escriba_runtime/lib.rs
1//! `escriba-runtime` — editor state machine.
2//!
3//! Wraps everything: `BufferSet`, `ModalState`, `Keymap`, `CommandRegistry`,
4//! `Layout`. Exposes `tick(input)` which advances one frame's worth of
5//! state given one input event. Pure — no rendering, no I/O beyond file
6//! save/load through `BufferSet`.
7
8extern crate self as escriba_runtime;
9
10mod plugin_host;
11pub use plugin_host::{LazyTrigger, PluginHost};
12
13mod operator_pending;
14pub mod status;
15
16pub use operator_pending::{OpState, OperatorPending};
17
18/// What one key meant to the operator-pending object layer.
19enum ObjectKey {
20 /// Swallowed — the key began an object and nothing runs yet.
21 Consumed,
22 /// The object is complete; run this.
23 Compose(Action),
24}
25pub use status::{PromptKind, StatusModel};
26
27use std::collections::HashMap;
28
29use awase::KeyRepeatGate;
30use escriba_buffer::BufferSet;
31use escriba_buffer::TextRev;
32use escriba_command::CommandRegistry;
33use escriba_core::{
34 Action, Anchored, Bound, BufferId, Cursors, Damage, Edit, EditGen, HighlightEffect, JumpList,
35 Mode, Motion, Operator, Position, Range, TextEffect, WindowId,
36};
37use escriba_input::{InputOutcome, translate_app_event};
38use escriba_keymap::{Key, Keymap};
39use escriba_madoguchi::{Negai, Outcome};
40use escriba_mode::ModalState;
41use escriba_search::{Direction as SearchDirection, MatchCount, SearchState};
42use escriba_ui::chrome::{ChromePalette, FleetTheme};
43use escriba_ui::splash::Splash;
44use escriba_ui::{Layout, Viewport, Window};
45use escriba_vm::{EditorSnapshot, EscribaHost, EscribaVm, VmError};
46use madori::AppEvent;
47use std::time::Instant;
48
49/// Full editor state — the single Rust value the binary hands to the
50/// renderer each frame.
51pub struct EditorState {
52 pub buffers: BufferSet,
53 pub modal: ModalState,
54 /// Search session — the committed pattern, its matches, the live `/`
55 /// prompt and history. Owns no buffer or cursor; it answers questions
56 /// about text and this runtime applies the answers.
57 pub search: SearchState,
58 pub keymap: Keymap,
59 pub commands: CommandRegistry,
60 pub layout: Layout,
61 pub active: BufferId,
62 /// The single typed home for cursor state. Phase-1 holds one primary
63 /// [`Position`]; reads go through [`Self::cursor`], writes through
64 /// [`Self::set_cursor`] → [`Cursors::set_primary`]. There is no loose
65 /// `Position` field beside an unused multi-caret type to desync.
66 cursors: Cursors,
67 pub quit_requested: bool,
68 /// Messages surfaced to the user (status line / `:messages`) — the
69 /// sink for the tatara-lisp `(message …)` effect and other feedback.
70 pub messages: Vec<String>,
71 /// Which match the cursor last landed on (0-based) — the `[3/17]`
72 /// numerator, ANCHORED to the text revision it was computed against.
73 ///
74 /// The anchor is what removes the manual invalidation this field used to
75 /// need. An ordinal indexes a match set; when the text changes the set
76 /// changes underneath it and the number silently means something else.
77 /// Reading through `Anchored::get(current_rev)` makes that a `None`, so
78 /// forgetting to clear is no longer a thing that can be forgotten.
79 search_at: Option<Anchored<usize, TextRev>>,
80 /// The last text change, for `.`.
81 ///
82 /// An action plus whatever was typed while it held Insert open. Both
83 /// halves are needed: `cw` alone is not a change, it is the FIRST HALF of
84 /// one — the text that followed is the rest, and replaying without it
85 /// would delete a word and leave the buffer in Insert.
86 last_change: Option<LastChange>,
87 /// True while an insert session belonging to `last_change` is open, so
88 /// typed characters are appended to it. Cleared on leaving Insert.
89 recording_insert: bool,
90
91 /// Where the cursor was before each far jump — `<C-o>` / `<C-i>`.
92 /// Search commits, `n`/`N` and `*`/`#` all record into it, which is what
93 /// makes a search a place you can come back from.
94 pub jumps: JumpList,
95 /// Generic editor option store (name → value). Written by the
96 /// tatara-lisp `(set-option …)` effect and the declarative
97 /// `defoption` apply path; typed accessors layer on top later.
98 pub options: HashMap<String, String>,
99 /// Cached embedded tatara-lisp runtime, built lazily on first
100 /// `run_lisp`. Caching avoids re-installing the ~175-definition full
101 /// stdlib on every call; the interpreter's top-level env also
102 /// persists across calls, giving REPL-like session semantics (an
103 /// earlier `(define …)` is visible to a later `run_lisp`).
104 lisp_vm: Option<EscribaVm>,
105 /// Keys accumulated for an in-progress multi-key sequence — e.g.
106 /// holding `[,, f]` while waiting for the final key of
107 /// `<leader>ff`. Empty when not mid-sequence. Lives on
108 /// `EditorState` (not `ModalState`) so `escriba-mode` needn't
109 /// depend on `escriba-keymap`'s `Key`.
110 pub pending_keys: Vec<Key>,
111 /// Per-key debouncer for OS key-repeat storms. Holding `j`/`l` makes
112 /// the windowing system deliver one `KeyDown` per repeat tick
113 /// (~30-50ms); without a gate those flood the motion path and thrash
114 /// the viewport. The gate lets ONE event per `min_interval` (80ms
115 /// default — ~12 intentional taps/sec still pass) reach the editor in
116 /// the navigation modes. The fleet primitive (`awase::KeyRepeatGate`,
117 /// the same one mado uses) is reused — not reinvented.
118 repeat_gate: KeyRepeatGate<Key>,
119 /// Runtime lazy-activation host for USER plugin caixas (the bundled
120 /// default catalog is applied eagerly at boot, not through here).
121 /// A command / filetype-open / event fires the matching plugins'
122 /// entries through the escriba-lisp apply paths. See [`PluginHost`].
123 pub plugin_host: PluginHost,
124 /// The unnamed register — the home for text an operator yanks or
125 /// deletes (`Operator::leaves_register`). `None` until the first
126 /// register-leaving operator runs. Phase-1 holds the single unnamed
127 /// register; named registers (`"ay`) layer on later.
128 register: Option<String>,
129 /// The operator-pending FSM (`d`/`c`/`y` then a motion → `dw`/`c$`/`y0`),
130 /// standing on the fleet `zenmai` Mealy-machine primitive. Every dispatched
131 /// action passes through it; only an operator-then-motion pair is rewritten
132 /// into an [`Action::ApplyOperator`].
133 op_pending: zenmai::Stateful<OperatorPending>,
134 /// Operator-pending OBJECT selection, held at the KEY layer.
135 ///
136 /// `Some(around)` means `d` + `i`/`a` have been pressed and the NEXT key
137 /// names the object. It lives here rather than in the operator FSM
138 /// because the FSM sees `Action`s and this decision needs the KEY: `a`
139 /// and every bracket are unbound in Normal, so they all arrive as
140 /// `Action::Pending` with the character already discarded. vim has a
141 /// whole operator-pending keymap for the same reason.
142 pending_object: Option<bool>,
143 /// Monotonic refresh-generation stamp — the root of the sealed refresh
144 /// tree (`theory/ESCRIBA.md` §Refresh-Seal). Bumped on every applied
145 /// action + resize; the renderer gates on it so an idle frame does zero
146 /// re-highlight / re-shape, and a stale frame is unreachable.
147 edit_gen: EditGen,
148 /// The accumulated dirty region since the renderer last drained it (M1).
149 /// Only ever widened via [`Damage::join`] at the mutation funnel, so it
150 /// always covers the changed region (`Damage ⊇ changed`); the renderer
151 /// drains it with [`take_damage`](Self::take_damage) to scope its work.
152 damage: Damage,
153 /// The theme every face paints with.
154 ///
155 /// ONE owner. Before this, `(deftheme :preset …)` parsed, validated,
156 /// resolved to a real `FleetTheme` — and then nothing consumed it,
157 /// because each renderer called `ChromePalette::prescribed()` at every
158 /// paint site. The declaration was honoured on paper only. Holding it
159 /// here means a face reads the operator's theme the same way it reads
160 /// the cursor: from the state, per frame.
161 theme: FleetTheme,
162 /// `theme` resolved to concrete colours — cached because it is a plain
163 /// `Copy` struct read many times per frame, and re-derived only in
164 /// [`set_theme`](Self::set_theme), so the two cannot disagree.
165 chrome: ChromePalette,
166 /// How deep the current command dispatch is nested.
167 ///
168 /// `Negai::RunCommand` lets a command invoke a command, which is useful
169 /// and which can also recurse forever. The budget makes the runaway
170 /// bounded and REPORTED rather than a stack overflow — the difference
171 /// between a typed refusal and the editor dying under the operator.
172 dispatch_depth: u8,
173 /// Every live result list — diagnostics, hunks, grep hits, TODOs.
174 ///
175 /// Public so a producer outside the runtime can publish into it once the
176 /// courier lands; today the only producer is the marker scan.
177 pub results: escriba_shirube::ListRegistry,
178 /// The open picker, if any.
179 ///
180 /// `Option<Picker>` on the state, exactly like `splash` — deliberately
181 /// NOT a `Mode` variant. A mode is a state keys are interpreted IN; this
182 /// is a surface that OWNS keys while it is up, which is a different
183 /// thing and composes differently with the keymap.
184 picker: Option<escriba_ui::picker::Picker>,
185 /// The git-index generation. See [`world`](Self::world) — every axis the
186 /// world can move is emitted unconditionally, so a producer anchoring on
187 /// one is not born permanently stale.
188 index_rev: escriba_shirube::IndexRev,
189 /// The external-session generation (LSP restart, debug session, test run).
190 session_gen: escriba_shirube::SessionGen,
191 /// Extension → language facts, populated from `(defmode …)`.
192 ///
193 /// The consumer `:commentstring` never had. Public so the binary's apply
194 /// pass can fill it the way it fills the keymap and the option store.
195 pub filetypes: escriba_core::FiletypeTable,
196 /// The start screen, while it is up.
197 ///
198 /// `Some` only between boot and the first keypress, and only when the
199 /// editor opened with no file. It is deliberately NOT a `Mode`: a mode
200 /// is a state keys are interpreted *in*, and the splash interprets
201 /// exactly one key before it is gone. Modelling it as `Option<Splash>`
202 /// keeps the modal state machine's variant set — and every exhaustive
203 /// match over it — untouched.
204 splash: Option<Splash>,
205}
206
207/// What the start screen did with a keypress.
208///
209/// Total, and matched exhaustively at its one call site, so a future
210/// outcome (a menu that opens a submenu, say) is a compile error rather
211/// than a key that silently falls through to the buffer.
212enum SplashKey {
213 /// No start screen is up — the key is the buffer's.
214 NotShowing,
215 /// The key selected a menu entry; run this.
216 Ran(Action),
217 /// The screen is gone and the key was not a menu key, so it still
218 /// means whatever it normally means. Anything else would make the
219 /// first keystroke after boot vanish.
220 Dismissed,
221}
222
223// ─── The counter, and the one place slips become mutations ───────────────
224
225/// `EditorState` read through the counter.
226///
227/// Borrowed, never copied: building it is free, so a command dispatch does
228/// not pay for a snapshot of the buffers.
229pub struct EditorWindow<'a> {
230 state: &'a EditorState,
231}
232
233impl escriba_madoguchi::CursorView for EditorWindow<'_> {
234 fn position(&self) -> Position {
235 self.state.cursor()
236 }
237 fn mode(&self) -> Mode {
238 self.state.modal.mode()
239 }
240}
241
242impl escriba_madoguchi::SyntaxView for EditorWindow<'_> {
243 fn filetype(&self) -> Option<&escriba_core::Filetype> {
244 let path = self.state.buffers.get(self.state.active)?.path.as_deref()?;
245 self.state.filetypes.resolve(path)
246 }
247}
248
249impl escriba_madoguchi::SearchView for EditorWindow<'_> {
250 fn pattern(&self) -> Option<&str> {
251 self.state.search.committed_pattern()
252 }
253 fn match_count(&self) -> Option<usize> {
254 // `None` means "nothing committed", which is not the same as zero
255 // matches — a distinction the status line already makes and that a
256 // handler must not have to re-derive.
257 self.state
258 .search
259 .committed_pattern()
260 .map(|_| self.state.search.match_count())
261 }
262 fn is_prompting(&self) -> bool {
263 self.state.search.is_prompting()
264 }
265}
266
267impl escriba_madoguchi::Snapshot for EditorWindow<'_> {
268 fn active(&self) -> Option<&dyn escriba_madoguchi::BufferView> {
269 self.buffer(self.state.active)
270 }
271 fn buffer(&self, id: BufferId) -> Option<&dyn escriba_madoguchi::BufferView> {
272 self.state
273 .buffers
274 .get(id)
275 .map(|b| b as &dyn escriba_madoguchi::BufferView)
276 }
277 fn buffer_ids(&self) -> Vec<BufferId> {
278 self.state.buffers.ids()
279 }
280 fn cursor(&self) -> &dyn escriba_madoguchi::CursorView {
281 self
282 }
283 fn option(&self, name: &str) -> Option<&str> {
284 self.state.options.get(name).map(String::as_str)
285 }
286 fn search(&self) -> &dyn escriba_madoguchi::SearchView {
287 self
288 }
289 fn syntax(&self) -> &dyn escriba_madoguchi::SyntaxView {
290 self
291 }
292}
293
294impl EditorState {
295 /// A read-only window onto this editor.
296 #[must_use]
297 pub fn window(&self) -> EditorWindow<'_> {
298 EditorWindow { state: self }
299 }
300
301 /// Honour an [`Outcome`] — the ONLY place slips become mutations.
302 ///
303 /// Every `&mut self` in the dispatch path lives here. A command cannot
304 /// reach editor state, so if the editor ends up in a state nobody
305 /// designed, this function is where it happened; that narrowing is the
306 /// whole return on the seam.
307 ///
308 /// A failed outcome's slips are DROPPED rather than half-applied: a
309 /// handler that reported failure has no business also mutating, and
310 /// applying part of what it asked for is how an editor reaches a state
311 /// nobody designed.
312 pub fn interpret(&mut self, outcome: Outcome) {
313 if let Some(m) = outcome.verdict.message() {
314 self.messages.push(m.to_string());
315 self.damage = self.damage.join(Damage::Viewport);
316 self.bump_gen();
317 }
318 if outcome.verdict.is_failure() {
319 return;
320 }
321 for slip in outcome.slips {
322 self.honour(slip);
323 }
324 }
325
326 /// Lower an [`Action`] to slips, when it has an exact slip equivalent.
327 ///
328 /// `None` means "editor mechanics" — 23 of the 30 variants are prompt
329 /// editing, the operator-pending FSM, motion resolution, the jumplist,
330 /// the dot register. Those are the KEYMAP's vocabulary, not the AUTHORED
331 /// one, and forcing them into `Negai` would put `PromptClearToStart` and
332 /// `SearchPreviewStep` in front of every plugin author and make the
333 /// capability question meaningless (what capability does a caret move
334 /// read?). One type serving two vocabularies is the mistake this avoids.
335 ///
336 /// The plan's M3 predicate was "apply_resolved contains zero `self.`
337 /// mutations", which would have forced exactly that. Amended: the
338 /// invariant worth having is ONE IMPLEMENTATION PER MUTATION, not one
339 /// vocabulary. See docs/backlog-plan.md §V Phase 1.
340 fn lower(action: &Action, active: BufferId) -> Option<Vec<Negai>> {
341 Some(match action {
342 Action::Quit => vec![Negai::Quit],
343 Action::ClearSearchHighlight => vec![Negai::ClearSearchHighlight],
344 Action::Save => vec![Negai::Save { buffer: active }],
345 Action::Undo => vec![Negai::Undo { buffer: active }],
346 Action::Redo => vec![Negai::Redo { buffer: active }],
347 // `apply_edit` was a STUB that did nothing, so this action was a
348 // silent no-op while `Negai::Edit` applied for real. Lowering it
349 // makes keymap-originated edits work for the first time — and
350 // nothing binds it today, so the duplication goes away at zero
351 // risk.
352 Action::Edit(edit) => vec![Negai::Edit {
353 buffer: active,
354 edit: edit.clone(),
355 }],
356 _ => return None,
357 })
358 }
359
360 /// What the world currently is, for freshness.
361 ///
362 /// One text axis per open buffer. A list sealed against this is fresh
363 /// exactly while the buffers it depends on are unchanged — and a buffer
364 /// that has since CLOSED drops out, which makes lists about it stale
365 /// rather than silently kept.
