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justerm_core/
term.rs

1//! The terminal state model: a `vte::Perform` that maps parsed VT actions onto
2//! the grid, cursor, and pen. This is where the "hidden VT state" lives —
3//! pending-wrap, the wide-char spacer, and the pen (BCE seam).
4
5use std::collections::VecDeque;
6
7use unicode_width::{UnicodeWidthChar, UnicodeWidthStr};
8use vte::{Params, Perform};
9
10use crate::cell::{Cell, CellFlags};
11use crate::color::Color;
12use crate::cursor::{Cursor, CursorShape, Pen};
13use crate::damage::{LineBounds, LineDamage, ScrollOp, TermDamage};
14use crate::event::TermEvent;
15use crate::grid::{ExtAttrs, Grid, Row};
16use crate::input::{
17    KeyEvent, MouseEncoding, MouseEvent, MouseProtocol, encode_focus, encode_key, encode_mouse,
18    encode_paste,
19};
20use crate::search::Match;
21use crate::selection::{BufferPoint, Selection};
22use crate::serialize::{Frame, FrameKind, MAX_SCROLL_COUNT, MarkerId, MarkerKind, Overlay, Span};
23
24/// Buffer-walk primitives shared by every read surface (#585). A child module, so
25/// it reaches `Term`'s private fields directly — no field is widened for it.
26mod walk;
27
28/// The search query surface (#586) — finding matches, and the highlight set the
29/// consumer pushes back. Stands on `walk`, whose `pub(super)` reaches a sibling
30/// module because both are descendants of `term`.
31mod search;
32
33/// The selection surface (#587) — gestures, the anchor fixups the write path drives,
34/// and text extraction. Stands on `walk` like its siblings.
35mod selection;
36
37/// The decoration-marker surface (#588) — marks anchored to absolute buffer lines, the
38/// OSC 133 command queries over them, and the anchor fixups the write path drives.
39mod markers;
40
41/// Viewport logical lines (#601) — the soft-wrap-joined text a consumer needs for URL
42/// detection and the a11y mirror. The last read surface to leave this file under #584.
43mod logical;
44
45/// Tracked points (#691) — absolute positions the engine keeps on their content for a
46/// holder that lives outside it, and the anchor fixups the write path drives.
47mod tracked;
48
49/// Owns the authoritative screen state and applies VT actions to it.
50pub struct Term {
51    grid: Grid,
52    /// The inactive screen. Swapped with `grid` on alt-screen enter/leave; holds
53    /// whichever of primary/alternate is not currently shown. The alt screen has
54    /// no scrollback (#3 only rings the primary).
55    alt_grid: Grid,
56    cursor: Cursor,
57    /// Cursor saved on alt-screen enter (DEC 1049), restored on leave.
58    saved_cursor: Cursor,
59    /// Whether the alternate screen is currently active. Guards enter/leave so a
60    /// double-enter or double-leave is a no-op.
61    on_alt: bool,
62    /// One flag per column: is there a tab stop here? Explicit per-column state
63    /// (HTS sets, TBC clears), not a fixed modulo. Default = every 8th column.
64    tabs: Vec<bool>,
65    /// Which characters end a word for Word (semantic) selection — **consumer policy**,
66    /// not engine state (ADR-0017). Defaults to [`DEFAULT_WORD_SEPARATORS`]; replaced
67    /// through `set_word_separators`, which is also where the `' '` floor is enforced.
68    ///
69    /// Being *policy* is what puts it on the short list `full_reset` carries across RIS,
70    /// beside `replies` and `events`: `ESC c` resets the terminal's state, and a
71    /// consumer's configuration is not that. All three references survive RIS here by
72    /// construction rather than by remembering to — alacritty's `reset_state` never
73    /// touches `self.config`, xterm.js holds it in `OptionsService`, and ghostty passes
74    /// the set in per call.
75    word_separators: String,
76    /// Origin mode (DECOM ?6): when set, cursor addressing is relative to the
77    /// scroll region's top margin (and clamped to it).
78    origin_mode: bool,
79    /// Autowrap (DECAWM ?7): default on. When off, a glyph past the right margin
80    /// pins the cursor to the last column and overwrites in place instead of
81    /// wrapping to the next line (matches xterm.js) (#63).
82    autowrap: bool,
83    /// Insert mode (IRM, the non-private SM/RM mode 4): default off (replace).
84    /// When on, a printed glyph shifts the row's tail right first (#64).
85    insert_mode: bool,
86    /// New-line mode (LNM, the non-private SM/RM mode 20): default off. When on,
87    /// a line feed also carriage-returns (`convertEol`). Output-only — the Enter
88    /// key still encodes CR, matching xterm.js (#71).
89    newline_mode: bool,
90    /// Reverse wraparound (DEC ?45): default off. When on, a *backspace* at
91    /// column 0 of a soft-wrapped row moves back to the end of the previous row
92    /// (BS only, soft wraps only — matches xterm.js) (#80).
93    reverse_wraparound: bool,
94    /// Bracketed-paste mode (DEC ?2004). The engine owns the flag; the input
95    /// encoder (#11) reads it to decide whether to wrap pasted text in markers.
96    bracketed_paste: bool,
97    /// Synchronized output (DEC ?2026): the app brackets a frame of output so the
98    /// renderer can paint it atomically. The engine only *tracks* the flag — the
99    /// consumer owns the paint-hold and the spec-mandated timeout (#73).
100    synchronized_output: bool,
101    /// Color-scheme-update notifications (DEC ?2031): the app asked to be told
102    /// when the light/dark scheme changes. The engine is theme-agnostic — it only
103    /// tracks the flag; the consumer (which knows the scheme) drives the ?997
104    /// notification via `report_color_scheme` (#85).
105    color_scheme_updates: bool,
106    /// Grapheme-cluster mode (DEC ?2027, default OFF): the app opted into UAX #29 grapheme-cluster
107    /// width — a ZWJ / skin-tone / flag / emoji+VS16 sequence is clustered into ONE cell instead of
108    /// one cell per scalar (#295). OFF keeps the per-char (wcwidth-compatible) behaviour so the
109    /// cursor stays in sync with wcwidth apps — clustering is opt-in for exactly that reason (#301).
110    grapheme_clustering: bool,
111    /// win32-input-mode (DEC ?9001): the app asked for keys as raw Windows
112    /// key-records. The engine only *tracks* the flag — the raw record encoding
113    /// (`CSI Vk;Sc;Uc;Kd;Cs;Rc _`) is a non-goal (raw passthrough, no semantic
114    /// conversion), left to the ConPTY consumer; `encode_key` is unchanged (#86).
115    win32_input_mode: bool,
116    /// Application cursor keys (DECCKM ?1): when set, cursor keys / Home / End
117    /// encode as SS3 rather than CSI (see `input.rs`).
118    app_cursor_keys: bool,
119    /// Application keypad mode (DECNKM ?66 / DECKPAM `ESC =` / DECKPNM `ESC >`):
120    /// tracked for protocol completeness + DECRQM, but NOT yet acted on in key
121    /// encoding — xterm.js tracks it the same way and never reads it (#74).
122    application_keypad: bool,
123    /// VT52 compatibility mode (DECANM ?2 *reset*): when set, `esc_dispatch` is
124    /// re-routed into the pre-ANSI VT52 dialect (`ESC A`-style sequences) instead
125    /// of the ANSI meaning. `ESC <` clears it. Default off (ANSI). (#84)
126    vt52_mode: bool,
127    /// VT52 `ESC Y row col` direct-addressing state (#84). vte tokenizes `ESC Y`
128    /// as a final and returns to ground, so the two coordinate bytes arrive as
129    /// `print()` calls — not part of the escape sequence. This counts them down
130    /// (2 → 1 → 0; 0 = not addressing) and `vt52_y_row` parks the first (row)
131    /// until the second (col) lands. Each byte decodes as `value - 0x20`.
132    vt52_y_pending: u8,
133    vt52_y_row: usize,
134    /// Mouse tracking mode — what events the app asked to be reported
135    /// (?1000/?1002/?1003). `Off` by default.
136    mouse_protocol: MouseProtocol,
137    /// Mouse coordinate encoding (default X10 vs ?1006 SGR).
138    mouse_encoding: MouseEncoding,
139    /// Focus in/out reporting (?1004): emit `CSI I`/`CSI O` on focus change.
140    focus_events: bool,
141    /// Kitty keyboard-protocol progressive-enhancement flags currently in effect
142    /// (bit0 disambiguate, bit1 report-events, bit2 alt-keys, bit3 all-as-escape,
143    /// bit4 associated-text). 0 = legacy. `encode_key` consults these (#23).
144    kitty_flags: u8,
145    /// Saved `kitty_flags` for the protocol's push/pop stack (`CSI > u` pushes,
146    /// `CSI < u` pops). Capped depth — overflow drops the oldest entry.
147    kitty_stack: Vec<u8>,
148    /// Consumer events (title / bell / cwd) accumulated since the last
149    /// `drain_events` (#12). Pull, not push — see `event.rs`.
150    events: Vec<TermEvent>,
151    /// Outbound reply bytes (DA/DSR/DECRQM query answers, #27) accumulated
152    /// during `feed` for the consumer to write back to the PTY. Raw bytes →
153    /// PTY, kept separate from typed `events` → UI.
154    replies: Vec<u8>,
155    /// The hyperlink currently open (OSC 8 with a URI), stamped onto every glyph
156    /// written until closed (OSC 8 with empty URI). Ambient pen-like state — not
157    /// part of the pen/SGR, and *not* cleared by an SGR reset.
158    ///
159    /// The URI itself, not a pool index — there is no pool (#628). The lead paragraph
160    /// here used to describe one (*"Hyperlink side-table … referenced by `Cell.link`
161    /// (1-based). Append-only (#26)"*), left behind when its field was deleted.
162    current_link: Option<std::sync::Arc<str>>,
163    /// Live OSC 8 `id=` groups: `"id;;uri"` → the allocation that key already named,
164    /// held **weakly** (#635).
165    ///
166    /// `Weak`, not `Arc`, is the whole lifetime story. A strong entry here would make
167    /// every id'd link immortal for the life of the `Term` — precisely the leak #628
168    /// deleted, re-entering through the door grouping opens. A dangling key is the
169    /// correct answer rather than a hole: the link it named has left the buffer, so a
170    /// later open of the same id is genuinely a new link. xterm.js expresses the same
171    /// lifetime by *deleting* its `_entriesWithId` entry when the last line marker
172    /// referencing it is disposed (`OscLinkService.ts:98-100`); justerm has no disposal
173    /// hook by design, and `Weak` is that lifetime without one.
174    link_ids: std::collections::HashMap<String, std::sync::Weak<str>>,
175    /// Map length at which [`Self::link_ids`] is swept for dangling keys, doubling each
176    /// time so the sweep is amortised O(1) per open and dead keys stay O(live).
177    ///
178    /// A sweep is affordable here for the reason #628's rejected option (c) was not:
179    /// staleness is observable in O(1) (`Weak::strong_count`), where (c) had to decide
180    /// "is the pool oversized" by counting live references — the O(buffer) walk it was
181    /// trying to avoid.
182    link_ids_sweep_at: usize,
183    /// Scroll region top/bottom margins (DECSTBM), 0-based inclusive. A
184    /// line-feed at `scroll_bottom` scrolls only rows `[scroll_top..=scroll_bottom]`.
185    /// Default = the full screen.
186    scroll_top: usize,
187    scroll_bottom: usize,
188    /// Lines that have scrolled off the top of the primary screen, oldest at the
189    /// front. Accrues only on a top-anchored, primary-screen scroll.
190    scrollback: VecDeque<Row>,
191    /// How many lines the viewport is scrolled up from the bottom. 0 = following
192    /// the live screen; clamped to `[0, scrollback.len()]`.
193    display_offset: usize,
194    /// Maximum scrollback lines retained; the oldest are evicted past this.
195    scrollback_limit: usize,
196    /// A spare row buffer recycled across full-screen scrolls: the cap-evicted
197    /// oldest line is parked here and reused as the next scroll's blank bottom,
198    /// so a steady-state flood allocates nothing (ADR-0009).
199    recycled_row: Option<Row>,
200    /// Per-line damage bounds since the last `reset_damage` (ack), one per row.
201    line_damage: Vec<LineBounds>,
202    /// A first-class scroll recorded since the last `reset_damage`.
203    scroll: Option<ScrollOp>,
204    /// The whole screen changed (alt switch / clear / later resize+flood) — the
205    /// renderer must redraw everything.
206    full_damage: bool,
207    /// The cursor `(row, col)` at the last `reset_damage` (ack) — where the
208    /// consumer last saw the caret. A pure cursor move records no content
209    /// damage, so `damage()` folds this *old* cell plus the current one into the
210    /// frame; without it a cell-invert caret ghosts at the old spot (mirrors
211    /// Alacritty's `last_cursor`). #38.
212    prev_cursor: (usize, usize),
213    /// The live selection, in absolute buffer coordinates. `None` when nothing
214    /// is selected. See `selection.rs`.
215    selection: Option<Selection>,
216    /// The search highlights the consumer asked to paint (#108). Search
217    /// matches are consumer-owned (it drives next/prev), so the engine holds only
218    /// the set handed back via `set_search_highlights`, and `frame()` projects it
219    /// onto the viewport — the same anchoring path as the selection.
220    search_highlights: Vec<Match>,
221    /// The *active* (current) search match (#428), stored as its absolute span
222    /// (#436) — designated by the consumer (next/prev is its policy) either as
223    /// an index into `search_highlights` (resolved to the span at call time) or
224    /// directly by span, which a capping backend uses for a past-cap match
225    /// (xterm creates its active decoration from the found result, OUTSIDE the
226    /// capped highlight list). A span is NOT structurally tied to the set, so
227    /// every path that voids the set must void this too: `set_search_highlights`
228    /// (hand-over reset, #428) and `invalidate_search_highlights` (the single
229    /// funnel for eviction / every region scroll incl. the accrual sub-region
230    /// branch (#449) / reflow / both alt swaps) — a stale span would otherwise
231    /// keep painting coordinates that now hold other text.
232    active_search_highlight: Option<Match>,
233    /// Engine-owned decoration markers (#118), split per buffer like xterm's
234    /// `BufferSet` (#177 S0): each a stable id bound to an absolute buffer line
235    /// that re-anchors through eviction/scroll/reflow like a selection anchor. The
236    /// active buffer's list is selected by `on_alt` — `markers`/`markers_mut`.
237    /// `alt_markers` stays empty while the alt guards (#158/#164) are in place; it
238    /// is disposed on alt-leave (xterm `clearAllMarkers`). `next_marker_id` hands
239    /// out monotonic ids across both buffers so ids never alias.
240    normal_markers: VecDeque<Marker>,
241    alt_markers: VecDeque<Marker>,
242    next_marker_id: u32,
243    /// The basis that keeps a *pulled* marker index valid without re-pulling
244    /// (#490). Both are reported by [`Term::marker_index`] and — from the wire
245    /// slice on — by the frame header, so a consumer can compare what it holds
246    /// against what is current.
247    ///
248    /// `evicted_total` counts lines popped off the front of scrollback since
249    /// startup or RIS. Eviction shifts **every** live marker by the same −1, so
250    /// that whole class of movement is one number rather than M facts, and a
251    /// consumer rebases a held line by the delta.
252    ///
253    /// `marker_epoch` covers everything the delta cannot express: a mutation
254    /// after which a held line is wrong for a reason no single offset repairs.
255    /// It says *"what you pulled no longer describes this buffer"* — not *"a verb
256    /// ran"*, which is why the movers bump it only when a surviving marker's line
257    /// actually moved. Disposal is deliberately **not** a bump: a consumer learns
258    /// of that through `TermEvent::MarkerDisposed` and can drop the entry without
259    /// asking for the rest again.
260    evicted_total: u64,
261    marker_epoch: u32,
262    /// Positions the engine keeps on their content for a holder that lives
263    /// *outside* it (#691). Split per buffer and re-anchored by the same fixups as
264    /// the markers beside them; the difference is that nothing here reaches a
265    /// frame — a tracked point is answered on request, never projected.
266    normal_tracked: Vec<TrackedPoint>,
267    alt_tracked: Vec<TrackedPoint>,
268    next_tracked_id: u32,
269    /// Cursor state saved by DECSC (ESC 7), restored by DECRC (ESC 8). A slot
270    /// separate from `saved_cursor` (which is the alt-screen save). Defaults to
271    /// home/default so a DECRC with no prior DECSC restores a sane state.
272    decsc: SavedCursor,
273    /// SCS-designated character sets G0..G3 (#62). `gl` indexes the active (GL)
274    /// set, switched by SI (→G0) / SO (→G1). First cut uses G0/G1.
275    charsets: [Charset; 4],
276    gl: usize,
277}
278
279/// A character set designated by SCS (#62). First cut: ASCII (default), DEC
280/// Special Graphics (line-drawing), and UK. G2/G3 and the GR half are later.
281#[derive(Clone, Copy, PartialEq, Eq, Default)]
282enum Charset {
283    #[default]
284    Ascii,
285    DecSpecialGraphics,
286    Uk,
287}
288
289impl Charset {
290    /// Map one GL byte (a `char` in the 7-bit range) through this set. ASCII and
291    /// any out-of-range char pass through; UK swaps `#`→£; DEC Special Graphics
292    /// translates `_`..`~` to the line-drawing / symbol glyphs.
293    fn map(self, c: char) -> char {
294        match self {
295            Charset::Ascii => c,
296            Charset::Uk if c == '#' => '£',
297            Charset::Uk => c,
298            Charset::DecSpecialGraphics => dec_special_graphics(c),
299        }
300    }
301}
302
303/// The VT100 DEC Special Graphics set: bytes `_`..`~` (0x5F..0x7E) map to the
304/// box-drawing and symbol glyphs. Matches xterm/alacritty; anything outside the
305/// range passes through unchanged.
306fn dec_special_graphics(c: char) -> char {
307    // Keys ``..`~` only — `_` (0x5F) is deliberately absent, matching xterm.js /
308    // alacritty (it passes through as a literal underscore), not the strict-DEC
309    // "0x5F = blank" reading.
310    match c {
311        '`' => '◆',
312        'a' => '▒',
313        'b' => '␉',
314        'c' => '␌',
315        'd' => '␍',
316        'e' => '␊',
317        'f' => '°',
318        'g' => '±',
319        'h' => '␤',
320        'i' => '␋',
321        'j' => '┘',
322        'k' => '┐',
323        'l' => '┌',
324        'm' => '└',
325        'n' => '┼',
326        'o' => '⎺',
327        'p' => '⎻',
328        'q' => '─',
329        'r' => '⎼',
330        's' => '⎽',
331        't' => '├',
332        'u' => '┤',
333        'v' => '┴',
334        'w' => '┬',
335        'x' => '│',
336        'y' => '≤',
337        'z' => '≥',
338        '{' => 'π',
339        '|' => '≠',
340        '}' => '£',
341        '~' => '·',
342        other => other,
343    }
344}
345
346/// Default scrollback retention when not specified.
347const DEFAULT_SCROLLBACK: usize = 10_000;
348
349/// The narrowest screen the engine represents: **two columns**.
350///
351/// A width-2 glyph occupies a `WIDE_CHAR` lead *and* the `WIDE_CHAR_SPACER` that
352/// stands for its second half, so one column cannot hold one — and a pair with only
353/// one half written is the malformed state every repair path in this crate keys off
354/// (ADR-0025 D4). `Term::with_scrollback` and [`Term::resize`] clamp `cols` up to
355/// this, which is what makes D4 (*both halves of a pair move together*)
356/// unconditionally satisfiable rather than true only above some unstated width.
357///
358/// Both references that a terminal *engine* can be compared to forbid one column for
359/// exactly this reason — alacritty's `MIN_COLUMNS = 2` and xterm.js's
360/// `MINIMUM_COLS = 2` — and the third (ghostty) permits it only by destroying the
361/// glyph.
362///
363/// The clamp is **silent and pull-only**: a `resize(1, rows)` during a pane drag is
364/// widened rather than rejected, and no event reports it. Both references instead
365/// make the clamped size the one that travels outward — alacritty derives its
366/// `WindowSize` from the clamped `SizeInfo`, xterm.js fires `onResize` with the
367/// clamped pair — so a justerm consumer must do that correlation itself: read the
368/// width back from [`Term::grid`] / the frame header and size the PTY from *that*,
369/// never from the value it requested. Sizing a PTY to one column leaves the
370/// application rendering for a width the buffer does not have (#547).
371pub const MIN_COLUMNS: usize = 2;
372
373/// The built-in word-boundary set for Word (semantic) selection — the default value of
374/// [`Term::set_word_separators`], and **policy the consumer may replace** (ADR-0017:
375/// mechanism in core, policy injected).
376///
377/// It is alacritty's `SEMANTIC_ESCAPE_CHARS` (`alacritty_terminal/src/term/mod.rs:45`
378/// @ `852e971`) verbatim — space, tab and a punctuation set that deliberately omits
379/// `.`, `/` and `-` so a path or URL stays one word — **plus U+3000 IDEOGRAPHIC
380/// SPACE**, which is justerm's one divergence from every reference default.
381///
382/// Two properties of this list are load-bearing and neither is obvious:
383///
384/// - **It is a literal set, not the Unicode `White_Space` property.** The predicate was
385///   `char::is_whitespace()` until #545, so every space-like codepoint ended a word —
386///   including the four `Line_Break=GL` (glue) ones U+00A0, U+2007, U+202F and U+205F,
387///   whose whole purpose is "do not break here". A locale-formatted `1<NNBSP>234`
388///   double-clicked as `1`. All three references are literal sets for the same reason.
389/// - **U+3000 is in it, and no reference's default has it.** It is the only
390///   East-Asian-Wide codepoint `White_Space` accepts (measured over U+0000–U+10FFFF),
391///   so on alacritty and xterm.js ` abc` is one word while justerm gives the useful
392///   answer. Keeping it was argued in #535 *on the grounds that core had no injection
393///   point*; that ground is gone, so it survives here as a **default**, and a consumer
394///   who wants reference-exact behaviour removes it.
395///
396/// [`Term::set_word_separators`] additionally forces `' '` into whatever it is given —
397/// see there for why that floor is not optional.
398pub const DEFAULT_WORD_SEPARATORS: &str = ",│`|:\"' ()[]{}<>\t\u{3000}";
399
400/// A declared OSC 8 hyperlink, as handed to a consumer.
401///
402/// **Owned, not borrowed**, and that is the point: the URI lives in a row's side map, so
403/// a `&str` into it would be tied to `&Engine` and a caller could not hold the link
404/// across the next `feed()` — which is precisely what a hover handler does. Measured on
405/// the alternative: reading a borrow costs 0.75 ns, but keeping it *does not compile*, so
406/// the caller copies the string instead at 62.6 ns. Handing back this handle is 17.9 ns
407/// — cheaper than the workaround it removes, on a call made once per hover.
408///
409/// Cloning is a refcount bump; the allocation is shared with every cell of the same OSC 8
410/// open and released when the last row holding it dies (#628).
411///
412/// **A struct rather than a bare `Arc<str>`** for two reasons: it keeps `Arc` out of the
413/// published signature, and OSC 8's `id=` parameter (#635) lands here as a field without
414/// changing the return type again. Same shape as alacritty's `Hyperlink`, for the same
415/// reasons (`alacritty_terminal/src/term/cell.rs`).
416///
417/// **Link *identity* is deliberately not exposed yet.** Two OSC 8 opens of an identical
418/// URI are two links here, so `uri() == uri()` cannot answer "is this cell part of the
419/// same link as that one?" — an `Arc::ptr_eq` accessor would. It is left out because no
420/// consumer asks it today (nothing outside this crate's tests calls `link_at` at all),
421/// and unlike this type's *shape*, adding a method later is not a breaking change. The
422/// asymmetry decides it: shipping an accessor nobody uses is hard to undo, adding one
423/// when a caller appears is free.
424#[derive(Clone, PartialEq, Eq, Debug)]
425pub struct Hyperlink {
426    uri: std::sync::Arc<str>,
427}
428
429impl Hyperlink {
430    pub(crate) fn new(uri: std::sync::Arc<str>) -> Self {
431        Hyperlink { uri }
432    }
433
434    /// The link target, exactly as the application declared it — never validated,
435    /// never resolved. Whether it is a URL a consumer is willing to open is that
436    /// consumer's policy (ADR-0017), the same way colour resolution is.
437    pub fn uri(&self) -> &str {
438        &self.uri
439    }
440}
441
442/// Length at which the `id=` group map is first swept for dangling keys, doubling from
443/// there. Small enough that a session declaring a handful of ids never pays a sweep,
444/// large enough that the sweep is not the common path.
445const LINK_IDS_FIRST_SWEEP: usize = 16;
446
447/// The `id=` value out of an OSC 8 `params` field, or `None` when it is absent or empty.
448///
449/// Three rules, each taken from xterm.js's `_createHyperlink` verbatim rather than from
450/// the spec prose, because each is a place a reasonable reading goes wrong
451/// (`src/common/InputHandler.ts:3128-3131` at the pinned SHA `699f5537b023`):
452///
453/// - **`:`-separated**, not `;` — `params` is one OSC argument holding a key=value list
454///   (`id=xyz123:foo=bar:baz=quux`), so the split is on colons (`params.split(':')`).
455/// - **`id` may sit anywhere in it** (`findIndex(e => e.startsWith('id='))`), so matching
456///   only a leading `id=` is the wrong parse and passes a single-parameter test.
457/// - **an empty value is not an id** (`slice(3) || undefined`). This is the one with teeth:
458///   an empty key would group every `id=`-with-no-value link in a session into one link
459///   across unrelated URIs, and it is a wrong answer that grows with uptime.
460///
461/// Only the first `id=` is consulted, matching `findIndex` — an empty first one yields
462/// `None` rather than searching on for a non-empty sibling.
463fn osc8_link_id(params: &[u8]) -> Option<&[u8]> {
464    params
465        .split(|b| *b == b':')
466        .find_map(|kv| kv.strip_prefix(b"id="))
467        .filter(|value| !value.is_empty())
468}
469
470/// The widest grid the engine will hold, and the mirror of [`MIN_COLUMNS`] — but derived
471/// from a different kind of constraint, which is why the two are not symmetric.
472///
473/// The floor is **semantic**: a width-2 glyph needs two cells, so one column is a screen
474/// no correct grid can be. The ceiling is **representational**: the frame header stores
475/// `cols` and `rows` as `u16` each, so a grid wider than `u16::MAX` cannot be *described*
476/// to a consumer even though the engine could hold it. Without the clamp that mismatch was
477/// silent — measured, `Engine::new(70_000, 2)` built a 70 000-column grid whose frame
478/// declared `cols = 4464` and decoded `Ok`, so a consumer laid out 4464 columns of a
479/// 70 000-column screen with nothing reporting the difference (#621).
480///
481/// No reference bounds a grid this way, and that is expected rather than a divergence:
482/// none of them serializes a grid, so none has a header field to overflow. This is the
483/// one axis where justerm's own wire is the only authority.
484///
485/// **A backstop, not a policy.** A 4K display at a very small font is roughly 550 columns;
486/// this is two orders of magnitude past any real terminal, so it should never be reached
487/// by a consumer that is not already doing something wrong. The clamp is silent and
488/// pull-only on the same terms as [`MIN_COLUMNS`] — read the size back from
489/// [`Term::grid`] rather than trusting the value you passed in.
490pub const MAX_COLUMNS: usize = u16::MAX as usize;
491
492/// The tallest grid the engine will hold. The row half of [`MAX_COLUMNS`] — same
493/// `u16` header field, same reasoning, same silent-clamp contract.
494pub const MAX_ROWS: usize = u16::MAX as usize;
495
496/// The most live markers one buffer will hold (#721).
497///
498/// Derived from the wire the same way [`MAX_COLUMNS`] is: both marker group counts
499/// are `u16`, so a population past `u16::MAX` encodes a wrapped count while writing
500/// every record, and `decode` then reads the next group's count out of the middle of
501/// a marker record and returns `Ok`. The field bounds the value; this constant only
502/// writes that bound down where the value is produced, because `encode` returns
503/// `Vec<u8>` and has no channel to refuse.
504///
505/// **Why a bound is needed at all**, rather than a wider field: markers are allocated
506/// by the *stream*. `add_command_mark` appends per OSC 133 sequence, several marks can
507/// share one line, and scrollback eviction only drops a marker when its line reaches
508/// absolute 0 — so a stream that never emits a newline accumulates marks in a 24-row
509/// buffer without bound (measured: 70 000, #721). [`crate::Engine::feed`] is an untrusted
510/// entry point (ADR-0007), and unbounded allocation behind it is a defect class that
511/// record exists to catch.
512///
513/// **A backstop, not a policy**, on the same terms as [`MAX_COLUMNS`]. Ordinary shell
514/// integration emits at most four marks per command and a command occupies at least one
515/// line, so a default-scrollback session tops out near 40 000 — this is not reached by a
516/// consumer that is not already being fed something hostile. Overflow disposes the
517/// *oldest* marker and announces it through `TermEvent::MarkerDisposed`, which is the
518/// channel scrollback eviction already uses for the same event.
519pub const MAX_MARKERS: usize = u16::MAX as usize;
520
521/// The state DECSC (ESC 7) saves and DECRC (ESC 8) restores: position, pen/SGR,
522/// pending-wrap, and origin mode (per ADR-0004 — DECRC restores origin mode,
523/// which Alacritty omits). Cursor *visibility* is deliberately not part of this
524/// (DECTCEM is separate from DECSC).
525#[derive(Clone, Copy, Default)]
526struct SavedCursor {
527    row: usize,
528    col: usize,
529    pen: Pen,
530    pending_wrap: bool,
531    origin_mode: bool,
532    /// SCS charset state at save time — DECSC/DECRC round-trip the designated
533    /// sets and the active GL shift (#62).
534    charsets: [Charset; 4],
535    gl: usize,
536}
537
538/// An engine-owned decoration marker (#118): a stable id bound to an absolute
539/// buffer line. The line shifts in lockstep with eviction/region scroll/reflow
540/// (the same coordinate moves the selection anchor tracks); the marker is
541/// dropped when its line leaves the buffer.
542struct Marker {
543    id: MarkerId,
544    line: usize,
545    /// The cursor column at emit time (#166). Meaningful for OSC-133 command
546    /// marks — CommandStart(B)/OutputStart(C) columns bound the *typed command*
547    /// (excluding the prompt), like VSCode's `commandStartX`/`commandExecutedX`.
548    /// Plain `add_marker` decorations are row-granular and carry `col = 0`.
549    ///
550    /// **Domain is `[0, cols]`, not `[0, cols - 1]` (#562)** — a bound, not a cell.
551    /// A command that exactly fills its row ends *one past* the last column, and
552    /// that value is what `extract_lines` wants: it clips `[b_col, c_col)`, so the
553    /// exclusive end absorbs it through `.min(cells.len())`. Storing `cursor.col`
554    /// alone (the cursor is held at `cols - 1` with `pending_wrap`) cost such a
555    /// command its last character with no resize involved. The **inclusive** side
556    /// cannot absorb it, so `extract_lines` steps a `from` of `cells.len()` to the
557    /// next line rather than selecting an empty run and flushing a `\n`.
