x,
3394                    oy + d.y,
3395                    d.w,
3396                    d.h,
3397                    d.color.unwrap_or(color),
3398                    clip_id,
3399                ),
3400            }
3401        }
3402    }
3403}
3404
3405/// Whether a text of `len` bytes in `style` is shaped in chunks, by what
3406/// costs nothing to ask: past `LONG_LINE_BYTES`, with no `max_lines` or
3407/// `ellipsis`, since a line budget is a property of the whole. The
3408/// other half is [`has_line_break`] — and [`has_rtl`] for a text long
3409/// only by its `break-spaces` — asked only when the cache has not
3410/// seen the text — a wrapped one breaks its chunks into rows
3411/// ([`LongLine::starts`]), whatever its `wrap`. Plain or rich alike.
3412fn could_be_long(len: usize, style: &TextStyle) -> bool {
3413    (len >= LONG_LINE_BYTES || len > 0 && style.wrap == TextWrap::BreakSpaces)
3414        && style.max_lines == 0
3415        && !style.ellipsis
3416}
3417
3418/// Whether the content breaks lines of its own — a byte scan, since the
3419/// `str` pattern search is per character.
3420fn has_line_break(content: &str) -> bool {
3421    content.bytes().any(|b| b == b'\n' || b == b'\r')
3422}
3423
3424/// Whether the content holds a right-to-left character — a strong one of
3425/// the right-to-left scripts' blocks, or a mark or embedding asking for
3426/// that direction. A text long only by its `break-spaces` and holding one
3427/// is shaped as the run it would otherwise be, wrapping as `word` does
3428/// (as one with line breaks of its own does): the long line breaks rows
3429/// over glyph positions left to right, which a right-to-left run's are
3430/// not, and a Hebrew paragraph that had to wrap would draw one glyph.
3431fn has_rtl(content: &str) -> bool {
3432    !content.is_ascii()
3433        && content.chars().any(|c| {
3434            matches!(c as u32,
3435                0x0590..=0x08FF
3436                | 0x200F | 0x202B | 0x202E | 0x2067
3437                | 0xFB1D..=0xFDFF
3438                | 0xFE70..=0xFEFF
3439                | 0x10800..=0x10FFF
3440                | 0x1E800..=0x1EFFF)
3441        })
3442}
3443
3444/// The decoration rects for one laid-out line: consecutive glyphs of one
3445/// span (its index is their metadata) become one background rect, one
3446/// underline and one strikethrough, as the span asked. Where the lines go
3447/// is the face's own recommendation — swash's `underline_offset`,
3448/// `strikeout_offset` and `stroke_size`, scaled to the glyph's size — read
3449/// from the run's first glyph, so a fallback glyph in the middle of a
3450/// span does not move the line. Neighbouring spans of one background are
3451/// one rect: an editor's selection is its syntax runs, a span each, and
3452/// a rect each drew a seam between every two of them wherever the join
3453/// fell inside a pixel.
3454fn build_decorations(
3455    run: &cosmic_text::LayoutRun<'_>,
3456    spans: &[SpanDeco],
3457    fs: &mut FontSystem,
3458    out: &mut Vec<DecoTemplate>,
3459) {
3460    // The background rect the last group drew, which the next one of the
3461    // same colour starting where it ends extends.
3462    let mut last_bg: Option<usize> = None;
3463    let mut i = 0;
3464    while i < run.glyphs.len() {
3465        let span_no = run.glyphs[i].metadata;
3466        let mut j = i + 1;
3467        while j < run.glyphs.len() && run.glyphs[j].metadata == span_no {
3468            j += 1;
3469        }
3470        let deco = spans.get(span_no).copied().unwrap_or_default();
3471        if deco.any() {
3472            let group = &run.glyphs[i..j];
3473            let x0 = group.iter().map(|g| g.x).fold(f32::INFINITY, f32::min);
3474            let x1 = group
3475                .iter()
3476                .map(|g| g.x + g.w)
3477                .fold(f32::NEG_INFINITY, f32::max);
3478            let w = (x1 - x0).max(0.0);
3479            match (deco.bg, last_bg.map(|k| &mut out[k])) {
3480                (Some(bg), Some(prev))
3481                    if prev.color == Some(bg)
3482                        && prev.radius == deco.bg_radius
3483                        && (prev.x + prev.w - x0).abs() < 0.01 =>
3484                {
3485                    prev.w = (x1 - prev.x).max(prev.w);
3486                }
3487                (Some(bg), _) => {
3488                    // A span shorter than its line (`Span::size`, a line
3489                    // a larger span made taller) has a background its own
3490                    // height, around its glyphs, not the line's.
3491                    let (y, h) = match group[0].line_height_opt {
3492                        Some(lh) if lh < run.line_height - 0.01 => {
3493                            let g = &group[0];
3494                            let (asc, desc) = fs
3495                                .get_font(g.font_id, g.font_weight)
3496                                .map(|font| {
3497                                    let m = font.as_swash().metrics(&[]).scale(g.font_size);
3498                                    (m.ascent, m.descent)
3499                                })
3500                                .unwrap_or((0.8 * g.font_size, 0.2 * g.font_size));
3501                            let mid = run.line_y - (asc - desc) / 2.0;
3502                            (mid - lh / 2.0, lh)
3503                        }
3504                        _ => (run.line_top, run.line_height),
3505                    };
3506                    last_bg = Some(out.len());
3507                    out.push(DecoTemplate {
3508                        x: x0,
3509                        y,
3510                        w,
3511                        h,
3512                        color: Some(bg),
3513                        under: true,
3514                        style: UnderlineStyle::Solid,
3515                        radius: deco.bg_radius,
3516                    });
3517                }
3518                (None, _) => last_bg = None,
3519            }
3520            if deco.underline || deco.strikethrough {
3521                let first = &group[0];
3522                let metrics = fs
3523                    .get_font(first.font_id, first.font_weight)
3524                    .map(|font| font.as_swash().metrics(&[]).scale(first.font_size));
3525                // Without the face (it was unloaded between frames), a
3526                // line under the descent and one through the x-height.
3527                let (under_off, strike_off, stroke) = match metrics {
3528                    Some(m) => (m.underline_offset, m.strikeout_offset, m.stroke_size),
3529                    None => (
3530                        -0.1 * first.font_size,
3531                        0.3 * first.font_size,
3532                        0.06 * first.font_size,
3533                    ),
3534                };
3535                let stroke = stroke.max(1.0).round();
3536                let baseline = run.line_y.round();
3537                if deco.underline {
3538                    out.push(DecoTemplate {
3539                        x: x0,
3540                        y: (baseline - under_off).round(),
3541                        w,
3542                        h: stroke,
3543                        color: deco.underline_color.or_else(|| {
3544                            first
3545                                .color_opt
3546                                .map(|c| Color::rgba8(c.r(), c.g(), c.b(), c.a()))
3547                        }),
3548                        under: false,
3549                        style: deco.underline_style,
3550                        radius: 0.0,
3551                    });
3552                }
3553                if deco.strikethrough {
3554                    out.push(DecoTemplate {
3555                        x: x0,
3556                        y: (baseline - strike_off).round(),
3557                        w,
3558                        h: stroke,
3559                        color: first
3560                            .color_opt
3561                            .map(|c| Color::rgba8(c.r(), c.g(), c.b(), c.a())),
3562                        under: false,
3563                        style: UnderlineStyle::Solid,
3564                        radius: 0.0,
3565                    });
3566                }
3567            }
3568        } else {
3569            last_bg = None;
3570        }
3571        i = j;
3572    }
3573}
3574
3575impl TextSystem {
3576    /// Records where a live text node was drawn, for the queries below,
3577    /// with the keys above it so a query by a `line` row or a wrapper
3578    /// finds the runs inside. Called beside [`Self::emit`] for the frame's
3579    /// own nodes and not for ghosts, which take no input.
3580    pub(crate) fn place(
3581        &mut self,
3582        key: Key,
3583        ancestry: &Ancestry,
3584        id: TextId,
3585        origin: Vec2,
3586        scope: Option<Key>,
3587        drawn: bool,
3588    ) {
3589        let cache_key = self.frame[id.0 as usize].cache_key;
3590        self.places.push(TextPlace {
3591            key,
3592            ancestors: ancestry.keys,
3593            depth: ancestry.depth.min(PLACE_ANCESTORS) as u8,
3594            none_at: ancestry.none_at.map_or(u8::MAX, |n| n as u8),
3595            cache_key,
3596            origin,
3597            scope,
3598            drawn,
3599        });
3600    }
3601
3602    /// The runs `key` names, in tree order, each with its entry and the
3603    /// byte offset its content starts at in the concatenation — from the
3604    /// frame that finished (`prev`) or the one being emitted. A long line
3605    /// is a run among them: every `break-spaces` text is one, and a `line`
3606    /// row of several would otherwise answer with the last one's bytes alone.