366 #[must_use]
367 pub fn world(&self) -> escriba_shirube::Anchor {
368 let mut a = escriba_shirube::Anchor::new();
369 for id in self.buffers.ids() {
370 if let Some(b) = self.buffers.get(id) {
371 a = a.on(escriba_shirube::Axis::Text(id, b.text_rev()));
372 }
373 }
374 // Every axis the world can move, ALWAYS present — not only the ones
375 // some producer happens to use today.
376 //
377 // `Anchor::is_fresh` treats an ABSENT axis as stale, deliberately:
378 // unknowable is not unchanged. The consequence, unnoticed until a
379 // recon pass went looking, is that a list anchored on an axis this
380 // function never emits is born PERMANENTLY stale — `]c` would answer
381 // "that list is out of date" forever, and nothing would say why. The
382 // two-axis model was built for git hunks and then only ever fed one
383 // axis.
384 //
385 // Emitting them unconditionally means a producer can anchor on any
386 // axis and get an honest answer. A counter that never moves reads as
387 // "unchanged", which is exactly right for a plane escriba does not
388 // track yet.
389 a = a.on(escriba_shirube::Axis::Index(self.index_rev));
390 a.on(escriba_shirube::Axis::Session(self.session_gen))
391 }
392
393 /// Where the cursor is, WITH the buffer it is in.
394 ///
395 /// Every jumplist push goes through this. A bare `Position` is what let
396 /// `<C-o>` return to the right line in the wrong file.
397 #[must_use]
398 pub fn spot(&self) -> escriba_core::Spot {
399 escriba_core::Spot::new(self.active, self.cursor())
400 }
401
402 /// Move to a `Spot`, switching buffer if it names another one.
403 ///
404 /// The read half of [`spot`](Self::spot). `<C-o>` and `<C-i>` both land
405 /// here so neither can forget the buffer.
406 fn goto_spot(&mut self, s: escriba_core::Spot) {
407 if s.buffer != self.active && self.buffers.get(s.buffer).is_some() {
408 self.active = s.buffer;
409 }
410 let clamped = self
411 .buffers
412 .get(self.active)
413 .map_or(s.pos, |b| b.clamp(s.pos));
414 self.set_cursor(clamped);
415 }
416
417 /// Advance the git-index generation — every list anchored on
418 /// `Axis::Index` goes stale.
419 ///
420 /// Not called yet; a git layer calls it after a stage/reset. Present so
421 /// the axis is WIRED rather than declared, because an axis nothing can
422 /// move is indistinguishable from an axis that does not exist.
423 pub fn bump_index_rev(&mut self) {
424 self.index_rev = escriba_shirube::IndexRev(self.index_rev.0.wrapping_add(1));
425 }
426
427 /// Advance the external-session generation — LSP restart, debug session,
428 /// test-runner invocation. See [`bump_index_rev`](Self::bump_index_rev).
429 pub fn bump_session_gen(&mut self) {
430 self.session_gen = escriba_shirube::SessionGen(self.session_gen.0.wrapping_add(1));
431 }
432
433 /// Move the cursor to the next/previous finding in `list`.
434 ///
435 /// Reports the wrap, because `n`/`N` do and a reader losing their place
436 /// in a long file is the same problem either way.
437 fn walk_list(&mut self, list: &str, forward: bool) {
438 let world = self.world();
439 let Some(result) = self.results.get(list) else {
440 let mut m = String::from("no list named ");
441 m.push_str(list);
442 self.messages.push(m);
443 return;
444 };
445 if result.is_stale(&world) {
446 self.messages
447 .push("that list is out of date — run it again".to_string());
448 return;
449 }
450 let here = (Some(self.active), self.cursor().line);
451 let Some(found) = result.step(&world, here, forward, escriba_shirube::Bound::Exclusive)
452 else {
453 let mut m = String::from("no entries in ");
454 m.push_str(list);
455 self.messages.push(m);
456 return;
457 };
458 let site = found.site.clone();
459 let msg = found.message.clone();
460 self.jump_to_site(&site);
461 self.messages.push(msg);
462 }
463
464 /// Move the cursor to a located finding's SITE — the one operation that
465 /// cannot drop the buffer half of a location.
466 ///
467 /// A `Site` is `(buffer, range)`. Every jumper before this re-derived the
468 /// move itself and clamped against `self.active`, so a finding in another
469 /// file landed on the right LINE in the WRONG file. `on_line` and
470 /// `worst_on_line` already filter by buffer, so the gutter and the walker
471 /// disagreed — latent only because the first producer scanned one buffer.
472 ///
473 /// Every future producer (diagnostics, hunks, grep hits, test failures)
474 /// is cross-file by nature, which is why this is a shared operation
475 /// rather than a fix at the one call site that has it wrong today.
476 ///
477 /// Always a FAR jump: it pushes the jumplist, so `<C-o>` returns from a
478 /// `]t` exactly as it returns from an `n`.
479 pub fn jump_to_site(&mut self, site: &escriba_shirube::Site) {
480 self.jumps.push(self.spot());
481 // Switch buffers FIRST — clamping against the wrong buffer is how the
482 // position gets silently mangled before anyone can notice.
483 if let Some(target) = site.buffer {
484 if target != self.active && self.buffers.get(target).is_some() {
485 self.active = target;
486 self.refollow_cursor();
487 }
488 }
489 let to = site.range.start;
490 let clamped = self.buffers.get(self.active).map_or(to, |b| b.clamp(to));
491 self.set_cursor(clamped);
492 }
493
494 /// Close a buffer, keeping "there is always an active buffer" true.
495 ///
496 /// The invariant is the whole reason this is not just
497 /// `self.buffers.close(id)`. `EditorState::active` is a `BufferId`, not
498 /// an `Option`, so a dangling active is not a degraded state — it is a
499 /// state where every read of the active buffer returns `None` and the
500 /// editor renders `<no buffer>` forever. Closing the last buffer opens a
501 /// scratch rather than emptying the set, which is what vim's `:bd` does
502 /// and what the type demands.
503 fn close_buffer(&mut self, id: BufferId) {
504 if self.buffers.close(id).is_none() {
505 self.messages.push("no such buffer".to_string());
506 return;
507 }
508 if self.active != id {
509 return;
510 }
511 // The active buffer went. Prefer the next one by id so repeated
512 // closes walk forward predictably rather than jumping around.
513 let next = self.buffers.ids().into_iter().find(|b| *b > id);
514 self.active = match next.or_else(|| self.buffers.ids().into_iter().next_back()) {
515 Some(b) => b,
516 None => self.buffers.scratch(""),
517 };
518 self.set_cursor(Position::ZERO);
519 if let Some(w) = self.layout.active_window_mut() {
520 w.buffer_id = self.active;
521 }
522 }
523
524 /// Move to the next or previous buffer, wrapping.
525 fn cycle_buffer(&mut self, forward: bool) {
526 let ids = self.buffers.ids();
527 if ids.len() < 2 {
528 self.messages.push("only one buffer".to_string());
529 return;
530 }
531 let at = ids.iter().position(|b| *b == self.active).unwrap_or(0);
532 let next = if forward {
533 (at + 1) % ids.len()
534 } else {
535 (at + ids.len() - 1) % ids.len()
536 };
537 self.active = ids[next];
538 self.set_cursor(Position::ZERO);
539 if let Some(w) = self.layout.active_window_mut() {
540 w.buffer_id = self.active;
541 }
542 }
543
544 /// Re-clamp the cursor and re-contain the viewport after a buffer
545 /// mutation.
546 ///
547 /// An undo can SHRINK the buffer under a cursor that was legal a moment
548 /// ago, leaving it out of bounds and its viewport scrolled past the end.
549 /// The Action executor has always done this (`self.set_cursor(self.cursor())`
550 /// after undo/redo/save); the M1 interpreter did NOT, so `u` re-followed
551 /// and `:undo` did not — two implementations of one operation, already
552 /// drifted within one milestone of being written. Naming it once is the
553 /// fix; lowering the Action arms onto the same slips is what keeps it
554 /// fixed.
555 fn refollow(&mut self) {
556 self.set_cursor(self.cursor());
557 }
558
559 /// Apply one slip and record what it damaged.
560 ///
561 /// The bookkeeping wrapper. The Action executor calls
562 /// [`honour_one`](Self::honour_one) directly because it does its own,
563 /// wider bookkeeping (the dot register, the S3 damage seal) around a
564 /// whole action.
565 fn honour(&mut self, slip: Negai) {
566 let touches_text = slip.touches_text();
567 self.honour_one(slip);
568 self.damage = self.damage.join(if touches_text {
569 Damage::Full
570 } else {
571 Damage::Viewport
572 });
573 self.bump_gen();
574 }
575
576 /// Apply one slip. THE single implementation of every mutation a slip
577 /// can ask for.
578 ///
579 /// Total over `Negai`: a new request variant is a compile error here
580 /// rather than a request silently ignored — the same failure Phase 0
581 /// removed one layer up.
582 fn honour_one(&mut self, slip: Negai) {
583 match slip {
584 Negai::Edit { buffer, edit } => {
585 if let Some(b) = self.buffers.get_mut(buffer) {
586 let _ = b.apply(&edit);
587 }
588 self.refollow();
589 }
590 Negai::SetCursor { buffer, to } => {
591 // Clamping is the interpreter's job, exactly so that no
592 // handler has to re-implement it and get it wrong.
593 let clamped = self.buffers.get(buffer).map_or(to, |b| b.clamp(to));
594 self.set_cursor(clamped);
595 }
596 Negai::EnterMode(m) => self.modal.enter(m),
597 Negai::OpenPicker(source) => self.open_picker(source),
598 Negai::SplitWindow { stacked } => {
599 let axis = if stacked {
600 escriba_ui::shikiri::Axis::Stacked
601 } else {
602 escriba_ui::shikiri::Axis::SideBySide
603 };
604 self.layout.split_active(axis);
605 // The new pane is narrower/shorter than the old one, so the
606 // cursor can now be outside it. Every face re-reports its
607 // frame on the next draw, but the invariant must hold NOW —
608 // an operator who splits and immediately types should not be
609 // editing off-screen.
610 self.refollow_cursor();
611 self.damage = self.damage.join(Damage::Viewport);
612 }
613 Negai::CloseWindow => {
614 let id = self.layout.active();
615 if self.layout.close(id) {
616 self.refollow_cursor();
617 self.damage = self.damage.join(Damage::Viewport);
618 } else {
619 // vim's E444, and the same refusal: the last window is
620 // the editor. Closing it would mean "quit", which is a
621 // different verb the operator did not type.
622 self.messages
623 .push("E444: Cannot close last window".to_string());
624 }
625 }
626 Negai::FocusDir { dx, dy } => {
627 use escriba_ui::Dir;
628 let dir = match (dx, dy) {
629 (d, _) if d < 0 => Dir::Left,
630 (d, _) if d > 0 => Dir::Right,
631 (_, d) if d < 0 => Dir::Up,
632 _ => Dir::Down,
633 };
634 if let Some(id) = self.layout.neighbour(dir) {
635 self.layout.focus(id);
636 // The window we moved to has its OWN buffer; the editor's
637 // active buffer follows focus, or the next keystroke
638 // would edit the file we just navigated away from.
639 if let Some(w) = self.layout.active_window() {
640 self.active = w.buffer_id;
641 }
642 self.refollow_cursor();
643 self.damage = self.damage.join(Damage::Viewport);
644 }
645 // No neighbour is not an error — it is the edge of the
646 // layout, and vim says nothing there either.
647 }
648 Negai::GrepProject { pattern } => self.grep_project(&pattern),
649 Negai::CycleBuffer { forward } => self.cycle_buffer(forward),
650 Negai::FocusBuffer(id) => {
651 if self.buffers.get(id).is_some() {
652 self.active = id;
653 }
654 }
655 Negai::OpenPath(path) => match self.buffers.open(&path) {
656 Ok(id) => self.active = id,
657 Err(e) => self.messages.push(e.to_string()),
658 },
659 Negai::CloseBuffer(id) => self.close_buffer(id),
660 Negai::Save { buffer } => {
661 if let Some(b) = self.buffers.get_mut(buffer) {
662 if let Err(e) = b.save() {
663 self.messages.push(e.to_string());
664 }
665 }
666 self.refollow();
667 }
668 Negai::Undo { buffer } => {
669 if let Some(b) = self.buffers.get_mut(buffer) {
670 let _ = b.undo();
671 }
672 self.refollow();
673 }
674 Negai::Redo { buffer } => {
675 if let Some(b) = self.buffers.get_mut(buffer) {
676 let _ = b.redo();
677 }
678 self.refollow();
679 }
680 Negai::Yank { text, .. } => self.register = Some(text),
681 Negai::ClearSearchHighlight => self.search.clear_highlight(),
682 Negai::SetOption { name, value } => {
683 self.options.insert(name, value);
684 }
685 Negai::InsertText(text) => self.insert_text(&text),
686 Negai::RunCommand { name, args } => self.run_command(&name, &args),
687 Negai::PublishFindings { list, findings } => {
688 let world = self.world();
689 self.results
690 .publish(list, escriba_shirube::ResultList::new(findings, world));
691 }
692 // A reply from off the tick. Honour it only if the world it was
693 // computed against still holds.
694 //
695 // The drop is silent BY DESIGN, and this is the one place in the
696 // slip vocabulary where silence is right: a stale reply is not a
697 // failure anyone can act on. The operator kept typing, which is
698 // the correct thing to have done, and telling them "a diagnostic
699 // you never asked for was discarded" is noise. The producer
700 // re-runs against the new world; that is the whole contract.
701 Negai::ErrandReply { anchor, then } => {
702 if anchor.is_fresh(&self.world()) {
703 self.honour_one(*then);
704 }
705 }
706 Negai::WalkList { list, forward } => self.walk_list(&list, forward),
707 Negai::Message(m) => self.messages.push(m),
708 Negai::Quit => self.quit_requested = true,
709 // Both suspend the dispatch and need machinery that does not
710 // exist yet — the courier (Phase 5) and the AwaitKey resume
711 // (M3). Announced, never silently dropped: a slip that vanishes
712 // is the class Phase 0 sealed.
713 Negai::Errand(_) | Negai::AwaitKey { .. } => {
714 self.messages
715 .push("deferred work is not wired yet".to_string());
716 }
717 }
718 }
719}
720
721/// Outcome of feeding one key to the multi-key pending-stroke loop.
722enum SeqStep {
723 /// Key consumed into an in-progress sequence; wait for the next.
724 Pending,
725 /// A full bound sequence resolved — run this action.
726 Resolved(Action),
727 /// Key is not part of any sequence; hand it to single-key dispatch.
728 Passthrough,
729}
730
731/// Keys whose HELD repeat is a viewport storm, and which the repeat gate
732/// therefore exists to debounce.
733///
734/// This is an ALLOW-LIST, and it used to be the complement — an exception list
735/// of "discrete" keys that grew three times (`n`/`N`/`*`/`#`, then `.`/`u`/
736/// `<C-r>`, then `/`/`?`/`:`), each time because a key had been silently
737/// swallowed and someone noticed. The third growth is the signal that the
738/// default was backwards: almost every key in a modal editor is a discrete,
739/// deliberate press, and only a handful are ones you HOLD.
740///
741/// Inverting it makes the failure mode safe. Forgetting to list a key here now
742/// means it is ungated — one extra keypress honoured — instead of silently
743/// dropped, and a dropped key is indistinguishable from a dead one.
744///
745/// Measured cost of the old direction: `/foo<CR>` then `/<CR>` (vim's
746/// reuse-the-previous-pattern) lost the second `/` outright, because the gate
747/// is keyed by KEY and the two presses fell inside one debounce window.
748const fn is_repeat_storm_candidate(key: &Key) -> bool {
749 matches!(
750 key,
751 // The four navigation keys a user actually holds down. `h`/`l` and
752 // `j`/`k` flood the motion path and thrash the viewport; everything
753 // else is pressed once and meant once.
754 Key::Char('h')
755 | Key::Char('j')
756 | Key::Char('k')
757 | Key::Char('l')
758 | Key::Left
759 | Key::Right
760 | Key::Up
761 | Key::Down
762 )
763}
764
765/// Turn a command failure into the sentence an operator should read.
766///
767/// The two failures mean genuinely different things and must not be reported
768/// the same way:
769///
770/// - `:flurb` — the operator typed a name that does not exist. "command not
771/// found" is exactly right; it says *you* made a typo.
772/// - `<leader>ff` bound to `picker.files` — escriba's OWN shipped config
773/// declares this, `--list-rc` counts it, and it is not built yet. Telling
774/// the operator "command not found" blames them for a gap we shipped.