558    col: usize,
559    /// Plain for a `add_marker` decoration; a command-boundary role for an
560    /// OSC 133 mark (#158). All kinds share the anchor/eviction machinery.
561    kind: MarkerKind,
562}
563
564/// A stable handle to a tracked buffer position (#691), handed out by
565/// [`Term::track_point`].
566///
567/// It is deliberately **not** a [`MarkerId`]: a marker is a decoration anchor and
568/// rides two frame groups, so every marker a consumer registers is something the
569/// renderer paints. A tracked point is private to whoever asked for it.
570#[derive(Debug, Clone, Copy, PartialEq, Eq, Hash)]
571pub struct TrackedId(pub(crate) u32);
572
573/// One tracked position: an absolute buffer `(line, col)` the write path keeps on
574/// its content (#691). The element type of `normal_tracked` / `alt_tracked`.
575struct TrackedPoint {
576    id: TrackedId,
577    line: usize,
578    col: usize,
579}
580
581/// One live marker, as the pull query reports it (#490): its stable id, its
582/// **absolute** `[scrollback ++ screen]` line, and the static facts a consumer
583/// would otherwise have to re-learn from every frame.
584///
585/// `kind` and `exit` ride here rather than on the frame because they never change
586/// after `push_marker` — re-sending them per frame is the same class of waste as
587/// re-sending the line.
588#[derive(Debug, Clone, PartialEq, Eq)]
589pub struct MarkerEntry {
590    pub id: MarkerId,
591    pub line: u32,
592    pub kind: MarkerKind,
593}
594
595/// The answer to [`Term::marker_index`] (#490) — every live marker of the *active*
596/// buffer, plus the basis that says how long the answer stays usable.
597///
598/// The consumer keeps this and rebases per frame:
599/// `current = line - (evicted_total_now - evicted_total)`, valid for exactly as long
600/// as `epoch` is unchanged. When the epoch moves, the held lines are wrong in a way
601/// no offset repairs and the consumer asks again.
602///
603/// It reports the active buffer because an absolute index means a different thing on
604/// each screen — the same reason `markers`/`markers_mut` route by `on_alt`. An
605/// alt-screen switch therefore bumps the epoch even though no line moved: what the
606/// answer *describes* changed.
607#[derive(Debug, Clone, PartialEq, Eq)]
608pub struct MarkerIndex {
609    pub markers: Vec<MarkerEntry>,
610    pub evicted_total: u64,
611    pub epoch: u32,
612}
613
614/// One executed shell command recovered from OSC-133 marks (#166), for
615/// screen-reader command navigation. The consumer jumps prompt-to-prompt over
616/// these and announces `command` + a success/fail signal from `exit`.
617#[derive(Debug, Clone, PartialEq, Eq)]
618pub struct CommandLine {
619    /// The command's jump anchor as a *document* line — the logical-line index of
620    /// the CommandStart(B) mark within [`Term::accessible_text`], so the consumer
621    /// reveals the right row of the accessible view (soft-wrapped rows collapse to
622    /// one logical line). This is core's analog of VSCode's
623    /// `bufferToEditorLineMapping`; the frame-mode web side has no wrap info to
624    /// map it itself.
625    pub line: usize,
626    /// The typed command text, prompt- and output-excluded (B→C columns).
627    pub command: String,
628    /// The CommandFinished(D) exit code, if the shell reported one and the
629    /// command has finished.
630    pub exit: Option<i32>,
631}
632
633/// Collect per-line damage bounds into damaged `LineDamage` spans (undamaged
634/// lines dropped). Shared by `damage` (content-only) and `frame_damage`
635/// (content + cursor cells).
636fn bounds_to_lines(bounds: &[LineBounds]) -> Vec<LineDamage> {
637    bounds
638        .iter()
639        .enumerate()
640        .filter(|(_, b)| b.is_damaged())
641        .map(|(line, b)| {
642            let (left, right) = b.span();
643            LineDamage { line, left, right }
644        })
645        .collect()
646}
647
648impl Term {
649    pub fn new(cols: usize, rows: usize) -> Self {
650        Self::with_scrollback(cols, rows, DEFAULT_SCROLLBACK)
651    }
652
653    pub fn with_scrollback(cols: usize, rows: usize, scrollback_limit: usize) -> Self {
654        // Both clamps mirror `resize` exactly, so a screen cannot be born at a size a
655        // resize would refuse. They are not the same *kind* of rule, though: the width
656        // floor is a published contract (#547 — one column was supported and no longer
657        // is), while the row floor is `resize`'s own long-standing "a terminal is never
658        // 0-tall" that this constructor merely failed to enforce while carrying the
659        // same `scroll_bottom: rows - 1` below. That gap was a subtract-overflow panic
660        // on `rows == 0`, not a degenerate screen.
661        // …and the ceiling is the header's, not the glyph's: `frame.cols`/`rows` are u16,
662        // so a wider grid would be built and then misdescribed on the wire (#621).
663        let cols = cols.clamp(MIN_COLUMNS, MAX_COLUMNS);
664        let rows = rows.clamp(1, MAX_ROWS);
665        Term {
666            grid: Grid::new(cols, rows),
667            alt_grid: Grid::new(cols, rows),
668            cursor: Cursor::default(),
669            saved_cursor: Cursor::default(),
670            on_alt: false,
671            origin_mode: false,
672            autowrap: true,
673            insert_mode: false,
674            newline_mode: false,
675            reverse_wraparound: false,
676            bracketed_paste: false,
677            synchronized_output: false,
678            color_scheme_updates: false,
679            grapheme_clustering: false,
680            win32_input_mode: false,
681            app_cursor_keys: false,
682            application_keypad: false,
683            vt52_mode: false,
684            vt52_y_pending: 0,
685            vt52_y_row: 0,
686            mouse_protocol: MouseProtocol::Off,
687            mouse_encoding: MouseEncoding::Default,
688            focus_events: false,
689            kitty_flags: 0,
690            kitty_stack: Vec::new(),
691            events: Vec::new(),
692            replies: Vec::new(),
693            current_link: None,
694            link_ids: std::collections::HashMap::new(),
695            link_ids_sweep_at: LINK_IDS_FIRST_SWEEP,
696            tabs: default_tabs(cols),
697            word_separators: DEFAULT_WORD_SEPARATORS.to_owned(),
698            scroll_top: 0,
699            scroll_bottom: rows - 1,
700            scrollback: VecDeque::new(),
701            display_offset: 0,
702            scrollback_limit,
703            recycled_row: None,
704            line_damage: vec![LineBounds::undamaged(cols); rows],
705            scroll: None,
706            full_damage: false,
707            prev_cursor: (0, 0), // matches the default cursor's home position
708            selection: None,
709            search_highlights: Vec::new(),
710            active_search_highlight: None,
711            normal_markers: VecDeque::new(),
712            alt_markers: VecDeque::new(),
713            next_marker_id: 0,
714            evicted_total: 0,
715            marker_epoch: 0,
716            normal_tracked: Vec::new(),
717            alt_tracked: Vec::new(),
718            next_tracked_id: 0,
719            decsc: SavedCursor::default(),
720            charsets: [Charset::Ascii; 4],
721            gl: 0,
722        }
723    }
724
725    /// What changed since the last `reset_damage()` — line ranges, each with a
726    /// changed column span. See ADR-0003.
727    pub fn damage(&self) -> TermDamage {
728        if self.full_damage {
729            return TermDamage::Full;
730        }
731        // Scrolled up under follow-bottom "stay": the viewport is frozen, so
732        // screen changes below it are not visible — report nothing. (A user
733        // scroll that moves the viewport sets full_damage above.)
734        if self.display_offset > 0 {
735            return TermDamage::Partial(Vec::new());
736        }
737        TermDamage::Partial(bounds_to_lines(&self.line_damage))
738    }
739
740    /// Render damage: content damage plus the cursor cells, for [`Term::frame`].
741    ///
742    /// A pure cursor move changes no cell *content*, so [`Term::damage`] (which
743    /// stays content-only, the cadence/flow-control primitive) would miss it —
744    /// yet a cell-invert caret must clear its old spot and ink the new one. So
745    /// the frame producer folds the old (last-acked) + current cursor cells in,
746    /// but only when the cursor actually moved: a still cursor needs no redraw,
747    /// keeping an idle frame empty. Mirrors Alacritty's `last_cursor`. #38.
748    fn frame_damage(&self) -> TermDamage {
749        if self.full_damage {
750            return TermDamage::Full;
751        }
752        if self.display_offset > 0 {
753            return TermDamage::Partial(Vec::new());
754        }
755        let cur = self.cursor.point();
756        if cur == self.prev_cursor {
757            return TermDamage::Partial(bounds_to_lines(&self.line_damage));
758        }
759        let mut bounds = self.line_damage.clone();
760        bounds[cur.0].expand(cur.1, cur.1);
761        let pr = self.prev_cursor.0.min(self.grid.rows() - 1);
762        let pc = self.prev_cursor.1.min(self.grid.cols() - 1);
763        bounds[pr].expand(pc, pc);
764        TermDamage::Partial(bounds_to_lines(&bounds))
765    }
766
767    /// Clear accumulated damage. The consumer calls this after applying a frame
768    /// (the ack); the next `damage()` reflects only changes since.
769    pub fn reset_damage(&mut self) {
770        for b in &mut self.line_damage {
771            b.reset();
772        }
773        self.scroll = None;
774        self.full_damage = false;
775        // The consumer has now seen the caret at the current position; the next
776        // frame's cursor-move damage is measured from here (#38).
777        self.prev_cursor = self.cursor.point();
778    }
779
780    /// Mark the whole screen damaged (alt switch / clear / flood, and a consumer
781    /// reattach that needs a full re-sync — see [`crate::Engine::mark_fully_damaged`]).
782    pub fn mark_fully_damaged(&mut self) {
783        self.full_damage = true;
784    }
785
786    /// Record that columns `[left, right]` of `row` changed.
787    ///
788    /// Both columns are **clamped to the last column, and asserted in debug** (#536).
789    ///
790    /// Ten of the fourteen call sites derive their bound from a cursor column or from `cols`.
791    /// **Four derive it from a wide pair's width**, and that is the shape worth centralising:
792    /// `write_glyph`'s `col + width - 1` (which had no guard — this issue), `promote_cluster_to_wide`'s
793    /// `col + 1` (guarded by its own `col + 1 >= cols` early return), `demote_cluster_to_narrow`'s
794    /// `(col + 1).min(cols - 1)` (self-clamped), and `relocate_cluster_wide`'s literal `(0, 1)`
795    /// (valid only because `MIN_COLUMNS = 2`, #547). Three carried a private guard and one did not.
796    ///
797    /// No reference has this shape to port a clamp from: alacritty computes damage ranges too
798    /// (`term/mod.rs:1406`, `:1649` @ `852e971`) but always from a column or `columns()` — its print
799    /// path records no damage at all, relying on the previous and current cursor *points* to bracket
800    /// the line — while xterm.js tracks whole rows (`markDirty(y)`) and ghostty a per-row
801    /// `dirty: bool`. alacritty's `LineDamageBounds::expand`, which this one is a copy of, is equally
802    /// unguarded.
803    ///
804    /// The two halves do different jobs:
805    ///
806    /// - the **`debug_assert` is the detector**. An out-of-range bound is stored silently and
807    ///   detonates later, when `frame()` slices the row, so the stack trace accuses the reader
808    ///   rather than the writer. That delay is what #536 was filed about, and the assert collapses
809    ///   it — a bad caller dies here, at the site that recorded it (measured: an injected off-by-one
810    ///   moved the panic from `frame()`'s slice to this line).
811    /// - the **clamp is the release backstop**, and it clamps *toward a false positive*. justerm is
812    ///   a library, so a panic crosses into the consumer's process; over-damaging repaints a cell
813    ///   that did not change, which costs nothing a consumer can see. ghostty states the asymmetry
814    ///   as a rule: *"Dirty tracking may have false positives but should never have false negatives.
815    ///   A false negative would result in a visual artifact on the screen."* (`page.zig:1993-1995`).
816    ///
817    /// **`left` is guarded for that reason, and it is the axis that can actually lose a cell.**
818    /// Clamping `right` cannot under-report — columns past the last do not exist. But `LineBounds`
819    /// marks a line undamaged with `left = cols, right = 0` and `is_damaged()` is `left <= right`,
820    /// so a single `expand` with `left > right` on an otherwise-clean line leaves the line reading
821    /// as undamaged and **drops its whole span silently**. Unreachable from the ten column-derived
822    /// sites today; guarded because that is precisely the failure ghostty's rule forbids.
823    ///
824    /// `row` is deliberately left to panic on the index, and that is **not** in tension with
825    /// `frame_damage` clamping a row fifty lines below (`prev_cursor.0.min(rows - 1)`). The two
826    /// rows are different kinds of thing under the same rule: `prev_cursor` is a *stale remembered*
827    /// coordinate that a shrinking resize may have put out of range, so clamping it repaints the
828    /// nearest surviving cell — a false positive. `row` here is a *live computed* index for the
829    /// mutation just made, so clamping it would damage a different line than the one that changed:
830    /// a false negative on the real line, which is the outcome the rule forbids.
831    fn damage_span(&mut self, row: usize, left: usize, right: usize) {
832        let last = self.grid.cols().saturating_sub(1);
833        debug_assert!(
834            left <= right && right <= last,
835            "damage_span({row}, {left}, {right}) is not a span inside [0, {last}]"
836        );
837        self.line_damage[row].expand(left.min(last), right.min(last));
838    }
839
840    /// The first-class scroll recorded since the last `reset_damage`, if any.
841    /// Suppressed while scrolled up — a content scroll must not shift the frozen
842    /// viewport.
843    ///
844    /// **The count is capped at the region's own height (#661).** Shifting a region
845    /// by more than its height moves every source row outside it, so the surplus
846    /// names nothing a consumer can act on — while it does overflow the wire's
847    /// `i16` and turn an up-scroll into a down-scroll: measured, a single
848    /// 32 770-byte `feed()` of newlines, no slow consumer required. Both references
849    /// that state a quantity at their own scroll sites clamp it to the same bound
850    /// (alacritty `term/mod.rs:773`, ghostty `Terminal.zig:2703`).
851    ///
852    /// The cap is here, on the **read**, and not on the accumulator in
853    /// `record_scroll`: a region that scrolls far and comes back then still reports
854    /// its true small net, instead of one walked down from a saturated value.
855    ///
856    /// A second, crate-internal bound backs it up, and it is representational rather
857    /// than semantic: [`MAX_ROWS`] is `u16::MAX` while the wire field is `i16`, so a
858    /// region can legally be taller than any count that field can hold. In that
859    /// corner the magnitude truncates. What it never does is wrap — a wrapped count
860    /// arrives with the opposite sign and the consumer shifts the wrong way, which is
861    /// the whole of #661.
862    pub fn scroll_delta(&self) -> Option<ScrollOp> {
863        if self.display_offset > 0 {
864            return None;
865        }
866        self.scroll.map(cap_scroll)
867    }
868
869    /// Build a serializable [`Frame`] from the current damage + grid + grapheme
870    /// pool (#6). `Full` ships every row; `Partial` ships the damaged spans. The
871    /// global side-table is remapped to **frame-local** indices — the engine pool
872    /// is append-only and leaky, so a frame carries only the clusters its cells
873    /// reference, renumbered, with each cell's `extra` rewritten to the local id.
874    pub fn frame(&self) -> Frame {
875        let cols = self.grid.cols();
876        let rows = self.grid.rows();
877        let (kind, line_spans): (FrameKind, Vec<(usize, usize, usize)>) = match self.frame_damage()
878        {
879            TermDamage::Full => (
880                FrameKind::Full,
881                (0..rows).map(|l| (l, 0, cols - 1)).collect(),
882            ),
883            TermDamage::Partial(lines) => (
884                FrameKind::Partial,
885                lines
886                    .into_iter()
887                    .map(|d| (d.line, d.left, d.right))
888                    .collect(),
889            ),
890        };
891
892        // Frame-local numbering for the hyperlink table (#26). Keyed by the URI's
893        // *identity* — the `Arc` pointer — so two cells sharing one open share one entry
894        // and a distinct open gets its own, which is exactly the semantics the pool
895        // index used to carry.
896        //
897        // Sized by this frame, not by session history (#628). It was
898        // `vec![0u32; hyperlink_pool.len() + 1]`, allocated and zeroed on **every**
899        // frame against every OSC 8 the session had ever seen — measured at 10 µs per
900        // frame with 100 000 opens retained. With the pool gone there is nothing left to
901        // size it by, and the cost disappears rather than being reduced.
902        let mut link_table: Vec<String> = Vec::new();
903        let mut link_remap: std::collections::HashMap<*const u8, u32> =
904            std::collections::HashMap::new();
905        // Cells come from the viewport at `display_offset`, not the live grid:
906        // viewport row `line` is absolute buffer line `top + line` (scrollback
907        // when scrolled up, the live grid when `display_offset == 0`, where
908        // `top == scrollback.len()` and this is identical to reading the grid).
909        // Without this, a wire consumer — cells reach it only through `frame()` —
910        // could never display scrollback (#48).
911        let top = self.scrollback.len() - self.display_offset;
912        let mut spans = Vec::with_capacity(line_spans.len());
913        for (line, left, right) in line_spans {
914            let mut cells = Vec::with_capacity(right - left + 1);
915            let mut combining = std::collections::BTreeMap::new();
916            let mut links = std::collections::BTreeMap::new();
917            let mut ucolors = std::collections::BTreeMap::new();
918            let row = self.abs_row(top + line);
919            let last_col = row.len().saturating_sub(1);
920            for col in left..=right {
921                let mut cell = row[col];
922                // Soft-wrap is a row property (#538), but the wire has no per-row slot — so it is
923                // *derived* back onto the last cell's WRAPLINE bit here, which keeps the format
924                // byte-identical and is why moving the storage needed no VERSION bump. The bit is
925                // therefore wire-only: on a live grid it is never set, and `Row::is_wrapped` is
926                // the question to ask.
927                if col == last_col && row.is_wrapped() {
928                    cell.insert_flags(CellFlags::WRAPLINE);
929                }
930                // Combining clusters and hyperlinks live in the row's maps; each
931                // tagged cell contributes its reference to the frame, recorded on
932                // the span by span-relative column (the cell holds only the bit).
933                if let Some(marks) = row.combining_at(col) {
934                    // The cluster itself, at its column — no side table and no index
935                    // since v14 (#621). Nothing interned these (this push was
936                    // unconditional), so the index only ever bought indirection.
937                    combining.insert(col - left, marks.to_vec());
938                }
939                if let Some(uri) = row.link_at(col) {
940                    // Number each distinct open once per frame (only referenced URIs
941                    // ship). The wire keeps its interning — #621 measured inlining a URI
942                    // per linked cell at +171…403% — so this stays an index into
943                    // `link_table`; only the *engine* side stopped being a table.
944                    let key = std::sync::Arc::as_ptr(uri) as *const u8;
945                    let next = link_table.len() as u32 + 1;
946                    let fidx = *link_remap.entry(key).or_insert_with(|| {
947                        link_table.push(uri.to_string());
948                        next
949                    });
950                    let fidx = core::num::NonZeroU32::new(fidx)
951                        .expect("frame-local link indices are 1-based");
952                    links.insert(col - left, fidx);
953                }
954                // Underline colour (SGR 58, #520): a colour reference, not a
955                // side-table index, so it rides the span inline. `ucolor_at` is
956                // flag-gated + already Default-filtered (the stamp only fires on an
957                // underlined cell), so a present entry is a real non-default colour.
958                if let Some(color) = row.ucolor_at(col) {
959                    ucolors.insert(col - left, color);
960                }
961                cells.push(cell);
962            }
963            spans.push(Span {
964                line: line as u16,
965                left: left as u16,
966                right: right as u16,
967                cells,
968                combining,
969                links,
970                ucolors,
971            });
972        }
973
974        Frame {
975            cols: cols as u16,
976            rows: rows as u16,
977            kind,
978            // The live cursor: position in screen coords + DECTCEM visibility.
979            // Reported, not drawn — the consumer renders the caret (#38).
980            cursor_row: self.cursor.row as u16,
981            cursor_col: self.cursor.col as u16,
982            // Hidden while scrolled up: the live cursor is off the frozen
983            // viewport, and a cell-invert caret would otherwise ink over
984            // scrollback. Consistent with the frozen-damage policy (no cursor
985            // damage is emitted while scrolled) and with xterm.js / alacritty,
986            // which hide the caret when it falls outside the visible rows (#48).
987            cursor_visible: self.cursor.visible && self.display_offset == 0,
988            cursor_shape: self.cursor.shape,
989            cursor_blink: self.cursor.blink,
990            // Viewport scroll position for the consumer's scrollbar (ADR-0013).
991            display_offset: self.display_offset as u32,
992            scrollback_len: self.scrollback.len() as u32,
993            evicted_total: self.evicted_total,
994            marker_epoch: self.marker_epoch,
995            // The mouse tracking mode as a routing mask (#129): which mouse events
996            // the app wants, derived from the protocol by the single source
997            // `encode_mouse` shares. The consumer routes app-vs-local on it.
998            mouse_events: self.mouse_protocol.wanted_events(),
999            // Alt-screen flag (#149): buffer-global state the consumer can't
1000            // derive from viewport damage; the a11y announce policy gates on it.
1001            alt_screen: self.on_alt,
1002            scroll: self.scroll_delta(),
1003            spans,
1004            link_table,
1005            // Interaction overlays projected onto this viewport (#108): the
1006            // engine-owned selection and the consumer-supplied search highlights,
1007            // each re-projected here so the scroll offset is applied once, by the
1008            // same authority that projects the cells.
1009            overlay: Overlay {
1010                selection: self.selection_range(),
1011                matches: self
1012                    .search_highlights
1013                    .iter()
1014                    .flat_map(|m| self.match_spans(m))
1015                    .collect(),
1016                // The consumer-designated active match (#428), projected through
1017                // the same `match_spans` math — usually also present in `matches`
1018                // above (the renderer's ranking resolves the overlap, #424), but
1019                // a span designation may sit OUTSIDE a capped hand-over (#436).
1020                active_match: self
1021                    .active_search_highlight
1022                    .as_ref()
1023                    .map(|m| self.match_spans(m))
1024                    .unwrap_or_default(),
1025                markers: self.marker_positions(),
1026                marker_lines: self.all_marker_lines(),
1027            },
1028        }
1029    }
1030
1031    /// Record a scroll of rows `[top, bottom]` by `count` (positive = up).
1032    ///
1033    /// Damage is indexed by row position, so it must follow the content the
1034    /// scroll just moved: rotate the bounds the same way and mark the newly
1035    /// exposed line fully damaged (it is new blank content for the consumer).
1036    fn record_scroll(&mut self, top: usize, bottom: usize, count: isize) {
1037        let cols = self.grid.cols();
1038        match count {
1039            1 => {
1040                self.line_damage[top..=bottom].rotate_left(1);
1041                self.line_damage[bottom] = LineBounds::fully_damaged(cols);
1042            }
1043            -1 => {
1044                self.line_damage[top..=bottom].rotate_right(1);
1045                self.line_damage[top] = LineBounds::fully_damaged(cols);
1046            }
1047            _ => {}
1048        }
1049        // Accumulate repeated scrolls of the same region into one op (flow
1050        // control). A *different* region cannot be expressed as one op, so
1051        // degrade to full rather than silently dropping the earlier scroll.
1052        match self.scroll {
1053            Some(op) if op.top == top && op.bottom == bottom => {
1054                self.scroll = Some(ScrollOp {
1055                    top,
1056                    bottom,
1057                    count: op.count + count,
1058                });
1059            }
1060            None => self.scroll = Some(ScrollOp { top, bottom, count }),
1061            Some(_) => {
1062                self.scroll = None;
1063                self.mark_fully_damaged();
1064            }
1065        }
1066    }
1067
1068    /// Number of lines currently held in scrollback history.
1069    /// Replace the word-boundary set used by Word (semantic) selection — the policy half
1070    /// of `selection_begin(.., SelectionType::Word)`, injected per ADR-0017 (core owns
1071    /// the buffer walk, the consumer owns which characters separate words). The default
1072    /// is [`DEFAULT_WORD_SEPARATORS`].
1073    ///
1074    /// **`' '` is forced into whatever you pass**, and that is not a convenience. A
1075    /// blank cell packs `' '`, so the space terminates the walk at the end of a row's
1076    /// written text *and* backstops the wide-pair rule: without it, double-clicking next
1077    /// to a wide separator starts the highlight on that separator's trailing spacer,
1078    /// bisecting the glyph, and the walk then runs to the row's end through the padding.
1079    /// Enforcing it here rather than in the walk is ghostty's shape — it prepends its own
1080    /// blank codepoint to every parsed set at the config intake (`config/Config.zig`,
1081    /// *"Always include null as first boundary"*), so `selectWord` never has to.
1082    ///
1083    /// A consequence worth knowing before you narrow the set: this predicate is the only
1084    /// thing bounding the walk, so a set that omits the separators actually present in
1085    /// the buffer makes one double-click walk the whole soft-wrap run (see #206).
1086    pub fn set_word_separators(&mut self, separators: &str) {
1087        let mut set: String = separators.to_owned();
1088        if !set.contains(' ') {
1089            set.push(' ');
1090        }
1091        self.word_separators = set;
1092    }
1093
1094    /// The word-boundary set currently in force — what was passed to
1095    /// [`Term::set_word_separators`] plus the forced `' '`, or
1096    /// [`DEFAULT_WORD_SEPARATORS`] if it was never called.
1097    pub fn word_separators(&self) -> &str {
1098        &self.word_separators
1099    }
1100
1101    pub fn scrollback_len(&self) -> usize {
1102        self.scrollback.len()
1103    }
1104
1105    /// Whether the app has an open synchronized-output block (DEC ?2026, #73).
1106    pub fn synchronized_output(&self) -> bool {
1107        self.synchronized_output
1108    }
1109
1110    /// Whether the app enabled color-scheme-update notifications (DEC ?2031, #85).
1111    pub fn color_scheme_updates(&self) -> bool {
1112        self.color_scheme_updates
1113    }
1114
1115    /// Whether the app enabled grapheme-cluster mode (DEC ?2027, #295): emoji ZWJ / skin-tone /
1116    /// flag / VS16 sequences are clustered into one cell. OFF (default) is per-char, wcwidth-compat.
1117    pub fn grapheme_clustering(&self) -> bool {
1118        self.grapheme_clustering
1119    }
1120
1121    /// Whether the app enabled win32-input-mode (DEC ?9001, #86). The engine does
1122    /// not encode the raw key-records itself (a non-goal); a ConPTY consumer reads
1123    /// this to decide whether to emit them.
1124    pub fn win32_input_mode(&self) -> bool {
1125        self.win32_input_mode
1126    }
1127
1128    /// Queue a color-scheme report (`CSI ? 997 ; 1 n` dark / `; 2 n` light) on the
1129    /// reply channel. The consumer calls this to answer a `ColorSchemeQuery` event
1130    /// or, when its scheme changes and `color_scheme_updates()` is set, to send the
1131    /// unsolicited notification. The engine never stores or interprets the scheme
1132    /// (#85).
1133    pub fn report_color_scheme(&mut self, dark: bool) {
1134        let ps = if dark { 1 } else { 2 };
1135        self.replies
1136            .extend_from_slice(format!("\x1b[?997;{ps}n").as_bytes());
1137    }
1138
1139    /// OSC 10/11 set/query the default fg/bg, stacking the `;`-separated specs
1140    /// across the `[foreground, background]` slots — xterm's
1141    /// `_setOrReportSpecialColor` offset loop (#137). OSC 10 starts at slot 0
1142    /// (fg → bg), OSC 11 at slot 1 (bg). A `?` spec is a query. xterm's 3rd slot
1143    /// (cursor / OSC 12) is out of scope, so the stack caps at two slots — extra
1144    /// specs are dropped.
1145    fn special_color(&mut self, params: &[&[u8]], start: usize) {
1146        for (i, &spec) in params[1..].iter().enumerate() {
1147            let event = match start + i {
1148                0 if spec == b"?" => TermEvent::QueryForeground,
1149                0 => TermEvent::SetForeground(String::from_utf8_lossy(spec).into_owned()),
1150                1 if spec == b"?" => TermEvent::QueryBackground,
1151                1 => TermEvent::SetBackground(String::from_utf8_lossy(spec).into_owned()),
1152                _ => break, // past [fg, bg] — cursor (OSC 12) unsupported
1153            };
1154            self.events.push(event);
1155        }
1156    }
1157
1158    /// Answer an OSC 4 palette query (#122): wrap the consumer-supplied spec for
1159    /// `index` in the OSC 4 reply envelope, ST-terminated.
1160    pub fn report_palette_color(&mut self, index: u8, spec: &str) {
1161        self.replies
1162            .extend_from_slice(format!("\x1b]4;{index};{spec}\x1b\\").as_bytes());
1163    }
1164
1165    /// Answer an OSC 10 foreground query (#122): wrap the consumer-supplied spec
1166    /// in the OSC 10 reply envelope, ST-terminated.
1167    pub fn report_foreground(&mut self, spec: &str) {
1168        self.replies
1169            .extend_from_slice(format!("\x1b]10;{spec}\x1b\\").as_bytes());
1170    }
1171
1172    /// Answer an OSC 11 background query (#122): wrap the consumer-supplied spec
1173    /// (it knows its palette) in the OSC 11 reply envelope, ST-terminated. The
1174    /// engine formats the envelope only — it never knows the colour.
1175    pub fn report_background(&mut self, spec: &str) {
1176        self.replies
1177            .extend_from_slice(format!("\x1b]11;{spec}\x1b\\").as_bytes());
1178    }
1179
1180    /// The cells of visible row `i` (0..rows) at the current scroll position.
1181    /// The viewport windows into `[history.. ; screen..]`: rows above
1182    /// `scrollback.len()` come from history, the rest from the live screen.
1183    pub fn viewport_line(&self, i: usize) -> &[Cell] {
1184        let top = self.scrollback.len() - self.display_offset;
1185        let idx = top + i;
1186        if idx < self.scrollback.len() {
1187            &self.scrollback[idx]
1188        } else {
1189            self.grid.row(idx - self.scrollback.len())
1190        }
1191    }
1192
1193    /// Scroll the viewport up by `n` lines into history (clamped to the oldest).
1194    pub fn scroll_up(&mut self, n: usize) {
1195        let target = (self.display_offset + n).min(self.scrollback.len());
1196        self.set_display_offset(target);
1197    }
1198
1199    /// Scroll the viewport down by `n` lines toward the live screen.
1200    pub fn scroll_down(&mut self, n: usize) {
1201        let target = self.display_offset.saturating_sub(n);
1202        self.set_display_offset(target);
1203    }
1204
1205    /// Jump the viewport back to the live screen (follow the bottom).
1206    pub fn scroll_to_bottom(&mut self) {
1207        self.set_display_offset(0);
1208    }
1209
1210    /// Move the viewport. A user scroll changes which lines are visible, so the
1211    /// whole viewport is repainted (full damage) when the offset actually moves.
1212    fn set_display_offset(&mut self, offset: usize) {
1213        // The alt screen has no scrollback to view; scroll intents are no-ops.