3607    fn runs_of(&self, key: Key, prev: bool) -> Vec<(&TextPlace, &Entry, usize)> {
3608        let list = if prev {
3609            self.places.prev()
3610        } else {
3611            &self.places
3612        };
3613        let mut base = 0usize;
3614        let mut out = Vec::new();
3615        for place in list.iter().filter(|p| p.drawn && p.answers_to(key)) {
3616            let Some(entry) = self.entries.get(&place.cache_key) else {
3617                continue;
3618            };
3619            out.push((place, entry, base));
3620            base += entry.content().len();
3621        }
3622        out
3623    }
3624
3625    /// How many bytes of content this frame's text `id` holds — what a
3626    /// selection range over it is measured against.
3627    pub(crate) fn content_len(&self, id: TextId) -> usize {
3628        let key = self.frame[id.0 as usize].cache_key;
3629        self.entries.get(&key).map_or(0, |e| e.content().len())
3630    }
3631
3632    /// Every run inside the selection scope `scope`, in emission order —
3633    /// which is tree order, which is reading order — each with the byte
3634    /// offset its content starts at in the scope's concatenation.
3635    ///
3636    /// Undrawn runs are included: a scoped run the frame culled recorded
3637    /// a place precisely so a selection can reach past the viewport, and
3638    /// leaving it out here would renumber everything after it the moment
3639    /// it scrolled away.
3640    pub(crate) fn scope_runs(&self, scope: Key, prev: bool) -> Vec<ScopeRun<'_>> {
3641        let list = if prev {
3642            self.places.prev()
3643        } else {
3644            &self.places
3645        };
3646        let mut base = 0usize;
3647        let mut out = Vec::new();
3648        for place in list.iter().filter(|p| p.scope == Some(scope)) {
3649            let Some(text) = self.entries.get(&place.cache_key) else {
3650                continue;
3651            };
3652            let len = text.content().len();
3653            out.push(ScopeRun { place, text, base });
3654            base += len;
3655        }
3656        out
3657    }
3658
3659    /// Where `point` (logical viewport px) lands in a selection scope, as
3660    /// the address a selection endpoint is made of: the node whose run it
3661    /// landed in and the byte offset inside *that node's* text. Nearest
3662    /// drawn run wins, vertically first, exactly as [`Self::hit_at`]
3663    /// resolves a point inside one node — an undrawn run is not under any
3664    /// pointer, so it is not a candidate.
3665    pub(crate) fn scope_hit(&self, scope: Key, point: Vec2, prev: bool) -> Option<(Key, usize)> {
3666        let runs = self.scope_runs(scope, prev);
3667        let px = point.x * self.scale;
3668        let py = point.y * self.scale;
3669        let gap = |r: &Rect| {
3670            let dy = (r.y - py).max(py - (r.y + r.h)).max(0.0);
3671            let dx = (r.x - px).max(px - (r.x + r.w)).max(0.0);
3672            (dy, dx)
3673        };
3674        let run = runs.iter().filter(|r| r.place.drawn).min_by(|a, b| {
3675            let ga = gap(&self.scope_box(a));
3676            let gb = gap(&self.scope_box(b));
3677            ga.partial_cmp(&gb).unwrap_or(std::cmp::Ordering::Equal)
3678        })?;
3679        let byte = self.hit_in_run(run, point)?;
3680        Some((run.place.key, byte))
3681    }
3682
3683    /// A scoped run's laid-out box, physical px in viewport space.
3684    fn scope_box(&self, run: &ScopeRun<'_>) -> Rect {
3685        self.entry_box(run.place, run.text)
3686    }
3687
3688    /// A run's laid-out box, physical px in viewport space, whichever way
3689    /// it was shaped. A wrapped long line is as wide as its rows were
3690    /// broken to — its unwrapped width would claim the text beside it in a
3691    /// selection scope.
3692    fn entry_box(&self, place: &TextPlace, entry: &Entry) -> Rect {
3693        match entry {
3694            Entry::Run(e) => self.physical_box(place, e),
3695            Entry::Long(l) => {
3696                let (ox, oy) = self.physical_origin(place);
3697                let w = l.wrap_w.unwrap_or_else(|| l.width());
3698                Rect::new(ox, oy, w, l.line_h * l.rows() as f32)
3699            }
3700        }
3701    }
3702
3703    /// The tops of a run's visual rows, physical px in viewport space.
3704    fn row_tops(&self, place: &TextPlace, entry: &Entry) -> Vec<f32> {
3705        let (_, oy) = self.physical_origin(place);
3706        match entry {
3707            Entry::Run(e) => e.buffer.layout_runs().map(|r| oy + r.line_top).collect(),
3708            Entry::Long(l) => (0..l.rows()).map(|r| oy + r as f32 * l.line_h).collect(),
3709        }
3710    }
3711
3712    /// Where `point` lands inside one scoped run, as a byte offset into
3713    /// that run's own content.
3714    fn hit_in_run(&self, run: &ScopeRun<'_>, point: Vec2) -> Option<usize> {
3715        match run.text {
3716            Entry::Long(l) => Some(self.long_hit(run.place, l, point)?.byte),
3717            Entry::Run(e) => {
3718                let (ox, oy) = self.physical_origin(run.place);
3719                let cursor = e
3720                    .buffer
3721                    .hit(point.x * self.scale - ox, point.y * self.scale - oy)?;
3722                Some(e.byte_of(cursor))
3723            }
3724        }
3725    }
3726
3727    /// The word around `byte` in one node's own text, as a byte range in
3728    /// that node — what a double click (and a force click) selects.
3729    /// Words are runs of alphanumerics and underscores; anything else is
3730    /// selected as the run of like characters around it, so a double
3731    /// click in whitespace takes the whitespace and one in `->` takes
3732    /// both arrows. `None` when the node holds no text at all.
3733    pub(crate) fn word_at(
3734        &self,
3735        scope: Key,
3736        node: Key,
3737        byte: usize,
3738        prev: bool,
3739    ) -> Option<(usize, usize)> {
3740        let run = self
3741            .scope_runs(scope, prev)
3742            .into_iter()
3743            .find(|r| r.place.key == node)?;
3744        let content = run.text.content();
3745        Some(word_range(content, byte))
3746    }
3747
3748    /// A selection endpoint's address — the node and a byte inside its
3749    /// text — as an offset in the scope's concatenation, which is what
3750    /// orders two endpoints against each other. `None` when that node is
3751    /// not (or no longer) in the scope: an address the frame cannot
3752    /// resolve resolves to nothing rather than to whatever took its place.
3753    pub(crate) fn scope_offset(
3754        &self,
3755        scope: Key,
3756        node: Key,
3757        byte: usize,
3758        prev: bool,
3759    ) -> Option<usize> {
3760        let run = self
3761            .scope_runs(scope, prev)
3762            .into_iter()
3763            .find(|r| r.place.key == node)?;
3764        Some(run.base + byte.min(run.text.content().len()))
3765    }
3766
3767    /// The selection `from..to` as HTML, carrying the styling that is
3768    /// *the text's* rather than the theme's: bold, italic, and a span's
3769    /// own colour where one was declared.
3770    ///
3771    /// What it deliberately leaves behind is the node's colour. A
3772    /// paragraph drawn light grey on a dark card is grey because of the
3773    /// app's theme, not because the words are grey; pasting it into a
3774    /// white document as grey-on-white is how "copy with formatting"
3775    /// earns its reputation. A `rich_text` span that declared a colour is
3776    /// the other case — that colour is authored, the way a highlighted
3777    /// keyword is — and it travels.
3778    ///
3779    /// Runs are joined the way [`Self::scope_slice`] joins them: a `<br>`
3780    /// where the plain text gets a newline.
3781    pub(crate) fn scope_html(&self, scope: Key, from: usize, to: usize, prev: bool) -> String {
3782        let (from, to) = (from.min(to), from.max(to));
3783        let mut out = String::new();
3784        let mut prev_run: Option<&ScopeRun<'_>> = None;
3785        for run in &self.scope_runs(scope, prev) {
3786            let (start, end) = run.span();
3787            if end <= from || start >= to {
3788                continue;
3789            }
3790            if let Some(p) = prev_run
3791                && (p.place.origin.y - run.place.origin.y).abs() > f32::EPSILON
3792            {
3793                out.push_str("<br>");
3794            }
3795            let content = run.text.content();
3796            let lo = floor_boundary(content, from.saturating_sub(start));
3797            let hi = floor_boundary(content, (to - start).min(content.len()));
3798            match run.text {
3799                Entry::Long(line) => self.long_html(line, lo, hi, &mut out),
3800                Entry::Run(entry) => html_of_run(entry, lo, hi, &mut out),
3801            }
3802            prev_run = Some(run);
3803        }
3804        out
3805    }
3806
3807    /// `html_of_run` for `lo..hi` of a long line: each chunk the range
3808    /// touches through its own shaped run, so a rich line's spans copy as
3809    /// a short rich text's do — every `break-spaces` text is a long line. A chunk that never
3810    /// showed, or whose run the cache dropped, is plain escaped text: its
3811    /// spans are the line's, but shaping it is not a copy's to do.