775///
776/// The discriminator is the dotted form. `:action` takes action SYMBOLS
777/// (`picker.files`), never command names — that boundary is already pinned by
778/// `action_naming_a_command_is_inert_not_recursive` in escriba-command. So a
779/// dotted name that reached dispatch and resolved to nothing is a declared
780/// capability with no implementation, which is precisely what the 85 entries
781/// in `escriba/tests/action_resolution.rs` are.
782fn describe_command_failure(name: &str, e: &escriba_command::CommandError) -> String {
783 use escriba_command::CommandError as E;
784 match e {
785 // Already the right words — the registry knew it was declared.
786 E::Unhandled(_) => e.to_string(),
787 E::NotFound(n) if n.contains('.') => {
788 let mut m = String::with_capacity(n.len() + 48);
789 m.push('`');
790 m.push_str(n);
791 m.push_str("` is declared but not implemented yet");
792 m
793 }
794 _ => {
795 let _ = name;
796 e.to_string()
797 }
798 }
799}
800
801/// What committing the open search prompt did.
802///
803/// The two commit paths — bare `/` and operated `d/` — used to own private
804/// copies of the whole sequence (read origin+skip, `accept`, three-arm
805/// match, `commit_step_skipping`), and they drifted: the operated one
806/// never reported the wrap, so `d/foo<CR>` that wrapped the file was
807/// silent where `/foo<CR>` printed "search hit BOTTOM, continuing at TOP".
808///
809/// Total, and matched exhaustively at BOTH call sites, so a new outcome is
810/// a compile error in two places rather than a case one path quietly
811/// forgets. It does not make divergence impossible — the two paths
812/// genuinely differ at the landing step — it makes FORGETTING A CASE
813/// impossible, which is the failure that actually happened.
814enum CommitOutcome {
815 /// The prompt committed and a match was found.
816 Landed {
817 origin: usize,
818 step: escriba_search::Step,
819 },
820 /// Committed, but nothing matched. E486 already reported.
821 NotFound,
822 /// Nothing typed and no previous pattern. E35 already reported.
823 NoPrevious,
824 /// No prompt was open.
825 NoPrompt,
826}
827
828/// A replayable text change.
829#[derive(Debug, Clone)]
830struct LastChange {
831 /// The action that began the change.
832 action: Action,
833 /// How many times it ran.
834 count: u32,
835 /// Characters typed while the change held Insert mode open.
836 inserted: String,
837}
838
839impl EditorState {
840 /// Build a fresh editor with one buffer (scratch or file-backed).
841 pub fn new_with_buffer(initial: BufferSet, active: BufferId) -> Self {
842 let window = Window {
843 id: WindowId(1),
844 buffer_id: active,
845 viewport: Viewport {
846 top_line: 0,
847 left_column: 0,
848 visible_lines: 40,
849 visible_columns: 160,
850 },
851 };
852 Self {
853 buffers: initial,
854 modal: ModalState::new(),
855 search: SearchState::new(escriba_search::CaseMode::Smart),
856 search_at: None,
857 last_change: None,
858 recording_insert: false,
859 jumps: JumpList::new(),
860 keymap: Keymap::default_vim(),
861 commands: CommandRegistry::default_set(),
862 layout: Layout::single(window),
863 active,
864 cursors: Cursors::single(Position::ZERO),
865 quit_requested: false,
866 register: None,
867 op_pending: zenmai::Stateful::new(OpState::Resting),
868 pending_object: None,
869 messages: Vec::new(),
870 options: HashMap::new(),
871 lisp_vm: None,
872 pending_keys: Vec::new(),
873 repeat_gate: KeyRepeatGate::new(),
874 plugin_host: PluginHost::default(),
875 edit_gen: EditGen::default(),
876 damage: Damage::None,
877 // The FLEET default until an rc says otherwise — never a
878 // hand-written theme name, so a fleet re-point lands for free.
879 dispatch_depth: 0,
880 filetypes: escriba_core::FiletypeTable::new(),
881 results: escriba_shirube::ListRegistry::new(),
882 picker: None,
883 index_rev: escriba_shirube::IndexRev::default(),
884 session_gen: escriba_shirube::SessionGen::default(),
885 theme: FleetTheme::prescribed_default(),
886 chrome: ChromePalette::prescribed(),
887 splash: None,
888 }
889 }
890
891 /// The theme this editor is set to.
892 #[must_use]
893 pub const fn theme(&self) -> FleetTheme {
894 self.theme
895 }
896
897 /// The colours every face paints with — read once per frame.
898 #[must_use]
899 pub const fn chrome(&self) -> ChromePalette {
900 self.chrome
901 }
902
903 /// Point the editor at a theme. The wiring that makes
904 /// `(deftheme :preset …)` real.
905 ///
906 /// Bumps the refresh generation, because a theme change repaints
907 /// everything: the GPU face caches its shaped buffer against that
908 /// generation and would otherwise keep the old colours until an
909 /// unrelated edit happened to invalidate it.
910 pub fn set_theme(&mut self, theme: FleetTheme) {
911 if self.theme == theme {
912 return;
913 }
914 self.theme = theme;
915 self.chrome = ChromePalette::for_theme(theme);
916 self.damage = self.damage.join(Damage::Viewport);
917 self.bump_gen();
918 }
919
920 /// The start screen, if one is up. Renderers paint this INSTEAD of the
921 /// buffer pane; `None` is the ordinary editor.
922 #[must_use]
923 pub fn splash(&self) -> Option<&Splash> {
924 self.splash.as_ref()
925 }
926
927 /// Raise the start screen. The binary calls this at boot when no file
928 /// was named; an empty splash is refused so a face never has to render
929 /// a blank screen over a perfectly good buffer.
930 pub fn set_splash(&mut self, splash: Splash) {
931 if splash.is_empty() {
932 return;
933 }
934 self.splash = Some(splash);
935 self.damage = self.damage.join(Damage::Viewport);
936 self.bump_gen();
937 }
938
939 /// Take the start screen down. Idempotent; bumps the refresh generation
940 /// only when something actually changed, so dismissing twice does not
941 /// cost a repaint.
942 pub fn dismiss_splash(&mut self) {
943 if self.splash.take().is_some() {
944 self.damage = self.damage.join(Damage::Viewport);
945 self.bump_gen();
946 }
947 }
948
949 /// Offer `key` to the start screen.
950 ///
951 /// A menu key runs its entry; ANY other key simply takes the screen
952 /// down and is then handled normally — so the first thing an operator
953 /// types is never swallowed.
954 /// The open picker, for a face to paint.
955 #[must_use]
956 pub fn picker(&self) -> Option<&escriba_ui::picker::Picker> {
957 self.picker.as_ref()
958 }
959
960 /// Give an open picker the key.
961 ///
962 /// Runs BEFORE the keymap, and before the sequence stepper: while a
963 /// picker is up it owns every key, including ones it has no meaning for.
964 /// An overlay that let unknown keys fall through would edit the file
965 /// behind itself.
966 fn consume_picker_key(&mut self, key: &Key) -> escriba_ui::picker::Consumed {
967 use escriba_ui::picker::Consumed;
968 let Some(p) = self.picker.as_mut() else {
969 return Consumed::NotShowing;
970 };
971 let outcome = p.on_key(key);
972 match &outcome {
973 Consumed::Dismissed | Consumed::Chose(_) => {
974 self.picker = None;
975 self.bump_gen();
976 }
977 Consumed::Held => self.bump_gen(),
978 Consumed::NotShowing => {}
979 }
980 outcome
981 }
982
983 /// Lower an accepted pick into the ONE interpreter.
984 ///
985 /// The whole reason `Choice` is a closed enum: a new source must decide
986 /// here, and the compiler says so.
987 fn honour_choice(&mut self, choice: escriba_ui::picker::Choice) {
988 use escriba_ui::picker::Choice;
989 let slip = match choice {
990 Choice::Buffer(id) => Negai::FocusBuffer(id),
991 Choice::Command(name) => Negai::RunCommand {
992 name,
993 args: Vec::new(),
994 },
995 Choice::OpenFile(path) => Negai::OpenPath(path),
996 Choice::Location { path, line } => {
997 // Open FIRST, then jump: the buffer may not exist yet, and
998 // `jump_to_site` needs a BufferId. Two slips, one interpret.
999 self.interpret(Outcome::did(vec![Negai::OpenPath(path)]));
1000 let site = escriba_shirube::Site::in_buffer(
1001 self.active,
1002 escriba_core::Range::new(
1003 escriba_core::Position::new(line, 0),
1004 escriba_core::Position::new(line, 1),
1005 ),
1006 );
1007 self.jump_to_site(&site);
1008 return;
1009 }
1010 };
1011 self.interpret(Outcome::did(vec![slip]));
1012 }
1013
1014 /// How many files a project grep will read, and how many hits it keeps.
1015 ///
1016 /// BOUNDED, and the bound is here rather than hidden, because this is a
1017 /// SYNCHRONOUS scan on the editor's own thread. The interpreter already
1018 /// does synchronous filesystem I/O (`OpenPath`, `Save`), so the posture
1019 /// is not new — but those touch one file and this walks a tree, which is
1020 /// the first one big enough to freeze the editor.
1021 ///
1022 /// The DESTINATION is the courier: an errand that scans off-thread and
1023 /// delivers results as they arrive, with no ceiling at all. This bound is
1024 /// the interim that ships a working grep meanwhile, and it is a real
1025 /// limit — a match past the ceiling is NOT found, and the picker says so
1026 /// rather than presenting a truncated list as complete.
1027 const GREP_FILE_LIMIT: usize = 2_000;
1028 const GREP_HIT_LIMIT: usize = 500;
1029
1030 /// Walk the working directory, bounded, returning `(files, truncated)`.
1031 ///
1032 /// ONE walker. grep, files and project each need to enumerate the tree,
1033 /// and three copies of a bounded traversal is three places to get the
1034 /// ceiling, the skip-list, or the truncation report subtly different.
1035 ///
1036 /// Skips dotfiles, `target` and `node_modules`. That is NOT a gitignore
1037 /// implementation and does not pretend to be — a real ignore crate comes
1038 /// with the courier.
1039 fn walk_project(limit: usize) -> (Vec<std::path::PathBuf>, bool) {
1040 Self::walk_from(std::path::Path::new("."), limit)
1041 }
1042
1043 /// The same bounded walk, from an explicit root.
1044 ///
1045 /// `walk_project` is this with `.` — one traversal, two callers, rather
1046 /// than a second copy for "browse from somewhere else".
1047 fn walk_from(root: &std::path::Path, limit: usize) -> (Vec<std::path::PathBuf>, bool) {
1048 let mut out = Vec::new();
1049 let mut truncated = false;
1050 let mut stack = vec![root.to_path_buf()];
1051 while let Some(dir) = stack.pop() {
1052 let Ok(entries) = std::fs::read_dir(&dir) else {
1053 continue;
1054 };
1055 for entry in entries.flatten() {
1056 let name = entry.file_name();
1057 let name = name.to_string_lossy();
1058 if name.starts_with('.') || name == "target" || name == "node_modules" {
1059 continue;
1060 }
1061 let path = entry.path();
1062 if entry.file_type().is_ok_and(|t| t.is_dir()) {
1063 stack.push(path);
1064 continue;
1065 }
1066 if out.len() >= limit {
1067 truncated = true;
1068 return (out, truncated);
1069 }
1070 out.push(path);
1071 }
1072 }
1073 (out, truncated)
1074 }
1075
1076 /// Say plainly when a bounded scan stopped short.
1077 ///
1078 /// A truncated list presented as complete is the failure this codebase
1079 /// keeps finding in itself; it does not get to ship one.
1080 fn report_truncation(&mut self, truncated: bool) {
1081 if truncated {
1082 self.messages
1083 .push("scan stopped at the limit — results are INCOMPLETE".to_string());
1084 }
1085 }
1086
1087 /// Scan the working directory for `pattern`, bounded.
1088 fn grep_project(&mut self, pattern: &str) {
1089 use escriba_ui::picker::{Choice, Picker, PickerItem, Source};
1090 if pattern.is_empty() {
1091 self.messages.push("grep: empty pattern".to_string());
1092 return;
1093 }
1094 let (files, mut truncated) = Self::walk_project(Self::GREP_FILE_LIMIT);
1095 let mut items: Vec<PickerItem<Choice>> = Vec::new();
1096 'outer: for path in files {
1097 let Ok(text) = std::fs::read_to_string(&path) else {
1098 continue; // binary or unreadable — not an error worth reporting
1099 };
1100 for (n, line) in text.lines().enumerate() {
1101 if !line.contains(pattern) {
1102 continue;
1103 }
1104 if items.len() >= Self::GREP_HIT_LIMIT {
1105 truncated = true;
1106 break 'outer;
1107 }
1108 let Ok(n) = u32::try_from(n) else { break };
1109 let mut label = String::with_capacity(80);
1110 label.push_str(&path.to_string_lossy());
1111 label.push(':');
1112 label.push_str(&(n + 1).to_string());
1113 label.push_str(" ");
1114 label.push_str(line.trim());
1115 items.push(PickerItem::new(
1116 Choice::Location {
1117 path: path.clone(),
1118 line: n,
1119 },
1120 label,
1121 ));
1122 }
1123 }
1124 if items.is_empty() {
1125 let mut m = String::from("grep: no matches for ");
1126 m.push_str(pattern);
1127 self.messages.push(m);
1128 return;
1129 }
1130 if truncated {
1131 // Stated, never silent. A truncated list presented as complete is
1132 // the failure this whole codebase keeps finding.
1133 self.messages
1134 .push("grep: stopped at the scan limit — results are INCOMPLETE".to_string());
1135 }
1136 self.picker = Some(Picker::open(Source::Grep, items));
1137 self.bump_gen();
1138 }
1139
1140 /// Where accepting a finding should take the operator.
1141 ///
1142 /// Returns `None` for a finding whose site names neither a path nor a
1143 /// live buffer — that is a finding about nowhere, and offering it would
1144 /// give the operator a row that does nothing when pressed.
1145 fn finding_choice(&self, f: &escriba_shirube::Finding) -> Option<escriba_ui::picker::Choice> {
1146 use escriba_ui::picker::Choice;
1147 let line = f.site.range.start.line;
1148 if let Some(p) = &f.site.path {
1149 return Some(Choice::Location {
1150 path: p.clone(),
1151 line,
1152 });
1153 }
1154 let id = f.site.buffer?;
1155 let b = self.buffers.get(id)?;
1156 // A buffer WITH a path becomes a Location, so the line survives. A
1157 // scratch buffer has no path to name, so the best available answer
1158 // is the buffer itself — and the line is lost. Stated rather than
1159 // hidden: a `Choice` that carried a BufferId AND a line would be
1160 // the fix, and it belongs with the picker, not here.
1161 b.path.as_ref().map_or(Some(Choice::Buffer(id)), |p| {
1162 Some(Choice::Location {
1163 path: p.clone(),
1164 line,
1165 })
1166 })
1167 }
1168
1169 /// How a finding's location reads in a list row.
1170 fn finding_label(&self, f: &escriba_shirube::Finding) -> String {
1171 if let Some(p) = &f.site.path {
1172 return p.to_string_lossy().into_owned();
1173 }
1174 f.site
1175 .buffer
1176 .and_then(|id| self.buffers.get(id))
1177 .and_then(|b| b.path.as_ref())
1178 .map_or_else(
1179 || String::from("[scratch]"),
1180 |p| p.to_string_lossy().into_owned(),
1181 )
1182 }
1183
1184 /// Picker rows for every file under `root`.
1185 ///
1186 /// `picker.files` and `files.open-parent` differ only in the root, so
1187 /// they share this rather than carrying two copies of the same body —
1188 /// which is what they did for one commit, and what the line-count lint
1189 /// correctly complained about.
1190 fn file_items(
1191 &mut self,
1192 root: &std::path::Path,
1193 ) -> Vec<escriba_ui::picker::PickerItem<escriba_ui::picker::Choice>> {
1194 use escriba_ui::picker::{Choice, PickerItem};
1195 let (files, truncated) = Self::walk_from(root, Self::GREP_FILE_LIMIT);
1196 self.report_truncation(truncated);
1197 files
1198 .into_iter()
1199 .map(|p| {
1200 let label = p.to_string_lossy().into_owned();
1201 PickerItem::new(Choice::OpenFile(p), label)
1202 })
1203 .collect()
1204 }
1205
1206 /// Picker rows for the located findings the `trouble.*` verbs show.
1207 ///
1208 /// Freshness is asked of the registry, not assumed: `fresh` filters
1209 /// against the CURRENT world, so a list anchored to a revision the
1210 /// buffer has moved past contributes nothing rather than offering a
1211 /// line that has since shifted.
1212 fn finding_items(
1213 &self,
1214 workspace: bool,
1215 ) -> Vec<escriba_ui::picker::PickerItem<escriba_ui::picker::Choice>> {
1216 use escriba_ui::picker::PickerItem;
1217 let world = self.world();
1218 let active = Some(self.active);
1219 let mut items = Vec::new();
1220 for name in self.results.names() {
1221 let Some(list) = self.results.get(name) else {
1222 continue;
1223 };
1224 for f in list.fresh(&world) {
1225 // `trouble.document` narrows to the buffer in front of the
1226 // operator. A finding that names only a path is
1227 // workspace-scoped by construction — it has no buffer to be
1228 // "this" one.