1214        if self.on_alt {
1215            return;
1216        }
1217        if offset != self.display_offset {
1218            self.display_offset = offset;
1219            self.mark_fully_damaged();
1220        }
1221    }
1222
1223    // ---- selection -----------------------------------------------------------
1224
1225    /// Map a viewport cell `(row, col)` to an absolute buffer point. The top
1226    /// visible row is `scrollback.len() - display_offset`, so viewport row `i`
1227    /// is that plus `i`.
1228    ///
1229    /// **`row` is clamped to the last visible row, and that is the anchor's whole defence
1230    /// against a caller that hands it one past the end (#660).** The row arrives from a
1231    /// pointer position, so it is off the end whenever a drag leaves the grid — including
1232    /// the ordinary case where the container is a sub-cell remainder taller than
1233    /// `rows × cell_height` and a click lands in that strip. Stored unclamped it does not
1234    /// fail here: it detonates later, in whichever read walks the selection
1235    /// (`selection_range`, `selection_text`, the word extents), so the stack trace accuses
1236    /// the reader rather than the caller — the delay `damage_span`'s doc describes and
1237    /// #536 was filed about.
1238    ///
1239    /// **Clamped, and deliberately *not* `debug_assert`ed** — which is where this differs
1240    /// from `damage_span`, whose split it otherwise mirrors. That function is engine-
1241    /// internal, so an out-of-range span there is a justerm bug and the assert names its
1242    /// producer. This one is reached from `Engine::selection_begin` / `selection_extend`,
1243    /// whose documented input is *"what a mouse event carries"* — and a pointer leaves the
1244    /// grid whenever a drag does, so a row past the end is **ordinary input, not a defect**.
1245    /// Asserting on it would panic a consumer's debug build for a legal gesture.
1246    ///
1247    /// Clamping is also what every producer already wants: a drag past the bottom edge
1248    /// selects to the edge. alacritty clamps at the same boundary (`Point::grid_clamp`);
1249    /// ghostty's pins cannot express an out-of-range row at all.
1250    ///
1251    /// **This is a backstop, and since #667 nothing in the family relies on it.** The
1252    /// sentence here used to read that justerm-web's selection converter did *not* clamp,
1253    /// which was what made an unclamped row reachable in the shipped stack rather than
1254    /// only in theory; that converter now bounds both axes at its own seam, as all three
1255    /// references do at theirs. The claim is retracted rather than deleted because it was
1256    /// the record of why this clamp was worth adding.
1257    ///
1258    /// **`col` is bounded the same way, and against the grid rather than the line
1259    /// (#671).** #660 reasoned about the row alone and this function passed the column
1260    /// through, which was not a smaller version of the same gap — it was a *different*
1261    /// one, because the two axes are consumed differently downstream. A column reaches
1262    /// `resolve`, where the `Side` decides whether it gets a `+ 1`, and the two readers
1263    /// then bound only one end each: `selection_range`'s Linear arm clips `right_excl`
1264    /// and not `left`, `selection_text`'s Block arm clips `hi` and not `from`. So
1265    /// `Side::Right` was already safe by accident (its `+ 1` lands past the end and the
1266    /// clip catches it) while **`Side::Left` had no `+ 1` to clip**, and the raw column
1267    /// survived into `left` — silently deleting the anchor's own row from both the
1268    /// projection and the copy. `usize::MAX` was the one value that panicked instead,
1269    /// on the `+ 1`.
1270    ///
1271    /// Bounding here rather than in `resolve` keeps one site answering "what does a
1272    /// viewport coordinate mean", and makes both axes total for the same reason; the
1273    /// alternative — clamping at each `+ 1` — is five sites for one rule. alacritty
1274    /// bounds both endpoints' columns in `Selection::to_range` *before* its own side
1275    /// arithmetic and pairs the `+ 1` with an explicit *"column == columns → wrap to the
1276    /// next line"*; justerm reaches that same outcome through the reader's
1277    /// `right_excl > left`, which is why an **in-range** `Side::Right` on the last column
1278    /// still starts the selection on the following row and is pinned as unchanged.
1279    ///
1280    /// The grid, not `abs_line(..).len()`, is the bound: `SelectionType::Line` already
1281    /// resolves `to` as `grid.cols()`, so the whole type works in grid coordinates and a
1282    /// short line must not shrink a selection that reaches past it.
1283    ///
1284    /// **`resolve`'s five `+ 1`s stay unguarded, and that is sound only while every stored
1285    /// anchor arrives through here.** The completeness pass enumerated the writers: the
1286    /// three coordinate fixups move `.line` or write columns that are in range by
1287    /// construction, `resize`'s primary branch re-clamps the reflowed points (#562) and its
1288    /// alt branch drops the selection outright (#660), and `Term::resize` is the only writer
1289    /// of `grid.cols()`. So no path strands a column that was clamped here. The condition is
1290    /// **a fourth writer of `self.selection`** — one that builds an `Anchor` without this
1291    /// function would put `resolve` back in reach of its own arithmetic.
1292    fn viewport_to_abs(&self, row: usize, col: usize) -> BufferPoint {
1293        let top = self.scrollback.len() - self.display_offset;
1294        let last = self.grid.rows().saturating_sub(1);
1295        BufferPoint {
1296            line: top + row.min(last),
1297            col: col.min(self.grid.cols().saturating_sub(1)),
1298        }
1299    }
1300
1301    /// The hyperlink **URI** at **screen** `(row, col)` (the live grid), or `None` —
1302    /// flag-gated through the row's link map. Since #628 the map holds the URI itself,
1303    /// so there is no index and no second call to resolve one.
1304    /// Mirrors `grid().cell(row, col)`.
1305    pub(crate) fn screen_link_at(&self, row: usize, col: usize) -> Option<Hyperlink> {
1306        self.grid
1307            .row_ref(row)
1308            .link_at(col)
1309            .cloned()
1310            .map(Hyperlink::new)
1311    }
1312
1313    /// The underline colour (SGR 58, #520) at screen `(row, col)`, as a theme-agnostic
1314    /// reference. `Color::Default` means "follow the fg" — the common case, and what an
1315    /// unset cell returns. Mirror of [`Term::screen_link_at`].
1316    pub(crate) fn screen_underline_color_at(&self, row: usize, col: usize) -> Color {
1317        self.grid.row_ref(row).ucolor_at(col).unwrap_or_default()
1318    }
1319
1320    /// The hyperlink URI at **viewport** `(row, col)` (visible window, history
1321    /// included at the current scroll), or `None`. Mirrors `viewport_line(row)`.
1322    pub(crate) fn viewport_link_at(&self, row: usize, col: usize) -> Option<Hyperlink> {
1323        let idx = self.scrollback.len() - self.display_offset + row;
1324        self.abs_row(idx).link_at(col).cloned().map(Hyperlink::new)
1325    }
1326
1327    /// Resize the screen to `cols` x `rows`. Rows dropped off the top (on shrink)
1328    /// enter scrollback. Column reflow of soft-wrapped lines is layered on top
1329    /// separately (#7). The whole screen is damaged.
1330    ///
1331    /// `cols` is widened to [`MIN_COLUMNS`] — a narrower screen cannot hold a
1332    /// width-2 glyph, so it is clamped rather than represented (#547).
1333    pub fn resize(&mut self, cols: usize, rows: usize) {
1334        // A terminal is never 0-tall; clamp so the math below (rows - 1) can't
1335        // underflow. Columns clamp to MIN_COLUMNS, not 1: chunking by cols needs a
1336        // non-zero width, but a *wide glyph* needs two (#547). The ceiling is the frame
1337        // header's u16, clamped here as well as in the constructor — a ceiling that held
1338        // only until the first resize is the gap `new` had against this function's own row
1339        // floor before #547 (#621).
1340        let cols = cols.clamp(MIN_COLUMNS, MAX_COLUMNS);
1341        let rows = rows.clamp(1, MAX_ROWS);
1342        let old_cols = self.grid.cols();
1343        let old_rows = self.grid.rows();
1344        let limit = self.scrollback_limit;
1345
1346        // A reflow rewrites marker lines outright, at three separate sites below and in
1347        // two different frames of reference — so a held index goes stale in a way no
1348        // offset repairs (#490). Bumped **here**, once, rather than beside each rewrite:
1349        // this function is the only way any of them runs, and a per-site obligation is
1350        // the shape `docs/map/territory/marker.md` already records as a known hole for
1351        // the alt guard. Gated on a *dimension change* as well as on there being a marker:
1352        // `resize` has no early return for unchanged geometry, and `justerm-web`'s fit
1353        // loop re-asserts the size every frame (`ResizePort` states no idempotency
1354        // guarantee), so an ungated bump is a full re-pull per frame — measured at 100
1355        // bumps for 100 no-op resizes.
1356        if (cols != old_cols || rows != old_rows)
1357            && (!self.normal_markers.is_empty() || !self.alt_markers.is_empty())
1358        {
1359            self.bump_marker_epoch();
1360        }
1361
1362        // A reflow moves match coordinates (and can change the match set), so the
1363        // query-derived highlights are invalidated; the consumer re-searches at
1364        // the new width. The selection re-anchors below — it is user-authored.
1365        self.invalidate_search_highlights();
1366
1367        // ...except on the alt screen, where a *shrink* drops the selection (#660). The
1368        // primary pane carries user-authored points through `reflow_pane` and gets them back
1369        // mapped to the new geometry; on alt the selection is dropped instead.
1370        //
1371        // **This is a policy choice, not a capability limit, and the difference matters
1372        // because the first version of this comment got it wrong.** It claimed the alt pane
1373        // has "nothing to re-anchor through" — measurably false: the alt branch below makes
1374        // its own `reflow_pane` call with tracked points and already uses the returned
1375        // `extras` / `evicted` to rotate and dispose alt *markers*. `reflow: false` disables
1376        // the column re-split, not the point tracking. Installing a false "cannot" as the
1377        // justification for fixing a false "cannot" is precisely the failure #660 is.
1378        //
1379        // What actually makes rotation the wrong trade here is that a marker and a selection
1380        // are different shapes. A marker is one point with a binary fate — survive, or be
1381        // disposed with an event. A selection is two *ordered* endpoints, so when a shrink
1382        // destroys the row under one of them and not the other, "dispose" has no meaning and
1383        // the correct behaviour is the clamp-and-overtake policy `selection_rotate_region`
1384        // implements for scrolls. Reusing the marker path would give a selection whose ends
1385        // moved by different rules; writing the second policy is a feature, not this fix.
1386        // And on a column shrink an alt anchor would additionally need the `.min(cols - 1)`
1387        // the primary branch applies, which alt markers deliberately do *not* take.
1388        //
1389        // Both references drop rather than rotate on the axis they consider unsafe —
1390        // alacritty on a width change (`term/mod.rs:680-682`), xterm.js on a height change,
1391        // its comment naming this bug class outright (`SelectionService.ts:156-160`).
1392        //
1393        // **Any geometry change, not just a shrink — and the `!=` is load-bearing in the
1394        // direction that looks wasteful.** The obvious refinement is to keep the selection on
1395        // a *grow*, since the alt pane pads rather than moving content, so no anchor looks
1396        // invalidated. That was tried and a randomised sweep refuted it in one run: an alt
1397        // resize also reflows the **primary** pane below, and on the alt screen `scrollback`
1398        // *is* that primary history — so `scrollback.len()` moves under an anchor whose
1399        // absolute line was measured from the old base, even when the alt grid itself does not
1400        // move at all. `selection_text` then walks off the end. The branch below already knows
1401        // this and converts alt *markers* through `old_base` → new base for exactly that
1402        // reason ("the primary scrollback below may rewrap and change length even when the alt
1403        // grid does not move"); the selection has no such conversion, so the geometry change
1404        // is the honest trigger.
1405        //
1406        // Rebasing instead of dropping is the better answer and is not done here: a grow has
1407        // no destroyed row, so both endpoints could shift by the base delta unambiguously —
1408        // but a *shrink* still needs the two-endpoint policy below, and shipping half of it
1409        // would leave the two axes behaving differently for no stated reason.
1410        //
1411        // The exact no-op is still not a resize: nothing reflows when neither axis moves, so
1412        // the base cannot shift, and a consumer that re-asserts its size every frame (a
1413        // `fit()` loop) must not make selecting on the alt screen impossible.
1414        if self.on_alt && (cols != old_cols || rows != old_rows) {
1415            self.selection = None;
1416        }
1417
1418        // Both screens are resized. Scrollback pairs with the PRIMARY screen
1419        // (whichever is active) — the alt screen has no history of its own.
1420        // `reflow: true` is the *primary* pane's setting and is deliberately a constant, **not**
1421        // `self.autowrap`. ghostty gates its equivalent on DECAWM — `.reflow =
1422        // self.modes.get(.wraparound)` (`terminal/Terminal.zig` `resize`) — and the reading that
1423        // makes that coherent is the one this file just accepted for the alt screen: an application
1424        // that turns autowrap off is placing lines itself, so its content is a layout rather than a
1425        // flow, and re-wrapping it changes what it drew.
1426        //
1427        // Not followed here, for three reasons, and they are recorded rather than filed because
1428        // nothing observable is known to break either way (measured: with DECAWM off, a full
1429        // 6-column row still re-splits into two rows at width 3 exactly as it does with DECAWM on;
1430        // the difference against ghostty is that ghostty truncates that row instead).
1431        //
1432        // - **The wrap flag is not a lie.** `Row::is_wrapped` means "this row continues into the
1433        //   next", which after a re-split is simply true. DECAWM governs the **write** path — where
1434        //   a glyph goes when the cursor is at the last column — not how stored content is laid out
1435        //   again later. Dropping the flag would make `"abcdef"` extract as `"abc\ndef"`.
1436        // - **The mode is global and momentary; the buffer is neither.** DECAWM is read at resize
1437        //   time and would decide the fate of history written under the opposite setting. A TUI that
1438        //   turns it off while drawing would, on a resize landing in that window, leave every
1439        //   properly wrapped line in scrollback un-reflowed.
1440        // - **It costs content.** Not reflowing truncates each row to the new width, so the tail of
1441        //   a long line leaves the grid. justerm keeps it.
1442        //
1443        // There is no per-row signal to be finer with: a row written under DECAWM off and a row that
1444        // merely ended early are both simply unwrapped. "Do not re-split an unwrapped logical line"
1445        // would break ordinary reflow, since a line that exactly fills its width carries no wrap
1446        // flag either.
1447        let dims = ReflowDims {
1448            old_cols,
1449            cols,
1450            rows,
1451            limit,
1452            reflow: true,
1453        };
1454        let scrollback = std::mem::take(&mut self.scrollback);
1455        if self.on_alt {
1456            // Active = alt (cursor, no scrollback); inactive = primary. No selection anchors
1457            // to track here — but *because the geometry change above dropped them* (#660),
1458            // not because there cannot be any. This comment used to read "selection is
1459            // primary-only and cleared on alt enter": the clearing is real
1460            // (`enter_alt_screen` / `leave_alt_screen`, "a selection cannot survive a screen
1461            // swap") and says nothing about a selection made *while* the alt screen is up,
1462            // which is the ordinary act of copying out of vim. A premise that held at one
1463            // instant was read as an invariant holding for the screen's lifetime.
1464            // Alt markers still ride this pane, but **not because it reflows** — since #567 it does
1465            // not, so a marker's content no longer moves under it and the old reason here ("justerm
1466            // column-reflows the alt grid, so a marker must follow its content") is retracted. What
1467            // they ride it for is the row *fit*: a shrink still drops rows off the top, and a marker
1468            // on one of those has left a screen with no history to hold it. Their stored line is
1469            // `base + alt_row` (base = primary scrollback len), so convert to alt-local rows here
1470            // and re-anchor on the new base afterward — the primary scrollback below may rewrap and
1471            // change length even when the alt grid does not move at all.
1472            let old_base = scrollback.len();
1473            let mut alt_pts: Vec<(usize, usize)> = self
1474                .alt_markers
1475                .iter()
1476                .map(|m| (m.line - old_base, m.col))
1477                .collect();
1478            // Alt-scoped tracked points are stored on the same `base + alt_row`
1479            // frame as the alt markers, so they convert and come back the same way
1480            // (#691).
1481            let alt_tracked_off = alt_pts.len();
1482            alt_pts.extend(
1483                self.alt_tracked
1484                    .iter()
1485                    .map(|p| (p.line.saturating_sub(old_base), p.col)),
1486            );
1487            let alt = self.grid.take_lines();
1488            let r_alt = reflow_pane(
1489                alt,
1490                VecDeque::new(),
1491                self.cursor.point(),
1492                &alt_pts,
1493                ReflowDims {
1494                    limit: 0,
1495                    reflow: false,
1496                    ..dims
1497                },
1498            );
1499            self.grid.set_screen(r_alt.screen, cols, rows);
1500            self.cursor.set_point(r_alt.cursor, rows, cols);
1501
1502            // Primary is inactive here, but markers anchor *primary* content, so
1503            // they reflow with it. There is no *primary* selection to carry alongside them —
1504            // `switch_to_alt` nulls it before the alt screen exists, so one cannot coexist
1505            // with `on_alt` — which is a different statement from the "cleared on alt enter"
1506            // this comment used to make, and the difference is #660: that clearing says
1507            // nothing about the *alt* selection the branch above now drops.
1508            // `(line, col)`, not `(line, 0)`: the column is what bounds OSC-133 command-text
1509            // extraction (#166), and discarding it here truncated the recorded command for any
1510            // resize taken while a full-screen app was up. The primary branch below has always
1511            // passed and restored both; this one is the sibling that did not.
1512            let mut marker_pts: Vec<(usize, usize)> = self
1513                .normal_markers
1514                .iter()
1515                .map(|m| (m.line, m.col))
1516                .collect();
1517            // Primary-scoped tracked points anchor primary content too, so they
1518            // reflow with this pane even though the alt screen is the active one
1519            // (#691) — the same reason the markers above do.
1520            let tracked_off = marker_pts.len();
1521            marker_pts.extend(self.normal_tracked.iter().map(|p| (p.line, p.col)));
1522            let primary = self.alt_grid.take_lines();
1523            let r = reflow_pane(
1524                primary,
1525                scrollback,
1526                self.saved_cursor.point(),
1527                &marker_pts,
1528                dims,
1529            );
1530            self.alt_grid.set_screen(r.screen, cols, rows);
1531            self.scrollback = r.scrollback;
1532            self.saved_cursor.set_point(r.cursor, rows, cols);
1533            for (i, m) in self.normal_markers.iter_mut().enumerate() {
1534                m.line = r.extras[i].0.saturating_sub(r.evicted);
1535                m.col = r.extras[i].1;
1536            }
1537            // Released rather than clamped when the reflow evicted its line — see
1538            // the primary-active branch for why the two loops differ (#691).
1539            let mut ti = 0;
1540            let evicted = r.evicted;
1541            let extras = &r.extras;
1542            self.normal_tracked.retain_mut(|p| {
1543                let (line, col) = extras[tracked_off + ti];
1544                ti += 1;
1545                match line.checked_sub(evicted) {
1546                    Some(line) => {
1547                        p.line = line;
1548                        p.col = col;
1549                        true
1550                    }
1551                    None => false,
1552                }
1553            });
1554            // The alt half lives in a different frame from the primary one above, and adding the
1555            // two was the defect: `extras` count from the top of the alt pane's own history, and
1556            // the alt screen **has** no history — every row the shrink pushed off the top is gone,
1557            // not archived. Passing the primary's scrollback limit made `reflow_pane` keep them,
1558            // so a rows-only resize (no reflow at all) reported a marker four lines past the end of
1559            // the buffer. The limit is `0` here because that is what an alt screen's history is.
1560            //
1561            // A marker whose row went with it is **disposed**, matching what the alt screen already
1562            // does when a row leaves by scrolling (`markers_rotate_region` fires `MarkerDisposed`
1563            // for the marker on the departing edge). Silently relocating it to row 0 would put a
1564            // decoration on content it was never attached to.
1565            let new_base = self.scrollback.len();
1566            let mut alt_disposed = Vec::new();
1567            let mut i = 0;
1568            self.alt_markers.retain_mut(|m| {
1569                let (line, col) = r_alt.extras[i];
1570                i += 1;
1571                match line.checked_sub(r_alt.evicted) {
1572                    Some(row) if row < rows => {
1573                        m.line = new_base + row;
1574                        // The column rides along for the same reason as the primary half, but
1575                        // **unpinned**: `add_marker` always passes column 0, and I could not get an
1576                        // OSC-133 mark (the only column-bearing kind) to appear in `alt_markers` at
1577                        // all. That is a gap in my knowledge, not evidence the column is
1578                        // structurally zero — `push_marker` takes a column and `markers_mut` routes
1579                        // by active buffer, so the field is reachable in principle. Carrying it
1580                        // keeps the two halves stating one invariant; if the alt path really is
1581                        // marker-column-free, this line is a no-op.
1582                        m.col = col;
1583                        true
1584                    }
1585                    _ => {
1586                        alt_disposed.push(m.id);
1587                        false
1588                    }
1589                }
1590            });
1591            for id in alt_disposed {
1592                self.events.push(TermEvent::MarkerDisposed(id));
1593            }
1594            // The alt half's tracked points, on the alt marker's rule: a row the
1595            // shrink pushed off an unarchived screen is gone, so the point is
1596            // released rather than relocated (#691).
1597            //
1598            // The `row < rows` half of that guard is **unproven, deliberately kept**.
1599            // A mutation dropping it stays green, and a sweep of 324 alt resizes
1600            // (rows 1..6 x cols {4,10,30}, both directions, a point on every alt row
1601            // at columns 0 / 1 / cols-1 / cols plus one past the pane) never reached
1602            // it — the alt fit runs with `reflow: false`, so a surviving row always
1603            // maps below the new row count. That is a measured *validity condition*,
1604            // not a proof of unreachability, and the marker loop above carries the
1605            // same bound: parity is the reason it stays.
1606            let mut ai = 0;
1607            let alt_extras = &r_alt.extras;
1608            let alt_evicted = r_alt.evicted;
1609            self.alt_tracked.retain_mut(|p| {
1610                let (line, col) = alt_extras[alt_tracked_off + ai];
1611                ai += 1;
1612                match line.checked_sub(alt_evicted) {
1613                    Some(row) if row < rows => {
1614                        p.line = new_base + row;
1615                        p.col = col;
1616                        true
1617                    }
1618                    _ => false,
1619                }
1620            });
1621        } else {
1622            // Active = primary (cursor, scrollback); inactive = alt. The selection
1623            // anchors (absolute) reflow alongside the cursor so they keep their
1624            // content across a column change.
1625            let sel_pts: Vec<(usize, usize)> = self
1626                .selection
1627                .as_ref()
1628                .map(|s| {
1629                    vec![
1630                        (s.anchor.point.line, s.anchor.point.col),
1631                        (s.focus.point.line, s.focus.point.col),
1632                    ]
1633                })
1634                .unwrap_or_default();
1635            // Markers reflow on the same pane by (line, col) — the column matters
1636            // for OSC-133 command marks, whose B/C columns bound the extracted
1637            // command text (#166). They ride after the selection points so each
1638            // reads its own reflowed slot back from `extras` (#118).
1639            let mut pts = sel_pts.clone();
1640            pts.extend(self.normal_markers.iter().map(|m| (m.line, m.col)));
1641            // Tracked points ride after the markers, reading their own slots back
1642            // by the same offset idiom (#691).
1643            let tracked_off = pts.len();
1644            pts.extend(self.normal_tracked.iter().map(|p| (p.line, p.col)));
1645
1646            let primary = self.grid.take_lines();
1647            let r = reflow_pane(primary, scrollback, self.cursor.point(), &pts, dims);
1648            self.grid.set_screen(r.screen, cols, rows);
1649            self.scrollback = r.scrollback;
1650            self.cursor.set_point(r.cursor, rows, cols);
1651            if let Some(sel) = &mut self.selection {
1652                // A selection endpoint is **UI** state, so its reading of `col == cols` (#562) is
1653                // neither the cursor's nor a mark's: it is clamped into the grid. UI state may not
1654                // move the application's content to make room for itself — the criterion that
1655                // decided this, and the one ghostty encodes by clamping every non-cursor pin before
1656                // it can widen a row (`terminal/PageList.zig:1576-1585` @ `e6e26e1`) while leaving
1657                // the cursor pin unclamped (`:1602-1606`).
1658                sel.anchor.point = BufferPoint {
1659                    line: r.extras[0].0.saturating_sub(r.evicted),
1660                    col: r.extras[0].1.min(cols - 1),
1661                };
1662                sel.focus.point = BufferPoint {
1663                    line: r.extras[1].0.saturating_sub(r.evicted),
1664                    col: r.extras[1].1.min(cols - 1),
1665                };
1666            }
1667            let marker_off = sel_pts.len();
1668            for (i, m) in self.normal_markers.iter_mut().enumerate() {
1669                m.line = r.extras[marker_off + i].0.saturating_sub(r.evicted);
1670                m.col = r.extras[marker_off + i].1;
1671            }
1672            // A point whose reflowed line fell inside the evicted prefix has left
1673            // the buffer, so it is released rather than clamped to line 0 (#691) —
1674            // deliberately unlike the marker loop above, which saturates. A marker
1675            // that lands on the wrong line still paints something the consumer can
1676            // see and correct; a tracked point is *asked* for a position, and
1677            // answering with content the caller never anchored to is the exact
1678            // failure this whole module exists to remove.
1679            let mut i = 0;
1680            let evicted = r.evicted;
1681            let extras = &r.extras;
1682            self.normal_tracked.retain_mut(|p| {
1683                let (line, col) = extras[tracked_off + i];
1684                i += 1;
1685                match line.checked_sub(evicted) {
1686                    Some(line) => {
1687                        p.line = line;
1688                        p.col = col;
1689                        true
1690                    }
1691                    None => false,
1692                }
1693            });
1694
1695            let alt = self.alt_grid.take_lines();
1696            let r = reflow_pane(
1697                alt,
1698                VecDeque::new(),
1699                (0, 0),
1700                &[],
1701                ReflowDims {
1702                    limit: 0,
1703                    reflow: false,
1704                    ..dims
1705                },
1706            );
1707            self.alt_grid.set_screen(r.screen, cols, rows);
1708        }
1709
1710        // Carry the deferred wrap across the resize — it is *cursor* state, and it used to be
1711        // reset here alongside the margins and tab stops, which are screen configuration and do
1712        // legitimately reset. Losing it meant the next byte overwrote the last glyph instead of
1713        // wrapping past it, on a column resize *and* on a rows-only one where no reflow runs at
1714        // all.
1715        //
1716        // The flag means "the cursor is logically one past the column it sits on". Where the
1717        // reflow leaves it somewhere other than the last column that logical position **is**
1718        // representable, so the flag is cleared and the cursor takes it instead — ghostty's rule,
1719        // stated in its own words for the saved cursor: *"If we had pending wrap set and we're no
1720        // longer at the end of the line, we unset the pending wrap and move the cursor to reflect
1721        // the correct next position"* (`terminal/Screen.zig:2092-2098` @ `e6e26e1`). alacritty
1722        // reaches the same place from the other side, lifting the cursor outside the grid before
1723        // reflowing and clamping it back afterwards (`grid/resize.rs:113-116`, `:248-251`,
1724        // `:173-177` @ `852e971`); xterm.js needs no rule because `x === cols` is representable.
1725        //
1726        // `col + 1` cannot overflow the row: the branch requires `col != cols - 1`, and `col` is
1727        // already clamped below `cols` by `Cursor::set_point`.
1728        if self.cursor.pending_wrap && self.cursor.col != cols - 1 {
1729            self.cursor.pending_wrap = false;
1730            self.cursor.col += 1;
1731        }
1732        self.scroll_top = 0;
1733        self.scroll_bottom = rows - 1;
1734        self.tabs = default_tabs(cols);
1735        self.display_offset = self.display_offset.min(self.scrollback.len());
1736
1737        // Damage tracking is sized to the screen; a resize repaints everything,
1738        // so drop any pending scroll op (it points at the old rows).
1739        self.line_damage = vec![LineBounds::undamaged(cols); rows];
1740        self.scroll = None;
1741        self.mark_fully_damaged();
1742    }
1743
1744    pub fn grid(&self) -> &Grid {
1745        &self.grid
1746    }
1747
1748    pub fn cursor(&self) -> &Cursor {
1749        &self.cursor
1750    }
1751
1752    /// Whether bracketed-paste mode (DEC ?2004) is enabled. The input encoder
1753    /// (#11) reads this to decide whether to wrap pasted text in markers.
1754    pub fn bracketed_paste(&self) -> bool {
1755        self.bracketed_paste
1756    }
1757
1758    // ---- input encoding (#11) ------------------------------------------------
1759
1760    /// Encode a key event to bytes using the active cursor-key mode (DECCKM)
1761    /// and the kitty keyboard-protocol flags (`encode_key` consults both).
1762    pub fn encode_key(&self, ev: KeyEvent) -> Option<Vec<u8>> {
1763        encode_key(
1764            &ev,
1765            self.app_cursor_keys,
1766            self.application_keypad,
1767            self.kitty_flags,
1768        )
1769    }
1770
1771    /// Encode a mouse event using the active tracking mode + encoding. `None`
1772    /// when reporting is off or the event is filtered by the mode.
1773    pub fn encode_mouse(&self, ev: MouseEvent) -> Option<Vec<u8>> {
1774        encode_mouse(&ev, self.mouse_protocol, self.mouse_encoding)
1775    }
1776
1777    /// Encode pasted text, wrapping it in bracketed-paste markers when ?2004 is
1778    /// on.
1779    pub fn encode_paste(&self, text: &str) -> Vec<u8> {
1780        encode_paste(text, self.bracketed_paste)
1781    }
1782
1783    /// Encode a focus change (`CSI I`/`CSI O`), or `None` when focus reporting
1784    /// (?1004) is off.
1785    pub fn encode_focus(&self, focused: bool) -> Option<Vec<u8>> {
1786        encode_focus(focused, self.focus_events)
1787    }
1788
1789    /// Take the consumer events queued since the last drain, emptying the queue.
1790    pub fn drain_events(&mut self) -> Vec<TermEvent> {
1791        std::mem::take(&mut self.events)
1792    }
1793
1794    /// Take the reply bytes queued since the last drain (DA/DSR/DECRQM answers),
1795    /// emptying the buffer. The consumer writes them back to the PTY.
1796    pub fn drain_replies(&mut self) -> Vec<u8> {
1797        std::mem::take(&mut self.replies)
1798    }
1799
1800    /// Device Status Report (CSI Ps n): 6 = cursor position, 5 = operating
1801    /// status. Queues the reply for `drain_replies` (#27).
1802    fn device_status_report(&mut self, param: u16) {
1803        match param {
1804            6 => {
1805                // CSI row;col R, 1-based — region-relative under origin mode
1806                // (the coordinate system the app is addressing in).
1807                let row = if self.origin_mode {
1808                    self.cursor.row.saturating_sub(self.scroll_top)
1809                } else {
1810                    self.cursor.row
1811                } + 1;
1812                let col = self.cursor.col + 1;
1813                self.replies
1814                    .extend_from_slice(format!("\x1b[{row};{col}R").as_bytes());
1815            }
1816            5 => self.replies.extend_from_slice(b"\x1b[0n"), // status: OK
1817            _ => {}
1818        }
1819    }
1820
1821    /// Kitty keyboard-protocol negotiation (#23). `lead` is the leading CSI
1822    /// intermediate: `?` query, `>` push, `=` set, `<` pop.