3812    fn long_html(&self, line: &LongLine, lo: usize, hi: usize, out: &mut String) {
3813        for c in &line.chunks {
3814            let (a, b) = (lo.max(c.start), hi.min(c.end));
3815            if a >= b {
3816                continue;
3817            }
3818            match c.width.and_then(|_| self.run(c.key)) {
3819                Some(e) => html_of_run(e, a - c.start, b - c.start, out),
3820                None => escape_into(&line.content[a..b], out),
3821            }
3822        }
3823    }
3824
3825    /// Where a platform panel about the selection `from..to` should point:
3826    /// the **baseline origin of its first line**, logical viewport px.
3827    ///
3828    /// Not the box's corner, and not the union's bottom. macOS's
3829    /// `showDefinitionForAttributedString:atPoint:` takes the point the
3830    /// string's own baseline starts at and draws the term back over the
3831    /// text there — so a box's bottom puts the term a line low, and a
3832    /// multi-run selection's union puts it at the bottom of the last line
3833    /// while the panel shows the first.
3834    pub(crate) fn scope_selection_anchor(
3835        &self,
3836        scope: Key,
3837        from: usize,
3838        to: usize,
3839        prev: bool,
3840    ) -> Option<Vec2> {
3841        let (from, to) = (from.min(to), from.max(to));
3842        for run in self.scope_runs(scope, prev) {
3843            let (start, end) = run.span();
3844            if !run.place.drawn || end <= from || start >= to {
3845                continue;
3846            }
3847            let content = run.text.content();
3848            let lo = floor_boundary(content, from.saturating_sub(start));
3849            let hi = floor_boundary(content, (to - start).min(content.len()));
3850            let (ox, oy) = self.physical_origin(run.place);
3851            match run.text {
3852                Entry::Run(e) => {
3853                    if let Some((x, base)) = Self::run_anchor(e, lo, hi) {
3854                        return Some(Vec2::new((ox + x) / self.scale, (oy + base) / self.scale));
3855                    }
3856                }
3857                Entry::Long(l) => {
3858                    if let Some((x, y)) = self.long_caret_local(l, lo) {
3859                        return Some(Vec2::new(
3860                            (ox + x) / self.scale,
3861                            (oy + y + self.long_baseline(l)) / self.scale,
3862                        ));
3863                    }
3864                }
3865            }
3866        }
3867        None
3868    }
3869
3870    /// The x and baseline of the first row of `lo..hi` inside one run,
3871    /// physical px from the run's origin.
3872    fn run_anchor(entry: &CachedText, lo: usize, hi: usize) -> Option<(f32, f32)> {
3873        let (a, b) = (entry.cursor_of(lo), entry.cursor_of(hi));
3874        for run in entry.buffer.layout_runs() {
3875            if run.line_i < a.line || run.line_i > b.line {
3876                continue;
3877            }
3878            if let Some((x, _)) = run.highlight(a, b).next() {
3879                return Some((x, run.line_y));
3880            }
3881        }
3882        None
3883    }
3884
3885    /// The box the selection `from..to` occupies in `scope`, logical
3886    /// viewport px: the union of the drawn runs it touches, clipped to
3887    /// the part of each run that is actually selected in x only where the
3888    /// run holds both ends. Rough on purpose — it anchors a platform
3889    /// panel, and a panel wants the block of text, not its outline.
3890    pub(crate) fn scope_selection_rect(
3891        &self,
3892        scope: Key,
3893        from: usize,
3894        to: usize,
3895        prev: bool,
3896    ) -> Option<Rect> {
3897        let (from, to) = (from.min(to), from.max(to));
3898        let mut out: Option<Rect> = None;
3899        for run in self.scope_runs(scope, prev) {
3900            let (start, end) = run.span();
3901            if !run.place.drawn || end <= from || start >= to {
3902                continue;
3903            }
3904            let content = run.text.content();
3905            let lo = floor_boundary(content, from.saturating_sub(start));
3906            let hi = floor_boundary(content, (to - start).min(content.len()));
3907            // The rects the *painter* would draw, not the run's box: a
3908            // paragraph that wraps is one run four rows tall, and its box
3909            // is four rows tall with it. Anchoring a panel to that puts it
3910            // under the whole paragraph instead of under the word, which
3911            // is what a reader sees as the popover pointing at nothing.
3912            let (ox, oy) = self.physical_origin(run.place);
3913            let rects = match run.text {
3914                Entry::Long(l) => self.long_highlight(l, lo, hi),
3915                Entry::Run(e) => Self::run_highlight(e, lo, hi),
3916            };
3917            for r in rects {
3918                let r = Rect::new(
3919                    (ox + r.x) / self.scale,
3920                    (oy + r.y) / self.scale,
3921                    r.w / self.scale,
3922                    r.h / self.scale,
3923                );
3924                out = Some(match out {
3925                    None => r,
3926                    Some(o) => o.union(&r),
3927                });
3928            }
3929        }
3930        out
3931    }
3932
3933    /// The scope's text between two offsets in its concatenation, with a
3934    /// newline between two runs that were laid out on different lines and
3935    /// nothing between two that share one. The exact length is known before a byte
3936    /// is copied, so this reserves once and grows never.
3937    pub(crate) fn scope_slice(&self, scope: Key, from: usize, to: usize, prev: bool) -> String {
3938        let (from, to) = (from.min(to), from.max(to));
3939        let runs = self.scope_runs(scope, prev);
3940        let mut out = String::new();
3941        let mut reserved = false;
3942        let mut prev_run: Option<&ScopeRun<'_>> = None;
3943        for run in &runs {
3944            let (start, end) = run.span();
3945            if end <= from || start >= to {
3946                continue;
3947            }
3948            if !reserved {
3949                out.reserve(to - from + runs.len());
3950                reserved = true;
3951            }
3952            if let Some(p) = prev_run
3953                && (p.place.origin.y - run.place.origin.y).abs() > f32::EPSILON
3954            {
3955                out.push('\n');
3956            }
3957            let content = run.text.content();
3958            let lo = from.saturating_sub(start).min(content.len());
3959            let hi = (to - start).min(content.len());
3960            out.push_str(&content[floor_boundary(content, lo)..floor_boundary(content, hi)]);
3961            prev_run = Some(run);
3962        }
3963        out
3964    }
3965
3966    /// `hit_at` for a long line: the chunk under the point answers through
3967    /// its shaped entry, an unshaped one (never on screen) by the mean
3968    /// advance.
3969    fn long_hit(&self, place: &TextPlace, line: &LongLine, point: Vec2) -> Option<TextHit> {
3970        let (ox, oy) = self.physical_origin(place);
3971        let px = point.x * self.scale - ox;
3972        let py = point.y * self.scale - oy;
3973        if line.chunks.is_empty() {
3974            return Some(TextHit { byte: 0, line: 0 });
3975        }
3976        if let Some(w) = line.wrap_w {
3977            return self.long_hit_wrapped(line, w, px, py);
3978        }
3979        if px >= line.width() {
3980            return Some(TextHit {
3981                byte: line.content.len(),
3982                line: 0,
3983            });
3984        }
3985        let i = line.chunk_at(px.max(0.0));
3986        let c = &line.chunks[i];
3987        let local = px - line.prefix[i];
3988        let byte = match self.run(c.key) {
3989            Some(_) if let Some(b) = line.placed_tab_hit(i, local) => b,
3990            Some(e) if c.width.is_some() => {
3991                let cursor = e.buffer.hit(local, py.clamp(0.0, line.line_h - 0.01))?;
3992                c.start + cursor.index.min(c.end - c.start)
3993            }
3994            _ => {
3995                let est = (local / line.avg.max(f32::EPSILON)).round() as usize;
3996                let mut b = (c.start + est).min(c.end);
3997                while !line.content.is_char_boundary(b) {
3998                    b -= 1;
3999                }
4000                b
4001            }
4002        };
4003        Some(TextHit { byte, line: 0 })
4004    }
4005
4006    /// `long_hit` while the line is wrapped: the row under the point, the
4007    /// chunk on that row the point is over, and the chunk's unwrapped run
4008    /// asked at the x the row was shifted from.
4009    fn long_hit_wrapped(&self, line: &LongLine, w: f32, px: f32, py: f32) -> Option<TextHit> {
4010        let row = ((py / line.line_h).floor().max(0.0) as u32).min(line.rows() - 1);
4011        let Some((a, b)) = line.chunks_on_rows(row, row) else {
4012            return Some(TextHit {
4013                byte: line.content.len(),
4014                line: row,
4015            });
4016        };
4017        // The first chunk whose span on this row reaches past the point,
4018        // else the last one on it.