1229 if !workspace && f.site.buffer != active {
1230 continue;
1231 }
1232 let Some(choice) = self.finding_choice(f) else {
1233 continue;
1234 };
1235 let line = f.site.range.start.line;
1236 let mut label = String::with_capacity(64);
1237 label.push_str(f.severity.label());
1238 label.push_str(" ");
1239 label.push_str(&self.finding_label(f));
1240 label.push(':');
1241 label.push_str(&(line + 1).to_string());
1242 label.push_str(" ");
1243 label.push_str(&f.message);
1244 items.push(PickerItem::new(choice, label));
1245 }
1246 }
1247 items
1248 }
1249
1250 /// Build and open a picker over `source`.
1251 fn open_picker(&mut self, source: escriba_madoguchi::PickerSource) {
1252 use escriba_ui::picker::{Choice, Picker, PickerItem, Source};
1253 let (src, items) = match source {
1254 escriba_madoguchi::PickerSource::Buffers => (
1255 Source::Buffers,
1256 self.buffers
1257 .ids()
1258 .into_iter()
1259 .filter_map(|id| {
1260 let b = self.buffers.get(id)?;
1261 let label = b.path.as_ref().map_or_else(
1262 || String::from("[scratch]"),
1263 |p| p.to_string_lossy().into_owned(),
1264 );
1265 Some(PickerItem::new(Choice::Buffer(id), label))
1266 })
1267 .collect::<Vec<_>>(),
1268 ),
1269 escriba_madoguchi::PickerSource::Help => (
1270 Source::Help,
1271 self.keymap
1272 .entries_sorted()
1273 .into_iter()
1274 .map(|(mode, key, b)| {
1275 // "NORMAL gd goto definition" — searchable by key,
1276 // by mode, or by what it does, because a reader
1277 // arrives from any of the three.
1278 let mut label = String::with_capacity(48);
1279 label.push_str(mode.as_str());
1280 label.push_str(" ");
1281 // `{key:?}` because there is no shared key FORMATTER
1282 // in the fleet — awase owns the chord vocabulary but
1283 // escriba-keymap's `Key` has no Display. That gap
1284 // belongs to the keymap consolidation, not here, and
1285 // inventing a fourth spelling would make it worse.
1286 label.push_str(&format!("{key:?}"));
1287 label.push_str(" ");
1288 label.push_str(&b.description);
1289 // Accepting runs the binding's action if it names a
1290 // command; a typed Action has no name to run, so it
1291 // reports rather than pretending.
1292 let choice = match &b.action {
1293 escriba_core::Action::Command { name, .. } => {
1294 Choice::Command(name.clone())
1295 }
1296 other => Choice::Command(format!("{other:?}")),
1297 };
1298 PickerItem::new(choice, label)
1299 })
1300 .collect::<Vec<_>>(),
1301 ),
1302 escriba_madoguchi::PickerSource::Files => {
1303 (Source::Files, self.file_items(std::path::Path::new(".")))
1304 }
1305 escriba_madoguchi::PickerSource::Project => {
1306 // A project root is a directory carrying a marker. Derived
1307 // from the SAME walk rather than a second traversal — the
1308 // markers are files, so the walker already visited them.
1309 const MARKERS: &[&str] = &[
1310 "Cargo.toml",
1311 "flake.nix",
1312 "package.json",
1313 "go.mod",
1314 "pyproject.toml",
1315 ];
1316 let (files, truncated) = Self::walk_project(Self::GREP_FILE_LIMIT);
1317 self.report_truncation(truncated);
1318 let mut roots: Vec<std::path::PathBuf> = files
1319 .into_iter()
1320 .filter(|p| {
1321 p.file_name()
1322 .is_some_and(|n| MARKERS.contains(&n.to_string_lossy().as_ref()))
1323 })
1324 .filter_map(|p| p.parent().map(std::path::Path::to_path_buf))
1325 .collect();
1326 roots.sort();
1327 roots.dedup();
1328 (
1329 Source::Project,
1330 roots
1331 .into_iter()
1332 .map(|p| {
1333 let label = p.to_string_lossy().into_owned();
1334 PickerItem::new(Choice::OpenFile(p), label)
1335 })
1336 .collect::<Vec<_>>(),
1337 )
1338 }
1339 escriba_madoguchi::PickerSource::Commands => (
1340 Source::Commands,
1341 self.commands
1342 .names()
1343 .into_iter()
1344 .map(|n| PickerItem::new(Choice::Command(n.to_string()), n.to_string()))
1345 .collect::<Vec<_>>(),
1346 ),
1347 escriba_madoguchi::PickerSource::FilesUnder(root) => {
1348 (Source::Files, self.file_items(&root))
1349 }
1350 escriba_madoguchi::PickerSource::Findings { workspace } => {
1351 (Source::Findings, self.finding_items(workspace))
1352 }
1353 };
1354 if items.is_empty() {
1355 self.messages.push("nothing to pick from".to_string());
1356 return;
1357 }
1358 self.picker = Some(Picker::open(src, items));
1359 self.bump_gen();
1360 }
1361
1362 /// Read one key as operator-pending object selection.
1363 ///
1364 /// Returns `None` when the key is nothing to do with objects, so the
1365 /// ordinary path runs untouched.
1366 fn consume_object_key(&mut self, key: Key) -> Option<ObjectKey> {
1367 use escriba_core::TextObject as O;
1368 let Key::Char(c) = key else {
1369 // Esc (or anything non-printable) abandons a half-typed object
1370 // rather than leaving the editor silently armed.
1371 if self.pending_object.take().is_some() {
1372 self.op_pending
1373 .dispatch((Action::ChangeMode(Mode::Normal), 1));
1374 return Some(ObjectKey::Consumed);
1375 }
1376 return None;
1377 };
1378
1379 // Second key: it names the object.
1380 if let Some(around) = self.pending_object.take() {
1381 let object = match c {
1382 'w' => Some(O::Word { around }),
1383 // vim's `b` and `B` aliases for the bracket pairs, plus the
1384 // brackets themselves in both directions.
1385 '(' | ')' | 'b' => Some(O::Delimited {
1386 open: '(',
1387 close: ')',
1388 around,
1389 }),
1390 '{' | '}' | 'B' => Some(O::Delimited {
1391 open: '{',
1392 close: '}',
1393 around,
1394 }),
1395 '[' | ']' => Some(O::Delimited {
1396 open: '[',
1397 close: ']',
1398 around,
1399 }),
1400 '<' | '>' => Some(O::Delimited {
1401 open: '<',
1402 close: '>',
1403 around,
1404 }),
1405 // Quotes: `open == close`, which is what tells the resolver
1406 // not to count nesting.
1407 '"' => Some(O::Delimited {
1408 open: '"',
1409 close: '"',
1410 around,
1411 }),
1412 '\'' => Some(O::Delimited {
1413 open: '\'',
1414 close: '\'',
1415 around,
1416 }),
1417 '`' => Some(O::Delimited {
1418 open: '`',
1419 close: '`',
1420 around,
1421 }),
1422 _ => None,
1423 };
1424 let OpState::Awaiting { op, count } = *self.op_pending.state() else {
1425 return Some(ObjectKey::Consumed);
1426 };
1427 // Disarm either way: an unknown object key cancels the operator,
1428 // it does not leave it armed for the next unrelated keystroke.
1429 self.op_pending
1430 .dispatch((Action::ChangeMode(Mode::Normal), 1));
1431 let Some(object) = object else {
1432 return Some(ObjectKey::Consumed);
1433 };
1434 let composed = Action::ApplyOperatorObject { op, object };
1435 // `2diw` applies the object twice. The caller runs it once, so
1436 // the extra repeats happen here.
1437 for _ in 1..count {
1438 self.apply(&composed);
1439 }
1440 return Some(ObjectKey::Compose(composed));
1441 }
1442
1443 // First key: `i` or `a` while an operator waits.
1444 if matches!(c, 'i' | 'a') && matches!(self.op_pending.state(), OpState::Awaiting { .. }) {
1445 self.pending_object = Some(c == 'a');
1446 return Some(ObjectKey::Consumed);
1447 }
1448 None
1449 }
1450
1451 fn consume_splash_key(&mut self, key: &Key) -> SplashKey {
1452 let Some(splash) = self.splash.as_ref() else {
1453 return SplashKey::NotShowing;
1454 };
1455 let chosen = match key {
1456 Key::Char(c) => splash.entry_for(*c).map(|e| e.action.clone()),
1457 _ => None,
1458 };
1459 self.dismiss_splash();
1460 chosen.map_or(SplashKey::Dismissed, SplashKey::Ran)
1461 }
1462
1463 /// The current refresh generation. A renderer caches its products against
1464 /// this; equality is the freshness test (an unchanged generation ⇒ the
1465 /// last frame is still valid, so skip the re-highlight + re-shape).
1466 #[must_use]
1467 pub fn edit_gen(&self) -> EditGen {
1468 self.edit_gen
1469 }
1470
1471 /// Advance the refresh generation (a mutation happened).
1472 fn bump_gen(&mut self) {
1473 self.edit_gen = self.edit_gen.next();
1474 }
1475
1476 /// The accumulated dirty region (read-only). See [`take_damage`](Self::take_damage).
1477 #[must_use]
1478 pub fn damage(&self) -> Damage {
1479 self.damage
1480 }
1481
1482 /// Drain the accumulated dirty region, resetting to [`Damage::None`]. The
1483 /// renderer calls this once per frame to learn what to repaint, then the
1484 /// accumulator restarts — so damage never double-counts across frames.
1485 pub fn take_damage(&mut self) -> Damage {
1486 std::mem::replace(&mut self.damage, Damage::None)
1487 }
1488
1489 /// The line count of the active buffer (0 if none) — used to compute the
1490 /// [`Damage`] scope of a mutation.
1491 fn active_line_count(&self) -> u32 {
1492 self.buffers
1493 .get(self.active)
1494 .map_or(0, escriba_buffer::Buffer::line_count)
1495 }
1496
1497 /// Register a lazy USER plugin: its escriba entry is deferred until
1498 /// one of its `triggers` fires. Bundled defaults do NOT go through
1499 /// here — they are applied eagerly at boot. Empty `triggers` means
1500 /// the plugin never lazily activates (the binary applies eager
1501 /// plugins directly).
1502 pub fn register_lazy_plugin(
1503 &mut self,
1504 name: impl Into<String>,
1505 triggers: Vec<LazyTrigger>,
1506 entry_src: impl Into<String>,
1507 ) {
1508 self.plugin_host.register(name, triggers, entry_src);
1509 }
1510
1511 /// Apply a plugin entry's escriba-lisp to live state — the same
1512 /// keymap / command / option apply paths a user rc uses. Options are
1513 /// applied before keybinds so a plugin that sets `mapleader` resolves
1514 /// `<leader>` correctly. Returns the count of commands + keybinds it
1515 /// registered (best-effort; a malformed entry is skipped, not fatal).
1516 fn apply_plugin_entry(&mut self, entry_src: &str) -> usize {
1517 let Ok(plan) = escriba_lisp::apply_source(entry_src) else {
1518 return 0;
1519 };
1520 let cmd = escriba_lisp::apply_plan_to_commands(&plan, &mut self.commands);
1521 escriba_lisp::apply_plan_to_options(&plan, &mut self.options);
1522 if let Some(value) = self.options.get("mapleader") {
1523 if let Some(key) = escriba_lisp::parse_leader_key(value) {
1524 self.keymap.set_leader(key);
1525 }
1526 }
1527 let km = escriba_lisp::apply_plan_to_keymap(&plan, &mut self.keymap);
1528 (cmd.registered + km.keybinds_applied) as usize
1529 }
1530
1531 /// Fire any lazy plugin gated on a `FileType` trigger for `filetype`.
1532 /// Returns the number of plugins activated. Call when a buffer of a
1533 /// known filetype is opened.
1534 pub fn activate_filetype_plugins(&mut self, filetype: &str) -> usize {
1535 let pending = self.plugin_host.pending_for_filetype(filetype);
1536 let n = pending.len();
1537 for src in pending {
1538 self.apply_plugin_entry(&src);
1539 }
1540 n
1541 }
1542
1543 /// Fire any lazy plugin gated on an `Event` trigger for `event`.
1544 /// Returns the number of plugins activated.
1545 pub fn activate_event_plugins(&mut self, event: &str) -> usize {
1546 let pending = self.plugin_host.pending_for_event(event);
1547 let n = pending.len();
1548 for src in pending {
1549 self.apply_plugin_entry(&src);
1550 }
1551 n
1552 }
1553
1554 /// Advance one frame's worth of state given a raw madori event.
1555 ///
1556 /// Key events pass through the [`KeyRepeatGate`] first (see
1557 /// [`Self::tick_at`]); everything else is handled directly.
1558 pub fn tick(&mut self, event: &AppEvent) {
1559 self.tick_at(event, Instant::now());
1560 }
1561
1562 /// [`Self::tick`] with an explicit timestamp for the key-repeat gate —
1563 /// lets tests drive the debounce window without depending on the
1564 /// wall clock.
1565 pub fn tick_at(&mut self, event: &AppEvent, now: Instant) {
1566 match translate_app_event(event) {
1567 InputOutcome::Key(k) => {
1568 if self.gate_key(&k, now) {
1569 self.on_key(&k);
1570 }
1571 }
1572 InputOutcome::Resized { .. } => {
1573 // Damage only. Each face owns its own geometry: the GPU
1574 // backend derives the grid in `RenderCallback::resize`, and
1575 // the ratatui face reads its area every frame. This arm used
1576 // to write `Window.rect`, which nothing ever read — so the
1577 // resize path was already doing no real work, it just looked
1578 // like it was.
1579 self.damage = self.damage.join(Damage::Viewport);
1580 self.bump_gen();
1581 }
1582 InputOutcome::Quit => self.quit_requested = true,
1583 InputOutcome::Focus(_) | InputOutcome::None => {}
1584 }
1585 }
1586
1587 /// Decide whether `key` survives the key-repeat gate at time `now`.
1588 ///
1589 /// Returns `true` when the key should be processed, `false` when it is
1590 /// an OS key-repeat storm tick that should be dropped. Gating applies
1591 /// ONLY in the navigation modes (Normal / Visual / VisualLine) — those
1592 /// are where a held `j`/`l` floods the motion path and thrashes the
1593 /// viewport. Insert and Command modes pass every key through ungated,
1594 /// because there "hold a key to repeat the character" is the intended
1595 /// behavior, not a storm to suppress.
1596 fn gate_key(&mut self, key: &Key, now: Instant) -> bool {
1597 match self.modal.mode() {
1598 Mode::Normal | Mode::Visual | Mode::VisualLine => {
1599 // The gate exists for HELD keys that flood the motion path and
1600 // thrash the viewport (`j`, `l`). It is wrong for the discrete
1601 // jumps: two `n` presses 10 ms apart mean two matches, and
1602 // swallowing the second is indistinguishable from a dead key —
1603 // the exact symptom the gate was added to prevent elsewhere.
1604 if is_repeat_storm_candidate(key) {
1605 return self.repeat_gate.try_pass_at(*key, now);
1606 }
1607 true
1608 }
1609 Mode::Insert | Mode::Command => true,
1610 }
1611 }
1612
1613 /// Dispatch a single key through the keymap + apply the resulting action.
1614 pub fn on_key(&mut self, key: &Key) {
1615 // An open picker owns EVERY key while it is up — before the splash,
1616 // before the sequence stepper, before the keymap.
1617 match self.consume_picker_key(key) {
1618 escriba_ui::picker::Consumed::NotShowing => {}
1619 escriba_ui::picker::Consumed::Held | escriba_ui::picker::Consumed::Dismissed => return,
1620 escriba_ui::picker::Consumed::Chose(c) => {
1621 self.honour_choice(c);
1622 return;
1623 }
1624 }
1625 // The start screen owns the first keypress and nothing after it.
1626 match self.consume_splash_key(key) {
1627 SplashKey::NotShowing | SplashKey::Dismissed => {}
1628 SplashKey::Ran(action) => {
1629 self.apply(&action);
1630 return;
1631 }
1632 }
1633 // Operator-pending OBJECT selection runs before EVERYTHING, because
1634 // `di(` must not be read as `d` then `i` (insert) then `(`.
1635 if let Some(action) = self.consume_object_key(*key) {
1636 match action {
1637 ObjectKey::Consumed => return,
1638 ObjectKey::Compose(a) => {
1639 self.apply(&a);
1640 return;
1641 }
1642 }
1643 }
1644 // Multi-key sequence resolution runs first: a key that begins or
1645 // continues a bound sequence (`<leader>ff`, `gg`) is held or
1646 // resolved here before the single-key path sees it.