1823    fn kitty_dispatch(&mut self, lead: u8, params: &Params) {
1824        match lead {
1825            // Query → report the current flags as `CSI ? flags u` (#27 channel).
1826            b'?' => self
1827                .replies
1828                .extend_from_slice(format!("\x1b[?{}u", self.kitty_flags).as_bytes()),
1829            // Push: save the current flags, then set the new ones (default 0).
1830            b'>' => {
1831                const KITTY_STACK_CAP: usize = 16;
1832                if self.kitty_stack.len() >= KITTY_STACK_CAP {
1833                    self.kitty_stack.remove(0); // drop the oldest on overflow
1834                }
1835                self.kitty_stack.push(self.kitty_flags);
1836                self.kitty_flags = param_or(params, 0, 0) as u8;
1837            }
1838            // Pop `n` (default 1): restore from the stack, 0 once empty.
1839            b'<' => {
1840                for _ in 0..param_or(params, 0, 1) {
1841                    self.kitty_flags = self.kitty_stack.pop().unwrap_or(0);
1842                }
1843            }
1844            // Set in place (no push): mode 1 replace, 2 or-in, 3 and-not.
1845            b'=' => {
1846                let flags = param_or(params, 0, 0) as u8;
1847                self.kitty_flags = match param_or(params, 1, 1) {
1848                    1 => flags,
1849                    2 => self.kitty_flags | flags,
1850                    3 => self.kitty_flags & !flags,
1851                    _ => self.kitty_flags,
1852                };
1853            }
1854            _ => {}
1855        }
1856    }
1857
1858    /// DECRQM (CSI ? Ps $ p): report whether DEC private mode `Ps` is set —
1859    /// `CSI ? Ps ; val $ y` with val 1=set, 2=reset, 0=not recognized (#27).
1860    fn decrqm(&mut self, mode: u16) {
1861        let state = match mode {
1862            1 => Some(self.app_cursor_keys),
1863            // DECANM (#84): set = ANSI mode (the normal state), reset = VT52.
1864            2 => Some(!self.vt52_mode),
1865            6 => Some(self.origin_mode),
1866            // DECCOLM: derived from the actual width, never a tracked flag — a
1867            // flag would lie if the consumer ignored the resize request (#82).
1868            3 => Some(self.grid.cols() == 132),
1869            7 => Some(self.autowrap),
1870            45 => Some(self.reverse_wraparound),
1871            9 => Some(self.mouse_protocol == MouseProtocol::X10),
1872            66 => Some(self.application_keypad),
1873            12 => Some(self.cursor.blink),
1874            25 => Some(self.cursor.visible),
1875            // Mouse tracking is a single-state enum (the levels are mutually
1876            // exclusive — an app enables one), so querying ?1000 while ?1002 is
1877            // active reports "reset". Faithful to that model.
1878            1000 => Some(self.mouse_protocol == MouseProtocol::Normal),
1879            1002 => Some(self.mouse_protocol == MouseProtocol::ButtonEvent),
1880            1003 => Some(self.mouse_protocol == MouseProtocol::AnyEvent),
1881            1004 => Some(self.focus_events),
1882            1006 => Some(self.mouse_encoding == MouseEncoding::Sgr),
1883            1015 => Some(self.mouse_encoding == MouseEncoding::Urxvt),
1884            1005 => Some(self.mouse_encoding == MouseEncoding::Utf8),
1885            1016 => Some(self.mouse_encoding == MouseEncoding::SgrPixels),
1886            47 | 1047 | 1049 => Some(self.on_alt),
1887            2004 => Some(self.bracketed_paste),
1888            2026 => Some(self.synchronized_output),
1889            2027 => Some(self.grapheme_clustering),
1890            2031 => Some(self.color_scheme_updates),
1891            9001 => Some(self.win32_input_mode),
1892            _ => None,
1893        };
1894        let val = match state {
1895            Some(true) => 1,
1896            Some(false) => 2,
1897            None => 0,
1898        };
1899        self.replies
1900            .extend_from_slice(format!("\x1b[?{mode};{val}$y").as_bytes());
1901    }
1902
1903    // ---- cursor / scroll primitives ------------------------------------------
1904
1905    /// Move down one line. At the bottom margin, scroll the region instead;
1906    /// below the region, just descend (no scroll). Column is unchanged (raw LF;
1907    /// CR is what returns to column 0).
1908    /// An ordinary line feed — `LF`/`VT`/`FF`, `IND` and `NEL`. None of them serves a wrap.
1909    fn linefeed(&mut self) {
1910        self.linefeed_inner(false);
1911    }
1912
1913    /// A line feed, carrying the one fact the shift itself cannot see: whether the auto-wrap asked
1914    /// for it.
1915    ///
1916    /// `serves_wrap` is the **bottom** seam's exemption in `shift_region`, the mirror of
1917    /// `evicts_to_scrollback` for the top one. When `wrapline` drives this, the blank that lands at
1918    /// the region's bottom *is* where the wrapped text is about to go — so the row that #540 would
1919    /// call "the one that lost its continuation to the blank" is in fact the row whose continuation
1920    /// that blank **is** (#557).
1921    ///
1922    /// xterm.js threads the identical fact through the identical seam, in the opposite direction:
1923    /// `BufferService.scroll(eraseAttr, isWrapped)` stamps the *destination* row
1924    /// (`common/services/BufferService.ts:68`/`:77` @ `699f553`), and exactly one of its four
1925    /// non-test callers passes `true` — the auto-wrap branch of `_print` (`InputHandler.ts:588`),
1926    /// not `lineFeed`, `index` or the ED-2 loop.
1927    fn linefeed_inner(&mut self, serves_wrap: bool) {
1928        // New-line mode (LNM ?20): a line feed also returns to column 0 (#71).
1929        if self.newline_mode {
1930            self.carriage_return();
1931        }
1932        if self.cursor.row == self.scroll_bottom {
1933            // A top-anchored primary-screen scroll pushes the evicted top line
1934            // into scrollback history.
1935            if self.scroll_top == 0 && !self.on_alt {
1936                // Scrollback accrues whenever the scroll is top-anchored on the
1937                // primary screen (`scroll_top == 0`) — but the O(1) ring handshake
1938                // only applies to a *full-screen* scroll (`scroll_bottom` at the
1939                // last row). A top-anchored *sub-region* (`[0..k]`, k < rows-1)
1940                // still accrues, yet must scroll only its region, so it keeps the
1941                // copy + region scroll. These are distinct predicates (ADR-0009).
1942                let evicted = if self.scroll_bottom == self.grid.rows() - 1 {
1943                    // Full-screen hot path: move the evicted top row out, install
1944                    // a recycled blank as the new bottom (zero-alloc steady state).
1945                    let blank = self
1946                        .recycled_row
1947                        .take()
1948                        .unwrap_or_else(|| Row::from_cells(Vec::with_capacity(self.grid.cols())));
1949                    let evicted = self.grid.scroll_up_recycle(blank);
1950                    // The one row-shifting path that does not route through `shift_region` (it
1951                    // needs the primitive that *returns* the evicted row), so it records its own
1952                    // scroll op — and owes no seam clear, which is now an argument rather than a
1953                    // coincidence: the top seam is exempt because this evicts into scrollback
1954                    // (adjacency is preserved one row back), and the bottom seam is exempt because
1955                    // this branch only runs at `scroll_bottom == rows - 1`, where a wrap on the
1956                    // last row is the state the scroll exists to serve.
1957                    self.record_scroll(self.scroll_top, self.scroll_bottom, 1);
1958                    evicted
1959                } else {
1960                    // Top-anchored sub-region: copy row 0, then region-scroll
1961                    // `[0..=scroll_bottom]` (rows below stay fixed).
1962                    //
1963                    // #449: the fixed rows keep their GRID position while
1964                    // scrollback grows, so their content's concatenated absolute
1965                    // index shifts +1 — re-anchor the content-tracking anchors
1966                    // (selection, markers; alacritty's swap-back of the fixed
1967                    // bottom lines is the screen-relative equivalent of this)
1968                    // and invalidate the query-derived highlights
1969                    // (drop-not-re-anchor policy, #108). In-region and
1970                    // scrollback content keeps stable indices — untouched.
1971                    let below = self.scrollback.len() + self.scroll_bottom + 1;
1972                    self.selection_shift_below_margin(below);
1973                    self.markers_shift_below_margin(below);
1974                    self.tracked_shift_below_margin(below);
1975                    self.invalidate_search_highlights();
1976                    let evicted = self.grid.row_owned(0);
1977                    self.shift_region(
1978                        self.scroll_top,
1979                        self.scroll_bottom,
1980                        false,
1981                        true,
1982                        serves_wrap,
1983                    );
1984                    evicted
1985                };
1986                self.scrollback.push_back(evicted);
1987                // Follow-bottom = stay: if the user is scrolled up, bump the
1988                // offset so the same lines stay in view instead of being yanked
1989                // to the bottom.
1990                if self.display_offset > 0 {
1991                    self.display_offset = (self.display_offset + 1).min(self.scrollback.len());
1992                }
1993                // Cap: evict the oldest line past the limit. The view is anchored
1994                // to history, so dropping the front shifts the offset down too
1995                // (xterm.js trims ybase and ydisp together) — also keeps the
1996                // offset within `[0, len]`. The evicted row is parked for reuse.
1997                if self.scrollback.len() > self.scrollback_limit {
1998                    self.recycled_row = self.scrollback.pop_front();
1999                    // Every absolute index below just shifted by exactly one, which is
2000                    // what makes this class of movement expressible as a scalar (#490).
2001                    // Counted here rather than in `markers_evict_oldest` because the fact
2002                    // is about the *buffer*, not about markers.
2003                    //
2004                    // **Scope, because the name over-promises.** This counts the
2005                    // scrollback *cap* evicting one line. Reflow also drops lines off the
2006                    // front (`PaneReflow::evicted`, installed by replacing the deque) and
2007                    // is deliberately not counted: it moves the survivors non-uniformly,
2008                    // so no delta repairs them and `marker_epoch` signals it instead. A
2009                    // holder rebasing off this number *without* also watching the epoch
2010                    // gets a wrong answer across every resize.
2011                    self.evicted_total += 1;
2012                    // Every absolute index just shifted down by one; move the
2013                    // selection with it so its anchors keep their content.
2014                    self.selection_evict_oldest();
2015                    // Query-derived highlights can't survive the index shift (see
2016                    // the method doc); selection re-anchors, highlights invalidate.
2017                    self.invalidate_search_highlights();
2018                    // Markers are persistent anchors: shift them down with the
2019                    // index, disposing any whose line was the evicted one (#118).
2020                    self.markers_evict_oldest();
2021                    // Same obligation for a position held outside the engine — the
2022                    // one holder in this space that had no fixup at all (#691).
2023                    self.tracked_evict_oldest();
2024                    if self.display_offset > 0 {
2025                        // Scrolled up: evicting the oldest line advanced the
2026                        // viewport, so it must be repainted (the "frozen while
2027                        // scrolled" rule does not apply when the view itself moved).
2028                        self.display_offset -= 1;
2029                        self.mark_fully_damaged();
2030                    }
2031                }
2032            } else {
2033                // Region (top margin > 0) or alt-screen scroll: the evicted line
2034                // does NOT enter scrollback, so content moves *within* the screen
2035                // and absolute indices in the region shift. Rotate the selection
2036                // up so it follows; an endpoint on the dropped line clears it.
2037                let base = self.scrollback.len();
2038                self.selection_rotate_region(
2039                    base + self.scroll_top,
2040                    base + self.scroll_bottom,
2041                    true,
2042                );
2043                // Rotate the active buffer's markers with the content (#187):
2044                // per-buffer storage (#186) scopes them, so an alt scroll rotates
2045                // *alt* marks and leaves the frozen primary list untouched — no
2046                // guard needed. `markers_rotate_region` routes via `markers_mut`.
2047                self.markers_rotate_region(base + self.scroll_top, base + self.scroll_bottom, true);
2048                self.tracked_rotate_region(base + self.scroll_top, base + self.scroll_bottom, true);
2049                self.invalidate_search_highlights();
2050                self.shift_region(
2051                    self.scroll_top,
2052                    self.scroll_bottom,
2053                    false,
2054                    false,
2055                    serves_wrap,
2056                );
2057            }
2058        } else if self.cursor.row + 1 < self.grid.rows() {
2059            self.cursor.row += 1;
2060        }
2061    }
2062
2063    /// DECSTBM (CSI r): set the top/bottom scroll margins (1-based inclusive).
2064    /// An invalid region (top ≥ bottom) is ignored.
2065    fn set_scroll_region(&mut self, top: usize, bottom: usize) {
2066        let bottom = bottom.min(self.grid.rows());
2067        if top >= bottom {
2068            return;
2069        }
2070        self.scroll_top = top - 1;
2071        self.scroll_bottom = bottom - 1;
2072        self.goto(0, 0); // DECSTBM homes the cursor (absolute)
2073    }
2074
2075    // ---- alt screen (DEC 1049) -----------------------------------------------
2076
2077    /// Enter the alternate screen: save the cursor, swap in the other grid, and
2078    /// clear it.
2079    /// Save the cursor into the alt-screen slot — `?1048` set, and the first
2080    /// half of `?1049` enter (#72).
2081    fn save_alt_cursor(&mut self) {
2082        self.saved_cursor = self.cursor;
2083    }
2084
2085    /// Restore the cursor from the alt-screen slot — `?1048` reset, and the
2086    /// second half of `?1049` leave. DECTCEM visibility is a standalone mode, not
2087    /// part of the save, so preserve it across the restore (#38/#72).
2088    fn restore_alt_cursor(&mut self) {
2089        let visible = self.cursor.visible;
2090        self.cursor = self.saved_cursor;
2091        self.cursor.visible = visible;
2092    }
2093
2094    /// Switch to the (cleared) alternate buffer without touching the cursor —
2095    /// `?47`/`?1047` set, and the second half of `?1049` enter (#72).
2096    fn switch_to_alt(&mut self) {
2097        if self.on_alt {
2098            return;
2099        }
2100        // The pulled index reports the ACTIVE buffer, so a swap changes what the
2101        // consumer's held answer even describes — with no line having moved (#490).
2102        // Gated on a marker existing on either side, since an empty index is already
2103        // correct for both buffers.
2104        if !self.normal_markers.is_empty() || !self.alt_markers.is_empty() {
2105            self.bump_marker_epoch();
2106        }
2107        std::mem::swap(&mut self.grid, &mut self.alt_grid);
2108        self.grid.clear();
2109        self.on_alt = true;
2110        self.display_offset = 0; // the alt screen has no scrollback to view
2111        self.selection = None; // a selection cannot survive a screen swap
2112        self.invalidate_search_highlights(); // matches index the primary buffer
2113        self.mark_fully_damaged();
2114    }
2115
2116    /// Switch back to the primary buffer without touching the cursor —
2117    /// `?47`/`?1047` reset, and the first half of `?1049` leave (#72).
2118    fn switch_to_primary(&mut self) {
2119        if !self.on_alt {
2120            return;
2121        }
2122        // Dispose the alt buffer's markers on leave — xterm `activateNormalBuffer`
2123        // → `clearAllMarkers` (#177 S0). Empty while the alt guards stand, so this
2124        // fires nothing today; it's the seam the alt-marker slices (#187) build on.
2125        for m in self.alt_markers.drain(..) {
2126            self.events.push(TermEvent::MarkerDisposed(m.id));
2127        }
2128        // Same fate for alt-scoped tracked points, and for the same reason: the alt
2129        // buffer is not archived, so leaving it destroys what they named (#691).
2130        // No announcement — `tracked_point` answers `None` on the next ask.
2131        // The pulled index reports the ACTIVE buffer, so a swap changes what the
2132        // consumer's held answer even describes — with no line having moved (#490).
2133        // Only `normal_markers` is asked: the drain above just emptied `alt_markers`, so
2134        // an `|| !alt_markers.is_empty()` disjunct would be dead code carrying a comment
2135        // that claims it reads "either side". What was alt-scoped left through
2136        // `MarkerDisposed`; what can still be stale is the primary population.
2137        if !self.normal_markers.is_empty() {
2138            self.bump_marker_epoch();
2139        }
2140        self.alt_tracked.clear();
2141        std::mem::swap(&mut self.grid, &mut self.alt_grid);
2142        self.on_alt = false;
2143        self.display_offset = 0; // return to the primary at its bottom
2144        self.selection = None; // a selection cannot survive a screen swap
2145        self.invalidate_search_highlights(); // matches index the swapped-out buffer
2146        self.mark_fully_damaged();
2147    }
2148
2149    fn enter_alt_screen(&mut self) {
2150        if self.on_alt {
2151            return;
2152        }
2153        self.save_alt_cursor();
2154        self.switch_to_alt();
2155    }
2156
2157    /// Leave the alternate screen: swap the primary grid back in and restore the
2158    /// saved cursor.
2159    fn leave_alt_screen(&mut self) {
2160        if !self.on_alt {
2161            return;
2162        }
2163        self.switch_to_primary();
2164        self.restore_alt_cursor();
2165    }
2166
2167    /// RI (ESC M): move up one line. At the top margin, scroll the region down
2168    /// instead.
2169    fn reverse_index(&mut self) {
2170        if self.cursor.row == self.scroll_top {
2171            // RI never enters scrollback; the region scrolls down within the
2172            // screen, so absolute indices in it shift down. Rotate the selection.
2173            let base = self.scrollback.len();
2174            self.selection_rotate_region(base + self.scroll_top, base + self.scroll_bottom, false);
2175            // Rotate the active buffer's markers (#187) — alt-scoped on the alt
2176            // screen, so no guard (see `linefeed`).
2177            self.markers_rotate_region(base + self.scroll_top, base + self.scroll_bottom, false);
2178            self.tracked_rotate_region(base + self.scroll_top, base + self.scroll_bottom, false);
2179            self.invalidate_search_highlights();
2180            self.shift_region(self.scroll_top, self.scroll_bottom, true, false, false);
2181        } else if self.cursor.row > 0 {
2182            self.cursor.row -= 1;
2183        }
2184    }
2185
2186    // ---- cursor save/restore (DECSC / DECRC) ---------------------------------
2187
2188    /// DECSC (ESC 7): save the cursor position, pen, pending-wrap, and origin
2189    /// mode. Visibility is not saved (DECTCEM is separate).
2190    fn save_cursor(&mut self) {
2191        self.decsc = SavedCursor {
2192            row: self.cursor.row,
2193            col: self.cursor.col,
2194            pen: self.cursor.pen,
2195            pending_wrap: self.cursor.pending_wrap,
2196            origin_mode: self.origin_mode,
2197            charsets: self.charsets,
2198            gl: self.gl,
2199        };
2200    }
2201
2202    /// DECRC (ESC 8): restore what DECSC saved. Origin mode is restored (per
2203    /// ADR-0004); visibility is left as-is. The position is clamped to the
2204    /// current screen in case it shrank since the save.
2205    fn restore_cursor(&mut self) {
2206        let s = self.decsc;
2207        self.cursor.row = s.row.min(self.grid.rows() - 1);
2208        self.cursor.col = s.col.min(self.grid.cols() - 1);
2209        self.cursor.pen = s.pen;
2210        self.cursor.pending_wrap = s.pending_wrap;
2211        self.origin_mode = s.origin_mode;
2212        self.charsets = s.charsets;
2213        self.gl = s.gl;
2214    }
2215
2216    /// RIS (ESC c) — full reset to the power-on state (#53). Reconstruct every
2217    /// screen/mode field to its construction default (preserving only the
2218    /// dimensions and the scrollback cap), but keep the consumer-bound output
2219    /// queues (`replies`/`events`) that accrued earlier in this `feed`, and
2220    /// signal a full repaint. The vte parser lives outside `Term`, so replacing
2221    /// `self` does not disturb in-progress parsing. Mirrors xterm.js fullReset.
2222    fn full_reset(&mut self) {
2223        let replies = std::mem::take(&mut self.replies);
2224        let mut events = std::mem::take(&mut self.events);
2225        // RIS wipes the buffer, so every marker's line is gone — announce each
2226        // disposal so the consumer drops its decorations (and isn't confused when
2227        // the reset id counter reissues the same ids). The events survive the
2228        // reset below (#118).
2229        events.extend(
2230            self.normal_markers
2231                .iter()
2232                .chain(&self.alt_markers)
2233                .map(|m| TermEvent::MarkerDisposed(m.id)),
2234        );
2235        let (cols, rows) = (self.grid.cols(), self.grid.rows());
2236        // The word-boundary set is consumer *policy* (ADR-0017), not terminal state, so
2237        // RIS does not own it — an application printing `reset` must not silently revert
2238        // a setting the embedder chose. It rides across with `replies`/`events` because
2239        // this reset rebuilds `Term` wholesale; the references never face the question,
2240        // holding the equivalent outside the object RIS clears (#545).
2241        let word_separators = std::mem::take(&mut self.word_separators);
2242        // Tracked points die here with everything else, but their *id counter*
2243        // rides across (#691). They have no disposal event — a holder learns its
2244        // point is gone by being told `None` — so a reissued id would answer a
2245        // stale ask with a *different* point's position, silently. The markers
2246        // above take the other route and announce; the counter is what a pull-only
2247        // handle has instead.
2248        let next_tracked_id = self.next_tracked_id;
2249        // The marker epoch rides across too, and then moves — for the reason one
2250        // paragraph up, now that a marker index is *pulled* as well as announced (#490).
2251        // A consumer re-pulls when the epoch differs; resetting it to 0 leaves it equal
2252        // to the value a quiet session already holds, so the one signal it watches would
2253        // not fire for the mutation that invalidates everything. `evicted_total`
2254        // legitimately restarts — the buffer it counted is gone — and the epoch change is
2255        // what stops the consumer rebasing against the old basis.
2256        let marker_epoch = self.marker_epoch;
2257        // Marker ids ride across for the *same* reason as `next_tracked_id`, which this
2258        // slice makes true of markers: a pulled handle outlives the announcement that
2259        // killed it, so a reissued id lets a stale `MarkerDisposed(7)` drop the live
2260        // post-RIS marker 7.
2261        let next_marker_id = self.next_marker_id;
2262        *self = Term::with_scrollback(cols, rows, self.scrollback_limit);
2263        self.replies = replies;
2264        self.events = events;
2265        self.word_separators = word_separators;
2266        self.next_tracked_id = next_tracked_id;
2267        self.next_marker_id = next_marker_id;
2268        self.marker_epoch = marker_epoch;
2269        self.bump_marker_epoch();
2270        self.mark_fully_damaged();
2271    }
2272
2273    /// DECSTR (CSI ! p) — soft reset (#53). Resets a defined subset of modes to
2274    /// their defaults *without* destroying screen content or scrollback, moving
2275    /// the active cursor, or touching the mouse/focus reporting subsystem. Per
2276    /// xterm.js softReset, autowrap returns to ON (the xterm default), not off.
2277    fn soft_reset(&mut self) {
2278        self.cursor.visible = true;
2279        self.cursor.pen = Pen::default();
2280        self.scroll_top = 0;
2281        self.scroll_bottom = self.grid.rows() - 1;
2282        self.origin_mode = false;
2283        self.app_cursor_keys = false;
2284        self.bracketed_paste = false;
2285        self.grapheme_clustering = false; // ?2027 back to the wcwidth-compat default (#295)
2286        self.autowrap = true; // xterm default is ON (not the VT100 "off")
2287        self.insert_mode = false;
2288        self.charsets = [Charset::Ascii; 4];
2289        self.gl = 0;
2290        self.decsc = SavedCursor::default();
2291    }
2292
2293    fn carriage_return(&mut self) {
2294        self.cursor.col = 0;
2295        self.cursor.pending_wrap = false;
2296    }
2297
2298    /// DECSCUSR (CSI Ps SP q): set the caret shape + blink (#89). 0/2 = steady
2299    /// block, 1 = blinking block; 3/4 = blinking/steady underline; 5/6 =
2300    /// blinking/steady bar (odd = blink). 0 resets to the default (steady block).
2301    /// An unknown param leaves the style unchanged. Mirrors xterm.js.
2302    fn set_cursor_style(&mut self, param: u16) {
2303        let (shape, blink) = match param {
2304            0 | 2 => (CursorShape::Block, false),
2305            1 => (CursorShape::Block, true),
2306            3 => (CursorShape::Underline, true),
2307            4 => (CursorShape::Underline, false),
2308            5 => (CursorShape::Bar, true),
2309            6 => (CursorShape::Bar, false),
2310            _ => return,
2311        };
2312        self.cursor.shape = shape;
2313        self.cursor.blink = blink;
2314    }
2315
2316    /// Backspace (BS, 0x08): move the cursor one column left. With reverse
2317    /// wraparound (?45) a backspace at column 0 of a *soft-wrapped* row moves
2318    /// back to the last column of the previous row — undoing one autowrap. Only
2319    /// soft wraps reverse (the previous row carries `WRAPLINE`); a hard CR/LF
2320    /// line does not. BS only (not cursor-left), matching xterm.js (#80).
2321    fn backspace(&mut self) {
2322        self.cursor.pending_wrap = false;
2323        if self.cursor.col > 0 {
2324            self.cursor.col -= 1;
2325            return;
2326        }
2327        if self.reverse_wraparound
2328            && self.cursor.row > self.scroll_top
2329            && self.cursor.row <= self.scroll_bottom
2330        {
2331            let prev = self.cursor.row - 1;
2332            let last = self.grid.cols() - 1;
2333            if self.grid.row_ref(prev).is_wrapped() {
2334                self.grid.row_mut(prev).set_wrapped(false);
2335                self.cursor.row = prev;
2336                self.cursor.col = last;
2337            }
2338        }
2339    }
2340
2341    /// Auto-wrap at end of line: line-feed then return to column 0.
2342    fn wrapline(&mut self) {
2343        self.linefeed_inner(true);
2344        self.cursor.col = 0;
2345        self.cursor.pending_wrap = false;
2346    }
2347
2348    // ---- tab stops (HT / HTS / TBC) ------------------------------------------
2349
2350    /// HT: advance to the next set tab stop, or the last column if none remain
2351    /// (no wrap).
2352    fn put_tab(&mut self) {
2353        let cols = self.grid.cols();
2354        let mut col = self.cursor.col;
2355        while col + 1 < cols {
2356            col += 1;
2357            if self.tabs[col] {
2358                break;
2359            }
2360        }
2361        self.cursor.col = col;
2362        self.cursor.pending_wrap = false;
2363    }
2364
2365    /// HTS (ESC H): set a tab stop at the cursor column.
2366    fn set_tab_stop(&mut self) {
2367        let col = self.cursor.col;
2368        self.tabs[col] = true;
2369    }
2370
2371    /// TBC (CSI g): clear the tab stop at the cursor (mode 0) or all stops
2372    /// (mode 3).
2373    fn clear_tab_stop(&mut self, mode: u16) {
2374        match mode {
2375            0 => {
2376                let col = self.cursor.col;
2377                self.tabs[col] = false;
2378            }
2379            3 => self.tabs.iter_mut().for_each(|t| *t = false),
2380            _ => {}
2381        }
2382    }
2383
2384    // ---- printing ------------------------------------------------------------
2385
2386    /// The extended attributes the pen currently stamps onto a cell it writes: the open OSC 8
2387    /// hyperlink (#26/#46) and a non-default underline colour (SGR 58, #520).
2388    ///
2389    /// The colour is gated on the UNDERLINE attribute — an underline colour is meaningless on a
2390    /// cell that draws no underline, and xterm likewise does not persist it there
2391    /// (`AttributeData isEmpty()` ignores the colour; `InputHandler.test.ts:2084`). That keeps
2392    /// it off the wire for cells that never draw it (ADR-0020: no inert per-cell payload). SGR 58
2393    /// is the *underline* colour, so STRIKETHROUGH alone does not arm it.
2394    ///
2395    /// One place, because there are three sites that write a pen-built cell (the glyph, its wide
2396    /// spacer, and the vacated wrap column) — mirroring the pen half of `Row::ext_attrs_at`, so a
2397    /// later rider is added here rather than at each of them (#521/#528).
2398    fn pen_ext_attrs(&self) -> ExtAttrs {
2399        let ucolor = self.cursor.pen.underline_color;
2400        let armed =
2401            ucolor != Color::Default && self.cursor.pen.flags.contains(CellFlags::UNDERLINE);
2402        ExtAttrs::from_pen(self.current_link.clone(), armed.then_some(ucolor))
2403    }
2404
2405    /// Free a cell that has stopped being part of a glyph — the *structural repair* every
2406    /// overwrite, erase and row-shift owes the no-orphan invariant when it destroys one half of
2407    /// a width-2 glyph, plus the spacer a mode-2027 demotion no longer needs.
2408    ///
2409    /// This is **not** an erase. The app asked for something at a *different* column; freeing
2410    /// this one is the engine keeping its own invariant. But it is still a mutation, so it
2411    /// **damages** — and that is the half every site used to forget, because each function
2412    /// damaged its own range and the repaired cell lies outside it by construction (that is what
2413    /// makes it a repair). A frame-mode consumer therefore kept painting the destroyed glyph.
2414    /// Bundling the reset with its damage is the point of this helper: a repair site added later
2415    /// cannot forget the half that has no compiler behind it (#530).
2416    ///
2417    /// The cell it leaves is a **blank carrying the current background** — the same rule
2418    /// `clear_cells` already applies to a BCE erase, extended to the repair, so one sentence
2419    /// covers both: *a blank cell carries the current background.* A bare `Cell::default()`
2420    /// would punch an uncoloured notch into a coloured run, which no reference implementation
2421    /// does.
2422    ///
2423    /// Deliberately the pen's **background only** — not its full attributes, and this is not a
2424    /// compromise between references: it is byte-for-byte xterm.js's `_eraseAttrData()`
2425    /// (`DEFAULT_ATTR_DATA` + `curAttr.bg & ~0xFC000000`, i.e. default everything plus the pen's
2426    /// background colour), which is what its `replaceCells` / `insertCells` / `deleteCells`
2427    /// repairs are handed — eight of the twelve sites here. Only xterm's *print* path uses the
2428    /// whole pen. Taking the whole pen
2429    /// (xterm.js `setCellFromCodepoint(x, 0, 1, curAttr)`) would plant the pen's hyperlink and,
2430    /// worse, its DECSCA protection onto a cell the app never wrote — a cell no later erase could
2431    /// clear. Taking the *cell's own* attributes (alacritty `clear_wide`, which keeps `extra`)
2432    /// would leave the destroyed glyph's hyperlink alive and clickable, the defect #529 is filed
2433    /// against. Both were considered and rejected; the maintainer chose this on 2026-07-24 and it
2434    /// is theirs to reverse (see #530 for what they were shown).
2435    ///
2436    /// What used to be recorded here as a known limitation is **resolved** (#538, ADR-0025 D1):
2437    /// `reset()` still clears the whole content word, but the soft-wrap link is no longer part of
2438    /// it. The live flag is on the `Row`, so freeing the last column — here or on the erase path —
2439    /// cannot break a wrap; `CellFlags::WRAPLINE` is wire-only, derived onto the last cell at
2440    /// encode time and never read back (`cell.rs`). Ending a wrap is now an explicit per-verb call
2441    /// (`end_wrap`), which is the shape both references already had and the reason the move was
2442    /// made: ghostty and xterm.js hold the flag on the row/line, and xterm.js takes `clearWrap` as
2443    /// an explicit argument on its erase helper (`_eraseInBufferLine`, `InputHandler.ts:1175`)
2444    /// rather than letting a cell clear decide it.