4019        let i = (a..=b)
4020            .find(|&j| {
4021                let (r1, end_x) = line.starts[j + 1];
4022                px < if r1 == row { end_x } else { w }
4023            })
4024            .unwrap_or(b);
4025        let c = &line.chunks[i];
4026        let (row0, head_x) = line.starts[i];
4027        let r = (row - row0) as usize;
4028        let byte = match self.run(c.key) {
4029            Some(e) if r < c.rows.len() => {
4030                let rs = c.rows[r];
4031                let local_x = px - if r == 0 { head_x } else { 0.0 } + rs.x;
4032                let lo = rs.byte as usize;
4033                let hi = c
4034                    .rows
4035                    .get(r + 1)
4036                    .map_or(c.end - c.start, |n| n.byte as usize);
4037                // A tab the line places, when it is on this row.
4038                let tab_here = (lo..hi).contains(&(c.end - c.start - 1));
4039                match line.placed_tab_hit(i, local_x) {
4040                    Some(b) if tab_here => b,
4041                    _ => {
4042                        let cursor = e.buffer.hit(local_x, line.line_h / 2.0)?;
4043                        c.start + cursor.index.clamp(lo, hi)
4044                    }
4045                }
4046            }
4047            _ => {
4048                // The inverse of `long_caret`'s estimate: rows back into
4049                // one linear run from the chunk's start.
4050                let linear = r as f32 * w + px - head_x;
4051                let est = (linear / line.avg.max(f32::EPSILON)).round() as usize;
4052                let mut b = (c.start + est).min(c.end);
4053                while !line.content.is_char_boundary(b) {
4054                    b -= 1;
4055                }
4056                b
4057            }
4058        };
4059        // The byte a row breaks at is the next row's first, and its caret
4060        // is drawn there: a point past this row's end answers the byte
4061        // before the row's last character, which is on this row, as a
4062        // `word` run's hanging space does (the alpha.22 regression pass).
4063        let next_row = self
4064            .long_caret_local(line, byte)
4065            .is_some_and(|(_, y)| y > (row as f32 + 0.5) * line.line_h);
4066        let byte = if next_row && byte > 0 {
4067            floor_boundary(&line.content, byte - 1)
4068        } else {
4069            byte
4070        };
4071        Some(TextHit { byte, line: row })
4072    }
4073
4074    /// `caret_at` for a long line, exact in a shaped chunk and by the mean
4075    /// advance in one that never showed.
4076    fn long_caret(&self, place: &TextPlace, line: &LongLine, byte: usize) -> Option<Rect> {
4077        let (ox, oy) = self.physical_origin(place);
4078        let scale = self.scale;
4079        let (x, y) = self.long_caret_local(line, byte)?;
4080        Some(Rect::new(
4081            (ox + x) / scale,
4082            (oy + y) / scale,
4083            0.0,
4084            line.line_h / scale,
4085        ))
4086    }
4087
4088    /// A long line's first baseline, physical px below its top: its first
4089    /// chunk's, shaped when the line was built, rounded as its glyphs are
4090    /// drawn at it — a fifth of the row above the row's foot only while
4091    /// that chunk is not shaped. On that estimate alone a `break-spaces`
4092    /// text in a baseline row would sit a pixel off a `word` one.
4093    fn long_baseline(&self, line: &LongLine) -> f32 {
4094        line.chunks
4095            .first()
4096            .and_then(|c| self.run(c.key))
4097            .and_then(|e| e.buffer.layout_runs().next())
4098            .map_or(line.line_h * 0.8, |r| r.line_y.round())
4099    }
4100
4101    /// The caret for `byte`, in physical px from the long line's own
4102    /// origin: its x on its row, and that row's top. What `long_caret`
4103    /// places in the viewport and what a selection highlight measures
4104    /// between.
4105    fn long_caret_local(&self, line: &LongLine, byte: usize) -> Option<(f32, f32)> {
4106        let byte = byte.min(line.content.len());
4107        if let Some(w) = line.wrap_w
4108            && !line.chunks.is_empty()
4109        {
4110            let i = line.chunk_of_byte(byte);
4111            let c = &line.chunks[i];
4112            let local = byte - c.start;
4113            let (row0, head_x) = line.starts[i];
4114            let (r, x) = match self.run(c.key) {
4115                Some(e) if !c.rows.is_empty() => {
4116                    let r = c.rows.partition_point(|rs| rs.byte as usize <= local) - 1;
4117                    let run = e.buffer.layout_runs().next()?;
4118                    let cx = caret_x(&run, local.min(c.end - c.start)) + line.end_shift(i, local);
4119                    (r, cx - c.rows[r].x + if r == 0 { head_x } else { 0.0 })
4120                }
4121                _ => {
4122                    let linear = head_x + local as f32 * line.avg;
4123                    let r = (linear / w).floor();
4124                    (r as usize, linear - r * w)
4125                }
4126            };
4127            let y = (row0 as usize + r) as f32 * line.line_h;
4128            return Some((x, y));
4129        }
4130        let x = if line.chunks.is_empty() {
4131            0.0
4132        } else {
4133            let i = line.chunk_of_byte(byte);
4134            let c = &line.chunks[i];
4135            let local = byte - c.start;
4136            match self.run(c.key) {
4137                Some(e) if c.width.is_some() => {
4138                    let run = e.buffer.layout_runs().next()?;
4139                    let x = caret_x(&run, local.min(c.end - c.start));
4140                    line.prefix[i] + x + line.end_shift(i, local)
4141                }
4142                _ => line.prefix[i] + local as f32 * line.avg,
4143            }
4144        };
4145        Some((x, 0.0))
4146    }
4147
4148    /// Selection rects for the byte range `from..to` of a long line, in
4149    /// physical px from the line's origin. One rect per row it covers:
4150    /// the first from the start caret to the row's end, whole rows
4151    /// between, and the last from the row's start to the end caret — the
4152    /// shape any selection over wrapped text has.
4153    fn long_highlight(&self, line: &LongLine, from: usize, to: usize) -> Vec<Rect> {
4154        let Some((x0, y0)) = self.long_caret_local(line, from) else {
4155            return Vec::new();
4156        };
4157        let Some((x1, y1)) = self.long_caret_local(line, to) else {
4158            return Vec::new();
4159        };
4160        let h = line.line_h;
4161        if (y1 - y0).abs() < f32::EPSILON {
4162            return vec![Rect::new(x0, y0, (x1 - x0).max(0.0), h)];
4163        }
4164        // Several rows: only a wrapped line has any, so it has a width.
4165        let w = line.wrap_w.unwrap_or_else(|| line.width());
4166        let mut out = vec![Rect::new(x0, y0, (w - x0).max(0.0), h)];
4167        let mut y = y0 + h;
4168        while y < y1 - h / 2.0 {
4169            out.push(Rect::new(0.0, y, w, h));
4170            y += h;
4171        }
4172        out.push(Rect::new(0.0, y1, x1.max(0.0), h));
4173        out
4174    }
4175
4176    /// Selection rects for the byte range `from..to` of an ordinary
4177    /// shaped run, in physical px from the run's origin — cosmic-text's
4178    /// own `highlight`, which is what the editor paints with
4179    /// (`crates/kui-core/src/edit.rs`), so a selection over a label and
4180    /// one over a field are the same shape.
4181    fn run_highlight(entry: &CachedText, from: usize, to: usize) -> Vec<Rect> {
4182        let (a, b) = (entry.cursor_of(from), entry.cursor_of(to));
4183        let mut out = Vec::new();
4184        for run in entry.buffer.layout_runs() {
4185            if run.line_i < a.line || run.line_i > b.line {
4186                continue;
4187            }
4188            // The run's own height: a line holding a larger span is taller
4189            // than the paragraph's metric.
4190            let h = run.line_height;
4191            let mut any = false;
4192            for (x, w) in run.highlight(a, b) {
4193                any = true;
4194                out.push(Rect::new(x, run.line_top, w.max(2.0), h));
4195            }
4196            // A selected newline on an empty line keeps the highlight
4197            // continuous, the way the editor's does.
4198            if !any && run.glyphs.is_empty() && b.line > run.line_i {
4199                out.push(Rect::new(0.0, run.line_top, 2.0, h));
4200            }
4201        }
4202        out
4203    }
4204
4205    /// The physical origin `emit` drew a place at: what a point is
4206    /// measured from and a rect is measured to.
4207    fn physical_origin(&self, place: &TextPlace) -> (f32, f32) {
4208        (
4209            crate::geom::snap_px(place.origin.x * self.scale),
4210            crate::geom::snap_px(place.origin.y * self.scale),
4211        )
4212    }
4213
4214    /// A run's laid-out box, physical px in viewport space.