1647 match self.step_sequence(key) {
1648 SeqStep::Pending => return,
1649 SeqStep::Resolved(action) => {
1650 let count = self.modal.pending_count().unwrap_or(1);
1651 self.modal.clear_count();
1652 for _ in 0..count {
1653 self.apply(&action);
1654 if self.quit_requested {
1655 return;
1656 }
1657 }
1658 return;
1659 }
1660 SeqStep::Passthrough => {}
1661 }
1662 let counted = self.keymap.dispatch(&self.modal, key);
1663 // Count prefixes accumulate into modal state.
1664 if matches!(counted.action, Action::Pending) {
1665 if let Key::Char(c) = key {
1666 if c.is_ascii_digit() {
1667 let d = u32::from(*c as u8 - b'0');
1668 self.modal.append_count(d);
1669 }
1670 }
1671 return;
1672 }
1673 // The count flows through the operator-pending FSM (apply_counted), which
1674 // owns repetition: a bare motion runs count× , an operator captures its
1675 // count, and an operated motion multiplies the two. No naive outer loop.
1676 self.apply_counted(&counted.action, counted.count);
1677 // After applying, reset pending count.
1678 self.modal.clear_count();
1679 }
1680
1681 /// Advance the multi-key pending-stroke state machine for `key`.
1682 ///
1683 /// Sequences only apply in normal / visual modes — insert and
1684 /// command modes treat keys as literal text. Rules:
1685 /// - Mid-sequence: extend the pending prefix. Exact match →
1686 /// [`SeqStep::Resolved`]; still a live prefix → [`SeqStep::Pending`];
1687 /// otherwise abort the sequence and re-process this key fresh.
1688 /// - Not mid-sequence: if `key` begins a bound sequence AND is not
1689 /// itself a complete single binding (single bindings win, so no
1690 /// chord timeout is needed) → start pending. Otherwise
1691 /// [`SeqStep::Passthrough`] to the single-key dispatcher.
1692 fn step_sequence(&mut self, key: &Key) -> SeqStep {
1693 let mode = self.modal.mode();
1694 if !matches!(mode, Mode::Normal | Mode::Visual | Mode::VisualLine) {
1695 return SeqStep::Passthrough;
1696 }
1697 if !self.pending_keys.is_empty() {
1698 let mut seq = self.pending_keys.clone();
1699 seq.push(key.clone());
1700 if let Some(b) = self.keymap.lookup_sequence(mode, &seq) {
1701 let action = b.action.clone();
1702 self.pending_keys.clear();
1703 return SeqStep::Resolved(action);
1704 }
1705 if self.keymap.is_sequence_prefix(mode, &seq) {
1706 self.pending_keys = seq;
1707 return SeqStep::Pending;
1708 }
1709 // The key broke the in-progress sequence — abort it and let
1710 // the key be re-processed as a fresh stroke below.
1711 self.pending_keys.clear();
1712 }
1713 let start = [key.clone()];
1714 if self.keymap.is_sequence_prefix(mode, &start) && self.keymap.lookup(mode, key).is_none() {
1715 self.pending_keys = start.to_vec();
1716 return SeqStep::Pending;
1717 }
1718 SeqStep::Passthrough
1719 }
1720
1721 /// The primary cursor position. The single read accessor — every
1722 /// renderer + motion path goes through it, so the underlying
1723 /// representation (today a single-cursor [`Cursors`]) can grow to
1724 /// multi-caret without changing read sites.
1725 #[must_use]
1726 pub fn cursor(&self) -> Position {
1727 self.cursors.primary()
1728 }
1729
1730 /// The **single** cursor-mutation path. Clamp the requested position to
1731 /// the active buffer's bounds, then scroll the active window's viewport
1732 /// to contain it on BOTH axes. Routing every cursor change through this
1733 /// (and through [`Cursors::set_primary`]) makes "cursor outside its
1734 /// viewport" an unrepresentable state, AND keeps cursor state in ONE
1735 /// typed home — there is no code path that advances the cursor without
1736 /// re-deriving the viewport from it, and no second `Position` field to
1737 /// fall out of sync.
1738 /// Re-assert the cursor-visibility invariant against the CURRENT
1739 /// viewport.
1740 ///
1741 /// A resize changes how much a face can show without moving the cursor,
1742 /// so nothing would otherwise re-run `scroll_to_contain` — the cursor
1743 /// would sit off-screen until the operator happened to move it. Every
1744 /// face calls this after telling the runtime its new size.
1745 pub fn refollow_cursor(&mut self) {
1746 self.set_cursor(self.cursors.primary());
1747 }
1748
1749 fn set_cursor(&mut self, pos: Position) {
1750 let clamped = if let Some(buf) = self.buffers.get(self.active) {
1751 buf.clamp(pos)
1752 } else {
1753 pos
1754 };
1755 self.cursors.set_primary(clamped);
1756 if let Some(w) = self.layout.active_window_mut() {
1757 w.viewport = w.viewport.scroll_to_contain(self.cursors.primary(), 2);
1758 }
1759 }
1760
1761 /// Dispatch one resolved action at count 1. See [`apply_counted`](Self::apply_counted).
1762 fn apply(&mut self, action: &Action) {
1763 self.apply_counted(action, 1);
1764 }
1765
1766 /// Dispatch one resolved action with its count. Routes `(action, count)`
1767 /// through the operator-pending FSM ([`OperatorPending`], on `zenmai`): most
1768 /// actions pass straight to [`apply_resolved`](Self::apply_resolved) carrying
1769 /// their count (so `5j` runs the motion 5×), an operator key is held, and an
1770 /// operator-then-motion pair is rewritten into a counted
1771 /// [`Action::ApplyOperator`] (so `3dw` deletes 3 words). The FSM owns count
1772 /// composition — there is no naive outer repeat loop.
1773 fn apply_counted(&mut self, action: &Action, count: u32) {
1774 // An uncompilable pattern must not reach the operator machine.
1775 //
1776 // `SearchState::accept` puts the prompt BACK on a compile error so the
1777 // typed text is not lost — but the FSM had already transitioned out of
1778 // `AwaitingSearch` on the way in, so the prompt survived and the
1779 // OPERATOR did not, with nothing said about it. The `d` was simply
1780 // gone, and the corrected pattern then ran as a bare search.
1781 //
1782 // The machine is a pure `(State, Event) -> (State, effects)` and
1783 // cannot observe the result of an effect, so it cannot decide this
1784 // itself. The fix is to stop handing it an event it has no business
1785 // deciding: the runtime classifies the submit first, from state it
1786 // already holds. `prompt_error` returns `None` for an EMPTY prompt, so
1787 // the bare-`/<CR>` reuse path is untouched.
1788 //
1789 // Tier-honest: parse-rejected at the boundary, not
1790 // truly-unrepresentable.
1791 if matches!(action, Action::SubmitCommand) {
1792 if let Some(e) = self.search.prompt_error() {
1793 let mut m = String::from("E383: Invalid search string: ");
1794 m.push_str(&e.to_string());
1795 self.messages.push(m);
1796 return;
1797 }
1798 }
1799
1800 for (resolved, times) in self.op_pending.dispatch((action.clone(), count)) {
1801 // `3dw` is ONE delete of three words as far as the register is
1802 // concerned, not three deletes of one. Each repetition emits its
1803 // own `Negai::Yank`, and each used to overwrite the register — so
1804 // `3dwP` put back only the third word and silently lost two.
1805 //
1806 // Repetitions of a REGISTER-LEAVING operator therefore append,
1807 // and the flag is cleared after the group so an unrelated later
1808 // yank still replaces rather than growing forever.
1809 // A COUNTED operator-over-motion is ONE operation over a motion
1810 // resolved `times` over, not `times` operations over one motion.
1811 //
1812 // That distinction is not pedantry. Repeating the operation works
1813 // by accident for delete — the text vanishes, so the cursor ends
1814 // up somewhere new each round — and is simply wrong for yank,
1815 // which does not move the cursor: `2yw` re-yanked the FIRST word
1816 // twice and put "one one " in the register. Resolving the motion
1817 // twice and yanking once gives "one two ", and the register needs
1818 // no accumulation because there was only ever one yank.
1819 if let Action::ApplyOperator { op, motion } = resolved {
1820 self.apply_operator_n(op, motion, times);
1821 if self.quit_requested {
1822 return;
1823 }
1824 continue;
1825 }
1826 for _ in 0..times {
1827 self.apply_resolved(&resolved);
1828 if self.quit_requested {
1829 return;
1830 }
1831 }
1832 }
1833 }
1834
1835 /// The active buffer's text. Search is a pure function of it.
1836 /// The active buffer's text revision — the token an offset measured
1837 /// against it should carry.
1838 #[must_use]
1839 fn text_rev(&self) -> TextRev {
1840 self.buffers
1841 .get(self.active)
1842 .map_or_else(TextRev::default, escriba_buffer::Buffer::text_rev)
1843 }
1844
1845 fn active_text(&self) -> String {
1846 self.buffers
1847 .get(self.active)
1848 .map(escriba_buffer::Buffer::to_string)
1849 .unwrap_or_default()
1850 }
1851
1852 /// The cursor as a char offset — the coordinate search speaks.
1853 fn cursor_char(&self) -> usize {
1854 self.buffers
1855 .get(self.active)
1856 .and_then(|b| b.position_to_char(self.cursor()).ok())
1857 .unwrap_or(0)
1858 }
1859
1860 /// Move the cursor onto a match and report a wrap the way vim does.
1861 /// The status line as data — what every face draws.
1862 ///
1863 /// One model, so the two faces can only disagree about styling. Before
1864 /// this existed the GPU face built its own line from a fixed `format!()`
1865 /// and drew neither the prompt nor any message, which made a fully
1866 /// working `/` look like a dead key on escriba's default renderer.
1867 #[must_use]
1868 pub fn status_model(&self) -> StatusModel<'_> {
1869 let cursor = self.cursor();
1870 let prompt = self.search.prompt();
1871
1872 let kind = match prompt.map(|p| p.direction) {
1873 Some(escriba_search::Direction::Forward) => PromptKind::SearchForward,
1874 Some(escriba_search::Direction::Backward) => PromptKind::SearchBackward,
1875 // Command mode with no search prompt open is an ex-command; the
1876 // typed `Option<Prompt>` is the discriminator, never a mode flag.
1877 None if self.modal.mode() == Mode::Command => PromptKind::Ex,
1878 None => PromptKind::None,
1879 };
1880
1881 StatusModel {
1882 mode: self.modal.mode(),
1883 line: cursor.line.saturating_add(1) as usize,
1884 column: cursor.column.saturating_add(1) as usize,
1885 prompt: kind,
1886 prompt_text: prompt
1887 .map_or_else(|| self.modal.minibuffer(), escriba_search::Prompt::text),
1888 prompt_caret: prompt.map_or_else(
1889 || self.modal.minibuffer_caret(),
1890 escriba_search::Prompt::caret,
1891 ),
1892 count: self.match_count(),
1893 message: self.messages.last().map(String::as_str),
1894 }
1895 }
1896
1897 /// `[3/17]` for the current pattern.
1898 ///
1899 /// While a prompt is open the count describes the PREVIEW — the answer to
1900 /// "what would Enter do", which is the question being asked mid-typing.
1901 /// Once committed it describes where the cursor actually is.
1902 #[must_use]
1903 fn match_count(&self) -> MatchCount {
1904 if self.search.is_prompting() {
1905 let text = self.active_text();
1906 // ONE scan, four outcomes. `Incomplete` and `NoMatch` used to be
1907 // the same `None`, so a half-typed character class reported
1908 // `[0/0]` — telling the user their pattern matches nothing while
1909 // they are still writing it.
1910 return match self.search.preview(&text) {
1911 escriba_search::Preview::Landed { step, total } => {
1912 MatchCount::new(step.index, total)
1913 }
1914 escriba_search::Preview::NoMatch => MatchCount::None,
1915 escriba_search::Preview::Incomplete | escriba_search::Preview::Idle => {
1916 MatchCount::Idle
1917 }
1918 };
1919 }
1920 if self.search.pattern().is_none() {
1921 return MatchCount::Idle;
1922 }
1923 let total = self.search.matches().len();
1924 // Read THROUGH the anchor: an ordinal computed against text that has
1925 // since changed reads as absent, so a stale count cannot be displayed.
1926 let rev = self.text_rev();
1927 self.search_at.as_ref().and_then(|a| a.get(rev)).map_or(
1928 if total == 0 {
1929 MatchCount::None
1930 } else {
1931 MatchCount::Idle
1932 },
1933 |&i| MatchCount::new(i, total),
1934 )
1935 }
1936
1937 /// `.` — replay the last change at the cursor.
1938 ///
1939 /// Two steps, because a change can be two: run the action, then re-type
1940 /// whatever followed it. `cgn` + `.` is exactly this — change the next
1941 /// match, then repeat that whole gesture on the one after.
1942 fn repeat_last_change(&mut self) {
1943 let Some(change) = self.last_change.clone() else {
1944 self.messages
1945 .push("E32: No previous change to repeat".to_string());
1946 return;
1947 };
1948
1949 for _ in 0..change.count.max(1) {
1950 self.apply_resolved(&change.action);
1951 }
1952 for c in change.inserted.chars() {
1953 self.apply_resolved(&Action::InsertChar(c));
1954 }
1955 if self.modal.mode() == Mode::Insert {
1956 // A replayed change must not leave the editor in Insert — the
1957 // original ended with an Esc the recording deliberately does not
1958 // store, since it is punctuation rather than part of the change.
1959 self.apply_resolved(&Action::ChangeMode(Mode::Normal));
1960 }
1961 // The replay wrote through `apply_resolved`, which re-records
1962 // `last_change` from the inner action. Put the ORIGINAL back so a
1963 // second `.` repeats the same change rather than a fragment of it.
1964 self.last_change = Some(change);
1965 self.recording_insert = false;
1966 }
1967
1968 /// Resolve a text object to the range it names.
1969 ///
1970 /// `gn` uses the INCLUSIVE step, so a cursor already sitting inside a
1971 /// match operates on THAT match rather than skipping to the next — which
1972 /// is what makes `cgn` then `.` walk matches one at a time instead of
1973 /// every other one.
1974 /// `dd` — the current line INCLUDING its terminator.
1975 ///
1976 /// Taking the newline is what makes `dd` remove a line rather than blank
1977 /// it. On the last line there is no following newline to take, so it
1978 /// falls back to the preceding one — otherwise `dd` on the final line
1979 /// leaves an empty line behind, which is the one case a naive
1980 /// "start-of-line to start-of-next-line" range gets wrong.
1981 fn object_line(&self) -> Option<Range> {
1982 let buf = self.buffers.get(self.active)?;
1983 let line = self.cursor().line;
1984 let last = buf.line_count().saturating_sub(1);
1985 if line < last {
1986 Some(Range::new(
1987 Position::new(line, 0),
1988 Position::new(line + 1, 0),
1989 ))
1990 } else if line > 0 {
1991 // Final line: swallow the PRECEDING newline instead.
1992 Some(Range::new(
1993 Position::new(line - 1, buf.line_len_chars(line - 1)),
1994 Position::new(line, buf.line_len_chars(line)),
1995 ))
1996 } else {
1997 // The only line in the buffer: clear it, keep the line itself.
1998 Some(Range::new(
1999 Position::new(0, 0),
2000 Position::new(0, buf.line_len_chars(0)),
2001 ))
2002 }
2003 }
2004
2005 /// `iw` / `aw` — the word under the cursor.
2006 ///
2007 /// vim's `w` classes are word / punctuation / whitespace, and a text
2008 /// object never crosses a line. `around` additionally takes the trailing
2009 /// whitespace run, falling back to LEADING whitespace when there is none
2010 /// after — which is what vim does at end of line.
2011 fn object_word(&self, around: bool) -> Option<Range> {
2012 let buf = self.buffers.get(self.active)?;
2013 let pos = self.cursor();
2014 let text: Vec<char> = buf.line(pos.line)?.chars().collect();
2015 if text.is_empty() {
2016 return None;
2017 }
2018 let col = (pos.column as usize).min(text.len().saturating_sub(1));
2019
2020 #[derive(PartialEq, Clone, Copy)]
2021 enum Class {
2022 Word,
2023 Punct,
2024 Space,
2025 }
2026 let class = |c: char| {
2027 if c.is_alphanumeric() || c == '_' {
2028 Class::Word
2029 } else if c.is_whitespace() {
2030 Class::Space
2031 } else {
2032 Class::Punct
2033 }
2034 };
2035
2036 let here = class(text[col]);
2037 let mut start = col;
2038 while start > 0 && class(text[start - 1]) == here {
2039 start -= 1;
2040 }
2041 let mut end = col + 1;
2042 while end < text.len() && class(text[end]) == here {
2043 end += 1;
2044 }
2045
2046 if around {
2047 let after = end;
2048 while end < text.len() && class(text[end]) == Class::Space {
2049 end += 1;
2050 }
2051 // No trailing run: take the leading one instead, as vim does.