2445    ///
2446    /// Known cost, accepted rather than overlooked: with DECSCA the freed cell loses its
2447    /// protection. ghostty has the same hole and flags it in its own source; justerm does not
2448    /// implement DECSCA today, so revisit if it lands.
2449    fn free_cell(&mut self, row: usize, col: usize) {
2450        let bg = self.cursor.pen.bg;
2451        let cell = self.grid.cell_mut(row, col);
2452        cell.reset();
2453        cell.set_bg(bg);
2454        // As in `clear_cells`: the bits are gone, so release what they gated (#628).
2455        self.grid.row_mut(row).purge_side_maps(col..col + 1);
2456        self.damage_span(row, col, col);
2457    }
2458
2459    /// Will the next `wrapline()` actually reach another row?
2460    ///
2461    /// `wrapline` → `linefeed` advances in exactly two cases: the cursor sits at the scroll
2462    /// region's bottom (so the region scrolls under it), or it has a row below it on screen.
2463    /// Parked *below* a DECSTBM region on the last row it does neither — it silently stays put.
2464    ///
2465    /// Both wide-at-boundary paths must ask before they commit anything, because both destroy
2466    /// content on the assumption that the row is about to change: `write_glyph` blanks the column
2467    /// it is leaving, and `relocate_cluster_wide` writes its cluster to `(cursor.row, 0..=1)`
2468    /// *after* the wrap — which is the same row when nothing advanced, so it lands on live cells.
2469    /// Reasoning only about the vacated source column misses that second case entirely.
2470    ///
2471    /// This mirrors `linefeed`'s own condition; the two must be read together.
2472    fn wrapline_advances(&self) -> bool {
2473        self.cursor.row == self.scroll_bottom || self.cursor.row + 1 < self.grid.rows()
2474    }
2475
2476    /// Blank the last column as the soft-wrap artefact it is, when a width-2 glyph could not fit
2477    /// there (#528). Shared by the two paths that reach this state: `write_glyph`'s wide-at-boundary
2478    /// wrap and `relocate_cluster_wide`'s promoted cluster.
2479    ///
2480    /// The column is **written**, not merely flagged: a blank built from the current pen, exactly
2481    /// as every reference does it — xterm.js `setCellFromCodepoint(col, 0, 1, curAttr)`
2482    /// (`InputHandler.ts:609-611`; `BufferLine.ts:244-251` takes the pen's fg/bg *and* its
2483    /// `extended` link/colour), ghostty `printCell(0, .spacer_head)` (`Terminal.zig:1410-1412`,
2484    /// whose `printCell` stamps the cursor's hyperlink), alacritty `write_at_cursor(' ')` under a
2485    /// `LEADING_WIDE_CHAR_SPACER` template (`mod.rs:1108-1113`, assigning `extra` from it).
2486    ///
2487    /// Flagging in place instead left the previous occupant's glyph, hyperlink and underline colour
2488    /// alive in a cell every text reader skips — so a renderer drew a character that could not be
2489    /// copied, searched or announced (#528). Building from `Pen::cell` also clears the presence
2490    /// bits, so no stale side-map entry can be read back through the new cell.
2491    ///
2492    /// WRAPLINE marks the row a continuation rather than a hard line-end (search, logical lines
2493    /// #113 and reflow #7 all read it); the leading-spacer marker makes the text extractors skip
2494    /// the blank instead of joining `"ab한"` → `"ab 한"`.
2495    ///
2496    /// The marker is **alacritty's** `LEADING_WIDE_CHAR_SPACER` (`term/cell.rs`) — ghostty calls
2497    /// the same thing `.spacer_head`. It is *not* xterm's: xterm.js has no marker at all, writing
2498    /// a bare null cell and re-inferring the artefact at reflow time from "ends in null and the
2499    /// following line starts with a wide char". That difference has a consequence here — in
2500    /// xterm.js a lost marker degrades to an empty cell that trimming drops anyway, whereas
2501    /// justerm writes `' '`, so the marker is the *only* thing keeping this column out of the
2502    /// extracted text.
2503    fn vacate_for_wrap(&mut self, row: usize, col: usize) {
2504        // Writing this column makes the vacate an overwrite like any other, so it inherits the
2505        // no-orphan obligation every other overwrite site carries (`write_glyph`,
2506        // `promote_cluster_to_wide`, `insert_chars`, `delete_chars`, the erase path): if the
2507        // column was the *spacer* of a wide glyph, blanking it destroys the spacer marker and
2508        // strands the lead. That is unrecoverable rather than merely untidy — every repair path
2509        // keys off `is_wide_spacer()`, so once the marker is gone no later write, ECH, EL, ICH
2510        // or DCH can ever clear the orphan.
2511        if col > 0 && self.grid.cell(row, col).is_wide_spacer() {
2512            self.free_cell(row, col - 1);
2513        }
2514        let mut vacated = self.cursor.pen.cell(' ');
2515        vacated.set_leading_spacer();
2516        *self.grid.cell_mut(row, col) = vacated;
2517        self.begin_wrap(row);
2518        let ext = self.pen_ext_attrs();
2519        self.grid.row_mut(row).set_ext_attrs(col, ext);
2520        // The cell's contents changed, so a frame-mode consumer must be told or it keeps painting
2521        // the old glyph (ADR-0003: every mutation site records damage). The *repaired* lead above
2522        // is damaged by `free_cell`, which owns that pairing for all twelve repair sites — this
2523        // site used to hand-roll it, and keeping both left neither able to discriminate.
2524        self.damage_span(row, col, col);
2525    }
2526
2527    /// Write one glyph at the cursor, handling deferred wrap and the wide-char
2528    /// spacer, then advance the cursor (deferring the wrap if it hits the edge).
2529    fn write_glyph(&mut self, c: char, width: usize) {
2530        // Every wide branch below is gated on `width == 2`, and the four unguarded uses
2531        // (`insert_chars`, `col + width - 1` twice, the cursor advance) assume the same bound.
2532        // The caller coerces (#595); this states the assumption at the site that holds it, so a
2533        // future second caller fails a test rather than writing an unmarked run of blanks.
2534        // Ghostty pairs its own source-side clamp with the same assertion for the same reason
2535        // (`Terminal.zig`, *"it is possible to have a width of 3 … assert(width <= 2)"*).
2536        debug_assert!(
2537            width <= 2,
2538            "write_glyph({c:?}, {width}) — the cell model represents at most a pair"
2539        );
2540        let cols = self.grid.cols();
2541
2542        // Resolve a deferred last-column wrap before placing the next glyph.
2543        // The row being left soft-wrapped: mark its last cell so reflow (#7) can
2544        // tell it from a hard CR/LF line-end.
2545        if self.cursor.pending_wrap {
2546            let row = self.cursor.row;
2547            // Claim the wrap only if there will *be* a next row to continue into. Parked below a
2548            // DECSTBM region on the last row, `wrapline` → `linefeed` advances nothing and the
2549            // glyph overwrites this same row from column 0 — so the wrap never happened, and a
2550            // flag set here is permanently false: the cursor never leaves, nothing clears it, and
2551            // it survives into `backspace`'s reverse-wraparound, reflow, and every text reader.
2552            //
2553            // The predicate is not new and neither is its rationale: `wrapline_advances` was
2554            // written for exactly this state and is already asked by both wide-at-boundary paths.
2555            // This narrow path was the one caller that committed without asking. (Surfaced by the
2556            // #540 completeness pass, which found a row-shift verb inheriting the bogus flag and
2557            // merging two unrelated logical lines.)
2558            if self.wrapline_advances() {
2559                self.begin_wrap(row);
2560            }
2561            self.wrapline();
2562        }
2563
2564        // A width-2 glyph that cannot fit in the last column wraps first — unless
2565        // autowrap is off, in which case it is dropped (xterm.js `continue`), not
2566        // squeezed or wrapped.
2567        if width == 2 && self.cursor.col + 1 >= cols {
2568            if !self.autowrap {
2569                return;
2570            }
2571            // …but only if the wrap actually happens: vacating for a wrap that never occurs
2572            // blanks a column holding a live glyph.
2573            if self.wrapline_advances() {
2574                self.vacate_for_wrap(self.cursor.row, cols - 1);
2575            }
2576            self.wrapline();
2577        }
2578
2579        // Insert mode (IRM): open a `width`-wide gap at the cursor first, shifting
2580        // the row's tail right (off-edge cells discarded, wide halves repaired),
2581        // then write into the gap — mirrors xterm.js's insertCells (#64).
2582        if self.insert_mode {
2583            self.insert_chars(width);
2584        }
2585
2586        let (row, col) = (self.cursor.row, self.cursor.col);
2587
2588        // Overwriting either half of a pair that wrapped from the row above ends that pair, so the
2589        // row above's artefact record is void (#534). The one exception is the in-place same-width
2590        // overwrite — a wide lead replaced by another wide lead at the same column — which is
2591        // ghostty's `if (cell.wide != wide)` escape and the reason this is asked *before* the
2592        // write rather than after it. Note IRM has already run its own check inside `insert_chars`
2593        // by the time this would fire, on the pre-shift state, which is the correct one.
2594        if col <= 1 && self.wrapped_pair_at_row_start(row) && !(col == 0 && width == 2) {
2595            self.void_wrap_artefact_above(row);
2596        }
2597
2598        // Overwriting one half of an existing wide glyph orphans the other —
2599        // clear it so no stray lead/spacer is left behind.
2600        let last = col + width - 1;
2601        if col > 0 && self.grid.cell(row, col).is_wide_spacer() {
2602            self.free_cell(row, col - 1);
2603        }
2604        if last + 1 < cols && self.grid.cell(row, last).is_wide() {
2605            self.free_cell(row, last + 1);
2606        }
2607
2608        let mut cell = self.cursor.pen.cell(c);
2609        if width == 2 {
2610            cell.insert_flags(CellFlags::WIDE_CHAR);
2611        }
2612        *self.grid.cell_mut(row, col) = cell;
2613        // Stamp the pen's extended attrs — the open hyperlink (#26/#46) and a non-default
2614        // underline colour (#520) — into the row's side maps.
2615        let ext = self.pen_ext_attrs();
2616        // `.clone()`: `ExtAttrs` stopped being `Copy` at #628 (the link rider is a shared
2617        // `Arc<str>`), and the spacer below stamps the same value — a refcount bump, not
2618        // a second string.
2619        self.grid.row_mut(row).set_ext_attrs(col, ext.clone());
2620
2621        // The trailing column of a wide glyph carries a distinct spacer marker —
2622        // and the same link + underline colour, so a hover/selection/underline over
2623        // either half agrees.
2624        if width == 2 && col + 1 < cols {
2625            let mut spacer = self.cursor.pen.cell(' ');
2626            spacer.insert_flags(CellFlags::WIDE_CHAR_SPACER);
2627            *self.grid.cell_mut(row, col + 1) = spacer;
2628            self.grid.row_mut(row).set_ext_attrs(col + 1, ext);
2629        }
2630
2631        // Record damage for the cell(s) just written.
2632        self.damage_span(row, col, col + width - 1);
2633
2634        // Advance. Reaching/passing the last column sets pending-wrap instead of
2635        // wrapping eagerly — the cursor parks on the last column.
2636        let new_col = col + width;
2637        if new_col >= cols {
2638            self.cursor.col = cols - 1;
2639            // With autowrap off (DECAWM ?7l) the cursor pins to the last column
2640            // and the next glyph overwrites in place — no deferred wrap (#63).
2641            self.cursor.pending_wrap = self.autowrap;
2642        } else {
2643            self.cursor.col = new_col;
2644        }
2645    }
2646
2647    /// Attach a combining mark (width-0 code point) to the grapheme it modifies —
2648    /// the cell the cursor just left. With pending-wrap the cursor still sits on
2649    /// the just-written last-column glyph, so attach in place (no back-up, no
2650    /// deferred wrap); otherwise step back one column, and once more over a
2651    /// wide-char spacer to reach its lead. Stored in the grapheme side-table.
2652    fn push_combining(&mut self, c: char) {
2653        let row = self.cursor.row;
2654        let mut col = if self.cursor.pending_wrap {
2655            self.cursor.col
2656        } else {
2657            self.cursor.col.saturating_sub(1)
2658        };
2659        if self.grid.cell(row, col).is_wide_spacer() {
2660            col = col.saturating_sub(1);
2661        }
2662        // Append the mark to the row's combining map at this column (setting the
2663        // cell's combining bit). No global pool — the cluster rides the row.
2664        self.grid.row_mut(row).push_combining(col, c);
2665        self.damage_span(row, col, col);
2666    }
2667
2668    /// Mode 2027 (#295): if `c` **extends** the previous cell's grapheme cluster (UAX #29), append
2669    /// it to that cell's side-table — no new cell, no cursor advance — and return `true`. Otherwise
2670    /// return `false` so `print` takes the normal per-scalar path (a break starts a new cell).
2671    ///
2672    /// The break state is reconstructed fresh from the previous cell's stored cluster (base scalar +
2673    /// side-table marks) rather than persisted across calls, so cursor moves / CR-LF can't corrupt
2674    /// it (mirrors ghostty). Width promotion for a narrow base (a flag's second RI, a text-base +
2675    /// VS16) is handled by the caller in a later step; here the base's existing width holds.
2676    fn try_grapheme_join(&mut self, c: char) -> bool {
2677        let row = self.cursor.row;
2678        // Locate the previous cluster's base cell, exactly as `push_combining`: with pending-wrap
2679        // the cursor still sits on the last glyph; else step back one, and over a wide spacer.
2680        let col = if self.cursor.pending_wrap {
2681            self.cursor.col
2682        } else if self.cursor.col == 0 {
2683            return false; // nothing precedes on this row
2684        } else {
2685            self.cursor.col - 1
2686        };
2687        let col = if self.grid.cell(row, col).is_wide_spacer() {
2688            col.saturating_sub(1)
2689        } else {
2690            col
2691        };
2692        // Reconstruct the previous cluster's text: base scalar + any already-joined scalars.
2693        let mut prev = String::new();
2694        prev.push(self.grid.cell(row, col).c());
2695        if let Some(marks) = self.grid.row_ref(row).combining_at(col) {
2696            prev.extend(marks.iter().copied());
2697        }
2698        if !crate::grapheme::grapheme_extends(&prev, c) {
2699            return false;
2700        }
2701        // Join: ride the side-table (no new cell).
2702        self.grid.row_mut(row).push_combining(col, c);
2703        // Width promotion: a flag's second regional indicator, or a text-base + VS16, grows the
2704        // cluster to width 2. `UnicodeWidthStr` gives the cluster width (RI-pair → 2, VS16 → 2). If
2705        // the base cell is still narrow, widen it in place.
2706        let cluster_w = {
2707            prev.push(c);
2708            UnicodeWidthStr::width(prev.as_str())
2709        };
2710        if cluster_w == 2 && !self.grid.cell(row, col).is_wide() {
2711            self.promote_cluster_to_wide(row, col);
2712        } else if cluster_w == 1 && self.grid.cell(row, col).is_wide() {
2713            // The mirror case: a default-wide emoji + VS15 (text selector) shrinks to width 1.
2714            self.demote_cluster_to_narrow(row, col);
2715        }
2716        self.damage_span(row, col, col);
2717        true
2718    }
2719
2720    /// Shrink a wide cluster cell back to a single-width cell (#295): a default-wide emoji joined by
2721    /// VS15 (U+FE0E, the text selector) requests text presentation → width 1. Remove `WIDE_CHAR`,
2722    /// free the spacer, and back the cursor up over it (the inverse of `promote_cluster_to_wide`).
2723    fn demote_cluster_to_narrow(&mut self, row: usize, col: usize) {
2724        let cols = self.grid.cols();
2725        self.grid
2726            .cell_mut(row, col)
2727            .remove_flags(CellFlags::WIDE_CHAR);
2728        if col + 1 < cols {
2729            self.free_cell(row, col + 1); // free the now-unused spacer
2730        }
2731        // The cluster shrank 2→1: the cursor sat just past the wide cell (col+2, or pending-wrap on
2732        // the last column); it now sits just past the single-width cell at col+1.
2733        self.cursor.pending_wrap = false;
2734        self.cursor.col = (col + 1).min(cols - 1);
2735        self.damage_span(row, col, (col + 1).min(cols - 1));
2736    }
2737
2738    /// Widen a narrow base cell to a double-width cluster in place (#295): set `WIDE_CHAR`, write
2739    /// its spacer, and step the cursor over it. Only reached when a joining scalar (flag's 2nd RI,
2740    /// VS16) promotes the cluster to width 2. A base pinned at the last column has no room for a
2741    /// spacer — relocation is a later step; until then it stays narrow (rare, renders single-width).
2742    fn promote_cluster_to_wide(&mut self, row: usize, col: usize) {
2743        let cols = self.grid.cols();
2744        if col + 1 >= cols {
2745            // No spacer room at the last column: relocate the whole cluster to the next line as a
2746            // wide cell (the row soft-wraps), mirroring write_glyph's wide-at-boundary wrap (#303).
2747            self.relocate_cluster_wide(row, col);
2748            return;
2749        }
2750        // Overwriting col+1 with the spacer can orphan the far half of a WIDE glyph standing there
2751        // (the cursor may have been repositioned before the joining scalar arrived). Reset that
2752        // orphan, exactly as write_glyph does (2462-2470), so no dangling spacer survives.
2753        if self.grid.cell(row, col + 1).is_wide() && col + 2 < cols {
2754            self.free_cell(row, col + 2);
2755        }
2756        self.grid
2757            .cell_mut(row, col)
2758            .insert_flags(CellFlags::WIDE_CHAR);
2759        // The spacer is the lead's second half, so it takes the LEAD's extended attrs — the
2760        // hyperlink and underline colour riding the row's side maps — exactly as write_glyph
2761        // stamps both halves of a wide write. `pen.cell(' ')` carries neither (and the pen may
2762        // have moved on since the base was printed), so they are re-attached here; a base with
2763        // none clears whatever the overwritten column held (#521).
2764        let ext = self.grid.row_ref(row).ext_attrs_at(col);
2765        let mut spacer = self.cursor.pen.cell(' ');
2766        spacer.insert_flags(CellFlags::WIDE_CHAR_SPACER);
2767        *self.grid.cell_mut(row, col + 1) = spacer;
2768        self.grid.row_mut(row).set_ext_attrs(col + 1, ext);
2769        // The cursor sat at col+1 (just past the narrow base); move it over the new spacer, applying
2770        // the same last-column pending-wrap rule as a wide write.
2771        let new_col = col + 2;
2772        if new_col >= cols {
2773            self.cursor.col = cols - 1;
2774            self.cursor.pending_wrap = self.autowrap;
2775        } else {
2776            self.cursor.col = new_col;
2777        }
2778        self.damage_span(row, col, col + 1);
2779    }
2780
2781    /// Relocate a last-column narrow cluster to the next line as a wide cell (#303): its base +
2782    /// side-table marks move to `(next_row, 0..=1)` and the vacated last column becomes a soft-wrap
2783    /// (WRAPLINE + leading spacer), exactly as `write_glyph` wraps a wide glyph that can't fit. With
2784    /// autowrap off it stays narrow.
2785    ///
2786    /// The destination is an **overwrite**, so it owes the no-orphan repair every other overwrite
2787    /// site owes (#529, ADR-0025 D4) — see the comment at that site for why justerm restates it
2788    /// once per wide-writing path where the references get it structurally.
2789    ///
2790    /// The `cols < 2` arm is **unreachable since #547** —
2791    /// `MIN_COLUMNS = 2` is the floor on every path that sets a width — and is kept only as a
2792    /// bounds guard for the `col + 1` writes below, not as a described behaviour.
2793    fn relocate_cluster_wide(&mut self, row: usize, col: usize) {
2794        let cols = self.grid.cols();
2795        if cols < 2 || !self.autowrap || !self.wrapline_advances() {
2796            // Nowhere to place a wide cell — leave it narrow. `!wrapline_advances()` joins the
2797            // other two for the same reason: with no next row, the relocation would write the
2798            // cluster over columns 0-1 of the *current* row and destroy whatever is there.
2799            return;
2800        }
2801        // Capture the base cell (glyph + attrs), its marks, and its extended attrs before
2802        // vacating. The extended attrs (hyperlink, underline colour) must be read HERE and not
2803        // after the move: they live in the *source row's* side maps, and `wrapline()` below may
2804        // scroll — after which that row is a different (or recycled) `Row` (#521).
2805        let base = *self.grid.cell(row, col);
2806        let marks: Vec<char> = self
2807            .combining_at(row, col)
2808            .map(<[char]>::to_vec)
2809            .unwrap_or_default();
2810        let ext = self.grid.row_ref(row).ext_attrs_at(col);
2811        // Vacate the last column as a soft-wrap artefact — the same step `write_glyph` takes for a
2812        // wide glyph that cannot fit, and now literally the same code, so the two cannot drift
2813        // apart again (#528; they held opposite behaviours until then).
2814        self.vacate_for_wrap(row, col);
2815        // Advance to the next line (scrolls if at the bottom); cursor lands at col 0.
2816        self.wrapline();
2817        let nr = self.cursor.row;
2818        // The destination is an overwrite like any other, so it owes the same no-orphan repair
2819        // `write_glyph` performs for its own trailing column (#529, D4): the spacer about to land
2820        // on `(nr, 1)` half-destroys a wide glyph standing there, stranding its far half at
2821        // `(nr, 2)` — a `WIDE_CHAR_SPACER` with no lead to its left, still carrying the destroyed
2822        // glyph's hyperlink and underline colour. Asked *before* the writes, on the pre-write
2823        // state, exactly as `write_glyph`'s `last + 1` check is.
2824        //
2825        // Two of the three references have this exact site, and both repair it without a rule of
2826        // their own, because they write a pair as two *separate* cell writes and the repair lives
2827        // in the write:
2828        //   - xterm.js names the case outright — *"Combining character widens 1 column to 2. Move
2829        //     old character to next line."* (`InputHandler.ts:583-611` @ 699f553,
2830        //     `copyCellsFrom(oldRow, oldCol, 0, oldWidth, false)` at `:605-607`). The relocation
2831        //     leaves `x == 2`, so its once-per-run right-edge repair (`:668-669`) lands on exactly
2832        //     the orphaned column.
2833        //   - ghostty relocates in `Terminal.zig:1188-1252` @ e6e26e1 and reaches the repair
2834        //     through `cursorRight(1); printCell(0, .spacer_tail)` (`:1251-1252`) — that second
2835        //     `printCell` runs the `cell.wide != wide` switch (`:1484`) whose `.wide` arm clears
2836        //     the neighbouring lead's tail (`:1489-1499`).
2837        //   - alacritty has **no** counterpart: a width-0 codepoint returns early through
2838        //     `push_zerowidth` (`term/mod.rs:1069-1085` @ 852e971), so a cluster never changes
2839        //     width and nothing is ever relocated. Its orphan repair (`:994-1008`) is still the
2840        //     mechanism reference, reached the same way — one repair per `write_at_cursor`.
2841        // justerm writes both halves in one step, so the repair is not structural here and each
2842        // wide-writing path restates it — this is the third (`write_glyph`,
2843        // `promote_cluster_to_wide`, and now the relocation).
2844        //
2845        // What justerm does **not** copy is ghostty's reach-back at this site: its `.wide` arm
2846        // also clears the previous row's `.spacer_head` (`:1504-1506`, gated `cursor.y > 0 and
2847        // cursor.x <= 1`) — the very marker this relocation set seven statements earlier
2848        // (`:1200`). Derived from source, not executed. Suppressing it here is #534's rule
2849        // verbatim: a repair keyed on a state predicate must not fire while that state is
2850        // mid-construction.
2851        //
2852        // The other two obligations `write_glyph` carries are N/A here, recorded because an
2853        // unexplained omission is what gets re-litigated:
2854        //   - the *left*-orphan repair asks `col > 0`, and the lead lands at column 0.
2855        //   - `void_wrap_artefact_above(nr)` would clear a record that `vacate_for_wrap` **just
2856        //     set**, in both the advance case (`nr == row + 1`, so its target `nr - 1` is `row`)
2857        //     and the scroll case (`nr == row`, the source rotated up to `row - 1`). Firing it
2858        //     would be self-clobbering, not merely redundant — the same shape as #534's
2859        //     mid-construction rule. Measured after a repairing relocation: `is_row_wrapped(0)`
2860        //     and `(0, cols-1).is_leading_spacer()` both hold.
2861        //
2862        // `2 < cols` is a live bound, not defence in depth. The print paths cannot leave a
2863        // `WIDE_CHAR` lead in the last column — `write_glyph` wraps rather than write one there
2864        // and `promote_cluster_to_wide` relocates rather than promote in place — but `Row::resize`
2865        // can: the alt screen resizes without reflowing (#567), so truncating a row through a pair
2866        // strands its lead in the final column. The relocation then meets `is_wide() == true` at
2867        // `cols == 2`, and without the bound reads `(nr, 2)` on a two-column grid — an
2868        // out-of-bounds panic in a library, inside a consumer's process, reachable by shrinking a
2869        // window over a CJK glyph. Pinned by `min_columns.rs::
2870        // a_relocation_beside_a_truncated_wide_lead_does_not_index_past_the_row`.
2871        if 2 < cols && self.grid.cell(nr, 1).is_wide() {
2872            self.free_cell(nr, 2);
2873        }
2874        // Re-place the base as a wide lead + spacer, re-attaching the marks fresh (drop the combining
2875        // bit so push_combining starts a clean cluster at the new column).
2876        let mut lead = base;
2877        lead.set_combined(false);
2878        lead.insert_flags(CellFlags::WIDE_CHAR);
2879        *self.grid.cell_mut(nr, 0) = lead;
2880        for m in marks {
2881            self.grid.row_mut(nr).push_combining(0, m);
2882        }
2883        // Re-attach the extended attrs to BOTH halves at the new row. `lead` copied the base's
2884        // presence bits but not its map entries, so without this the bit is set with nothing
2885        // behind it — the read is gated and silently returns the default, and the frame stops
2886        // round-tripping (the cell encodes as linked with no index).
2887        self.grid.row_mut(nr).set_ext_attrs(0, ext.clone());
2888        let mut spacer = self.cursor.pen.cell(' ');
2889        spacer.insert_flags(CellFlags::WIDE_CHAR_SPACER);
2890        *self.grid.cell_mut(nr, 1) = spacer;
2891        self.grid.row_mut(nr).set_ext_attrs(1, ext);
2892        // Cursor just past the wide cell (pending-wrap if it fills a 2-column row).
2893        if cols <= 2 {
2894            self.cursor.col = cols - 1;
2895            self.cursor.pending_wrap = self.autowrap;
2896        } else {
2897            self.cursor.col = 2;
2898            self.cursor.pending_wrap = false;
2899        }
2900        self.damage_span(nr, 0, 1);
2901    }
2902
2903    // ---- cursor movement (CSI A/B/C/D/G/d/H/f) -------------------------------
2904
2905    fn move_up(&mut self, n: usize) {
2906        self.cursor.row = self.cursor.row.saturating_sub(n);
2907        self.cursor.pending_wrap = false;
2908    }
2909
2910    fn move_down(&mut self, n: usize) {
2911        self.cursor.row = (self.cursor.row + n).min(self.grid.rows() - 1);
2912        self.cursor.pending_wrap = false;
2913    }
2914
2915    fn move_forward(&mut self, n: usize) {
2916        self.cursor.col = (self.cursor.col + n).min(self.grid.cols() - 1);
2917        self.cursor.pending_wrap = false;
2918    }
2919
2920    fn move_back(&mut self, n: usize) {
2921        self.cursor.col = self.cursor.col.saturating_sub(n);
2922        self.cursor.pending_wrap = false;
2923    }
2924
2925    fn set_col(&mut self, col: usize) {
2926        self.cursor.col = col.min(self.grid.cols() - 1);
2927        self.cursor.pending_wrap = false;
2928    }
2929
2930    fn set_row(&mut self, row: usize) {
2931        self.cursor.row = row.min(self.grid.rows() - 1);
2932        self.cursor.pending_wrap = false;
2933    }
2934
2935    fn goto(&mut self, row: usize, col: usize) {
2936        // Origin mode addresses rows relative to the scroll region's top margin
2937        // and clamps to its bottom; otherwise rows are absolute to the screen.
2938        let (offset, max_row) = if self.origin_mode {
2939            (self.scroll_top, self.scroll_bottom)
2940        } else {
2941            (0, self.grid.rows() - 1)
2942        };
2943        self.cursor.row = (row + offset).min(max_row);
2944        self.cursor.col = col.min(self.grid.cols() - 1);
2945        self.cursor.pending_wrap = false;
2946    }
2947
2948    // ---- erase (CSI J / K) ---------------------------------------------------
2949
2950    /// Clear cells `from..to` on `row`.
2951    ///
2952    /// Background Color Erase (BCE): erased cells carry the current SGR
2953    /// background only — fg and text attributes reset to default (matches
2954    /// xterm/alacritty, where the fill is `cursor.template.bg.into()`).
2955    ///
2956    /// **Cleared concern, with its validity condition — an empty range would break the pair
2957    /// invariant.** With `from == to` the first guard below still frees the lead at `from - 1`
2958    /// while the second is skipped (`to > from` is false) and the fill loop does nothing, so the
2959    /// spacer at `from` would survive its lead — an ADR-0025 D4 break, and the exact lead-less
2960    /// orphan the word walk must then treat as opaque. This is unreachable **as long as every
2961    /// caller passes a non-empty range**, which holds today: `ECH` clamps to
2962    /// `(col + n).min(cols)` with `n >= 1` (both `CSI X` and `CSI 0 X` erase one cell), and every
2963    /// `EL`/`ED` site passes `0..cols` or `0..=cursor`. A future caller that can pass an empty
2964    /// range must guard here first.
2965    fn clear_cells(&mut self, row: usize, from: usize, to: usize) {
2966        let cols = self.grid.cols();
2967        // Erasing either half of a pair that wrapped from the row above ends it, so that row's
2968        // artefact record is void (#534). `from <= 1` rather than `from == 0` because erasing from
2969        // column 1 destroys the spacer and the no-orphan repair below then frees the lead. ghostty
2970        // reaches the same row from its erase path — `Screen.splitCellBoundary`'s `x == 0 or x ==
2971        // 1` branch (`Screen.zig:1873` @ `e6e26e1`), called from `eraseChars` (`Terminal.zig:3159`).
2972        if from <= 1 && to > from && self.wrapped_pair_at_row_start(row) {
2973            self.void_wrap_artefact_above(row);
2974        }
2975        // Don't orphan a wide char straddling the erase boundary.
2976        if from > 0 && self.grid.cell(row, from).is_wide_spacer() {
2977            self.free_cell(row, from - 1);
2978        }
2979        if to > from && to < cols && self.grid.cell(row, to - 1).is_wide() {
2980            self.free_cell(row, to);
2981        }
2982
2983        let bg = self.cursor.pen.bg;
2984        for col in from..to {
2985            let cell = self.grid.cell_mut(row, col);
2986            cell.reset();
2987            cell.set_bg(bg);
2988        }
2989        // `reset` cleared the presence bits; this releases what they gated (#628).