4215    fn physical_box(&self, place: &TextPlace, entry: &CachedText) -> Rect {
4216        let (ox, oy) = self.physical_origin(place);
4217        let (size, _) = measure_buffer(&entry.buffer, entry.max_lines);
4218        Rect::new(ox, oy, size.w, size.h)
4219    }
4220
4221    /// Where `point` (logical viewport px) lands in the text `key` drew;
4222    /// see `Core::text_hit`. With several runs, the run under the point,
4223    /// else the nearest one on the point's line, else the nearest line.
4224    pub(crate) fn hit_at(&self, key: Key, point: Vec2, prev: bool) -> Option<TextHit> {
4225        let runs = self.runs_of(key, prev);
4226        if runs.is_empty() {
4227            return None;
4228        }
4229        let px = point.x * self.scale;
4230        let py = point.y * self.scale;
4231        // Distance from a run's box: vertical first, so a point on a line
4232        // of runs picks among that line, then horizontal.
4233        let gap = |r: &Rect| {
4234            let dy = (r.y - py).max(py - (r.y + r.h)).max(0.0);
4235            let dx = (r.x - px).max(px - (r.x + r.w)).max(0.0);
4236            (dy, dx)
4237        };
4238        let (place, entry, base) = runs
4239            .iter()
4240            .min_by(|a, b| {
4241                let ga = gap(&self.entry_box(a.0, a.1));
4242                let gb = gap(&self.entry_box(b.0, b.1));
4243                ga.partial_cmp(&gb).unwrap_or(std::cmp::Ordering::Equal)
4244            })
4245            .copied()?;
4246        let (ox, oy) = self.physical_origin(place);
4247        let (byte, hit_top) = match entry {
4248            Entry::Long(line) => {
4249                let hit = self.long_hit(place, line, point)?;
4250                (hit.byte, oy + hit.line as f32 * line.line_h)
4251            }
4252            Entry::Run(entry) => {
4253                // Into the run's box vertically: the nearest run was
4254                // chosen for a point outside every run, and cosmic-text
4255                // answers a point above its first row with byte 0 whatever
4256                // the x — so a press in the padding above a line's text
4257                // placed the caret at its start (backlog C34). Clamped, it
4258                // hits the nearest row at that x.
4259                let bx = self.physical_box(place, entry);
4260                let py = py.clamp(bx.y, (bx.y + bx.h - 0.01).max(bx.y));
4261                let cursor = entry.buffer.hit(px - ox, py - oy)?;
4262                let row =
4263                    visual_line(&entry.buffer, cursor.line, cursor.index).map_or(0, |(l, _)| l);
4264                let top = entry
4265                    .buffer
4266                    .layout_runs()
4267                    .nth(row)
4268                    .map_or(0.0, |r| r.line_top);
4269                (entry.byte_of(cursor), oy + top)
4270            }
4271        };
4272        // The visual row within the node (AR30): the row the hit landed
4273        // on, placed among every row of every run the key covers by its
4274        // top edge, so runs side by side share a row and runs stacked
4275        // count in turn.
4276        let mut tops: Vec<f32> = runs
4277            .iter()
4278            .flat_map(|(p, e, _)| self.row_tops(p, e))
4279            .collect();
4280        tops.sort_by(|a, b| a.partial_cmp(b).unwrap_or(std::cmp::Ordering::Equal));
4281        tops.dedup_by(|a, b| (*a - *b).abs() < 0.5);
4282        let line = tops.iter().filter(|t| **t < hit_top - 0.5).count();
4283        Some(TextHit {
4284            byte: base + byte,
4285            line: line as u32,
4286        })
4287    }
4288
4289    /// The caret rect for `byte` in the text `key` drew; see
4290    /// `Core::caret_rect`. A byte on the seam between two runs is the
4291    /// start of the later one, except at the very end.
4292    pub(crate) fn caret_at(&self, key: Key, byte: usize, prev: bool) -> Option<Rect> {
4293        let runs = self.runs_of(key, prev);
4294        let total = runs.last().map(|(_, e, base)| base + e.content().len())?;
4295        let byte = byte.min(total);
4296        let (place, entry, base) = runs
4297            .iter()
4298            .find(|(_, e, base)| byte < base + e.content().len())
4299            .or_else(|| runs.last())
4300            .copied()?;
4301        let byte = (byte - base).min(entry.content().len());
4302        let entry = match entry {
4303            Entry::Long(line) => return self.long_caret(place, line, byte),
4304            Entry::Run(entry) => entry,
4305        };
4306        let (ox, oy) = self.physical_origin(place);
4307        let cursor = entry.cursor_of(byte);
4308        let (_, run_no) = visual_line(&entry.buffer, cursor.line, cursor.index)?;
4309        let run = entry.buffer.layout_runs().nth(run_no)?;
4310        let x = caret_x(&run, cursor.index);
4311        let scale = self.scale;
4312        Some(Rect::new(
4313            (ox + x) / scale,
4314            (oy + run.line_top) / scale,
4315            0.0,
4316            run.line_height / scale,
4317        ))
4318    }
4319}
4320
4321/// The byte offset in `content` at which each of the buffer's paragraphs
4322/// starts. cosmic-text splits on every line ending it knows and keeps the
4323/// ending out of the paragraph's text, so each start is found by matching
4324/// the paragraph back onto the content and skipping the ending after it.
4325/// The word around `byte`: the run of like characters it sits in, where
4326/// "like" is one of three classes — word characters (alphanumeric or
4327/// `_`), whitespace, and everything else. At the very end of the text the
4328/// word before it, so a double click past the last character selects the
4329/// last word rather than nothing.
4330fn word_range(content: &str, byte: usize) -> (usize, usize) {
4331    if content.is_empty() {
4332        return (0, 0);
4333    }
4334    #[derive(PartialEq)]
4335    enum Class {
4336        Word,
4337        Space,
4338        Other,
4339    }
4340    let class = |c: char| {
4341        if c.is_alphanumeric() || c == '_' {
4342            Class::Word
4343        } else if c.is_whitespace() {
4344            Class::Space
4345        } else {
4346            Class::Other
4347        }
4348    };
4349    // Past the end (or on the boundary after the last character), the
4350    // word being pointed at is the one just passed, so step back into it.
4351    let at = floor_boundary(content, byte.min(content.len()));
4352    let at = if at >= content.len() {
4353        content.char_indices().next_back().map_or(0, |(i, _)| i)
4354    } else {
4355        at
4356    };
4357    let Some(here) = content[at..].chars().next().map(class) else {
4358        return (at, at);
4359    };
4360    let mut start = at;
4361    for (i, c) in content[..at].char_indices().rev() {
4362        if class(c) != here {
4363            break;
4364        }
4365        start = i;
4366    }
4367    let mut end = at;
4368    for (i, c) in content[at..].char_indices() {
4369        if class(c) != here {
4370            break;
4371        }
4372        end = at + i + c.len_utf8();
4373    }
4374    (start, end)
4375}
4376
4377/// One shaped run's `lo..hi` as HTML, span by span: cosmic-text keeps the
4378/// attributes the text was shaped with, so the bold in a rich paragraph is
4379/// still readable off the buffer long after the spans that declared it are
4380/// gone.
4381fn html_of_run(entry: &CachedText, lo: usize, hi: usize, out: &mut String) {
4382    let starts = line_starts(&entry.buffer, &entry.content);
4383    for (li, line) in entry.buffer.lines.iter().enumerate() {
4384        let base = starts.get(li).copied().unwrap_or(0);
4385        let text = line.text();
4386        if li > 0 {
4387            // A newline inside one node's text is a line break in the
4388            // copy, the same way it is on screen.
4389            if base > lo && base <= hi {
4390                out.push_str("<br>");
4391            }
4392        }
4393        // `spans_iter` lists only the ranges something *changed* — a
4394        // plain paragraph has none at all and reads its line's defaults —
4395        // so this walks the line and asks per character, coalescing runs
4396        // that answer the same. `get_span` falls back to the defaults
4397        // itself, which is exactly the case a rich paragraph's gaps are.
4398        let attrs_list = line.attrs_list();
4399        let mut spans: Vec<(usize, usize, cosmic_text::AttrsOwned)> = Vec::new();
4400        for (i, _) in text.char_indices() {
4401            let a = cosmic_text::AttrsOwned::new(&attrs_list.get_span(i));
4402            match spans.last_mut() {
4403                Some((_, end, prev)) if *prev == a && *end == i => {
4404                    *end = i + text[i..].chars().next().map_or(1, char::len_utf8);
4405                }
4406                _ => spans.push((i, i + text[i..].chars().next().map_or(1, char::len_utf8), a)),
4407            }
4408        }
4409        for (start, end, attrs) in &spans {
4410            let (s, e) = (base + start, base + end);
4411            let (s, e) = (s.max(lo), e.min(hi));
4412            if s >= e {
4413                continue;
4414            }
4415            let piece = &entry.content[s..e];
4416            // Heavier than the line's default, which is the family's
4417            // regular (F100): a family whose bold face is its SemiBold
4418            // bolds at 600, and one whose only face is 700 is regular
4419            // there.