2052 if end == after {
2053 while start > 0 && class(text[start - 1]) == Class::Space {
2054 start -= 1;
2055 }
2056 }
2057 }
2058
2059 Some(Range::new(
2060 Position::new(pos.line, start as u32),
2061 Position::new(pos.line, end as u32),
2062 ))
2063 }
2064
2065 /// `i(` / `a"` … — the region between a matched pair, on one line.
2066 ///
2067 /// Brackets NEST and quotes do not, and that is the only difference:
2068 /// with `open == close` the scan cannot count depth, so it takes the
2069 /// nearest delimiter on each side instead.
2070 fn object_delimited(&self, open: char, close: char, around: bool) -> Option<Range> {
2071 let buf = self.buffers.get(self.active)?;
2072 let pos = self.cursor();
2073 let text: Vec<char> = buf.line(pos.line)?.chars().collect();
2074 if text.is_empty() {
2075 return None;
2076 }
2077 let col = (pos.column as usize).min(text.len().saturating_sub(1));
2078
2079 let (l, r) = if open == close {
2080 // Quotes: nearest on each side, no nesting to track.
2081 let l = (0..=col).rev().find(|&i| text[i] == open)?;
2082 let r = ((col.max(l) + 1)..text.len()).find(|&i| text[i] == close)?;
2083 (l, r)
2084 } else {
2085 // Brackets: walk out counting depth, so an inner pair does not
2086 // terminate the search for the enclosing one.
2087 let mut depth = 0i32;
2088 let l = (0..=col).rev().find(|&i| {
2089 if text[i] == close && i != col {
2090 depth += 1;
2091 false
2092 } else if text[i] == open {
2093 if depth == 0 {
2094 true
2095 } else {
2096 depth -= 1;
2097 false
2098 }
2099 } else {
2100 false
2101 }
2102 })?;
2103 depth = 0;
2104 let r = ((l + 1)..text.len()).find(|&i| {
2105 if text[i] == open {
2106 depth += 1;
2107 false
2108 } else if text[i] == close {
2109 if depth == 0 {
2110 true
2111 } else {
2112 depth -= 1;
2113 false
2114 }
2115 } else {
2116 false
2117 }
2118 })?;
2119 (l, r)
2120 };
2121
2122 // `i` is strictly between the delimiters; `a` includes them.
2123 let (s, e) = if around { (l, r + 1) } else { (l + 1, r) };
2124 Some(Range::new(
2125 Position::new(pos.line, s as u32),
2126 Position::new(pos.line, e as u32),
2127 ))
2128 }
2129
2130 fn resolve_object(&self, object: escriba_core::TextObject) -> Option<Range> {
2131 use escriba_core::TextObject as O;
2132
2133 // The text-scanning objects resolve against the BUFFER; the two
2134 // search objects resolve against the match set. Splitting here keeps
2135 // the search logic below exactly as it was rather than threading a
2136 // second concern through it.
2137 match object {
2138 O::Line => return self.object_line(),
2139 O::Word { around } => return self.object_word(around),
2140 O::Delimited {
2141 open,
2142 close,
2143 around,
2144 } => return self.object_delimited(open, close, around),
2145 O::NextMatch | O::PrevMatch => {}
2146 }
2147
2148 let at = self.cursor_char();
2149 let matches = self.search.matches();
2150
2151 // A match CONTAINING the cursor wins outright, whichever direction the
2152 // object names.
2153 //
2154 // Comparing only against `m.start` — which is what a `starts`-vector
2155 // plus `Bound::Inclusive` does — is right only when the cursor sits on
2156 // a match's FIRST character. One column further in, `start < at` and
2157 // the match is rejected, so `cgn` skipped the very instance the
2158 // operator was standing in and the rename silently missed it. vim
2159 // operates on the containing match from every interior column, and the
2160 // `starts`-only comparison cannot express "contains" because it never
2161 // looks at `m.end`.
2162 let idx = matches.iter().position(|m| m.contains(at)).or_else(|| {
2163 let starts: Vec<usize> = matches.iter().map(|m| m.start).collect();
2164 match object {
2165 O::PrevMatch => Bound::Inclusive.first_matching(&starts, at, false),
2166 // Every other variant returned above; `NextMatch` is the only
2167 // one that can reach here besides `PrevMatch`.
2168 _ => Bound::Inclusive.first_matching(&starts, at, true),
2169 }
2170 })?;
2171
2172 let m = matches.get(idx)?;
2173 let buf = self.buffers.get(self.active)?;
2174 Some(Range {
2175 start: buf.char_to_position(m.start),
2176 end: buf.char_to_position(m.end),
2177 })
2178 }
2179
2180 fn land_on(&mut self, step: escriba_search::Step) {
2181 if let Some(buf) = self.buffers.get(self.active) {
2182 let pos = buf.char_to_position(step.target.start);
2183 self.set_cursor(pos);
2184 }
2185 // The `[3/17]` numerator. `Step` has carried this index since the
2186 // engine was written — `engine.rs` even names the counter as the
2187 // reason it exists — and every consumer discarded it until now.
2188 self.search_at = Some(Anchored::new(step.index, self.text_rev()));
2189 }
2190
2191 /// vim's "search hit BOTTOM, continuing at TOP".
2192 ///
2193 /// One reporter, called by the two places a search can wrap: the shared
2194 /// commit and `n`/`N`. `land_on` deliberately does NOT report, or the bare
2195 /// commit would say it twice.
2196 fn report_wrap(&mut self, step: &escriba_search::Step) {
2197 if let Some(msg) = escriba_search::wrap_message(step.wrapped) {
2198 self.messages.push(msg.to_string());
2199 }
2200 }
2201
2202 /// `n` / `N`. Reports vim's E486 when the pattern matches nothing, rather
2203 /// than failing silently — a search that appears to do nothing is
2204 /// indistinguishable from a dropped keystroke.
2205 fn jump_search(&mut self, reverse: bool) {
2206 // Using the matches re-lights them: `n` after an auto-clear shows you
2207 // what you are walking through.
2208 self.search.relight();
2209 // `n` is a far jump — record where we leave from so `<C-o>` works.
2210 self.jumps.push(self.spot());
2211 let at = self.cursor_char();
2212 match self.search.repeat(at, reverse) {
2213 Some(step) => {
2214 // `n` wrapping the file says so, same as a commit does.
2215 self.report_wrap(&step);
2216 self.land_on(step);
2217 }
2218 None => {
2219 let msg = self.search.pattern().map_or_else(
2220 || "E35: No previous regular expression".to_string(),
2221 |p| {
2222 let mut m = String::from("E486: Pattern not found: ");
2223 m.push_str(p.raw());
2224 m
2225 },
2226 );
2227 self.messages.push(msg);
2228 }
2229 }
2230 }
2231
2232 /// Move the cursor to where the in-progress pattern would land, without
2233 /// committing anything. vim's `incsearch`.
2234 ///
2235 /// A pattern that does not compile yet (`/a[`, mid-typing) previews
2236 /// nothing and reports nothing — an error toast on every keystroke of a
2237 /// character class would be unusable.
2238 fn preview_search(&mut self) {
2239 let text = self.active_text();
2240 let Some(origin) = self.search.prompt().map(|p| p.origin) else {
2241 return;
2242 };
2243 let target = match self.search.preview(&text) {
2244 escriba_search::Preview::Landed { step, .. } => step.target.start,
2245 // Nothing to show: back to where the search started. Covers a
2246 // half-typed pattern and a pattern that finds nothing alike —
2247 // both mean "there is no match to preview".
2248 escriba_search::Preview::Idle
2249 | escriba_search::Preview::Incomplete
2250 | escriba_search::Preview::NoMatch => origin,
2251 };
2252 // A pattern that STOPS matching returns the cursor to the origin.
2253 //
2254 // Preview used to only ever move forward, so typing `ch` (a match) and
2255 // then `chz` (none) left the cursor parked on the `ch` match — a
2256 // preview showing a position the pattern no longer justifies, while
2257 // the count beside it read `[0/0]`. Restoring is also what makes
2258 // Escape's promise legible: at every keystroke the cursor is either on
2259 // a real match or back where you started, never on a stale one.
2260 if let Some(buf) = self.buffers.get(self.active) {
2261 let pos = buf.char_to_position(target);
2262 self.set_cursor(pos);
2263 }
2264 }
2265
2266 /// `d/foo<CR>` — commit the prompt and operate from the prompt's origin to
2267 /// where the search lands, as ONE action.
2268 ///
2269 /// Split from [`Self::submit_search`] rather than sharing it because the
2270 /// two want opposite things from the commit: the bare `/` MOVES the cursor
2271 /// to the match, and an operated `/` must NOT — the cursor is the
2272 /// operator's start point, and moving it first would leave the operator
2273 /// with a zero-width range.
2274 /// Commit the open search prompt. The ONE copy of the sequence.
2275 ///
2276 /// Reports its own failures (E486 / E35) so neither caller has to carry a
2277 /// third copy of the message strings. `Accepted::Invalid` cannot reach
2278 /// here — `apply_counted` rejects an uncompilable pattern at the dispatch
2279 /// boundary before the FSM or this method ever sees the submit.
2280 fn commit_search_prompt(&mut self) -> CommitOutcome {
2281 let text = self.active_text();
2282 let Some((origin, skip)) = self.search.prompt().map(|p| (p.origin, p.preview_skip()))
2283 else {
2284 return CommitOutcome::NoPrompt;
2285 };
2286
2287 match self.search.accept(&text) {
2288 escriba_search::Accepted::Committed | escriba_search::Accepted::ReusedPrevious => {
2289 self.modal.clear_minibuffer();
2290 self.modal.enter(Mode::Normal);
2291 match self.search.commit_step_skipping(origin, skip) {
2292 Some(step) => {
2293 // The wrap notice belongs HERE, once, for both commit
2294 // paths. Reporting it in each caller is what let the
2295 // operated path lose it in the first place — and my
2296 // first attempt at this refactor duplicated it again
2297 // rather than moving it, which the red proof caught.
2298 self.report_wrap(&step);
2299 CommitOutcome::Landed { origin, step }
2300 }
2301 None => {
2302 self.report_pattern_not_found();
2303 CommitOutcome::NotFound
2304 }
2305 }
2306 }
2307 escriba_search::Accepted::NothingToRepeat => {
2308 self.modal.clear_minibuffer();
2309 self.modal.enter(Mode::Normal);
2310 self.messages
2311 .push("E35: No previous regular expression".to_string());
2312 CommitOutcome::NoPrevious
2313 }
2314 // Unreachable: the boundary guard in `apply_counted` returns early
2315 // on an uncompilable pattern, leaving the prompt open. Reported
2316 // rather than `unreachable!()` — a panic in the editor's commit
2317 // path is a worse failure than a duplicate message.
2318 escriba_search::Accepted::Invalid(e) => {
2319 let mut m = String::from("E383: Invalid search string: ");
2320 m.push_str(&e.to_string());
2321 self.messages.push(m);
2322 CommitOutcome::NoPrompt
2323 }
2324 }
2325 }
2326
2327 /// vim's E486, with the pattern named. One place, so every path that fails
2328 /// to find reports identically.
2329 fn report_pattern_not_found(&mut self) {
2330 let mut m = String::from("E486: Pattern not found");
2331 if let Some(p) = self.search.pattern() {
2332 m.push_str(": ");
2333 m.push_str(p.raw());
2334 }
2335 self.messages.push(m);
2336 }
2337
2338 /// Bare `/foo<CR>` — commit and MOVE the cursor to the match.
2339 ///
2340 /// The only difference from the operated path is that this one lands;
2341 /// everything else lives in `commit_search_prompt`.
2342 fn submit_search(&mut self) {
2343 match self.commit_search_prompt() {
2344 CommitOutcome::Landed { origin, step } => {
2345 if let Some(buf) = self.buffers.get(self.active) {
2346 let from = buf.char_to_position(origin);
2347 self.jumps.push(escriba_core::Spot::new(self.active, from));
2348 }
2349 self.land_on(step);
2350 }
2351 CommitOutcome::NotFound | CommitOutcome::NoPrevious | CommitOutcome::NoPrompt => {}
2352 }
2353 }
2354
2355 /// `d/foo<CR>` — commit, then operate from the prompt's origin to where the
2356 /// search lands, as ONE action.
2357 ///
2358 /// The cursor must NOT move to the match first: it is the operator's start
2359 /// point. That is the whole reason this differs from the bare path, and
2360 /// now the only reason.
2361 fn submit_search_operated(&mut self, op: Operator) {
2362 match self.commit_search_prompt() {
2363 CommitOutcome::Landed { origin, step } => {
2364 if let Some(buf) = self.buffers.get(self.active) {
2365 let from = buf.char_to_position(origin);
2366 let target = buf.char_to_position(step.target.start);
2367 // Operating over a search is itself a far jump.
2368 self.jumps.push(escriba_core::Spot::new(self.active, from));
2369 self.set_cursor(from);
2370 self.apply_operator_to(op, target);
2371 }
2372 }
2373 CommitOutcome::NotFound | CommitOutcome::NoPrevious | CommitOutcome::NoPrompt => {}
2374 }
2375 }
2376
2377 fn apply_resolved(&mut self, action: &Action) {
2378 // Snapshot the scope inputs before the mutation so the resulting
2379 // Damage covers the changed region (the S3 seal — conservative widen).
2380 let lines_before = self.active_line_count();
2381 // Snapshot for the dot register: the only reliable witness that this
2382 // action changed text is that the buffer's revision moved.
2383 let rev_before = self.text_rev();
2384 let cline_before = self.cursor().line;
2385 match action {
2386 // Every action with an exact slip equivalent goes through the
2387 // interpreter, so "undo" has ONE implementation rather than one
2388 // per entry point. These had already drifted: the executor
2389 // re-followed the viewport after undo and the M1 interpreter did
2390 // not, so `u` and `:undo` behaved differently within a milestone
2391 // of each other.
2392 // Listed EXPLICITLY rather than behind a `if lower(..).is_some()`
2393 // guard: a guard arm does not count toward exhaustiveness, so the
2394 // guarded form silently gave up the total match — the compiler
2395 // said so, and it was right. `lowering_and_dispatch_agree` pins
2396 // that this list and `lower` stay the same set.
2397 Action::Quit
2398 | Action::ClearSearchHighlight
2399 | Action::Save
2400 | Action::Undo
2401 | Action::Redo
2402 | Action::Edit(_) => {
2403 for slip in Self::lower(action, self.active).unwrap_or_default() {
2404 self.honour_one(slip);
2405 }
2406 }
2407 Action::Move(m) => self.apply_motion(*m),
2408 Action::SearchOpen(dir) => {
2409 // vim's `/` is the command-line with a different prompt char,
2410 // so we reuse Command mode; `search.prompt` is what tells a
2411 // later <CR> this is a search and not an ex-command.
2412 let origin = self.cursor_char();
2413 self.search.open(*dir, origin);
2414 self.modal.enter(Mode::Command);
2415 }
2416 Action::SearchRepeat { reverse } => self.jump_search(*reverse),
2417 Action::SearchWord { reverse } => {
2418 let dir = if *reverse {
2419 SearchDirection::Backward
2420 } else {
2421 SearchDirection::Forward
2422 };
2423 let (text, at) = (self.active_text(), self.cursor_char());
2424 // `*` jumps, so it records too.
2425 self.jumps.push(self.spot());
2426 match self.search.search_word(&text, at, dir) {
2427 Some(step) => self.land_on(step),
2428 // vim beeps and stays put when there is no word under the
2429 // cursor; a silent no-op would look like a broken key.
2430 None => self
2431 .messages
2432 .push("E348: No string under cursor".to_string()),
2433 }
2434 }
2435 Action::SearchSubmitOperated { op } => self.submit_search_operated(*op),
2436 Action::TextObject(object) => {
2437 // Bare `gn` moves onto the match. vim additionally starts a
2438 // Visual selection of it; escriba's Visual plumbing does not
2439 // carry a selection an operator can consume yet, so this
2440 // stops at the jump rather than faking a selection that
2441 // nothing would honour.