2990        self.grid.row_mut(row).purge_side_maps(from..to);
2991        if to > from {
2992            self.damage_span(row, from, to - 1);
2993        }
2994    }
2995
2996    /// End `row`'s soft wrap, because something just destroyed the content that was continuing
2997    /// onto the next row.
2998    ///
2999    /// Which verbs owe this is **not** derivable from the erased range — it is a per-verb rule,
3000    /// and both references spell it out call site by call site rather than inferring it:
3001    ///
3002    /// | verb | ends the wrap? | xterm | ghostty |
3003    /// |---|---|---|---|
3004    /// | `EL 0` (erase right) | **yes**, at any column | `ClearRight` → `LineClrWrapped` unconditionally (`util.c:1871`) | `cursorResetWrap()` in `eraseLine(.right)` |
3005    /// | `ECH` | **yes**, at any column | same `ClearRight` (`util.c:1961`) | `cursorResetWrap()` in `eraseChars` |
3006    /// | `DCH` | **yes** | `screen.c` | `cursorResetWrap()` — *"Our row's soft-wrap is always reset"* |
3007    /// | `EL 1` (erase left) | no | `ClearLeft`, no clear | no |
3008    /// | `ICH` | no | no | no |
3009    ///
3010    /// The shape behind the three that do: each destroys content **from the cursor rightward**, so
3011    /// "this row continues past its last column" can no longer be asserted. Erasing leftward or
3012    /// inserting blanks leaves the tail — and whatever it flowed into — intact.
3013    ///
3014    /// **`EL 2` is a deliberate divergence.** justerm ends the wrap; xterm does not (`ClearLine`,
3015    /// `util.c:1905`, has no `LineClrWrapped`) and ghostty copies that with a comment naming it —
3016    /// *"it seems like complete should reset the soft-wrap state of the line but in xterm it does
3017    /// not."* justerm differs because it *joins* logical lines for `accessible_text` / `search` /
3018    /// selection text, so a blanked-but-still-wrapped row visibly merges two lines in copy — a
3019    /// consequence xterm does not carry. Recorded rather than silently matched or silently
3020    /// Mark `row` as soft-wrapping into the next one — and damage the cell the bit rides on.
3021    ///
3022    /// The exact mirror of [`Term::end_wrap`], and it exists for the mirror of that function's
3023    /// reason. The flag lives on the `Row` (#538) and reaches a consumer only as the last cell's
3024    /// `WRAPLINE`, derived at encode time. Every other cell-carried fact changes when that cell is
3025    /// written, so damage covers it for free; this one does not, and a `Partial` frame would never
3026    /// ship the bit — a frame-mode consumer rebuilding logical lines from cells then keeps the two
3027    /// rows *split* forever, the exact dual of the "joined forever" that `end_wrap` guards.
3028    ///
3029    /// `end_wrap` took that obligation in #540; the set side never did. It stayed invisible because
3030    /// a wrap normally moves the cursor to the next row, and `frame_damage` tops the frame up with
3031    /// the old cursor cell. When a **scroll serves the wrap** the cursor keeps its row index, so
3032    /// nothing tops it up — which is how #557 surfaced it.
3033    ///
3034    /// Damaging here rather than at each caller is what keeps this true for set sites added later,
3035    /// the same argument `end_wrap`'s comment makes.
3036    fn begin_wrap(&mut self, row: usize) {
3037        self.grid.row_mut(row).set_wrapped(true);
3038        let last = self.grid.cols() - 1;
3039        self.damage_span(row, last, last);
3040    }
3041
3042    /// diverged; see #538.
3043    fn end_wrap(&mut self, row: usize) {
3044        self.grid.row_mut(row).set_wrapped(false);
3045        // The flag is stored on the `Row` but rides the wire on the row's **last cell**, derived
3046        // at encode time. Every other cell-carried fact changes only when that cell is written,
3047        // so damage covers it for free; this one does not, and a `Partial` frame would never
3048        // re-ship the bit — leaving a frame-mode consumer with two rows joined forever. Damaging
3049        // here rather than at each caller is what keeps that true for call sites added later.
3050        let last = self.grid.cols() - 1;
3051        self.damage_span(row, last, last);
3052        // The wrap artefact goes with the wrap. The marker's claim is "the last column is the
3053        // blank a width-2 glyph vacated **because this row continues onto the next**", so a row
3054        // that stops continuing cannot hold one (ADR-0025 D3 — position is part of the test, and
3055        // so is the wrap it is positioned in). Coupling the two here is what makes the row-shift
3056        // seams and every wrap-ending erase a single rule instead of a clear per verb: ghostty
3057        // couples them in one function the same way — `Screen.cursorResetWrap`
3058        // (`terminal/Screen.zig:1524` @ `e6e26e1`, spacer-head clear at `:1539-1545`), reached from
3059        // `deleteChars` / `eraseChars` / `eraseLine`. It early-returns on `if (!page_row.wrap)`;
3060        // this one clears unconditionally, which is strictly safer.
3061        //
3062        // Most callers erase through this column anyway, so the clear is redundant for them; the
3063        // ones it is *not* redundant for are the row-shift seams (#540's `shift_region`, which
3064        // ends a wrap without touching a cell) and `delete_chars`, whose marker rides the shift.
3065        // The leftward erases are the mirror case — they blank this column while the wrap
3066        // legitimately survives — and go through `drop_artefact_if_erased` instead.
3067        //
3068        // One wrap-ending path deliberately does *not* reach here: `shift_region`'s `top == 0`
3069        // seam, whose row is in scrollback rather than the grid. It couples the same two clears
3070        // inline; see the comment there.
3071        self.grid.cell_mut(row, last).clear_leading_spacer();
3072    }
3073
3074    /// The pair that wrapped into `row` is about to be destroyed or moved, so the artefact record
3075    /// on the row **above** it is void — drop it. **Call before the mutation.**
3076    ///
3077    /// The marker makes a claim with two clauses: this row soft-wraps (owned by `end_wrap`), and
3078    /// its last column is the blank *that specific pair* vacated. This is the second clause, and
3079    /// the rule behind every call site is one sentence: **the record survives only an in-place
3080    /// same-width overwrite.** Anything else that reaches columns 0/1 of the continuation — a
3081    /// narrow write, an erase, a shift in either direction — ends the pair the record was about,
3082    /// and a wide lead that arrives afterwards by some other route did not *wrap* from anywhere.
3083    ///
3084    /// Both references gate on that, and both gate on the state **before** the write rather than
3085    /// after it:
3086    ///
3087    /// - ghostty `Terminal.zig:1484` @ `e6e26e1` — the whole wide-repair `switch` sits under
3088    ///   `if (cell.wide != wide)`, so a wide glyph overwritten by another wide glyph skips it; the
3089    ///   reach-back stanza then appears in the `.wide` (`:1501-1506`) and `.spacer_tail`
3090    ///   (`:1529-1532`) arms only.
3091    /// - alacritty `term/mod.rs:994` @ `852e971` — the reach-back at `:1004-1008` is inside
3092    ///   `if cursor_cell.flags.intersects(WIDE_CHAR | WIDE_CHAR_SPACER)`, but with no
3093    ///   width-unchanged escape, so it drops a record that is still true. Alacritty is the outlier
3094    ///   of the two and justerm follows ghostty.
3095    ///
3096    /// Asking *after* the mutation instead looks equivalent and is not: it answers "is some wide
3097    /// lead standing at column 0", which a `DCH` that pulls the *next* wide glyph left also
3098    /// satisfies, and which a two-step placement (a narrow base promoted to wide by VS16 under
3099    /// mode 2027, or IRM's insert-then-write) satisfies only at the end. Both were measured
3100    /// disagreeing with the rule above before this took its current form.
3101    ///
3102    /// The erase and intra-row-shift call sites are **ported, not derived**: ghostty's
3103    /// `Screen.splitCellBoundary` (`Screen.zig:1831`, the `x == 0 or x == 1` branch at `:1873`)
3104    /// reaches up one row and clears the previous row's spacer head, and it is called from
3105    /// `deleteChars` (`Terminal.zig:3107-3109`) and `eraseChars` (`:3159-3160`). Only justerm's
3106    /// `ICH` site has no counterpart — ghostty's `insertBlanks` (`:2988`) calls it nowhere.
3107    ///
3108    /// `row == 0` does not mean "no row above": on the primary screen the text readers walk
3109    /// `[scrollback ++ grid]` as one buffer (`abs_floor() == 0`), so the row above grid row 0 is
3110    /// the last **scrollback** row and it can carry the marker. Alacritty reaches the same row for
3111    /// the same reason — its `topmost_line()` is `Line(-history_size)` (`grid/mod.rs:504`), so
3112    /// `point.line - 1` indexes into history; ghostty is the one that stops at the viewport
3113    /// (`cursor.y > 0`). On the alt screen `abs_floor()` is the screen top, so no join crosses the
3114    /// boundary and there is nothing to repair.
3115    ///
3116    /// No damage is owed by either branch, and for a stronger reason than #540's: the marker is a
3117    /// `content` bit outside `CONTENT_MARKER_MASK`, so `Cell::flags()` never sees it and it does
3118    /// not cross the wire at all. The `damage_span` below is defensive, not load-bearing.
3119    fn void_wrap_artefact_above(&mut self, row: usize) {
3120        if row > 0 {
3121            let last = self.grid.cols() - 1;
3122            if self.grid.cell(row - 1, last).is_leading_spacer() {
3123                self.grid.cell_mut(row - 1, last).clear_leading_spacer();
3124                self.damage_span(row - 1, last, last);
3125            }
3126        } else if !self.on_alt
3127            && let Some(cell) = self.scrollback.back_mut().and_then(|r| r.last_mut())
3128        {
3129            cell.clear_leading_spacer();
3130        }
3131    }
3132
3133    /// Is a wide pair standing at columns 0..=1 of `row` — i.e. is there a record for
3134    /// `void_wrap_artefact_above` to void? A cheap pre-mutation test the four call sites share, so
3135    /// the rule lives in one place rather than being re-derived per verb (ADR-0025 D2).
3136    fn wrapped_pair_at_row_start(&self, row: usize) -> bool {
3137        self.grid.cell(row, 0).is_wide()
3138    }
3139
3140    /// Drop a wide-wrap artefact marker that has outlived the wrap it belonged to, without
3141    /// touching the wrap itself.
3142    ///
3143    /// The mirror of the marker clean-up inside `end_wrap`, for the verbs that erase *leftward*:
3144    /// `EL 1` and `ED 1` correctly leave the wrap alone (the row's tail still flows onward), but
3145    /// they can still clear the last column, and then the artefact's blank turns into visible
3146    /// text that a reflow bakes in permanently. Only the marker goes; the wrap is the caller's
3147    /// business.
3148    fn drop_artefact_if_erased(&mut self, row: usize, from: usize, to: usize) {
3149        let last = self.grid.cols() - 1;
3150        if from <= last && to > last {
3151            self.grid.cell_mut(row, last).clear_leading_spacer();
3152        }
3153    }
3154
3155    /// Shift `[top..=bottom]` by one line — up unless `down` — and end the wraps the shift
3156    /// falsified. Every row-shifting verb (IL/DL/SU/SD and the region paths in LF/RI) goes
3157    /// through here so the repair cannot be forgotten at a call site (ADR-0025 D2).
3158    ///
3159    /// The wrap flag claims "this row continues into the **next** row", so it is a statement about
3160    /// *adjacency*, and rotating whole `Row`s keeps it true for free: both halves of a pair inside
3161    /// the region move by the same line, so the claim still describes the same neighbour. Only the
3162    /// two seams falsify it, where a row's next neighbour changed underneath it:
3163    ///
3164    /// - **`top - 1`**, just outside the region. Its continuation rotated away (up-shift) or was
3165    ///   pushed down (down-shift), so whatever now sits at `top` is a stranger. This is the seam
3166    ///   that merges two unrelated logical lines in copy/search/accessible text (#540's repro).
3167    /// - **the row that lost its continuation to the blank** — `bottom - 1` after an up-shift (the
3168    ///   blank lands at `bottom`), `bottom` after a down-shift (its continuation rotated up to
3169    ///   `top` and was blanked there). The down-shift form is the one that reaches *outside* the
3170    ///   region: the stale claim points at `bottom + 1`, a row the verb never touched.
3171    ///
3172    /// Damaging matters as much as clearing, and `end_wrap` does both: `top - 1` is outside the
3173    /// region, so the scroll op the caller records does not cover it and a `Partial` frame would
3174    /// never re-ship the derived `WRAPLINE` bit.
3175    ///
3176    /// **Each seam has exactly one exemption, and both are facts about the caller that this
3177    /// function cannot see** — which is why they are parameters rather than tests:
3178    ///
3179    /// - `evicts_to_scrollback` exempts the **top** seam: a linefeed pushes row 0 into scrollback,
3180    ///   so the readers' `[scrollback ++ grid]` walk finds the continuation one row further back
3181    ///   and adjacency survives.
3182    /// - `serves_wrap` exempts the **bottom** seam: the shift was asked for by `wrapline`, so the
3183    ///   blank it exposes at `bottom` is not a stranger that displaced a continuation — it *is*
3184    ///   the continuation, about to be written into (#557).
3185    ///
3186    /// Both are one-sided on purpose. A wrap-serving scroll still falsifies the top seam, and a
3187    /// scrollback-evicting linefeed still falsifies the bottom one when no wrap asked for it.
3188    ///
3189    /// **No reference implements this rule**, so it is derived rather than ported — ADR-0004, the
3190    /// spec is the authority for VT semantics, above any implementation:
3191    ///
3192    /// - **ghostty** clears the wrap on *every* row a full-width IL/DL touches
3193    ///   (`terminal/Terminal.zig:2746-2752`, `:2906-2912` @ `e6e26e1`). The clear runs *before* the
3194    ///   row swap at `:2936-2939`, so both ends stay false: an interior pair is split, not
3195    ///   preserved. It still never reaches the row above the shifted range.
3196    /// - **alacritty** has no `WRAPLINE` clear on any scroll path (@ `852e971`).
3197    /// - **xterm.js** splices whole line objects and never touches `isWrapped`
3198    ///   (`common/InputHandler.ts:1345-1402` @ `699f553`). Its opposite polarity — "I continue the
3199    ///   *previous* row" (`common/buffer/Buffer.ts:566-570`) — moves the exposure to the mirrored
3200    ///   seam rather than removing it: a spliced-in line keeps a continuation claim about a
3201    ///   predecessor it never met.
3202    ///
3203    /// The seam row's wide-wrap *marker* is the same shift's other half, and it now rides along:
3204    /// `end_wrap` clears both (#534), and the `top == 0` branch below — the one seam whose row is
3205    /// not a grid row — couples them inline for the same reason.
3206    ///
3207    /// **Validity condition for clearing at the seams rather than everywhere.** ghostty clears the
3208    /// wrap and the spacer head on *every* row a full-width IL/DL touches, and its own comment
3209    /// gives two reasons: it splits interior pairs, **and** it supports left/right margins
3210    /// (DECSLRM), where a partial-row shift can break an interior pair without moving its
3211    /// neighbour. justerm rotates whole `Row`s and implements no DECSLRM, so an interior pair and
3212    /// its continuation always move together and seam-only is sound. If left/right margins ever
3213    /// land, this rule and #534's marker rule break at the same time — neither is safe under a
3214    /// shift that moves part of a row.
3215    fn shift_region(
3216        &mut self,
3217        top: usize,
3218        bottom: usize,
3219        down: bool,
3220        evicts_to_scrollback: bool,
3221        serves_wrap: bool,
3222    ) {
3223        if down {
3224            self.grid.scroll_down_region(top, bottom);
3225        } else {
3226            self.grid.scroll_up_region(top, bottom);
3227        }
3228        // Recording the scroll op is part of shifting, not a step a caller adds after: damage is
3229        // indexed by row position, so `record_scroll` rotates `line_damage` with the content. A
3230        // seam clear damaged *before* that rotation is carried to the wrong row — and on a
3231        // down-shift it lands on `top`, which `record_scroll` immediately overwrites with
3232        // `fully_damaged`. The clear then never reaches the wire at all: the model splits the
3233        // rows, a `Partial` frame does not say so, and the consumer keeps them joined forever.
3234        // Ordering it here is what makes that unrepeatable at a sixth call site.
3235        self.record_scroll(top, bottom, if down { -1 } else { 1 });
3236        if top > 0 {
3237            self.end_wrap(top - 1);
3238        } else if !evicts_to_scrollback && !self.on_alt {
3239            // `top == 0` does not mean "no row above": on the primary the text readers walk
3240            // `[scrollback ++ grid]` as one buffer (`abs_floor() == 0`), so the row above grid row
3241            // 0 is the last *scrollback* row and it can wrap into the screen. A full-screen SU /
3242            // DL / RI therefore leaves this issue's defect one row higher, outside the grid.
3243            //
3244            // `evicts_to_scrollback` is what keeps `linefeed` out: it pushes grid row 0 into
3245            // scrollback, so the continuation is re-attached one row further back and the claim
3246            // stays true — clearing there would split a line the scroll preserved. On the alt
3247            // screen `abs_floor()` is the screen top, so no join crosses the boundary at all.
3248            //
3249            // No damage is owed with the clear, unlike `end_wrap`'s grid form: a scrollback row
3250            // only reaches the wire while `display_offset > 0`, and there `damage()` returns an
3251            // empty `Partial` (`term.rs`, the frozen-viewport short-circuit) while any scroll that
3252            // *moves* the viewport marks full damage. Valid as long as that short-circuit holds.
3253            //
3254            // The artefact marker goes with the wrap here exactly as it does in `end_wrap`, and
3255            // this branch is the reason that coupling cannot simply live in `end_wrap`: it is the
3256            // one wrap-ending path whose row is not a grid row, so it does not call it. Leaving it
3257            // out left #534's defect alive one row above the grid — reachable from every
3258            // `scroll_region_lines` verb, since all of them pass `evicts_to_scrollback: false`,
3259            // and visible as a word selection one cell too wide plus a reflow that bakes the
3260            // stranded marker mid-row.
3261            if let Some(row) = self.scrollback.back_mut() {
3262                row.set_wrapped(false);
3263                if let Some(cell) = row.last_mut() {
3264                    cell.clear_leading_spacer();
3265                }
3266            }
3267        }
3268        // The blank lands at `bottom` going up and at `top` going down, so the row that lost its
3269        // continuation is the one just above it. Going down that is `top - 1`, already cleared
3270        // above; going up it is `bottom - 1`, which for a one-row region is that same row.
3271        //
3272        // The up-shift form needs the `bottom + 1` guard, and it is not defensive — without it the
3273        // clear destroys a **live** wrap. A row at the screen's bottom edge that wraps is the
3274        // ordinary soft-wrap-at-the-last-row state: `wrapline` sets the flag and the linefeed
3275        // scrolls precisely so the continuation has somewhere to land, which is the *next* row
3276        // after this shift. Its claim is about a row that does not exist yet, so the shift makes it
3277        // true rather than false.
3278        //
3279        // **The rest of that guard's original rationale was too narrow, and #557 is what it cost.**
3280        // It read: *"the link is only broken when there is a stationary row below the region
3281        // (`bottom + 1 < rows`): then the continuation stayed put while its lead moved up."* A
3282        // stationary row below is **necessary but not sufficient**. At a *region's* bottom the same
3283        // wrapline-asked-for scroll happens with `bottom + 1 < rows` perfectly true, and the clear
3284        // then split the logical line the scroll existed to continue. The geometry was never the
3285        // discriminator; **why the shift is happening** is — which is what `serves_wrap` carries.
3286        //
3287        // The guard stays anyway: it is the screen-bottom case of the same fact, and it also holds
3288        // for a *non*-wrap-serving linefeed at the screen edge.
3289        //
3290        // One invariant is still worth naming, because it was not true when this guard was first
3291        // written: **a row only claims a wrap if a next row will exist for it**. A row parked below
3292        // a DECSTBM region kept a permanent false claim, and this guard preserved it — the #540
3293        // completeness pass merged two unrelated logical lines through exactly that hole. The claim
3294        // is now gated at its set site (`write_glyph` asks `wrapline_advances`), so the guard's
3295        // premise holds. Valid as long as that gate stays.
3296        let orphaned = if serves_wrap {
3297            // The blank this shift just exposed is the continuation the wrap is waiting for, so
3298            // there is nothing to falsify — see the `serves_wrap` note on `linefeed_inner` (#557).
3299            None
3300        } else if down {
3301            Some(bottom)
3302        } else if bottom + 1 < self.grid.rows() {
3303            bottom.checked_sub(1)
3304        } else {
3305            None
3306        };
3307        if let Some(row) = orphaned {
3308            self.end_wrap(row);
3309        }
3310    }
3311
3312    fn erase_display(&mut self, mode: u16) {
3313        let (cols, rows) = (self.grid.cols(), self.grid.rows());
3314        let (cr, cc) = (self.cursor.row, self.cursor.col);
3315        match mode {
3316            0 => {
3317                // Erases this row's tail and every row below, so nothing can continue from here
3318                // — and the rows below cannot continue either.
3319                self.clear_cells(cr, cc, cols);
3320                self.end_wrap(cr);
3321                for row in (cr + 1)..rows {
3322                    self.clear_cells(row, 0, cols);
3323                    self.end_wrap(row);
3324                }
3325            }
3326            1 => {
3327                // Leftward: this row's tail survives, so its own wrap does. The rows *above* are
3328                // gone entirely.
3329                for row in 0..cr {
3330                    self.clear_cells(row, 0, cols);
3331                    self.end_wrap(row);
3332                }
3333                self.clear_cells(cr, 0, cc + 1);
3334                self.drop_artefact_if_erased(cr, 0, cc + 1);
3335                // Covering the whole row means nothing continues from it. xterm.js has a
3336                // dedicated arm for exactly this case, in its own words: *"Deleted entire
3337                // previous line. This next line can no longer be wrapped."*
3338                // (`InputHandler.ts:1248-1252` — under its continuation polarity that assignment
3339                // is this engine's `end_wrap(cr)`.) `EL 1` has no such arm there, and none here.
3340                if cc + 1 == cols {
3341                    self.end_wrap(cr);
3342                }
3343            }
3344            2 => {
3345                for row in 0..rows {
3346                    self.clear_cells(row, 0, cols);
3347                    self.end_wrap(row);
3348                }
3349            }
3350            // Notably **`3` (ED 3, erase scrollback) is not implemented** and falls through
3351            // here as a no-op. Recorded rather than filed, because an unimplemented verb is
3352            // not a defect — but whoever implements it inherits an obligation that is invisible
3353            // from this site (#660's completeness pass): it would be the first verb that
3354            // shortens the buffer *from the front* by N lines, so it needs both an anchor
3355            // fixup (selection, markers **and** tracked points are absolute-from-oldest — three
3356            // holders since #691, and the third has no frame to make its drift visible) and a `display_offset`
3357            // clamp. Without the second, `selection_range`'s `scrollback.len() - display_offset`
3358            // underflows — and so do the same expressions in `viewport_line`,
3359            // `viewport_link_at` and `match_spans`. alacritty's `ClearMode::Saved` arm does
3360            // both (`term/mod.rs:1806-1811`).
3361            _ => {}
3362        }
3363    }
3364
3365    /// Erase in line (EL): 0 = cursor→end, 1 = start→cursor, 2 = whole line.
3366    fn erase_line(&mut self, mode: u16) {
3367        let cols = self.grid.cols();
3368        let (cr, cc) = (self.cursor.row, self.cursor.col);
3369        match mode {
3370            // Erase right — ends the wrap at any column (xterm's `ClearRight`).
3371            0 => {
3372                self.clear_cells(cr, cc, cols);
3373                self.end_wrap(cr);
3374            }
3375            // Erase left — the tail survives, so the wrap does. The artefact marker does not:
3376            // if the erase reached the last column it just blanked the cell the marker described.
3377            1 => {
3378                self.clear_cells(cr, 0, cc + 1);
3379                self.drop_artefact_if_erased(cr, 0, cc + 1);
3380            }
3381            // Erase the whole line — see `end_wrap`: a deliberate divergence from xterm.
3382            2 => {
3383                self.clear_cells(cr, 0, cols);
3384                self.end_wrap(cr);
3385            }
3386            _ => {}
3387        }
3388    }
3389
3390    // ---- intra-line editing (ICH / DCH / ECH) --------------------------------
3391
3392    /// ECH (CSI Pn X): erase `n` cells in place from the cursor — no shift.
3393    /// BCE-filled (via `clear_cells`); pending-wrap is left untouched.
3394    fn erase_chars(&mut self, n: usize) {
3395        let cols = self.grid.cols();
3396        let (row, col) = (self.cursor.row, self.cursor.col);
3397        let to = (col + n).min(cols);
3398        self.clear_cells(row, col, to);
3399        // Destroys content from the cursor rightward, so the row can no longer be continuing —
3400        // unconditionally, at any column and for any `n`. Both references do exactly this (see
3401        // `end_wrap`): xterm routes ECH through the same `ClearRight` as `EL 0`, ghostty calls
3402        // `cursorResetWrap()` in `eraseChars`.
3403        self.end_wrap(row);
3404    }
3405
3406    /// ICH (CSI Pn @): insert `n` blanks at the cursor, shifting the rest of the
3407    /// line right; cells pushed past the right edge are lost. The opened gap is
3408    /// BCE-filled; pending-wrap is left untouched.
3409    fn insert_chars(&mut self, n: usize) {
3410        let cols = self.grid.cols();
3411        let (r, col) = (self.cursor.row, self.cursor.col);
3412        let n = n.min(cols - col);
3413        if n == 0 {
3414            return;
3415        }
3416        // Shifting a wrapped pair out of columns 0/1 ends it, so the row above's artefact record
3417        // is void (#534). Asked **before** the shift, which is what keeps IRM correct: `write_glyph`
3418        // routes its wide-at-boundary insert through here *after* `vacate_for_wrap` has just set
3419        // the marker on the row above, and a post-shift test would see the freshly blanked gap and
3420        // clear the marker inside its own SET site's critical section. Pre-shift the question is
3421        // about the pair that was actually there, which is the one the record is about.
3422        if col <= 1 && self.wrapped_pair_at_row_start(r) {
3423            self.void_wrap_artefact_above(r);
3424        }
3425        let bg = self.cursor.pen.bg;
3426        let row = self.grid.row_mut(r);
3427        // Shift [col .. cols-n) right by n; the tail falls off the edge. The
3428        // combining map follows the moved cells (the bit travels with the raw
3429        // copy, the cluster data must too).
3430        row.copy_within(col..cols - n, col + n);
3431        row.move_maps(col..cols - n, col + n);
3432        for cell in &mut row[col..col + n] {
3433            cell.reset();
3434            cell.set_bg(bg);
3435        }
3436        // Repair wide-char halves split at the seams (no-orphan invariant):
3437        // a lead just before the gap lost its spacer; the first shifted cell may
3438        // be a spacer whose lead did not move.
3439        if col > 0 && self.grid.cell(r, col - 1).is_wide() {
3440            self.free_cell(r, col - 1);
3441        }
3442        if col + n < cols && self.grid.cell(r, col + n).is_wide_spacer() {
3443            self.free_cell(r, col + n);
3444        }
3445        // A lead shifted to the last column lost its spacer off the edge.
3446        if self.grid.cell(r, cols - 1).is_wide() {
3447            self.free_cell(r, cols - 1);
3448        }
3449        // Note ICH needs no repair to *this* row's marker: a right shift always pushes the last
3450        // column off the edge, so it discards a marker rather than carrying one inward —
3451        // measured, and pinned by `ich_discards_the_marker_off_the_edge`.
3452        self.damage_span(r, col, cols - 1);
3453    }
3454
3455    /// DCH (CSI Pn P): delete `n` cells at the cursor, shifting the tail left; the
3456    /// vacated cells at the right are BCE-blanked. Pending-wrap is left untouched.
3457    fn delete_chars(&mut self, n: usize) {
3458        let cols = self.grid.cols();
3459        let (r, col) = (self.cursor.row, self.cursor.col);
3460        let n = n.min(cols - col);
3461        if n == 0 {
3462            return;
3463        }
3464        // The shift pulls the tail left and blanks the far end, so the row stops continuing —
3465        // ghostty says it outright (*"Our row's soft-wrap is always reset"* in `deleteChars`,
3466        // `Terminal.zig:3133` @ `e6e26e1`).
3467        //
3468        // **Before the shift, not after** (#534): `end_wrap` clears the artefact marker at the
3469        // *last* column, and the marker is a cell bit that the shift carries inward with every
3470        // other cell. Ending the wrap afterwards would clear a column the marker has already left,
3471        // stranding it mid-row where it describes nothing (ADR-0025 D3) and silently swallows the
3472        // blank between two runs in copy, search and accessible text. Same shape as #540's
3473        // `record_scroll` ordering: the clear has to happen where the state still is.
3474        self.end_wrap(r);
3475        // Deleting a wrapped pair out of columns 0/1 ends it, so the row above's artefact record
3476        // is void — and this is where the "ask before, not after" rule earns its keep twice over:
3477        // a `DCH` can pull the *next* wide glyph left into column 0, which a post-shift "is a wide
3478        // lead standing here?" test happily accepts even though the pair the record was about has
3479        // been deleted. ghostty asks the same question at the same point:
3480        // `Screen.splitCellBoundary(cursor.x)` from `deleteChars` (`Terminal.zig:3107` @ `e6e26e1`),
3481        // whose `x == 0 or x == 1` branch reaches up a row and clears the spacer head.
3482        if col <= 1 && self.wrapped_pair_at_row_start(r) {
3483            self.void_wrap_artefact_above(r);
3484        }
3485        let bg = self.cursor.pen.bg;
3486        let row = self.grid.row_mut(r);
3487        // Shift [col+n .. cols) left to [col ..); BCE-fill the vacated tail. The
3488        // combining map follows the moved cells.
3489        row.copy_within(col + n..cols, col);
3490        row.move_maps(col + n..cols, col);
3491        for cell in &mut row[cols - n..cols] {
3492            cell.reset();
3493            cell.set_bg(bg);
3494        }
3495        // Repair wide-char halves split by the deletion (no-orphan invariant):
3496        // a lead just before the cut lost its spacer; the cell now at the cursor
3497        // may be a spacer whose lead was deleted.
3498        if col > 0 && self.grid.cell(r, col - 1).is_wide() {
3499            self.free_cell(r, col - 1);
3500        }
3501        if self.grid.cell(r, col).is_wide_spacer() {
3502            self.free_cell(r, col);
3503        }
3504        self.damage_span(r, col, cols - 1);
3505    }
3506
3507    // ---- line/region editing (IL / DL / SU / SD) -----------------------------
3508
3509    /// Scroll rows `[top..=bottom]` by `n` lines, BCE-filling the exposed lines.
3510    /// `down` inserts blanks at the top (content moves down); otherwise content
3511    /// moves up and blanks appear at the bottom. Reuses the one-line region scroll
3512    /// primitives (so damage + scroll-op accumulation come for free), then fills
3513    /// the exposed lines with the current SGR background.