4420            let bold = attrs.weight > attrs_list.defaults().weight
4421                || attrs
4422                    .cache_key_flags
4423                    .contains(crate::weights::SYNTHETIC_BOLD);
4424            let italic = attrs.style != cosmic_text::Style::Normal;
4425            if let Some(c) = attrs.color_opt {
4426                let _ = std::fmt::Write::write_fmt(
4427                    out,
4428                    format_args!(
4429                        "<span style=\"color:#{:02x}{:02x}{:02x}\">",
4430                        c.r(),
4431                        c.g(),
4432                        c.b()
4433                    ),
4434                );
4435            }
4436            if bold {
4437                out.push_str("<b>");
4438            }
4439            if italic {
4440                out.push_str("<i>");
4441            }
4442            escape_into(piece, out);
4443            if italic {
4444                out.push_str("</i>");
4445            }
4446            if bold {
4447                out.push_str("</b>");
4448            }
4449            if attrs.color_opt.is_some() {
4450                out.push_str("</span>");
4451            }
4452        }
4453    }
4454}
4455
4456/// HTML-escapes into `out`. The four that matter in element content and
4457/// nothing else: a clipboard flavour is not a document, and over-escaping
4458/// is what turns a copied apostrophe into `&#39;` in someone's email.
4459fn escape_into(s: &str, out: &mut String) {
4460    for ch in s.chars() {
4461        match ch {
4462            '&' => out.push_str("&amp;"),
4463            '<' => out.push_str("&lt;"),
4464            '>' => out.push_str("&gt;"),
4465            _ => out.push(ch),
4466        }
4467    }
4468}
4469
4470/// The nearest char boundary at or below `i`, so a slice taken from a/// The
4471/// nearest char boundary at or below `i`, so a slice taken from a
4472/// selection never splits a character. A selection's ends come from
4473/// shaping and are boundaries already; this is for the arithmetic around
4474/// them (a clamp, a saturating subtraction) that has no such guarantee.
4475fn floor_boundary(s: &str, i: usize) -> usize {
4476    let mut i = i.min(s.len());
4477    while i > 0 && !s.is_char_boundary(i) {
4478        i -= 1;
4479    }
4480    i
4481}
4482
4483fn line_starts(buffer: &Buffer, content: &str) -> Vec<usize> {
4484    paragraph_starts(buffer, content).collect()
4485}
4486
4487/// Where each of `buffer`'s paragraphs starts in `content`, in order.
4488/// cosmic-text splits the text at line endings and keeps the pieces, so
4489/// the ending bytes between two paragraphs are found again in `content`
4490/// — any of the four spellings — and skipped. No allocation: the two
4491/// conversions below walk this once and stop.
4492fn paragraph_starts<'a>(buffer: &'a Buffer, content: &'a str) -> impl Iterator<Item = usize> + 'a {
4493    let mut at = 0usize;
4494    buffer.lines.iter().map(move |line| {
4495        let start = at.min(content.len());
4496        at += line.text().len();
4497        let rest = &content[at.min(content.len())..];
4498        for ending in ["\r\n", "\n\r", "\n", "\r"] {
4499            if rest.starts_with(ending) {
4500                at += ending.len();
4501                break;
4502            }
4503        }
4504        start
4505    })
4506}
4507
4508/// The visual line (0-based over every wrapped line of the buffer) that
4509/// byte `index` of paragraph `line_i` lays out on, and that run's ordinal
4510/// in `layout_runs()` (the same number, kept apart for reading): the run
4511/// whose glyphs cover the byte, else the last run that starts before it —
4512/// a byte with no glyph inside the paragraph is whitespace a `Word` break
4513/// swallowed, which ends the row it broke, and the end of the paragraph
4514/// ends its last — else the paragraph's last run, for a paragraph with no
4515/// glyphs. The paragraph's last run whatever the byte, as it was, put a
4516/// caret on a swallowed space at the end of the whole paragraph.
4517fn visual_line(buffer: &Buffer, line_i: usize, index: usize) -> Option<(usize, usize)> {
4518    let mut last_of_line = None;
4519    let mut before = None;
4520    for (n, run) in buffer.layout_runs().enumerate() {
4521        if run.line_i != line_i {
4522            if last_of_line.is_some() {
4523                break;
4524            }
4525            continue;
4526        }
4527        last_of_line = Some(n);
4528        if run.glyphs.iter().any(|g| g.start <= index && index < g.end) {
4529            return Some((n, n));
4530        }
4531        if run
4532            .glyphs
4533            .iter()
4534            .map(|g| g.start)
4535            .min()
4536            .is_some_and(|s| s <= index)
4537        {
4538            before = Some(n);
4539        }
4540    }
4541    before.or(last_of_line).map(|n| (n, n))
4542}
4543
4544/// Where the caret sits for byte `index` inside `run`, physical px from the
4545/// text origin: the leading edge of the glyph covering it — its right edge
4546/// in a right-to-left run — and past the last glyph at the run's end.
4547fn caret_x(run: &cosmic_text::LayoutRun<'_>, index: usize) -> f32 {
4548    if let Some(g) = run
4549        .glyphs
4550        .iter()
4551        .find(|g| g.start <= index && index < g.end)
4552    {
4553        return if g.level.is_rtl() { g.x + g.w } else { g.x };
4554    }
4555    match run.glyphs.last() {
4556        Some(g) if !g.level.is_rtl() => g.x + g.w,
4557        Some(g) => g.x,
4558        None => 0.0,
4559    }
4560}
4561
4562impl Default for TextSystem {
4563    fn default() -> Self {
4564        Self::new()
4565    }
4566}
4567
4568/// The physical wrap width an entry needs for a logical `max_w`: none when
4569/// the unwrapped text already fits (or no width was given).
4570fn wrap_target(entry: &CachedText, max_w_logical: Option<f32>, scale: f32) -> Option<f32> {
4571    let max_w = max_w_logical?;
4572    let intrinsic_fits = entry.intrinsic.w <= max_w * scale + 0.5;
4573    (!intrinsic_fits).then_some(max_w * scale)
4574}
4575
4576/// Re-lays the entry's buffer out at `target` (physical px) if it is not
4577/// already there.
4578/// Whether a buffer laid out at `current` needs laying out again for
4579/// `target`: a wrap width that moved by half a physical pixel or less is
4580/// the same wrap, which is what keeps a box that jitters by float error
4581/// from reshaping its text every frame. The one rule for the text cache
4582/// and the editors alike.
4583pub(crate) fn wrap_differs(current: Option<f32>, target: Option<f32>) -> bool {
4584    match (current, target) {
4585        (None, None) => false,
4586        (Some(a), Some(b)) => (a - b).abs() > 0.5,
4587        _ => true,
4588    }
4589}
4590
4591fn wrap_entry(entry: &mut CachedText, fs: &mut FontSystem, target: Option<f32>) {
4592    if wrap_differs(entry.wrap, target) {
4593        entry.buffer.set_size(target, None);
4594        entry.buffer.shape_until_scroll(fs, false);
4595        entry.wrap = target;
4596    }
4597}
4598
4599impl CachedText {
4600    /// The byte offset in `content` that `cursor` (a paragraph and an
4601    /// index into it) names, clamped to the content.
4602    fn byte_of(&self, cursor: cosmic_text::Cursor) -> usize {
4603        let start = paragraph_starts(&self.buffer, &self.content)
4604            .nth(cursor.line)
4605            .unwrap_or(0);
4606        (start + cursor.index).min(self.content.len())
4607    }
4608
4609    /// The cursor at `byte`: the paragraph starting at or before it — the
4610    /// last one that does — and the offset inside that paragraph's own
4611    /// text, clamped to it. The inverse of [`Self::byte_of`]; the one
4612    /// place the byte ↔ paragraph arithmetic lives, where three copies
4613    /// used to (`run_anchor`, `run_highlight`, `caret_at`).