2442 if let Some(range) = self.resolve_object(*object) {
2443 self.jumps.push(self.spot());
2444 self.set_cursor(range.start);
2445 } else {
2446 self.report_pattern_not_found();
2447 }
2448 }
2449 Action::ApplyOperatorObject { op, object } => match self.resolve_object(*object) {
2450 Some(range) => self.apply_operator_over(*op, range),
2451 None => self.report_pattern_not_found(),
2452 },
2453 Action::RepeatLastChange => self.repeat_last_change(),
2454 Action::JumpBack => {
2455 let here = self.spot();
2456 if let Some(spot) = self.jumps.back(here) {
2457 self.goto_spot(spot);
2458 } else {
2459 self.messages
2460 .push("E662: At start of changelist".to_string());
2461 }
2462 }
2463 Action::JumpForward => {
2464 if let Some(spot) = self.jumps.forward() {
2465 self.goto_spot(spot);
2466 } else {
2467 self.messages.push("E663: At end of changelist".to_string());
2468 }
2469 }
2470 Action::ChangeMode(m) => {
2471 // Leaving the cmdline abandons any open search prompt and
2472 // returns the cursor home. The COMMITTED pattern survives —
2473 // cancelling a new search must not erase the old highlights.
2474 if *m == Mode::Normal && self.search.is_prompting() {
2475 if let Some(origin) = self.search.cancel() {
2476 if let Some(buf) = self.buffers.get(self.active) {
2477 let pos = buf.char_to_position(origin);
2478 self.set_cursor(pos);
2479 }
2480 }
2481 }
2482 self.modal.enter(*m);
2483 }
2484 Action::InsertChar(c) => self.insert_char(*c),
2485
2486 Action::SubmitCommand => {
2487 if self.search.is_prompting() {
2488 self.submit_search();
2489 } else {
2490 self.submit_command();
2491 }
2492 }
2493 Action::Command { name, args } => self.run_command(name, args),
2494 Action::ApplyOperator { op, motion } => self.apply_operator(*op, *motion),
2495 // The operator-pending FSM consumes Operator keys (begins pending);
2496 // they never reach the executor. Defensive no-op for exhaustiveness.
2497 Action::Operator(_) => {}
2498 Action::PromptCaret { to } => {
2499 // Both prompts have a caret now, and the same keys move it.
2500 if self.search.is_prompting() {
2501 self.search.move_caret(*to);
2502 } else {
2503 self.modal.move_minibuffer_caret(*to);
2504 }
2505 }
2506 Action::SearchPreviewStep { forward } => {
2507 if self.search.is_prompting() {
2508 self.search.preview_step(*forward);
2509 self.preview_search();
2510 }
2511 }
2512 Action::PromptDelete => {
2513 if self.search.is_prompting() {
2514 self.search.delete_at_caret();
2515 self.preview_search();
2516 } else {
2517 self.modal.delete_minibuffer_at_caret();
2518 }
2519 }
2520 Action::PromptDeleteWord => {
2521 if self.search.is_prompting() {
2522 self.search.delete_word_before_caret();
2523 self.preview_search();
2524 }
2525 }
2526 Action::PromptClearToStart => {
2527 if self.search.is_prompting() {
2528 self.search.clear_before_caret();
2529 self.preview_search();
2530 }
2531 }
2532 Action::PromptBackspace => {
2533 self.prompt_backspace();
2534 // Shortening the pattern changes which matches exist, so the
2535 // preview must re-run — otherwise the cursor sits on a match
2536 // of a pattern that is no longer typed.
2537 if self.search.is_prompting() {
2538 self.preview_search();
2539 }
2540 }
2541 Action::PromptHistory { back } => {
2542 if self.search.is_prompting() {
2543 self.search.history_step(*back);
2544 // No minibuffer resync: the shadow is the ex-line's store
2545 // and nothing reads it while a search prompt is open, so
2546 // rewriting it here was maintaining a copy for no reader.
2547 self.preview_search();
2548 }
2549 }
2550 Action::Pending => {}
2551 }
2552 // Widen the dirty region by what this action touched (M1). Content
2553 // mutations that changed the line count run to end-of-document (every
2554 // line below shifted); an in-place edit or a cursor move is local;
2555 // arbitrary commands are conservatively Full. Never narrows.
2556 let lines_after = self.active_line_count();
2557 let cline_after = self.cursor().line;
2558 let d = match action {
2559 // A search repaints every highlight in the viewport, not just the
2560 // line the cursor left — so it must widen to Full. Treating it as a
2561 // cursor move would leave stale highlights on untouched lines.
2562 Action::SearchOpen(_)
2563 | Action::PromptHistory { .. }
2564 | Action::PromptBackspace
2565 | Action::PromptCaret { .. }
2566 | Action::SearchPreviewStep { .. }
2567 | Action::PromptDelete
2568 | Action::PromptDeleteWord
2569 | Action::PromptClearToStart
2570 | Action::SearchRepeat { .. }
2571 | Action::SearchWord { .. }
2572 | Action::ClearSearchHighlight
2573 | Action::SearchSubmitOperated { .. }
2574 // A replayed change can edit anywhere the original could, and a
2575 // match object can be anywhere in the document.
2576 | Action::RepeatLastChange
2577 | Action::TextObject(_)
2578 | Action::ApplyOperatorObject { .. }
2579 // A jump can land anywhere, so the viewport may scroll wholesale.
2580 | Action::JumpBack
2581 | Action::JumpForward => Damage::Full,
2582 Action::InsertChar(_)
2583 | Action::Edit(_)
2584 | Action::Undo
2585 | Action::Redo
2586 | Action::ApplyOperator { .. } => {
2587 if lines_after == lines_before {
2588 Damage::span(cline_before, cline_after)
2589 } else {
2590 Damage::Lines {
2591 from: cline_before.min(cline_after),
2592 to: u32::MAX,
2593 }
2594 }
2595 }
2596 Action::Move(_) | Action::ChangeMode(_) => Damage::span(cline_before, cline_after),
2597 Action::Save => Damage::Viewport,
2598 Action::Command { .. } | Action::SubmitCommand => Damage::Full,
2599 Action::Quit | Action::Operator(_) | Action::Pending => Damage::None,
2600 };
2601 self.damage = self.damage.join(d);
2602 // Remember this change for `.`.
2603 //
2604 // Recorded from an OBSERVED MUTATION, not from the action's variant.
2605 // `text_effect()` is the wrong predicate here even though it looks
2606 // like the right one: it exists to decide cache invalidation, where
2607 // OVER-reporting is the safe direction, and the dot register needs the
2608 // opposite bias. Leaning on it meant `last_change` was set by actions
2609 // that changed no text at all, with two measured consequences:
2610 //
2611 // `iZ<Esc>` then `/a<CR>` then `.` — did nothing; the register held
2612 // `SubmitCommand`, whose replay reads an already-cleared
2613 // minibuffer.
2614 // `iZ<Esc>` then `/q<Esc>` then `.` — TYPED `q` INTO THE BUFFER. An
2615 // abandoned prompt left the register holding `InsertChar('q')`,
2616 // and `.` in Normal mode routes that to the text. A corrupting
2617 // register, not merely a lost one.
2618 //
2619 // Comparing the buffer's `TextRev` across the action answers the only
2620 // question that matters — did this actually change the text — and gets
2621 // the failed-operator case (`dgn` with no pattern) right for free.
2622 if self.recording_insert {
2623 match action {
2624 Action::InsertChar(c) => {
2625 if let Some(lc) = self.last_change.as_mut() {
2626 lc.inserted.push(*c);
2627 }
2628 }
2629 // Leaving Insert ends the session; the change is now whole.
2630 Action::ChangeMode(m) if *m != Mode::Insert => self.recording_insert = false,
2631 _ => {}
2632 }
2633 } else if self.text_rev() != rev_before
2634 && !matches!(
2635 action,
2636 Action::RepeatLastChange | Action::Undo | Action::Redo
2637 )
2638 {
2639 self.last_change = Some(LastChange {
2640 action: action.clone(),
2641 count: 1,
2642 inserted: String::new(),
2643 });
2644 self.recording_insert = self.modal.mode() == Mode::Insert;
2645 }
2646
2647 // The search is over the moment you move on or edit — clear the
2648 // highlight rather than leaving the buffer as confetti until an
2649 // explicit `:noh`, which is the remap nearly every vimrc carries.
2650 // Clearing suppresses without forgetting, so `n` still works.
2651 if action.highlight_effect() == HighlightEffect::Clear {
2652 self.search.clear_highlight();
2653 }
2654 // Text changed ⇒ every match offset cached against the old text is
2655 // wrong. `SearchState::refresh` existed for exactly this and had ZERO
2656 // callers, so inserting four characters left both renderers painting
2657 // the highlight four columns off.
2658 //
2659 // Gated on the typed classifier rather than on `bump_gen` (which fires
2660 // for pure cursor moves too): re-scanning the document on every `j`
2661 // would be a per-keystroke full pass for no reason.
2662 if action.text_effect() == TextEffect::Mutates && self.search.pattern().is_some() {
2663 let text = self.active_text();
2664 self.search.refresh(&text);
2665 // NO manual invalidation of `search_at` here, deliberately. It is
2666 // `Anchored` to the text revision, so an ordinal computed against
2667 // the old text now reads as `None` on its own. This is the line
2668 // that used to have to be remembered.
2669 }
2670 // An action reached the executor ⇒ visible state may have changed.
2671 // Advance the refresh generation so the renderer repaints (and
2672 // re-highlights) exactly once. A gated-out key never reaches here, so
2673 // a key-repeat storm does not spin the renderer.
2674 self.bump_gen();
2675 }
2676
2677 /// Resolve a [`Motion`] from `from` to its target [`Position`] against the
2678 /// active buffer — **pure**: no cursor mutation, no side effects. This is
2679 /// the single motion-resolution source of truth that both [`apply_motion`]
2680 /// (move the cursor *to* the target) and [`apply_operator`] (use the target
2681 /// as the *other end* of an operated range) stand on. `None` only if there
2682 /// is no active buffer.
2683 ///
2684 /// [`apply_motion`]: Self::apply_motion
2685 /// [`apply_operator`]: Self::apply_operator
2686 fn resolve_motion(&self, from: Position, motion: Motion) -> Option<Position> {
2687 let buf = self.buffers.get(self.active)?;
2688 let pos = from;
2689 Some(match motion {
2690 // Search-as-motion: what makes `dn` / `d/foo<CR>` work. Resolved
2691 // against the committed match list, so it is `None` (motion fails,
2692 // operator aborts, buffer untouched) when nothing is committed —
2693 // never a silent move to 0, which would delete to the file start.
2694 Motion::SearchNext | Motion::SearchPrev => {
2695 let at = buf.position_to_char(pos).ok()?;
2696 let step = self
2697 .search
2698 .repeat(at, matches!(motion, Motion::SearchPrev))?;
2699 buf.char_to_position(step.target.start)
2700 }
2701 Motion::Left => Position::new(pos.line, pos.column.saturating_sub(1)),
2702 Motion::Right => Position::new(pos.line, pos.column.saturating_add(1)),
2703 Motion::Up => Position::new(pos.line.saturating_sub(1), pos.column),
2704 Motion::Down => Position::new(pos.line.saturating_add(1), pos.column),
2705 Motion::LineStart => Position::new(pos.line, 0),
2706 Motion::LineEnd => Position::new(pos.line, buf.line_len_chars(pos.line)),
2707 Motion::LineFirstNonBlank => first_non_blank(buf, pos.line),
2708 Motion::DocStart => Position::ZERO,
2709 Motion::DocEnd => Position::new(
2710 buf.line_count().saturating_sub(1),
2711 buf.line_len_chars(buf.line_count().saturating_sub(1)),
2712 ),
2713 Motion::WordStartNext | Motion::WordEndNext => word_next(buf, pos),
2714 Motion::WordStartPrev => word_prev(buf, pos),
2715 Motion::PageDown | Motion::HalfPageDown => {
2716 Position::new(pos.line.saturating_add(10), pos.column)
2717 }
2718 Motion::PageUp | Motion::HalfPageUp => {
2719 Position::new(pos.line.saturating_sub(10), pos.column)
2720 }
2721 Motion::GotoLine(n) => Position::new(n.saturating_sub(1), 0),
2722 // Structural Lisp motions — stubs for phase 1.B; full paredit
2723 // semantics land when caixa-ast is wired to the active buffer.
2724 Motion::ForwardSexp
2725 | Motion::BackwardSexp
2726 | Motion::UpList
2727 | Motion::DownList
2728 | Motion::BeginningOfDefun
2729 | Motion::EndOfDefun
2730 | Motion::BeginningOfSexp
2731 | Motion::EndOfSexp => pos,
2732 })
2733 }
2734
2735 fn apply_motion(&mut self, motion: Motion) {
2736 // A bare search motion is a FAR JUMP and it REPORTS — it records into
2737 // the jumplist, prints vim's "hit BOTTOM" on a wrap, and says E486
2738 // when nothing matches. `resolve_motion` can do none of that: it is
2739 // deliberately pure because the OPERATOR path calls it to find a range
2740 // without moving the cursor. So `n` routes to the one executor that
2741 // owns those side effects, and `Action::SearchRepeat` routes to the
2742 // same place — one code path, two spellings.
2743 if matches!(motion, Motion::SearchNext | Motion::SearchPrev) {
2744 self.jump_search(matches!(motion, Motion::SearchPrev));
2745 return;
2746 }
2747 let Some(pos) = self.resolve_motion(self.cursor(), motion) else {
2748 return;
2749 };
2750 // The single cursor-mutation path clamps to the buffer and scrolls
2751 // the viewport to contain the cursor on both axes.
2752 self.set_cursor(pos);
2753 }
2754
2755 /// Apply an operator over a motion — the vim `{operator}{motion}` verbs
2756 /// (`dw` delete-word, `c$` change-to-line-end, `y0` yank-to-line-start).
2757 /// Composition is explicit: the motion resolves a target via
2758 /// [`resolve_motion`](Self::resolve_motion); the operator acts over the
2759 /// `[cursor, target)` range. Register-leaving operators
2760 /// ([`Operator::leaves_register`]) capture the text first.
2761 /// Apply `op` over `motion` resolved `n` times from the cursor.
2762 ///
2763 /// `n == 1` is the ordinary path. Larger `n` walks the motion forward
2764 /// first and operates over the whole span in one go, which is what vim
2765 /// means by `3dw` — and the only way a non-moving operator like yank can
2766 /// honour a count at all.
2767 fn apply_operator_n(&mut self, op: Operator, motion: Motion, n: u32) {
2768 if n <= 1 {
2769 self.apply_operator(op, motion);
2770 return;
2771 }
2772 let from = self.cursor();
2773 let mut to = from;
2774 for _ in 0..n {
2775 match self.resolve_motion(to, motion) {
2776 Some(next) if next != to => to = next,
2777 // The motion stopped making progress (start/end of buffer):
2778 // operate over what we reached rather than aborting, which is
2779 // what vim does for `999dw` near the end of a file.
2780 _ => break,
2781 }
2782 }
2783 if to == from {
2784 // Nothing to operate over. Fall through to the single-step path
2785 // so its error reporting (E35, pattern-not-found) still runs.
2786 self.apply_operator(op, motion);
2787 return;
2788 }
2789 self.apply_operator_to(op, to);
2790 }
2791
2792 fn apply_operator(&mut self, op: Operator, motion: Motion) {
2793 let from = self.cursor();
2794 let Some(to) = self.resolve_motion(from, motion) else {
2795 // A motion that cannot resolve aborts the operator with the buffer
2796 // untouched. A search motion says WHY — `dn` with no pattern armed
2797 // is otherwise indistinguishable from a dropped keystroke, which
2798 // is the same complaint that motivated E486 on the bare path.
2799 if matches!(motion, Motion::SearchNext | Motion::SearchPrev) {
2800 if self.search.pattern().is_none() {
2801 self.messages
2802 .push("E35: No previous regular expression".to_string());
2803 } else {
2804 self.report_pattern_not_found();
2805 }
2806 }
2807 return;
2808 };
2809 self.apply_operator_to(op, to);
2810 }
2811
2812 /// Apply `op` over `[cursor, to)`.
2813 ///
2814 /// Split out of [`Self::apply_operator`] so the operated-search path can
2815 /// reach the same range machinery with a target it resolved itself — the
2816 /// alternative was a second copy of the delete/yank/register logic, which
2817 /// is how the two would drift.
2818 fn apply_operator_to(&mut self, op: Operator, to: Position) {
2819 let from = self.cursor();
2820 self.apply_operator_over(
2821 op,
2822 Range {
2823 start: from,
2824 end: to,
2825 },
2826 );
2827 }
2828
2829 /// Apply `op` over an explicit range.
2830 ///
2831 /// The object path needs this: `gn`'s extent need not begin at the cursor,
2832 /// so it cannot go through the `[cursor, target)` shape the motion path
2833 /// uses. One implementation of the delete/yank/register logic, reached two
2834 /// ways.
2835 fn apply_operator_over(&mut self, op: Operator, range: Range) {
2836 let range = range.normalized();
2837 if range.is_empty() {
2838 return;
2839 }
2840 // Capture the operated text (for the register) before mutating.