3514    fn scroll_region_lines(&mut self, top: usize, bottom: usize, n: usize, down: bool) {
3515        let height = bottom - top + 1;
3516        let n = n.min(height);
3517        if n == 0 {
3518            return;
3519        }
3520        // Anchors (selection #3, markers #118/#158) live at absolute buffer lines;
3521        // SU/SD/IL/DL don't accrue scrollback, so `base` is stable across the loop.
3522        let base = self.scrollback.len();
3523        for _ in 0..n {
3524            self.shift_region(top, bottom, down, false, false);
3525            // Rotate anchors with the content, like `linefeed`/`reverse_index`
3526            // (#162). `up` = content moved up = the non-`down` case. Markers rotate
3527            // with the active buffer (#187) — alt-scoped on the alt screen, so no
3528            // guard. **The selection is unguarded here for the same reason, not because
3529            // "it is cleared on alt enter"** — that was this comment's claim until #660 and
3530            // it is false: a selection made while the alt screen is up is ordinary, it does
3531            // reach this line, and rotating it is correct, because the content really did
3532            // move under it. The code was right; only its stated reason was wrong.
3533            self.selection_rotate_region(base + top, base + bottom, !down);
3534            self.markers_rotate_region(base + top, base + bottom, !down);
3535            self.tracked_rotate_region(base + top, base + bottom, !down);
3536        }
3537        self.invalidate_search_highlights();
3538        // BCE-fill the n exposed lines (the primitives blank to default).
3539        let bg = self.cursor.pen.bg;
3540        let (fill_top, fill_end) = if down {
3541            (top, top + n)
3542        } else {
3543            (bottom + 1 - n, bottom + 1)
3544        };
3545        let cols = self.grid.cols();
3546        for r in fill_top..fill_end {
3547            for c in 0..cols {
3548                let cell = self.grid.cell_mut(r, c);
3549                cell.reset();
3550                cell.set_bg(bg);
3551            }
3552        }
3553    }
3554
3555    /// SU (CSI Pn S): scroll the scroll region up by `n`.
3556    fn scroll_up_lines(&mut self, n: usize) {
3557        self.scroll_region_lines(self.scroll_top, self.scroll_bottom, n, false);
3558    }
3559
3560    /// SD (CSI Pn T): scroll the scroll region down by `n`.
3561    fn scroll_down_lines(&mut self, n: usize) {
3562        self.scroll_region_lines(self.scroll_top, self.scroll_bottom, n, true);
3563    }
3564
3565    /// IL (CSI Pn L): insert `n` blank lines at the cursor, scrolling
3566    /// `[cursor..=scroll_bottom]` down. A no-op when the cursor is outside the
3567    /// scroll region.
3568    fn insert_lines(&mut self, n: usize) {
3569        let cur = self.cursor.row;
3570        if cur < self.scroll_top || cur > self.scroll_bottom {
3571            return;
3572        }
3573        self.scroll_region_lines(cur, self.scroll_bottom, n, true);
3574    }
3575
3576    /// DL (CSI Pn M): delete `n` lines at the cursor, scrolling
3577    /// `[cursor..=scroll_bottom]` up. A no-op when the cursor is outside the
3578    /// scroll region.
3579    fn delete_lines(&mut self, n: usize) {
3580        let cur = self.cursor.row;
3581        if cur < self.scroll_top || cur > self.scroll_bottom {
3582            return;
3583        }
3584        self.scroll_region_lines(cur, self.scroll_bottom, n, false);
3585    }
3586
3587    // ---- SGR (CSI m) ---------------------------------------------------------
3588
3589    fn sgr(&mut self, params: &Params) {
3590        let pen = &mut self.cursor.pen;
3591        let mut iter = params.iter();
3592        while let Some(param) = iter.next() {
3593            let code = param.first().copied().unwrap_or(0);
3594            match code {
3595                0 => pen.reset(),
3596                1 => pen.flags.insert(CellFlags::BOLD),
3597                2 => pen.flags.insert(CellFlags::DIM),
3598                3 => pen.flags.insert(CellFlags::ITALIC),
3599                4 => pen.flags.insert(CellFlags::UNDERLINE),
3600                5 => pen.flags.insert(CellFlags::BLINK),
3601                7 => pen.flags.insert(CellFlags::INVERSE),
3602                8 => pen.flags.insert(CellFlags::HIDDEN),
3603                9 => pen.flags.insert(CellFlags::STRIKETHROUGH),
3604                22 => pen.flags.remove(CellFlags::BOLD | CellFlags::DIM),
3605                23 => pen.flags.remove(CellFlags::ITALIC),
3606                24 => pen.flags.remove(CellFlags::UNDERLINE),
3607                25 => pen.flags.remove(CellFlags::BLINK),
3608                27 => pen.flags.remove(CellFlags::INVERSE),
3609                28 => pen.flags.remove(CellFlags::HIDDEN),
3610                29 => pen.flags.remove(CellFlags::STRIKETHROUGH),
3611                30..=37 => pen.fg = Color::Indexed((code - 30) as u8),
3612                38 => {
3613                    if let Some(c) = parse_extended_color(param, &mut iter) {
3614                        pen.fg = c;
3615                    }
3616                }
3617                39 => pen.fg = Color::Default,
3618                40..=47 => pen.bg = Color::Indexed((code - 40) as u8),
3619                48 => {
3620                    if let Some(c) = parse_extended_color(param, &mut iter) {
3621                        pen.bg = c;
3622                    }
3623                }
3624                49 => pen.bg = Color::Default,
3625                // Underline colour (SGR 58 / 59, #520) — same extended-colour grammar
3626                // as 38/48 (colon `58:2:r:g:b` / `58:5:n`, or legacy semicolon), so it
3627                // reuses `parse_extended_color` verbatim. 59 returns to "follow the fg".
3628                58 => {
3629                    if let Some(c) = parse_extended_color(param, &mut iter) {
3630                        pen.underline_color = c;
3631                    }
3632                }
3633                59 => pen.underline_color = Color::Default,
3634                // bright foreground/background (aixterm) → palette 8..=15.
3635                90..=97 => pen.fg = Color::Indexed((code - 90 + 8) as u8),
3636                100..=107 => pen.bg = Color::Indexed((code - 100 + 8) as u8),
3637                _ => {}
3638            }
3639        }
3640    }
3641}
3642
3643/// Cap a recorded scroll to what a consumer can act on **and** what the wire can
3644/// carry (#661) — two bounds for two different reasons, see [`Term::scroll_delta`].
3645///
3646/// A free function so the second bound is provable without building the grid that
3647/// reaches it: a region taller than `i16::MAX` means a screen taller than 32 767
3648/// rows, and every scroll of it rotates a `line_damage` of that length, so driving
3649/// the engine to that corner costs ~10⁹ element moves (measured: 16 s in a debug
3650/// build, for one assertion). The engine-level tests in `tests/damage.rs` prove
3651/// `scroll_delta` applies this at ordinary sizes; the wire-level one in
3652/// `tests/serialize.rs` proves a count at the bound survives `encode`.
3653fn cap_scroll(op: ScrollOp) -> ScrollOp {
3654    let height = op.bottom.saturating_sub(op.top).saturating_add(1) as isize;
3655    let bound = height.min(MAX_SCROLL_COUNT);
3656    ScrollOp {
3657        count: op.count.clamp(-bound, bound),
3658        ..op
3659    }
3660}
3661
3662/// Parse `38`/`48`/`58` extended colour (foreground / background / underline colour, #520), in
3663/// either form:
3664/// - sub-parameter (colon) form inline in `param`: `38:5:n`, `38:2:r:g:b`
3665///   (optionally `38:2:cs:r:g:b` with a colorspace id), or
3666/// - legacy (semicolon) form: pull the following top-level params from `iter`.
3667///
3668/// The colon RGB form is **count-based** (`off = if param.len() >= 6 { 3 } else { 2 }`): a 5-param
3669/// `38:2:r:g:b` (no colorspace slot) reads RGB(r,g,b) directly, while a 6-param `38:2:cs:r:g:b` — or
3670/// `38:2::r:g:b` with an *empty* cs, the form kitty/nvim actually emit — skips the colorspace slot.
3671/// The short 5-param form is **non-conformant to T.416 / ISO-8613-6** (the de-jure standard always
3672/// carries a colorspace field), but tolerating it is the **ecosystem-dominant** behaviour, verified
3673/// against real source (2026-07, #520): VTE (`src/sgr.hh`, branches on `n > 4`), foot (`csi.c`,
3674/// `sub.idx >= 5`) and alacritty (`ansi.rs`, `params.len() > 4`) all count the sub-parameters and
3675/// decode the short form as RGB(r,g,b), exactly as here. VTE's own comment calls it a "common
3676/// misinterpretation of the standard" (foot: "bastard version") that it supports anyway; **only
3677/// xterm.js is strict** (always consumes a colorspace slot, so it misreads the short form). So a
3678/// difference from xterm here is deliberate leniency shared with the non-xterm ecosystem, not a
3679/// defect — the ADR-0004 spec-faithfulness is about not *omitting* behaviour, not about rejecting a
3680/// widely-emitted non-standard input.
3681fn parse_extended_color<'a, I>(param: &[u16], iter: &mut I) -> Option<Color>
3682where
3683    I: Iterator<Item = &'a [u16]>,
3684{
3685    if param.len() > 1 {
3686        // Colon sub-parameter form: kind is param[1].
3687        match param[1] {
3688            2 => {
3689                // 38:2:r:g:b (len 5) or 38:2:cs:r:g:b (len 6, colorspace skipped).
3690                let off = if param.len() >= 6 { 3 } else { 2 };
3691                let r = *param.get(off)? as u8;
3692                let g = *param.get(off + 1)? as u8;
3693                let b = *param.get(off + 2)? as u8;
3694                Some(Color::Rgb(r, g, b))
3695            }
3696            5 => Some(Color::Indexed(*param.get(2)? as u8)),
3697            _ => None,
3698        }
3699    } else {
3700        // Legacy semicolon form: kind, then its operands, are separate params.
3701        match iter.next()?.first().copied()? {
3702            2 => {
3703                let r = iter.next()?.first().copied()? as u8;
3704                let g = iter.next()?.first().copied()? as u8;
3705                let b = iter.next()?.first().copied()? as u8;
3706                Some(Color::Rgb(r, g, b))
3707            }
3708            5 => Some(Color::Indexed(iter.next()?.first().copied()? as u8)),
3709            _ => None,
3710        }
3711    }
3712}
3713
3714/// Reflow one screen (joined with its `scrollback`) to `cols` x `rows`, tracking
3715/// `point` (a cursor in screen coordinates). Returns the new screen rows, the new
3716/// scrollback (capped to `limit`), and the new point. The alt screen passes an
3717/// empty scrollback and discards the returned one.
3718/// The fixed dimensions a resize reflows toward.
3719#[derive(Clone, Copy)]
3720struct ReflowDims {
3721    old_cols: usize,
3722    cols: usize,
3723    rows: usize,
3724    limit: usize,
3725    /// Whether a column change may **re-split** this pane's content, or only re-fit its rows.
3726    ///
3727    /// False for the alt screen (#567). Reflow re-splits a long line so history stays readable at
3728    /// the new width — it assumes the content is text that *flows*. The alt screen has no history,
3729    /// its content is a **layout** rather than a paragraph (re-wrapping htop's columns means
3730    /// nothing), and the application already knows the new size and repaints. All three references
3731    /// take the same position with the same shape — one flag on the same resize function:
3732    /// ghostty `alt.resize(.{ .reflow = false })`, alacritty `grid.resize(!is_alt, …)`, xterm.js
3733    /// gating on `_hasScrollback` with the alt buffer built as `new Buffer(false, …)`.
3734    ///
3735    /// It is not merely wasted work: measured on a real `htop` recording taken across a live
3736    /// `SIGWINCH`, re-splitting leaves debris in the cells htop does not overwrite, because htop
3737    /// repaints **without** clearing. `vim` hides it by erasing first.
3738    reflow: bool,
3739}
3740
3741/// The result of reflowing one pane.
3742struct PaneReflow {
3743    screen: Vec<Row>,
3744    scrollback: VecDeque<Row>,
3745    /// The cursor's new screen-relative position.
3746    cursor: (usize, usize),
3747    /// Each tracked extra point's new position **in this pane's own `[history ++ screen]` frame**,
3748    /// index-aligned with the `extra_abs` argument — *before* any history the caller discards.
3749    ///
3750    /// Reported raw, with `evicted` beside it, because the two callers translate differently and
3751    /// doing it here silently picked the primary's answer for both: the primary keeps its history,
3752    /// so an extra's absolute line only moves by what the cap threw away, while the alt pane has no
3753    /// history at all and everything above the screen is *gone*. Adding the alt result to the
3754    /// primary's scrollback length then produced a line the buffer does not have — reachable
3755    /// without any reflow, on a rows-only resize.
3756    extras: Vec<(usize, usize)>,
3757    /// Rows that left the buffer entirely off the front of this pane's history. For the primary
3758    /// that is the scrollback cap's eviction; for the alt pane, whose limit is `0` because it has
3759    /// no history, it is every row the shrink pushed off the top. An extra whose raw line is below
3760    /// this **is not in the buffer any more** — the caller decides what that means for its kind.
3761    evicted: usize,
3762}
3763
3764/// Reflow one pane (its `scrollback` joined with `screen`) to `dims`, tracking
3765/// the screen-relative cursor `point` plus any `extra_abs` points given in
3766/// **absolute** `[scrollback ++ screen]` coordinates (selection anchors).
3767fn reflow_pane(
3768    screen: Vec<Row>,
3769    scrollback: VecDeque<Row>,
3770    point: (usize, usize),
3771    extra_abs: &[(usize, usize)],
3772    dims: ReflowDims,
3773) -> PaneReflow {
3774    let scroll_len = scrollback.len();
3775    let mut all: Vec<Row> = scrollback.into();
3776    all.extend(screen);
3777
3778    // The cursor is screen-relative; lift it to absolute, then track it together
3779    // with the already-absolute extras.
3780    let mut pts: Vec<(usize, usize)> = Vec::with_capacity(1 + extra_abs.len());
3781    pts.push((scroll_len + point.0, point.1));
3782    pts.extend_from_slice(extra_abs);
3783
3784    let pts = if dims.reflow && dims.cols != dims.old_cols {
3785        let (reflowed, np) = crate::grid::reflow(all, dims.cols, &pts);
3786        all = reflowed;
3787        np
3788    } else {
3789        pts
3790    };
3791
3792    // The cursor can land one row past everything the reflow emitted — "just after the content"
3793    // when the content ends on a full row (#562). That row is real, and while the pane is shorter
3794    // than the screen the caller's fit supplies it for free. When the content already fills the
3795    // pane it has to be bought, and the price is one row of history: the pane **scrolls**, which is
3796    // what a terminal does when content grows past the bottom. Without it the cursor was pulled
3797    // back onto the last glyph and the next byte destroyed a character — the ordinary shell shape,
3798    // a prompt at the bottom of a full screen.
3799    //
3800    // Five earlier designs made `reflow` itself materialise the row and were rejected on
3801    // measurements (a cursor at column 59 resized to width 4 emptied the buffer; a blank-line
3802    // exemption turned 22 alt lines into 21). `reflow` cannot see this pane's budget, so it spent
3803    // what it did not have. Here the budget is in scope, and it is the gate: a pane with no history
3804    // cannot pay — the displaced row would be destroyed rather than archived — so it keeps clamping.
3805    //
3806    // `limit > 0`, deliberately, and not "is this the alt screen": since #567 the alt panes pass
3807    // `limit: 0` because that is what an alt screen's history is, so they are excluded by the budget
3808    // rather than by a branch. That branch is what the design carrying this rule was rejected for
3809    // needing.
3810    //
3811    // This **amends** ADR-0025 rather than reading it narrowly: `reflow` does not create rows; the
3812    // seam may, when the pane can pay. What that record measured is that materialising
3813    // *unconditionally* destroys content.
3814    let cursor_abs = pts[0].0 + usize::from(pts[0].1 == dims.cols);
3815    if dims.limit > 0 {
3816        while all.len() <= cursor_abs {
3817            all.push(Row::blank(dims.cols));
3818        }
3819    }
3820
3821    let split = all.len().saturating_sub(dims.rows);
3822    let history: Vec<Row> = all.drain(0..split).collect();
3823    let mut sb: VecDeque<Row> = history.into();
3824    let mut dropped = 0usize;
3825    while sb.len() > dims.limit {
3826        sb.pop_front();
3827        dropped += 1;
3828    }
3829
3830    // `reflow` may answer `col == cols` — "just after the last cell", which is a real place in the
3831    // logical line and no place in the grid (#562). The **cursor's** reading of it is the next
3832    // *write* position, so a full row means the start of the row after; the caller's row fit
3833    // provides that row (`Grid::set_screen` pads at the bottom). A mark reads the same value the
3834    // opposite way and keeps it verbatim — see `Term::resize`.
3835    let cursor_row = pts[0].0.saturating_sub(split);
3836    let cursor = if pts[0].1 == dims.cols {
3837        (cursor_row + 1, 0)
3838    } else {
3839        (cursor_row, pts[0].1)
3840    };
3841
3842    // The bound on a tracked line belongs **here**, not inside `reflow`: this is where the final
3843    // geometry is known. The screen is padded to `dims.rows` whatever `reflow` emitted, so this
3844    // pane's last addressable line is `split + dims.rows - 1`. Bounding against `reflow`'s own row
3845    // count instead clamped away rows the fit was about to create (#562), while still being the
3846    // only thing standing between an out-of-range anchor and a panic in the consumer's process —
3847    // selection anchors and marks are written back raw, unlike the cursor (`Cursor::set_point`).
3848    // Expressed in this pane's own frame, so it is the same frame `extras` and `evicted` are in.
3849    let max_line = split + dims.rows - 1;
3850
3851    // The cursor returns to screen-relative (its absolute index minus the history split). The
3852    // extras stay in this pane's frame — see the field docs for why they are not shifted here.
3853    PaneReflow {
3854        cursor,
3855        extras: pts[1..]
3856            .iter()
3857            .map(|&(l, c)| (l.min(max_line), c))
3858            .collect(),
3859        evicted: dropped,
3860        screen: all,
3861        scrollback: sb,
3862    }
3863}
3864
3865/// Default tab stops: one every 8 columns (incl. column 0), matching xterm.
3866fn default_tabs(cols: usize) -> Vec<bool> {
3867    (0..cols).map(|i| i % 8 == 0).collect()
3868}
3869
3870/// First sub-parameter of CSI param `idx`, or `default` when absent or zero
3871/// (a zero/omitted numeric param means "1" for cursor movement and "0" for
3872/// erase — callers pass the right default).
3873fn param_or(params: &Params, idx: usize, default: u16) -> u16 {
3874    match params.iter().nth(idx).and_then(|p| p.first().copied()) {
3875        Some(v) if v != 0 => v,
3876        _ => default,
3877    }
3878}
3879
3880impl Term {
3881    /// Apply one DEC private mode set (`'h'`) or reset (`'l'`). DECSET/DECRST
3882    /// carry a list of modes, so `csi_dispatch` folds this over every parameter
3883    /// (#56); each mode is an independent toggle, not a stack.
3884    fn set_dec_private_mode(&mut self, action: char, mode: u16) {
3885        match (action, mode) {
3886            ('h', 1049) => self.enter_alt_screen(),
3887            ('l', 1049) => self.leave_alt_screen(),
3888            // Legacy alt-screen variants (#72): ?47/?1047 switch the buffer
3889            // without saving the cursor; ?1048 saves/restores the cursor without
3890            // switching. ?1049 is the two combined.
3891            ('h', 47) | ('h', 1047) => self.switch_to_alt(),
3892            ('l', 47) | ('l', 1047) => self.switch_to_primary(),
3893            ('h', 1048) => self.save_alt_cursor(),
3894            ('l', 1048) => self.restore_alt_cursor(),
3895            ('h', 6) => {
3896                // DECOM: set homes the cursor to the region top.
3897                self.origin_mode = true;
3898                self.goto(0, 0);
3899            }
3900            ('l', 6) => self.origin_mode = false, // unset leaves the cursor put
3901            ('h', 7) => self.autowrap = true,     // DECAWM
3902            ('l', 7) => self.autowrap = false,
3903            ('h', 45) => self.reverse_wraparound = true, // reverse wraparound (#80)
3904            ('l', 45) => self.reverse_wraparound = false,
3905            // DECCOLM (#82): the engine is dimension-free, so emit a request the
3906            // consumer may honor by resizing — no screen/cursor/margin change here.
3907            ('h', 3) => self.events.push(TermEvent::ColumnMode { cols: 132 }),
3908            ('l', 3) => self.events.push(TermEvent::ColumnMode { cols: 80 }),
3909            ('h', 25) => self.cursor.visible = true, // DECTCEM show
3910            ('l', 25) => self.cursor.visible = false, // DECTCEM hide
3911            ('h', 12) => self.cursor.blink = true,   // att610 cursor blink (#81)
3912            ('l', 12) => self.cursor.blink = false,
3913            ('h', 2004) => self.bracketed_paste = true,
3914            ('l', 2004) => self.bracketed_paste = false,
3915            ('h', 2026) => self.synchronized_output = true, // synchronized output (#73)
3916            ('l', 2026) => self.synchronized_output = false,
3917            ('h', 2027) => self.grapheme_clustering = true, // grapheme-cluster mode (#295)
3918            ('l', 2027) => self.grapheme_clustering = false,
3919            ('h', 2031) => self.color_scheme_updates = true, // color-scheme notifications (#85)
3920            ('l', 2031) => self.color_scheme_updates = false,
3921            ('h', 9001) => self.win32_input_mode = true, // win32-input-mode (#86)
3922            ('l', 9001) => self.win32_input_mode = false,
3923
3924            // Input-encoding modes (#11): DECCKM, mouse tracking + encoding,
3925            // focus reporting. Each set assigns the level; each reset clears
3926            // it (apps enable/disable the same mode, not a stack).
3927            ('h', 1) => self.app_cursor_keys = true, // DECCKM
3928            ('l', 1) => self.app_cursor_keys = false,
3929            ('h', 66) => self.application_keypad = true, // DECNKM (#74)
3930            ('l', 66) => self.application_keypad = false,
3931            // DECANM (#84): set = ANSI (the normal state); reset enters VT52. Only
3932            // the reset is meaningful — `?2h` is a no-op (already ANSI).
3933            ('l', 2) => self.vt52_mode = true,
3934            ('h', 9) => self.mouse_protocol = MouseProtocol::X10, // X10 mouse (#70)
3935            ('h', 1000) => self.mouse_protocol = MouseProtocol::Normal,
3936            ('h', 1002) => self.mouse_protocol = MouseProtocol::ButtonEvent,
3937            ('h', 1003) => self.mouse_protocol = MouseProtocol::AnyEvent,
3938            ('l', 9) | ('l', 1000) | ('l', 1002) | ('l', 1003) => {
3939                self.mouse_protocol = MouseProtocol::Off
3940            }
3941            ('h', 1006) => self.mouse_encoding = MouseEncoding::Sgr,
3942            ('l', 1006) => self.mouse_encoding = MouseEncoding::Default,
3943            ('h', 1015) => self.mouse_encoding = MouseEncoding::Urxvt,
3944            ('l', 1015) => self.mouse_encoding = MouseEncoding::Default,
3945            ('h', 1005) => self.mouse_encoding = MouseEncoding::Utf8,
3946            ('l', 1005) => self.mouse_encoding = MouseEncoding::Default,
3947            ('h', 1016) => self.mouse_encoding = MouseEncoding::SgrPixels,
3948            ('l', 1016) => self.mouse_encoding = MouseEncoding::Default,
3949            ('h', 1004) => self.focus_events = true,
3950            ('l', 1004) => self.focus_events = false,
3951
3952            _ => {} // other DEC modes are later slices
3953        }
3954    }
3955
3956    /// Dispatch one VT52 escape sequence (`ESC <final>`), reached only while
3957    /// `vt52_mode` is set (#84). VT52 is a pre-ANSI dialect: the cursor/erase
3958    /// finals map to the same `Term` primitives the ANSI path uses. `ESC <`
3959    /// returns to ANSI. Unknown finals are ignored.
3960    fn vt52_dispatch(&mut self, byte: u8) {
3961        match byte {
3962            b'A' => self.move_up(1),         // cursor up
3963            b'B' => self.move_down(1),       // cursor down
3964            b'C' => self.move_forward(1),    // cursor right
3965            b'D' => self.move_back(1),       // cursor left
3966            b'H' => self.goto(0, 0),         // cursor home
3967            b'I' => self.reverse_index(),    // reverse line feed
3968            b'J' => self.erase_display(0),   // erase cursor → end of screen
3969            b'K' => self.erase_line(0),      // erase cursor → end of line
3970            b'Y' => self.vt52_y_pending = 2, // direct address: two coord bytes follow
3971            // Identify (DECID): reply `ESC / Z` — "I am a VT52".
3972            b'Z' => self.replies.extend_from_slice(b"\x1b/Z"),
3973            b'=' => self.application_keypad = true, // enter alternate keypad
3974            b'>' => self.application_keypad = false, // exit alternate keypad
3975            b'<' => self.vt52_mode = false,         // exit VT52, return to ANSI
3976            // RIS (`ESC c`) is honored even here: it is a hard "recover from any
3977            // state" reset, and `full_reset` rebuilds `Term` with `vt52_mode`
3978            // cleared, so RIS always escapes VT52 back to ANSI. VT52 defines no
3979            // other meaning for `ESC c`.
3980            b'c' => self.full_reset(),
3981            // Graphics mode (`ESC F`/`ESC G`) is a documented non-goal: the VT52
3982            // graphics glyph set differs from DEC Special Graphics, so reusing that
3983            // charset would render the wrong glyphs. No-op rather than approximate.
3984            b'F' | b'G' => {}
3985            _ => {} // unknown VT52 finals are ignored
3986        }
3987    }
3988
3989    /// Consume one `ESC Y` coordinate byte (#84). The first byte is the row, the
3990    /// second the column; each decodes as `value - 0x20`. On the second byte the
3991    /// cursor is addressed (`goto` clamps out-of-range coordinates). Reached only
3992    /// from `print` while `vt52_y_pending > 0`.
3993    fn vt52_take_coord(&mut self, c: char) {
3994        let coord = (c as usize).saturating_sub(0x20);
3995        if self.vt52_y_pending == 2 {
3996            self.vt52_y_row = coord;
3997            self.vt52_y_pending = 1;
3998        } else {
3999            self.vt52_y_pending = 0;
4000            self.goto(self.vt52_y_row, coord);
4001        }
4002    }
4003
4004    /// The allocation an OSC 8 `id=` names: the live one if that id already named a link
4005    /// with this same URI, else a fresh one recorded under the key (#635).
4006    ///
4007    /// Keyed on **id and URI together**, mirroring xterm.js's `_getEntryIdKey`
4008    /// (`` `${id};;${uri}` ``, `OscLinkService.ts:87`). Keying on the id alone would follow
4009    /// a reused id to a stale target — an application saying "same link" about two
4010    /// different destinations has not said anything the engine should honour.
4011    fn link_for_id(&mut self, id: &str, uri: &str) -> std::sync::Arc<str> {
4012        let key = format!("{id};;{uri}");
4013        // A key whose link has left the buffer is *absent*, not stale — the group it named
4014        // is gone, so this open starts a new one. That is xterm.js's behaviour too, reached
4015        // by deleting the entry rather than by letting a reference die.
4016        if let Some(live) = self.link_ids.get(&key).and_then(std::sync::Weak::upgrade) {
4017            return live;
4018        }
4019        // Amortised sweep before inserting, so dangling keys stay O(live) rather than
4020        // O(ids ever declared). Doubling the threshold keeps it O(1) per open.
4021        if self.link_ids.len() >= self.link_ids_sweep_at {
4022            self.link_ids.retain(|_, weak| weak.strong_count() > 0);
4023            self.link_ids_sweep_at = (self.link_ids.len() * 2).max(LINK_IDS_FIRST_SWEEP);
4024        }
4025        let fresh: std::sync::Arc<str> = std::sync::Arc::from(uri);
4026        self.link_ids.insert(key, std::sync::Arc::downgrade(&fresh));
4027        fresh
4028    }
4029}
4030
4031impl Perform for Term {
4032    fn print(&mut self, c: char) {
4033        // VT52 `ESC Y` direct addressing (#84): vte delivers the two coordinate
4034        // bytes here (it returned to ground after the `Y` final), so intercept
4035        // them before they would be written as glyphs.
4036        if self.vt52_y_pending > 0 {
4037            self.vt52_take_coord(c);
4038            return;
4039        }
4040        // Translate through the active (GL) character set first (#62): under DEC
4041        // Special Graphics a printable byte becomes a line-drawing glyph.
4042        let c = self.charsets[self.gl].map(c);
4043        // Grapheme-cluster mode (DEC ?2027, #295): if `c` extends the previous cell's cluster,
4044        // join it there instead of placing a new cell. OFF → the per-char (wcwidth) path below.
4045        if self.grapheme_clustering && self.try_grapheme_join(c) {
4046            return;
4047        }
4048        match c.width() {
4049            // Zero-width (combining marks): the grapheme-cluster side-table is a
4050            // later slice; drop for now rather than mis-place it as its own cell.
4051            // A zero-width code point is a combining mark — attach it to the
4052            // previous base glyph rather than dropping it.
4053            Some(0) => self.push_combining(c),
4054            None => {}
4055            // Coerced to a pair, because a pair is the only multi-column shape the cell model
4056            // has (`WIDE_CHAR` + exactly one `WIDE_CHAR_SPACER`) — see ADR-0025, which states
4057            // every clause over "a pair" and never over a wider run. `unicode-width` genuinely
4058            // returns 3 for at least one codepoint (U+17D8 KHMER SIGN BEYYAL, a ligature drawn
4059            // as three characters), and that value is not wrong — it is unrepresentable here.
4060            //
4061            // Left uncoerced, the width fell through *every* wide branch in `write_glyph`
4062            // (each gated on `width == 2`) while still driving the cursor advance, so the glyph
4063            // landed as a lone narrow cell followed by columns that no flag distinguished from
4064            // real blanks: search could not find the text on screen and word selection split
4065            // the run, handing the clipboard a space the buffer never held (#595).
4066            //
4067            // All three references bound it, and ghostty says why in the same words —
4068            // `unicode/props.zig:11-13`, *"We clamp to [0, 2] … i.e. 3-em dash becomes a 2-em
4069            // dash"*. Clamping *here* rather than inside `write_glyph` keeps the two jobs apart:
4070            // this is the policy for an out-of-range external value, and the invariant it
4071            // establishes is asserted at the site that depends on it.
4072            Some(width) => self.write_glyph(c, width.min(2)),
4073        }
4074    }
4075
4076    fn execute(&mut self, byte: u8) {
4077        match byte {
4078            // LF, VT, FF all line-feed.
4079            b'\n' | 0x0b | 0x0c => self.linefeed(),
4080            b'\r' => self.carriage_return(),
4081            0x08 => self.backspace(),
4082            b'\t' => self.put_tab(),
4083            0x07 => self.events.push(TermEvent::Bell), // BEL (#12)
4084            0x0e => self.gl = 1,                       // SO (LS1): GL = G1 (#62)
4085            0x0f => self.gl = 0,                       // SI (LS0): GL = G0
4086            _ => {}
4087        }
4088    }
4089
4090    fn csi_dispatch(&mut self, params: &Params, intermediates: &[u8], _ignore: bool, action: char) {
4091        // Kitty keyboard-protocol negotiation: CSI > / = / < / ? ... u. The
4092        // leading intermediate distinguishes it from plain `CSI u` (SCORC) (#23).