4614    fn cursor_of(&self, byte: usize) -> cosmic_text::Cursor {
4615        let mut li = 0;
4616        let mut start = 0;
4617        for (i, s) in paragraph_starts(&self.buffer, &self.content).enumerate() {
4618            if s <= byte {
4619                (li, start) = (i, s);
4620            } else {
4621                break;
4622            }
4623        }
4624        let len = self.buffer.lines.get(li).map_or(0, |l| l.text().len());
4625        cosmic_text::Cursor::new(li, (byte - start).min(len))
4626    }
4627
4628    fn new(
4629        mut buffer: Buffer,
4630        content: String,
4631        style: &TextStyle,
4632        span_deco: Vec<SpanDeco>,
4633        fs: &mut FontSystem,
4634        frame_no: u64,
4635    ) -> Self {
4636        buffer.shape_until_scroll(fs, false);
4637        let max_lines = line_budget(style);
4638        let (intrinsic, _) = measure_buffer(&buffer, max_lines);
4639        let glyphs: usize = buffer.layout_runs().map(|r| r.glyphs.len()).sum();
4640        Self {
4641            buffer,
4642            bytes: ENTRY_BASE_BYTES + content.len() + ENTRY_GLYPH_BYTES * glyphs,
4643            content,
4644            wrap: None,
4645            intrinsic,
4646            max_lines,
4647            clamp_w: style.wrap == TextWrap::None || style.ellipsis,
4648            last_used: frame_no,
4649            glyphs: Vec::new(),
4650            deco: Vec::new(),
4651            span_deco,
4652            glyphs_built_for: None,
4653            claimed: u64::MAX,
4654            claimed_wrap: None,
4655            breaks_anywhere: style.wrap == TextWrap::Glyph,
4656            min_content: None,
4657        }
4658    }
4659
4660    /// A copy laid out as this one is, for a second node that draws the
4661    /// same text at another width ([`TextSystem::own_wrap`]): the shaped
4662    /// buffer, not the templates, which the copy builds when drawn.
4663    fn fork(&self, frame_no: u64) -> Self {
4664        Self {
4665            buffer: self.buffer.clone(),
4666            content: self.content.clone(),
4667            wrap: self.wrap,
4668            intrinsic: self.intrinsic,
4669            max_lines: self.max_lines,
4670            clamp_w: self.clamp_w,
4671            last_used: frame_no,
4672            bytes: self.bytes,
4673            glyphs: Vec::new(),
4674            deco: Vec::new(),
4675            span_deco: self.span_deco.clone(),
4676            glyphs_built_for: None,
4677            claimed: u64::MAX,
4678            claimed_wrap: None,
4679            breaks_anywhere: self.breaks_anywhere,
4680            min_content: self.min_content,
4681        }
4682    }
4683
4684    /// The widest stretch of this text that no break opportunity falls
4685    /// inside, physical px — CSS's min-content: the longest word under
4686    /// `word` and `break-spaces` (a word longer than the box still breaks
4687    /// between glyphs when drawn, as `overflow-wrap: break-word` does in
4688    /// CSS, which leaves the min-content alone), the widest glyph under
4689    /// `glyph`, and the whole line under `none` or an ellipsis, which
4690    /// never wrap. Trailing whitespace hangs, as in CSS. Read off the
4691    /// shaped glyphs of whatever width the buffer was last laid out at —
4692    /// a glyph's advance is the same at every width — with the breaks
4693    /// `unicode-linebreak` finds, so asking lays nothing out.
4694    fn min_content(&mut self) -> f32 {
4695        if let Some(w) = self.min_content {
4696            return w;
4697        }
4698        let w = if self.clamp_w {
4699            self.intrinsic.w
4700        } else {
4701            widest_unbreakable(&self.buffer, self.breaks_anywhere)
4702        };
4703        self.min_content = Some(w);
4704        w
4705    }
4706}
4707
4708/// [`CachedText::min_content`]'s walk: every run of a line in order, a
4709/// stretch closing at each glyph a break falls before, and a stretch's
4710/// width up to its last glyph that is not whitespace.
4711fn widest_unbreakable(buffer: &Buffer, anywhere: bool) -> f32 {
4712    let mut widest = 0.0f32;
4713    let mut line = usize::MAX;
4714    let mut breaks: Vec<usize> = Vec::new();
4715    let (mut run_w, mut ink) = (0.0f32, 0.0f32);
4716    for run in buffer.layout_runs() {
4717        if run.line_i != line {
4718            widest = widest.max(ink);
4719            (run_w, ink) = (0.0, 0.0);
4720            line = run.line_i;
4721            breaks.clear();
4722            if !anywhere {
4723                breaks.extend(unicode_linebreak::linebreaks(run.text).map(|(i, _)| i));
4724            }
4725        }
4726        for g in run.glyphs {
4727            if anywhere || breaks.binary_search(&g.start).is_ok() {
4728                widest = widest.max(ink);
4729                (run_w, ink) = (0.0, 0.0);
4730            }
4731            run_w += g.w;
4732            let blank = run
4733                .text
4734                .get(g.start..g.end)
4735                .is_some_and(|t| t.chars().all(char::is_whitespace));
4736            if !blank {
4737                ink = run_w;
4738            }
4739        }
4740    }
4741    widest.max(ink)
4742}
4743
4744/// The shaper's metrics for a font size and line height in physical px,
4745/// each at least one pixel: cosmic-text asserts a line height is not 0,
4746/// which aborted a Node or Lua process over `lineHeight = 0` (or a size
4747/// under 0.4, whose derived height rounds to 0), and a negative one spun
4748/// its layout without end. A NaN or an infinity is a pixel too. Every
4749/// buffer kui shapes into is made through here.
4750pub(crate) fn shaper_metrics(size: f32, line_height: f32) -> Metrics {
4751    let px = |v: f32| if v.is_finite() { v.max(1.0) } else { 1.0 };
4752    Metrics::new(px(size), px(line_height))
4753}
4754
4755/// A buffer set up for the style's line breaking: cosmic-text's wrap mode,
4756/// plus tail ellipsizing at the line budget when asked for.
4757fn new_buffer(fs: &mut FontSystem, style: &TextStyle, scale: f32) -> Buffer {
4758    let metrics = shaper_metrics(style.size * scale, style.line_height * scale);
4759    let mut buffer = Buffer::new(fs, metrics);
4760    buffer.set_wrap(match style.wrap {
4761        TextWrap::Word | TextWrap::BreakSpaces => Wrap::WordOrGlyph,
4762        TextWrap::Glyph => Wrap::Glyph,
4763        TextWrap::None => Wrap::None,
4764    });
4765    if style.ellipsis {
4766        let lines = line_budget(style).max(1);
4767        buffer.set_ellipsize(Ellipsize::End(EllipsizeHeightLimit::Lines(lines)));
4768    }
4769    buffer.set_size(None, None);
4770    buffer
4771}
4772
4773/// The line budget a style implies: `max_lines`, or one line when only
4774/// `ellipsis` is set (0 = unlimited).
4775fn line_budget(style: &TextStyle) -> usize {
4776    if style.max_lines > 0 {
4777        style.max_lines as usize
4778    } else if style.ellipsis {
4779        1
4780    } else {
4781        0
4782    }
4783}
4784
4785fn line_cap(max_lines: usize) -> usize {
4786    if max_lines == 0 {
4787        usize::MAX
4788    } else {
4789        max_lines
4790    }
4791}
4792
4793/// Physical size of the laid-out buffer plus its line count (both capped
4794/// by the line budget).
4795/// The widest laid-out line and the line count of `buffer`, up to
4796/// `max_lines` of them (0 = all), as physical px: what a text node and an
4797/// editor both measure themselves by.
4798pub(crate) fn measure_buffer(buffer: &Buffer, max_lines: usize) -> (Size, u32) {
4799    let mut w = 0.0f32;
4800    let mut lines = 0u32;
4801    // Lines as tall as their tallest span (`Span::size`): the sum of the
4802    // runs' own heights, and the metric times the count when every run is
4803    // the metric's, exactly as before.
4804    let lh = buffer.metrics().line_height;
4805    let (mut sum, mut uniform) = (0.0f32, true);
4806    for run in buffer.layout_runs().take(line_cap(max_lines)) {
4807        w = w.max(run.line_w);
4808        lines += 1;
4809        sum += run.line_height;
4810        uniform &= run.line_height == lh;
4811    }
4812    (
4813        Size::new(w, if uniform { lines as f32 * lh } else { sum }),
4814        lines,
4815    )
4816}
4817
4818impl TextSystem {
4819    pub(crate) fn intrinsic(&mut self, id: TextId) -> Size {
4820        let scale = self.scale;
4821        if let Some(line) = self.long_of(id) {
4822            return Size::new(line.width() / scale, line.line_h / scale);
4823        }
4824        let e = self.entry_mut(id);
4825        Size::new(e.intrinsic.w / scale, e.intrinsic.h / scale)
4826    }
4827
4828    /// Text `id`'s min-content width, logical px: see
4829    /// [`CachedText::min_content`]. A long line is 0 — its rows are broken
4830    /// to any width, and measuring its words would shape what C19 exists
4831    /// not to.
4832    pub(crate) fn min_content(&mut self, id: TextId) -> f32 {
4833        let scale = self.scale;
4834        if self.long_of(id).is_some() {
4835            return 0.0;
4836        }
4837        self.entry_mut(id).min_content() / scale
4838    }
4839
4840    /// The long line behind one of this frame's texts, if it is one.