4093        if action == 'u'
4094            && let Some(&lead) = intermediates.first()
4095            && matches!(lead, b'>' | b'<' | b'=' | b'?')
4096        {
4097            self.kitty_dispatch(lead, params);
4098            return;
4099        }
4100        // DEC private modes arrive with a '?' intermediate.
4101        if intermediates.first() == Some(&b'?') {
4102            // DECRQM (CSI ? Ps $ p) — report whether mode Ps is set. The '$'
4103            // intermediate distinguishes it from a plain `?...p`. It queries a
4104            // single mode, so it keys off the first parameter only.
4105            if action == 'p' && intermediates.contains(&b'$') {
4106                self.decrqm(param_or(params, 0, 0));
4107                return;
4108            }
4109            // Private DSR (CSI ? Ps n): ?996 = color-scheme query (#85). The
4110            // theme-agnostic engine relays it as an event for the consumer.
4111            if action == 'n' {
4112                if param_or(params, 0, 0) == 996 {
4113                    self.events.push(TermEvent::ColorSchemeQuery);
4114                }
4115                return;
4116            }
4117            // DECSET/DECRST carry a *list* of modes; apply set/reset to EVERY
4118            // parameter, not just the first — htop batches `?1006;1000h` into one
4119            // CSI, so folding only params[0] dropped the 1000 (#56).
4120            for mode in params.iter().filter_map(|p| p.first().copied()) {
4121                self.set_dec_private_mode(action, mode);
4122            }
4123            return;
4124        }
4125        // DECSTR soft reset: CSI ! p (#53).
4126        if intermediates.first() == Some(&b'!') && action == 'p' {
4127            self.soft_reset();
4128            return;
4129        }
4130        // DECSCUSR set cursor style: CSI Ps SP q (space intermediate) (#89). An
4131        // absent param means 1 (block blink); an explicit 0 means reset — so the
4132        // raw value matters and `param_or` (which folds 0 to its default) is wrong.
4133        if intermediates.first() == Some(&b' ') && action == 'q' {
4134            let param = params.iter().next().and_then(|p| p.first().copied());
4135            self.set_cursor_style(param.unwrap_or(1));
4136            return;
4137        }
4138        // Other private/intermediate sequences are later slices; ignore them
4139        // rather than misinterpret.
4140        if !intermediates.is_empty() {
4141            return;
4142        }
4143        match action {
4144            'A' => self.move_up(param_or(params, 0, 1) as usize),
4145            'B' | 'e' => self.move_down(param_or(params, 0, 1) as usize),
4146            'C' | 'a' => self.move_forward(param_or(params, 0, 1) as usize),
4147            'D' => self.move_back(param_or(params, 0, 1) as usize),
4148            'G' | '`' => self.set_col(param_or(params, 0, 1) as usize - 1),
4149            'd' => self.set_row(param_or(params, 0, 1) as usize - 1),
4150            'H' | 'f' => {
4151                let row = param_or(params, 0, 1) as usize - 1;
4152                let col = param_or(params, 1, 1) as usize - 1;
4153                self.goto(row, col);
4154            }
4155            'J' => self.erase_display(param_or(params, 0, 0)),
4156            'K' => self.erase_line(param_or(params, 0, 0)),
4157            'X' => self.erase_chars(param_or(params, 0, 1) as usize),
4158            '@' => self.insert_chars(param_or(params, 0, 1) as usize),
4159            'P' => self.delete_chars(param_or(params, 0, 1) as usize),
4160            'S' => self.scroll_up_lines(param_or(params, 0, 1) as usize),
4161            'T' => self.scroll_down_lines(param_or(params, 0, 1) as usize),
4162            'L' => self.insert_lines(param_or(params, 0, 1) as usize),
4163            'M' => self.delete_lines(param_or(params, 0, 1) as usize),
4164            'g' => self.clear_tab_stop(param_or(params, 0, 0)),
4165            'r' => {
4166                let rows = self.grid.rows() as u16;
4167                let top = param_or(params, 0, 1) as usize;
4168                let bottom = param_or(params, 1, rows) as usize;
4169                self.set_scroll_region(top, bottom);
4170            }
4171            'm' => self.sgr(params),
4172            's' => self.save_cursor(),    // SCOSC (CSI s) — alias of DECSC
4173            'u' => self.restore_cursor(), // SCORC (CSI u) — alias of DECRC
4174            // DA1 (primary device attributes, CSI c): advertise VT220 + ANSI
4175            // colour — the levels justerm actually implements (#27).
4176            'c' => self.replies.extend_from_slice(b"\x1b[?62;22c"),
4177            'n' => self.device_status_report(param_or(params, 0, 0)),
4178            // Non-private SM/RM. Folded over every parameter (modes can batch,
4179            // like the private path #56). IRM (4) and LNM (20) so far.
4180            'h' => {
4181                for m in params.iter().filter_map(|p| p.first().copied()) {
4182                    match m {
4183                        4 => self.insert_mode = true,
4184                        20 => self.newline_mode = true,
4185                        _ => {}
4186                    }
4187                }
4188            }
4189            'l' => {
4190                for m in params.iter().filter_map(|p| p.first().copied()) {
4191                    match m {
4192                        4 => self.insert_mode = false,
4193                        20 => self.newline_mode = false,
4194                        _ => {}
4195                    }
4196                }
4197            }
4198            _ => {}
4199        }
4200    }
4201
4202    fn esc_dispatch(&mut self, intermediates: &[u8], _ignore: bool, byte: u8) {
4203        // VT52 mode (#84): the pre-ANSI dialect reuses the same `ESC <final>`
4204        // tokens vte already produces, but with different meanings, so it is a
4205        // mode-gated branch here rather than a separate parser. All VT52 sequences
4206        // are intermediate-free; anything with an intermediate is not VT52.
4207        if self.vt52_mode && intermediates.is_empty() {
4208            self.vt52_dispatch(byte);
4209            return;
4210        }
4211        if let Some(&i) = intermediates.first() {
4212            // SCS: designate a charset to G0 (`ESC ( F`) or G1 (`ESC ) F`) (#62).
4213            if matches!(i, b'(' | b')') {
4214                let set = match byte {
4215                    b'0' => Charset::DecSpecialGraphics,
4216                    b'A' => Charset::Uk,
4217                    b'B' => Charset::Ascii,
4218                    _ => return, // other sets are later slices
4219                };
4220                self.charsets[if i == b'(' { 0 } else { 1 }] = set;
4221            }
4222            // Other intermediates (G2/G3 designators, etc.) are later slices.
4223            return;
4224        }
4225        match byte {
4226            b'D' => self.linefeed(), // IND (line-feed without CR)
4227            b'E' => {
4228                // NEL (next line): carriage return + line-feed.
4229                self.carriage_return();
4230                self.linefeed();
4231            }
4232            b'H' => self.set_tab_stop(),             // HTS
4233            b'M' => self.reverse_index(),            // RI
4234            b'7' => self.save_cursor(),              // DECSC
4235            b'8' => self.restore_cursor(),           // DECRC
4236            b'c' => self.full_reset(),               // RIS (#53)
4237            b'=' => self.application_keypad = true,  // DECKPAM (#74)
4238            b'>' => self.application_keypad = false, // DECKPNM
4239            _ => {}
4240        }
4241    }
4242
4243    /// OSC dispatch (#12 event surface): title (0/2), cwd (7). OSC 8 hyperlink
4244    /// is per-cell state, handled in its own slice (#26), not here.
4245    fn osc_dispatch(&mut self, params: &[&[u8]], _bell_terminated: bool) {
4246        // params[0] is the OSC number; params[1..] the payload fields.
4247        let Some(&number) = params.first() else {
4248            return;
4249        };
4250        match number {
4251            // OSC 0 = icon + window title, OSC 2 = window title. Both set title.
4252            b"0" | b"2" => {
4253                if let Some(&title) = params.get(1) {
4254                    self.events.push(TermEvent::Title(
4255                        String::from_utf8_lossy(title).into_owned(),
4256                    ));
4257                }
4258            }
4259            // OSC 7 = current working directory (a file:// URI).
4260            b"7" => {
4261                if let Some(&cwd) = params.get(1) {
4262                    self.events
4263                        .push(TermEvent::Cwd(String::from_utf8_lossy(cwd).into_owned()));
4264                }
4265            }
4266            // OSC 133 = FinalTerm/iTerm2 shell-integration command marks (#158):
4267            // `A` prompt start, `B` command start, `C` output start, `D[;exit]`
4268            // command finished. Each anchors a kinded marker at the cursor line;
4269            // pairing + navigation is consumer policy (#160). Unknown subcommands
4270            // (or none) are ignored. `D`'s exit field parses to `i32`, else None.
4271            b"133" => match params.get(1).copied() {
4272                Some(b"A") => self.add_command_mark(MarkerKind::PromptStart),
4273                Some(b"B") => self.add_command_mark(MarkerKind::CommandStart),
4274                Some(b"C") => self.add_command_mark(MarkerKind::OutputStart),
4275                Some(b"D") => {
4276                    let exit = params
4277                        .get(2)
4278                        .and_then(|p| core::str::from_utf8(p).ok())
4279                        .and_then(|s| s.parse::<i32>().ok());
4280                    self.add_command_mark(MarkerKind::CommandFinished(exit));
4281                }
4282                _ => {}
4283            },
4284            // OSC 8 = hyperlink: `OSC 8 ; params ; URI`. A non-empty URI opens a
4285            // link (made current); an empty URI closes it. `params` carries the
4286            // optional `id=` that groups runs into one link (#635).
4287            b"8" => {
4288                // One allocation per *open*, shared by that open's cells and dropped
4289                // with the last row holding it (#628 — there is no pool). Two opens of
4290                // an identical URI stay two links, deliberately: merging them would
4291                // override a distinction the application controls through `id=`. That
4292                // parameter is the *only* dedup performed, which is one rule and not
4293                // two — xterm.js states it as "links with no id will only ever be
4294                // registered a single time" beside a lookup keyed on id-plus-uri
4295                // (`OscLinkService.ts:34`, `:49-54`).
4296                // The URI is `params[2..]` **rejoined**, not `params[2]` (#650). vte splits the
4297                // OSC payload on `;`, so a URI carrying an unencoded `;` arrives in pieces and
4298                // reading only the first dropped the rest — silently, with no error. Nothing is
4299                // lost at the parser: measured, `]8;;https://x/a;b=c` arrives as
4300                // `["8", "", "https://x/a", "b=c"]`. xterm.js special-cases the same thing from
4301                // the other side, splitting on the *first* `;` only and taking all the rest as
4302                // the URI, *"to support unencoded semi-colons in the URIs"*
4303                // (`InputHandler.ts:3106-3112`). Reachable without anything exotic: `?a=1;b=2`
4304                // is a legal query string and `;` is a legal filename byte.
4305                //
4306                // The close survives this: `]8;;` arrives as `["8", "", ""]`, whose rejoin is
4307                // empty, and an empty URI still closes. Never decoded — a `%3B` stays `%3B`,
4308                // because the engine hands the target over exactly as declared (ADR-0017).
4309                let uri: Vec<u8> = params.get(2..).unwrap_or_default().join(&b';');
4310                self.current_link = if uri.is_empty() {
4311                    None
4312                } else {
4313                    let uri = String::from_utf8_lossy(&uri);
4314                    Some(match osc8_link_id(params.get(1).copied().unwrap_or(b"")) {
4315                        // No id declared: fresh per open, the reference-correct default.
4316                        None => std::sync::Arc::from(&*uri),
4317                        Some(id) => self.link_for_id(&String::from_utf8_lossy(id), &uri),
4318                    })
4319                };
4320            }
4321            // OSC 4 = set/query an ANSI palette entry: `OSC 4 ; index ; spec`
4322            // (#122). The engine forwards index + raw spec; the consumer applies
4323            // it to its palette (theme-agnostic — the cell keeps `Indexed`).
4324            b"4" => {
4325                // One event per `index ; spec` pair (xterm's `while slots > 1`).
4326                let mut rest = &params[1..];
4327                while let [idx, spec, tail @ ..] = rest {
4328                    rest = tail;
4329                    if let Ok(index) = String::from_utf8_lossy(idx).parse::<u8>() {
4330                        if *spec == b"?" {
4331                            self.events.push(TermEvent::QueryPaletteColor { index });
4332                        } else {
4333                            self.events.push(TermEvent::SetPaletteColor {
4334                                index,
4335                                spec: String::from_utf8_lossy(spec).into_owned(),
4336                            });
4337                        }
4338                    }
4339                }
4340            }
4341            // OSC 104 = reset palette entries (#122): no arg resets the whole
4342            // table, else one event per named index.
4343            b"104" => {
4344                if params.len() <= 1 {
4345                    self.events.push(TermEvent::ResetPaletteColor(None));
4346                } else {
4347                    for &idx in &params[1..] {
4348                        if let Ok(index) = String::from_utf8_lossy(idx).parse::<u8>() {
4349                            self.events.push(TermEvent::ResetPaletteColor(Some(index)));
4350                        }
4351                    }
4352                }
4353            }
4354            // OSC 10/11 = set/query the default foreground/background, stacking
4355            // specs across the [fg, bg] slots (#122, #137). OSC 10 starts at fg,
4356            // OSC 11 at bg. The engine forwards raw specs (theme-agnostic).
4357            b"10" => self.special_color(params, 0),
4358            b"11" => self.special_color(params, 1),
4359            // OSC 110 / 111 = reset the default foreground / background (#122).
4360            b"110" => self.events.push(TermEvent::ResetForeground),
4361            b"111" => self.events.push(TermEvent::ResetBackground),
4362            _ => {} // other OSCs are later slices
4363        }
4364    }
4365}
4366
4367#[cfg(test)]
4368mod tests {
4369    use super::cap_scroll;
4370    use crate::Engine;
4371    use crate::damage::ScrollOp;
4372    use crate::serialize::MAX_SCROLL_COUNT;
4373
4374    /// #661 — the wire's `i16` bound, not the region-height one.
4375    ///
4376    /// In-crate on purpose, and the reason is cost rather than visibility: reaching
4377    /// this through `Engine` needs a screen taller than 32 767 rows *and* 32 768
4378    /// scrolls of it, each rotating a `line_damage` of that length. Measured at
4379    /// 15.8 s in a debug build for a single assertion — the whole `serialize` suite
4380    /// is 0.2 s without it. See `cap_scroll`'s note for how the coverage is split.
4381    #[test]
4382    fn a_region_taller_than_the_wire_field_truncates_rather_than_wraps() {
4383        // 40 000 rows: over i16::MAX, under MAX_ROWS (u16::MAX), so the region
4384        // height alone would let 35 000 through — and 35 000 as i16 is -30 536.
4385        let up = cap_scroll(ScrollOp {
4386            top: 0,
4387            bottom: 40_000,
4388            count: 35_000,
4389        });
4390        assert_eq!(up.count, MAX_SCROLL_COUNT, "capped, and still an up-scroll");
4391
4392        let down = cap_scroll(ScrollOp {
4393            top: 0,
4394            bottom: 40_000,
4395            count: -35_000,
4396        });
4397        assert_eq!(down.count, -MAX_SCROLL_COUNT, "sign survives the cap");
4398    }
4399
4400    /// The cap is a ceiling, not a rewrite: a count inside both bounds is reported
4401    /// exactly, and the region it names is untouched.
4402    #[test]
4403    fn a_scroll_inside_both_bounds_passes_through_unchanged() {
4404        let op = ScrollOp {
4405            top: 4,
4406            bottom: 9,
4407            count: -2,
4408        };
4409        assert_eq!(cap_scroll(op), op);
4410    }
4411
4412    /// #628 — a hyperlink's storage is released once no live row references it.
4413    ///
4414    /// In-crate on purpose: this defect has **no public observable**, which is why it
4415    /// survived from #46 until #621's completeness pass went looking. Pool indices never
4416    /// cross the wire (`Term::frame` remaps them to frame-local `link_table` positions),
4417    /// and the one public reader takes an index the caller already holds — so from
4418    /// outside the crate a pool of 5 entries and a pool of 50 000 are indistinguishable.
4419    /// The assertion has to stand where the storage does.
4420    ///
4421    /// The fixture is a buffer that cannot hold what it is fed: 2 rows plus 2 lines of
4422    /// scrollback is four lines total, so by the end all but the last four opens have
4423    /// been evicted and nothing on screen or in history refers to them.
4424    #[test]
4425    fn a_link_evicted_from_the_buffer_stops_being_stored() {
4426        let mut e = Engine::with_scrollback(20, 2, 2);
4427        for i in 0..50 {
4428            e.feed(format!("\x1b]8;;https://example.com/{i}\x07L{i}\x1b]8;;\x07\r\n").as_bytes());
4429        }
4430
4431        // The observable had to move with the storage — there is no pool left to count.
4432        // A `Weak` is the stronger form of the same claim anyway: a bounded count can be
4433        // bounded and still wrong, while a dead `Weak` says *this exact allocation* was
4434        // released.
4435        //
4436        // **`e2` must outlive the assertion, and that is the whole test.** The first
4437        // version of this scoped the engine to the block that built the `Weak`, so the
4438        // engine was dropped before the check and the `Weak` died for that reason
4439        // instead. Measured: with a deliberate leak reintroduced (a `Vec<Arc<str>>` on
4440        // `Term`, retaining every open), that version stayed **green** — a tautological
4441        // proof, confirming only that dropping an `Engine` frees its own memory. Keeping
4442        // the engine alive is what makes the assertion about reclamation.
4443        let mut e2 = Engine::with_scrollback(20, 2, 2);
4444        e2.feed(b"\x1b]8;;https://example.com/first\x07L\x1b]8;;\x07\r\n");
4445        let weak = {
4446            let arc = e2
4447                .term
4448                .grid
4449                .row_ref(0)
4450                .link_at(0)
4451                .expect("on screen")
4452                .clone();
4453            std::sync::Arc::downgrade(&arc)
4454        };
4455        // The live half first: a fix that simply never stored the URI would satisfy the
4456        // dead-`Weak` assertion below for the wrong reason.
4457        assert!(
4458            weak.upgrade().is_some(),
4459            "the URI must be alive while its cell is on screen",
4460        );
4461        for i in 0..50 {
4462            e2.feed(format!("filler {i}\r\n").as_bytes());
4463        }
4464        assert!(
4465            weak.upgrade().is_none(),
4466            "the first link scrolled out of a 4-line buffer and nothing should still \
4467             hold its URI — before #628 every OSC 8 open lived for the life of the Term",
4468        );
4469
4470        // The whole-buffer form of the same claim: 50 distinct opens through a buffer
4471        // that holds four lines leaves at most four entries *owned*.
4472        //
4473        // `owned_link_count` and not `link_at`, and that distinction is the test. The
4474        // first version summed the gated reader, which counts **linked cells** — measured
4475        // on an erased screen it read 0 while every URI was still allocated, so it could
4476        // not fail for the property this test exists to assert.
4477        // Deduped by allocation: one open covering three cells is three map entries and
4478        // one URI, so counting entries would fail at 9 for a buffer holding four links.
4479        let owned: std::collections::HashSet<*const u8> = e
4480            .term
4481            .scrollback
4482            .iter()
4483            .chain((0..2).map(|r| e.term.grid.row_ref(r)))
4484            .flat_map(|r| r.owned_links())
4485            .map(|u| std::sync::Arc::as_ptr(u) as *const u8)
4486            .collect();
4487        assert!(
4488            owned.len() <= 4,
4489            "a 4-line buffer cannot own more than 4 distinct URIs, found {}",
4490            owned.len(),
4491        );
4492    }
4493
4494    /// #628 — erasing a cell in place releases its URI, not just its presence bit.
4495    ///
4496    /// The sibling of the eviction test above, and the case that one structurally cannot
4497    /// see: `clear_cells` / `free_cell` blank a cell **without dropping its row**, so no
4498    /// row-lifetime event fires. Under `row-keyed-side-maps` rule 3 leaving the map entry
4499    /// is sanctioned — *"a write that clears the cell owes the bit, not the map"* — and
4500    /// that was exactly right while the value was a 4-byte index: a stale entry is
4501    /// unreadable through the gate and costs nothing.
4502    ///
4503    /// #628 changed what the entry *is*. The map now owns a heap string, so the same
4504    /// sanctioned line retains one. Rule 3 still holds as stated — purging is not the
4505    /// correctness step, and missing a site costs bounded retention rather than a wrong
4506    /// answer — but the optimisation it calls optional became worth taking here.
4507    /// All three references release at this point: alacritty's `Cell::reset` drops the
4508    /// `Option<Arc<CellExtra>>` outright, ghostty's ref-counted set frees at zero, and
4509    /// xterm.js's `_resetBufferLine` clears `_extendedAttrs` and disposes the line's
4510    /// markers so `OscLinkService` deletes the entry.
4511    #[test]
4512    fn an_erased_cell_releases_its_uri_not_only_its_bit() {
4513        let mut e = Engine::new(80, 24);
4514        e.feed(b"]8;;https://example.com/erasedL]8;;");
4515        let weak = {
4516            let a = e
4517                .term
4518                .grid
4519                .row_ref(0)
4520                .link_at(0)
4521                .expect("on screen")
4522                .clone();
4523            std::sync::Arc::downgrade(&a)
4524        };
4525        assert!(weak.upgrade().is_some(), "alive while on screen");
4526
4527        e.feed(b""); // ED 2 — erases in place; no row is dropped or reused
4528
4529        // The gated reader already says "no link", and so does the frame. Neither can
4530        // see the retention, which is why this assertion holds the `Weak` instead:
4531        // measured before the purge, both public views read 0 while the URI lived.
4532        assert!(e.link_at(0, 0).is_none(), "the presence bit is cleared");
4533        assert!(
4534            weak.upgrade().is_none(),
4535            "and the URI itself is released — before the purge the map kept owning it,              so an erased screen retained every link it had shown",
4536        );
4537    }
4538
4539    /// `Arc`, not `Rc`, and this is what makes that a fact rather than a comment.
4540    ///
4541    /// #628 chose `Arc<str>` for the row's link map on the stated ground that `Engine` is
4542    /// `Send + Sync`; `Rc` would have removed both **silently** — no signature changes
4543    /// here, and a downstream `Mutex<Engine>` failing to compile instead. The claim was
4544    /// load-bearing and unpinned: a repo-wide grep for it found only prose.
4545    #[test]
4546    fn the_engine_stays_send_and_sync() {
4547        fn assert_send_sync<T: Send + Sync>() {}
4548        assert_send_sync::<Engine>();
4549    }
4550
4551    /// Two OSC 8 opens of an identical URI are **two links**, not one.
4552    ///
4553    /// Deliberate, and the reason is #635: merging them would override the grouping the
4554    /// application controls through `id=`, which is the one dedup xterm.js performs.
4555    /// Asserted by allocation identity through the in-crate observer rather than through
4556    /// a public accessor — the behaviour is real now, a consumer asking about it is not.
4557    #[test]
4558    fn two_opens_of_one_uri_are_two_links() {
4559        let mut e = Engine::new(40, 2);
4560        // One open covering two cells, then a *separate* open of the very same URI.
4561        e.feed(b"]8;;https://example.com/xAB]8;;");
4562        e.feed(b"]8;;https://example.com/xC]8;;");
4563
4564        let row = e.term.grid.row_ref(0);
4565        let ptr = |c: usize| std::sync::Arc::as_ptr(row.link_at(c).expect("linked")) as *const u8;
4566        assert_eq!(
4567            e.link_at(0, 0).map(|h| h.uri().to_owned()),
4568            e.link_at(0, 2).map(|h| h.uri().to_owned()),
4569            "the text is the same",
4570        );
4571        assert_eq!(ptr(0), ptr(1), "A and B are one open, so one allocation");
4572        assert_ne!(
4573            ptr(0),
4574            ptr(2),
4575            "…but C is a second open — merging the two would override the distinction              `id=` exists to express (#635)",
4576        );
4577    }
4578
4579    /// The other half of the rule above: an `id=` the application declared **does** group
4580    /// (#635). One rule, not two — "never merge on URI alone, always merge on a declared
4581    /// id" is how xterm.js states it (`OscLinkService.ts:34`, `:51` at the pinned SHA), and
4582    /// justerm shipped the first half only because #26 ported `registerLink`'s id-minting
4583    /// and not its lookup.
4584    ///
4585    /// Grouping is asserted as **allocation identity**, which is not an implementation
4586    /// detail leaking into a test: since #628 the `Arc`'s address *is* link identity —
4587    /// `Term::frame` interns `link_table` by `Arc::as_ptr`, so one allocation is what makes
4588    /// two runs one link index on the wire, and that index is what a consumer groups by.
4589    #[test]
4590    fn the_same_id_and_uri_group_into_one_link() {
4591        let mut e = Engine::new(40, 2);
4592        // Two separate opens, same `id=` and same URI, on two different lines — the case
4593        // the parameter exists for (a link that cannot be one contiguous run).
4594        e.feed(b"\x1b]8;id=xyz;https://example.com/a\x07A\x1b]8;;\x07\r\n");
4595        e.feed(b"\x1b]8;id=xyz;https://example.com/a\x07B\x1b]8;;\x07");
4596
4597        let ptr = |r: usize, c: usize| {
4598            std::sync::Arc::as_ptr(e.term.grid.row_ref(r).link_at(c).expect("linked")) as *const u8
4599        };
4600        assert_eq!(
4601            ptr(0, 0),
4602            ptr(1, 0),
4603            "the application said these two runs are one link, so they share one allocation",
4604        );
4605
4606        // And the wire agrees, which is the half a consumer can actually see: one entry in
4607        // `link_table`, referenced by both spans. Two entries is the defect.
4608        let f = e.frame();
4609        assert_eq!(f.link_table.len(), 1, "one link ships once");
4610    }
4611
4612    /// Keyed on `id` **and** URI, not on `id` alone — xterm.js's `_getEntryIdKey` is
4613    /// `` `${id};;${uri}` `` (`OscLinkService.ts:87`). An application reusing an id for a
4614    /// different target has not said "same link"; treating it as one would follow a stale
4615    /// declaration to the wrong URI.
4616    #[test]
4617    fn the_same_id_with_a_different_uri_stays_two_links() {
4618        let mut e = Engine::new(40, 2);
4619        e.feed(b"\x1b]8;id=xyz;https://example.com/a\x07A\x1b]8;;\x07\r\n");
4620        e.feed(b"\x1b]8;id=xyz;https://example.com/b\x07B\x1b]8;;\x07");
4621
4622        let ptr = |r: usize, c: usize| {
4623            std::sync::Arc::as_ptr(e.term.grid.row_ref(r).link_at(c).expect("linked")) as *const u8
4624        };
4625        assert_ne!(
4626            ptr(0, 0),
4627            ptr(1, 0),
4628            "same id, different target — two links"
4629        );
4630        assert_eq!(e.frame().link_table.len(), 2, "and both ship");
4631    }
4632
4633    /// `id=` with an **empty value** is no id at all, so the no-id rule applies and each
4634    /// open is its own link. xterm.js reaches this by `parsedParams[i].slice(3) || undefined`
4635    /// (`InputHandler.ts:3130`) — the `||` is the whole behaviour, and reading `slice(3)`
4636    /// alone gives the opposite answer.
4637    ///
4638    /// Worth a test rather than a comment because the empty-string key is the one that
4639    /// would group *every* `id=`-with-no-value link in a session into one, across unrelated
4640    /// URIs — a wrong answer that grows with uptime.
4641    #[test]
4642    fn an_empty_id_value_is_no_id_at_all() {
4643        let mut e = Engine::new(40, 2);
4644        e.feed(b"\x1b]8;id=;https://example.com/a\x07A\x1b]8;;\x07\r\n");
4645        e.feed(b"\x1b]8;id=;https://example.com/a\x07B\x1b]8;;\x07");
4646
4647        let ptr = |r: usize, c: usize| {
4648            std::sync::Arc::as_ptr(e.term.grid.row_ref(r).link_at(c).expect("linked")) as *const u8
4649        };
4650        assert_ne!(
4651            ptr(0, 0),
4652            ptr(1, 0),
4653            "no id declared, so the reference-correct fresh-per-open rule still holds",
4654        );
4655    }
4656
4657    /// `params` is a **`:`-separated** key=value list (`id=xyz123:foo=bar:baz=quux`), and
4658    /// `id` may sit anywhere in it — xterm.js scans with `findIndex(e =>
4659    /// e.startsWith('id='))` (`InputHandler.ts:3129`). Testing only a leading `id=` would
4660    /// pass with a `starts_with` on the whole field, which is the wrong parse.
4661    #[test]
4662    fn the_id_param_is_found_among_other_params() {
4663        let mut e = Engine::new(40, 2);
4664        e.feed(b"\x1b]8;foo=bar:id=xyz:baz=quux;https://example.com/a\x07A\x1b]8;;\x07\r\n");
4665        e.feed(b"\x1b]8;id=xyz;https://example.com/a\x07B\x1b]8;;\x07");
4666
4667        let ptr = |r: usize, c: usize| {
4668            std::sync::Arc::as_ptr(e.term.grid.row_ref(r).link_at(c).expect("linked")) as *const u8
4669        };
4670        assert_eq!(
4671            ptr(0, 0),
4672            ptr(1, 0),
4673            "the id is the same whatever else rides beside it",
4674        );
4675    }
4676
4677    /// The grouping registry must not become the pool #628 deleted.
4678    ///
4679    /// Whatever maps an `id=` to its link has to hold it **weakly**: a strong reference
4680    /// would make every id'd link immortal for the life of the `Term` — the exact defect
4681    /// #628 removed, re-entering through the door #635 opens. xterm.js's equivalent map is
4682    /// reclaimed rather than weak (`_entriesWithId.delete` when the entry's last line
4683    /// marker is disposed, `OscLinkService.ts:98-100`); justerm has no disposal hook by
4684    /// design, so `Weak` is how the same lifetime is expressed here.
4685    ///
4686    /// This is the test that discriminates the two, and nothing public can: both spellings
4687    /// group correctly, and they differ only in what stays alive afterwards.
4688    #[test]
4689    fn the_id_registry_does_not_keep_a_link_alive() {
4690        let mut e = Engine::new(80, 24);
4691        e.feed(b"\x1b]8;id=xyz;https://example.com/grouped\x07L\x1b]8;;\x07");
4692        let weak = {
4693            let a = e
4694                .term
4695                .grid
4696                .row_ref(0)
4697                .link_at(0)
4698                .expect("on screen")
4699                .clone();
4700            std::sync::Arc::downgrade(&a)
4701        };
4702        assert!(weak.upgrade().is_some(), "alive while on screen");
4703
4704        e.feed(b"\x1b[2J"); // ED 2 — the in-place erase that releases the row's side maps
4705
4706        assert!(
4707            weak.upgrade().is_none(),
4708            "the id registry must hold a Weak — a strong entry would outlive the screen and              rebuild #628's leak one id at a time",
4709        );
4710    }
4711}