4841    fn long_of(&self, id: TextId) -> Option<&LongLine> {
4842        self.long(self.frame[id.0 as usize].cache_key)
4843    }
4844
4845    pub(crate) fn wrapped(&mut self, id: TextId, max_w: f32, fs: &mut FontSystem) -> Size {
4846        let scale = self.scale;
4847        if self.long_of(id).is_some() {
4848            // The box, not the line, is the node's width: emission clips a
4849            // single row to it, or the rows are broken to it.
4850            let key = self.frame[id.0 as usize].cache_key;
4851            let (size, rows) = self.long_size(key, Some(max_w * scale));
4852            self.long_mut(key).expect("a long line").laid_rows = rows;
4853            return Size::new(size.w / scale, size.h / scale);
4854        }
4855        self.ensure_wrap(id, max_w, fs);
4856        let e = self.entry_mut(id);
4857        let (mut m, _) = measure_buffer(&e.buffer, e.max_lines);
4858        if e.clamp_w {
4859            // The line may run past the box; the box, not the line, is
4860            // the node's width (emission clips to it).
4861            m.w = m.w.min(max_w * scale);
4862        }
4863        Size::new(m.w / scale, m.h / scale)
4864    }
4865}
4866
4867impl TextSystem {
4868    /// The first line's baseline of text `id` as `wrapped` last laid it
4869    /// out, logical px below its top. A run's `line_y`, rounded as the glyphs are drawn at
4870    /// it; a long line's is [`Self::long_baseline`]. An empty text is one
4871    /// line of its own metrics.
4872    pub(crate) fn baseline(&mut self, id: TextId) -> f32 {
4873        let scale = self.scale;
4874        if let Some(line) = self.long_of(id) {
4875            return self.long_baseline(line) / scale;
4876        }
4877        let e = self.entry_mut(id);
4878        let b = e
4879            .buffer
4880            .layout_runs()
4881            .next()
4882            .map_or(e.buffer.metrics().line_height * 0.8, |r| r.line_y.round());
4883        b / scale
4884    }
4885}
4886
4887/// The generic families resolve to a face that is what its name says:
4888/// upright, and monospaced for `Mono`.
4889#[cfg(test)]
4890mod default_families {
4891    use super::*;
4892    use cosmic_text::Family;
4893    use cosmic_text::fontdb::FaceInfo;
4894
4895    /// The face `M` shapes with under `family`, on the database as
4896    /// `new_font_system` set it up.
4897    fn resolved(fs: &mut FontSystem, family: Family<'_>) -> Option<FaceInfo> {
4898        let mut buffer = Buffer::new(fs, Metrics::new(14.0, 18.0));
4899        buffer.set_text("M", &Attrs::new().family(family), Shaping::Advanced, None);
4900        buffer.shape_until_scroll(fs, false);
4901        let id = buffer.layout_runs().next()?.glyphs.first()?.font_id;
4902        fs.db().face(id).cloned()
4903    }
4904
4905    #[test]
4906    fn mono_is_an_upright_monospaced_face() {
4907        let mut fs = new_font_system().0;
4908        if !fs.db().faces().any(|f| f.monospaced) {
4909            eprintln!("skipped: no monospaced face installed");
4910            return;
4911        }
4912        let face = resolved(&mut fs, Family::Monospace).expect("M shapes in Mono");
4913        let mono = default_families(&fs)[2].to_string();
4914        assert_eq!(
4915            face.style,
4916            cosmic_text::Style::Normal,
4917            "Mono ({mono}) resolved to {:?}",
4918            face.post_script_name
4919        );
4920        assert!(
4921            face.monospaced,
4922            "Mono ({mono}) resolved to {:?}, which is not monospaced",
4923            face.post_script_name
4924        );
4925    }
4926
4927    #[test]
4928    fn sans_and_serif_are_upright_and_not_monospaced() {
4929        let mut fs = new_font_system().0;
4930        if fs.db().faces().next().is_none() {
4931            eprintln!("skipped: no face installed");
4932            return;
4933        }
4934        let [sans, serif, _] = default_families(&fs).map(str::to_string);
4935        for (family, name) in [(Family::SansSerif, sans), (Family::Serif, serif)] {
4936            let face = resolved(&mut fs, family).expect("M shapes");
4937            assert_eq!(
4938                face.style,
4939                cosmic_text::Style::Normal,
4940                "{name} resolved to {:?}",
4941                face.post_script_name
4942            );
4943            assert!(
4944                !face.monospaced,
4945                "{name} resolved to {:?}, which is monospaced",
4946                face.post_script_name
4947            );
4948        }
4949    }
4950
4951    /// Every name pinned is one an installed face answers to, so
4952    /// `Family::Name(pinned)` and the generic family agree.
4953    #[test]
4954    fn pinned_names_are_installed_or_cosmic_texts_own() {
4955        let fs = new_font_system().0;
4956        let db = fs.db();
4957        for (name, list) in default_families(&fs).into_iter().zip(DEFAULT_FAMILIES) {
4958            let installed = db
4959                .faces()
4960                .any(|f| f.families.iter().any(|(fam, _)| fam == name));
4961            let on_list = list.contains(&name);
4962            assert!(
4963                installed == on_list,
4964                "{name}: installed {installed}, on the platform list {on_list}"
4965            );
4966        }
4967    }
4968}
4969
4970/// A face whose glyph advances cannot be measured never reaches the shaper.
4971/// macOS's GB18030 Bitmap has no `head`, `hhea` or `hmtx`;
4972/// it says it is fixed-pitch and maps the ideographs, so Han text in
4973/// `Mono` fell back to it, and its advances came out infinite: every glyph
4974/// after one was placed at infinity, and a debug build overflowed in
4975/// `LayoutGlyph::physical`. The fixture faces stand in for it here.
4976#[cfg(test)]
4977mod unmeasurable_faces {
4978    use super::*;
4979    use crate::testing::{font_face, han_face, unmeasurable_face};
4980    use cosmic_text::Family;
4981    use cosmic_text::fontdb::{Database, Source};
4982
4983    /// A session font system over the fixture faces alone: a monospaced
4984    /// family without Han, pinned as `Mono`, the face without metrics that
4985    /// maps 字 and says it is fixed-pitch, and a proportional face that
4986    /// maps it too.
4987    fn font_system() -> FontSystem {
4988        let mut db = Database::new();
4989        for bytes in [
4990            font_face("Kui Mono", 400, false, true),
4991            unmeasurable_face("Kui Bitmap"),
4992            han_face("Kui Han"),
4993        ] {
4994            db.load_font_source(Source::Binary(std::sync::Arc::new(bytes)));
4995        }
4996        let mut fs = font_system_with("en-US".into(), db);
4997        fs.db_mut().set_monospace_family("Kui Mono");
4998        fs
4999    }
5000
5001    fn family(fs: &FontSystem, id: cosmic_text::fontdb::ID) -> String {
5002        fs.db()
5003            .face(id)
5004            .map_or_else(String::new, |f| f.families[0].0.clone())
5005    }
5006
5007    #[test]
5008    fn a_face_without_metrics_is_not_in_the_database() {
5009        let fs = font_system();
5010        let families: Vec<String> = fs.db().faces().map(|f| family(&fs, f.id)).collect();
5011        assert_eq!(families, ["Kui Mono", "Kui Han"]);
5012    }
5013
5014    /// "字 a" in `Mono`: 字 from the face that can say how wide it is, the
5015    /// space and the `a` from the monospaced family after it, every glyph
5016    /// at a finite place.
5017    #[test]
5018    fn han_in_mono_falls_back_to_a_face_that_measures() {
5019        let mut fs = font_system();
5020        let mut buffer = Buffer::new(&mut fs, Metrics::new(14.0, 21.0));
5021        let attrs = Attrs::new().family(Family::Monospace);
5022        buffer.set_text("字 a", &attrs, Shaping::Advanced, None);
5023        buffer.shape_until_scroll(&mut fs, false);
5024        let run = buffer.layout_runs().next().expect("one line");
5025        let glyphs: Vec<(&str, f32, f32, String)> = run
5026            .glyphs
5027            .iter()
5028            .map(|g| (&run.text[g.start..g.end], g.x, g.w, family(&fs, g.font_id)))
5029            .collect();
5030        for &(text, x, w, _) in &glyphs {
5031            assert!(x.is_finite() && w.is_finite(), "{text:?} at {x}, {w} wide");
5032        }
5033        let faces: Vec<(&str, &str)> = glyphs.iter().map(|g| (g.0, g.3.as_str())).collect();
5034        assert_eq!(
5035            faces,
5036            [("字", "Kui Han"), (" ", "Kui Mono"), ("a", "Kui Mono")]
5037        );
5038        // The fixture's advance is half an em, 7 px at 14.
5039        let xs: Vec<f32> = glyphs.iter().map(|g| g.1).collect();
5040        assert_eq!(xs, [0.0, 7.0, 14.0]);
5041        for glyph in run.glyphs {
5042            glyph.physical((0.0, 0.0), 1.0);
5043        }
5044    }
5045}