2841 let text = self
2842 .buffers
2843 .get(self.active)
2844 .and_then(|buf| buf.slice(range).ok());
2845 if op.leaves_register() {
2846 if let Some(t) = &text {
2847 self.register = Some(t.clone());
2848 }
2849 }
2850 match op {
2851 // Delete + Change remove the range; Change then enters Insert so
2852 // the operator pairs with immediate typing (`ciw`, `c$`).
2853 Operator::Delete | Operator::Change => {
2854 if let Some(buf) = self.buffers.get_mut(self.active) {
2855 let _ = buf.apply(&Edit::delete(range));
2856 }
2857 self.set_cursor(range.start);
2858 if op == Operator::Change {
2859 self.modal.enter(Mode::Insert);
2860 }
2861 }
2862 // Yank copies to the register without mutating the buffer; vim
2863 // leaves the cursor at the range start.
2864 Operator::Yank => {
2865 self.set_cursor(range.start);
2866 }
2867 // Indent/Format/structural operators are not yet wired — named,
2868 // not faked (no buffer mutation, register already captured for the
2869 // register-leaving ones above).
2870 _ => {
2871 self.messages
2872 .push("operator not yet implemented".to_owned());
2873 }
2874 }
2875 }
2876
2877 /// The text last yanked or deleted into the unnamed register, if any.
2878 /// The future `p`/`P` paste reads this.
2879 #[must_use]
2880 pub fn register(&self) -> Option<&str> {
2881 self.register.as_deref()
2882 }
2883
2884 fn insert_char(&mut self, c: char) {
2885 if self.modal.mode() == Mode::Command {
2886 // A search prompt and an ex-command share Command mode (vim's
2887 // cmdline). `search.is_prompting()` is the typed discriminator —
2888 // it can only be true when `/` or `?` actually opened a prompt.
2889 if self.search.is_prompting() {
2890 // The search prompt is the SOLE store while it is open.
2891 //
2892 // This used to also `push_minibuffer(c)`, and the two stores
2893 // insert differently — `search.push` at the caret, the
2894 // minibuffer always at the end — so `/fo<Left>X` left them
2895 // reading `fXo` and `foX`. That was one of FIVE desync paths;
2896 // the caret moves, forward-delete, delete-word and
2897 // clear-to-start never touched the shadow at all.
2898 //
2899 // Deleting the write costs nothing because `status_model`
2900 // already selects the minibuffer only on the `prompt == None`
2901 // branch — the shadow is the EX-LINE's store, and while a
2902 // search prompt is open nothing reads it.
2903 self.search.push(c);
2904 self.preview_search();
2905 } else {
2906 self.modal.push_minibuffer(c);
2907 }
2908 return;
2909 }
2910 let cursor = self.cursor();
2911 let Some(buf) = self.buffers.get_mut(self.active) else {
2912 return;
2913 };
2914 let edit = Edit::insert(cursor, c.to_string());
2915 if buf.apply(&edit).is_ok() {
2916 let next = if c == '\n' {
2917 Position::new(cursor.line.saturating_add(1), 0)
2918 } else {
2919 cursor.shift_right(1)
2920 };
2921 // Route through the single cursor-mutation path so the viewport
2922 // follows the cursor (both axes) and the cursor stays clamped.
2923 self.set_cursor(next);
2924 }
2925 }
2926
2927 /// Backspace inside a prompt. Keeps the search buffer and the displayed
2928 /// minibuffer in lockstep — if only one shrank, the pattern submitted
2929 /// would differ from the text on screen.
2930 fn prompt_backspace(&mut self) -> bool {
2931 if self.modal.mode() != Mode::Command {
2932 return false;
2933 }
2934 if self.search.is_prompting() {
2935 // Backspacing past the `/` closes the prompt, as vim does. No
2936 // `pop_minibuffer` here for the same reason as `insert_char`: the
2937 // shadow is the ex-line's, and popping its TAIL when the caret is
2938 // mid-pattern was another desync path.
2939 if self.search.backspace() {
2940 self.modal.clear_minibuffer();
2941 self.modal.enter(Mode::Normal);
2942 }
2943 // Never `pop_minibuffer` on the search path: it pops the TAIL,
2944 // while `search.backspace()` removes the char before the CARET.
2945 return true;
2946 }
2947 self.modal.pop_minibuffer();
2948 true
2949 }
2950
2951 fn submit_command(&mut self) {
2952 // Read the command line BEFORE leaving Command mode — the minibuffer
2953 // exists only in the `Command` variant, so the escape must come
2954 // after the capture.
2955 let line = self.modal.minibuffer().to_string();
2956 self.modal.escape();
2957 let (name, args) = parse_command_line(&line);
2958 if name.is_empty() {
2959 return;
2960 }
2961 self.run_command(&name, &args);
2962 }
2963
2964 fn run_command(&mut self, name: &str, args: &[String]) {
2965 // Bound the command -> RunCommand slip -> command cycle. Refused and
2966 // reported, never a stack overflow: an editor that dies under the
2967 // operator loses their buffer, and a script that loops is a mistake
2968 // they should be told about, not punished for.
2969 if self.dispatch_depth >= Self::MAX_DISPATCH_DEPTH {
2970 let mut m = String::from("command recursion too deep at `");
2971 m.push_str(name);
2972 m.push_str("` — refusing");
2973 self.messages.push(m);
2974 self.damage = self.damage.join(Damage::Viewport);
2975 self.bump_gen();
2976 return;
2977 }
2978 self.dispatch_depth += 1;
2979 self.run_command_inner(name, args);
2980 self.dispatch_depth -= 1;
2981 }
2982
2983 /// How many nested command dispatches are allowed. Deep enough that no
2984 /// legitimate script notices, shallow enough to fail fast.
2985 const MAX_DISPATCH_DEPTH: u8 = 8;
2986
2987 fn run_command_inner(&mut self, name: &str, args: &[String]) {
2988 // Lazy-activation seam (lazy.nvim `cmd =` model): a user plugin
2989 // gated on `Command: <name>` has its entry applied the first time
2990 // that command runs, BEFORE dispatch — so the activated plugin
2991 // can register the very command being invoked and it resolves on
2992 // this same call.
2993 if self.plugin_host.pending() > 0 {
2994 let pending = self.plugin_host.pending_for_command(name);
2995 for src in pending {
2996 self.apply_plugin_entry(&src);
2997 }
2998 }
2999 // Read through the counter, then interpret. Two immutable borrows of
3000 // `self` (the window and the registry) coexist; the `&mut` comes
3001 // afterwards, once the outcome is owned. That sequencing IS the
3002 // seam: there is no moment where a command body and `&mut self` are
3003 // live at the same time.
3004 let outcome = {
3005 let window = self.window();
3006 self.commands.run(name, &window, args)
3007 };
3008 match outcome {
3009 Ok(o) => self.interpret(o),
3010 // Reported, never fatal (Phase 0). A failed command must not
3011 // take the editor down, but it must not be invisible either.
3012 Err(e) => {
3013 self.messages.push(describe_command_failure(name, &e));
3014 self.damage = self.damage.join(Damage::Viewport);
3015 self.bump_gen();
3016 }
3017 }
3018 }
3019
3020 // ── tatara-lisp runtime bridge (imperative programmability tier) ──
3021
3022 /// Capture a read snapshot of the editor for the tatara-lisp host.
3023 /// Lisp reads (`cursor-line`, `current-line`, …) answer from this.
3024 #[must_use]
3025 pub fn snapshot(&self) -> EditorSnapshot {
3026 let current_line = self
3027 .buffers
3028 .get(self.active)
3029 .and_then(|b| b.line(self.cursor().line))
3030 .map(|s| s.trim_end_matches('\n').to_string())
3031 .unwrap_or_default();
3032 let buffer_name = self
3033 .buffers
3034 .get(self.active)
3035 .and_then(|b| b.path.as_ref())
3036 .map(|p| p.display().to_string())
3037 .unwrap_or_else(|| "[scratch]".to_string());
3038 EditorSnapshot {
3039 cursor_line: i64::from(self.cursor().line),
3040 cursor_column: i64::from(self.cursor().column),
3041 current_line,
3042 mode: self.modal.mode().as_str().to_string(),
3043 buffer_name,
3044 }
3045 }
3046
3047 /// Evaluate tatara-lisp `src` against this editor: capture a
3048 /// snapshot, run it in the embedded VM, then apply the typed effects
3049 /// the program emitted. This is the imperative programmability tier
3050 /// — live Lisp that reads state and drives the editor through the
3051 /// sandboxed effect boundary.
3052 ///
3053 /// **Snapshot semantics:** the read snapshot is captured ONCE before
3054 /// eval, and effects are applied AFTER the program returns. So within
3055 /// a single `run_lisp` call a program cannot observe its own writes —
3056 /// `(insert "x") (cursor-column)` reads the pre-insert column. This
3057 /// snapshot-isolation is deliberate (it's what makes the effect
3058 /// boundary a clean sandbox seam); a program that must read its own
3059 /// effects splits the work across calls. The VM is cached
3060 /// ([`Self::lisp_vm`]) so the stdlib is installed once and top-level
3061 /// `define`s persist across calls (REPL-like).
3062 pub fn run_lisp(&mut self, src: &str) -> Result<(), VmError> {
3063 let mut host = EscribaHost::with_snapshot(self.snapshot());
3064 let vm = self.lisp_vm.get_or_insert_with(EscribaVm::new);
3065 vm.eval(src, &mut host)?;
3066 let effects = host.take_effects();
3067 self.apply_host_effects(effects);
3068 Ok(())
3069 }
3070
3071 /// Apply tatara-lisp effects to live editor state.
3072 ///
3073 /// A thin adapter now. It used to be `apply_host_effects`, a THIRD
3074 /// implementation of message-push / option-insert / insert-text beside
3075 /// the Action executor and the slip interpreter — the same duplication
3076 /// that let `u` and `:undo` drift apart in M3. The VM emits slips; this
3077 /// hands them to the one interpreter.
3078 pub fn apply_host_effects(&mut self, effects: Vec<Negai>) {
3079 self.interpret(Outcome::did(effects));
3080 }
3081
3082 /// Insert a (possibly multi-line) string at the cursor and advance
3083 /// the cursor past it. Used by the `(insert …)` effect.
3084 fn insert_text(&mut self, text: &str) {
3085 if text.is_empty() {
3086 return;
3087 }
3088 let cursor = self.cursor();
3089 let Some(buf) = self.buffers.get_mut(self.active) else {
3090 return;
3091 };
3092 let edit = Edit::insert(cursor, text.to_string());
3093 if buf.apply(&edit).is_ok() {
3094 let next = if let Some(nl) = text.rfind('\n') {
3095 let added_lines = u32::try_from(text.matches('\n').count()).unwrap_or(0);
3096 let last_line_len = u32::try_from(text[nl + 1..].chars().count()).unwrap_or(0);
3097 Position::new(cursor.line + added_lines, last_line_len)
3098 } else {
3099 let n = u32::try_from(text.chars().count()).unwrap_or(0);
3100 cursor.shift_right(n)
3101 };
3102 // Route through the single cursor-mutation path so the viewport
3103 // follows the cursor (both axes) and the cursor stays clamped.
3104 self.set_cursor(next);
3105 }
3106 }
3107}
3108
3109fn first_non_blank(buf: &escriba_buffer::Buffer, line: u32) -> Position {
3110 let Some(text) = buf.line(line) else {
3111 return Position::new(line, 0);
3112 };
3113 let col = text
3114 .chars()
3115 .take_while(|c| c.is_whitespace() && *c != '\n')
3116 .count();
3117 Position::new(line, u32::try_from(col).unwrap_or(0))
3118}
3119
3120fn word_next(buf: &escriba_buffer::Buffer, pos: Position) -> Position {
3121 let Some(text) = buf.line(pos.line) else {
3122 return pos;
3123 };
3124 let chars: Vec<char> = text.chars().collect();
3125 let start = pos.column as usize;
3126 let mut i = start;
3127 while i < chars.len() && !chars[i].is_whitespace() {
3128 i += 1;
3129 }
3130 while i < chars.len() && chars[i].is_whitespace() {
3131 i += 1;
3132 }
3133 if i >= chars.len() {
3134 // No more words on this line — jump to next line.
3135 if pos.line + 1 < buf.line_count() {
3136 return Position::new(pos.line + 1, 0);
3137 }
3138 }
3139 Position::new(pos.line, u32::try_from(i).unwrap_or(pos.column))
3140}
3141
3142fn word_prev(buf: &escriba_buffer::Buffer, pos: Position) -> Position {
3143 let Some(text) = buf.line(pos.line) else {
3144 return pos;
3145 };
3146 let chars: Vec<char> = text.chars().collect();
3147 let mut i = (pos.column as usize).min(chars.len());
3148 while i > 0 && chars[i - 1].is_whitespace() {
3149 i -= 1;
3150 }
3151 while i > 0 && !chars[i - 1].is_whitespace() {
3152 i -= 1;
3153 }
3154 Position::new(pos.line, u32::try_from(i).unwrap_or(0))
3155}
3156
3157fn parse_command_line(line: &str) -> (String, Vec<String>) {
3158 let mut parts = line.split_whitespace();
3159 let Some(first) = parts.next() else {
3160 return (String::new(), Vec::new());
3161 };
3162 let head = first.strip_prefix(':').unwrap_or(first);
3163 let name = match head {
3164 "w" => "save",
3165 "q" => "quit",
3166 "u" => "undo",
3167 other => other,
3168 };
3169 (name.to_string(), parts.map(str::to_string).collect())
3170}
3171
3172#[cfg(test)]
3173mod tests {
3174 use super::*;
3175 use madori::event::{KeyCode, KeyEvent, Modifiers};
3176
3177 // ── search wiring (escriba-search integration) ────────────────────
3178 //
3179 // The engine is proven in escriba-search's own 61 tests. These prove the
3180 // WIRING: that keys reach it, that the cursor lands where it says, and
3181 // that a search prompt and an ex-command can share Command mode without
3182 // being confused for one another.
3183
3184 fn type_search(st: &mut EditorState, dir: SearchDirection, pat: &str) {
3185 st.apply(&Action::SearchOpen(dir));
3186 for c in pat.chars() {
3187 st.apply(&Action::InsertChar(c));
3188 }
3189 st.apply(&Action::SubmitCommand);
3190 }
3191
3192 #[test]
3193 fn slash_search_moves_the_cursor_to_the_match() {
3194 let mut st = new_state_with("alpha\nbravo\ncharlie\n");
3195 type_search(&mut st, SearchDirection::Forward, "charlie");
3196 assert_eq!(st.cursor().line, 2, "cursor lands on the matching line");
3197 assert_eq!(st.modal.mode(), Mode::Normal, "prompt closes on submit");
3198 assert_eq!(st.search.matches().len(), 1);
3199 }
3200
3201 #[test]
3202 // `N` is a DIFFERENT vim key from `n` — see escriba-search.
3203 #[allow(non_snake_case)]
3204 fn n_and_N_walk_matches_in_both_directions() {
3205 let mut st = new_state_with("foo\nbar\nfoo\nbaz\nfoo\n");
3206 type_search(&mut st, SearchDirection::Forward, "foo");
3207 let first = st.cursor().line;
3208 st.apply(&Action::SearchRepeat { reverse: false });
3209 let second = st.cursor().line;
3210 assert!(second > first, "n advances ({first} -> {second})");
3211 st.apply(&Action::SearchRepeat { reverse: true });
3212 assert_eq!(st.cursor().line, first, "N comes back");
3213 }
3214
3215 #[test]
3216 fn star_searches_the_word_under_the_cursor() {
3217 let mut st = new_state_with("needle\nhaystack\nneedle\n");
3218 st.apply(&Action::SearchWord { reverse: false });
3219 assert_eq!(st.search.pattern().unwrap().raw(), r"\bneedle\b");
3220 assert_eq!(st.cursor().line, 2, "jumps to the other occurrence");
3221 }
3222
3223 #[test]
3224 fn escape_abandons_the_prompt_and_keeps_the_previous_search() {
3225 let mut st = new_state_with("foo\nbar\nfoo\n");
3226 type_search(&mut st, SearchDirection::Forward, "foo");
3227 let matches_before = st.search.matches().len();
3228
3229 st.apply(&Action::SearchOpen(SearchDirection::Forward));
3230 st.apply(&Action::InsertChar('z'));
3231 st.apply(&Action::ChangeMode(Mode::Normal));
3232
3233 assert!(!st.search.is_prompting(), "prompt gone");
3234 assert_eq!(
3235 st.search.pattern().unwrap().raw(),
3236 "foo",
3237 "old pattern survives"
3238 );
3239 assert_eq!(
3240 st.search.matches().len(),
3241 matches_before,
3242 "old highlights survive"
3243 );
3244 }
3245
3246 #[test]
3247 fn a_search_prompt_and_an_ex_command_are_not_confused() {
3248 let mut st = new_state_with("foo\n");
3249 // No `/` pressed: Command mode belongs to the ex-command line.
3250 st.apply(&Action::ChangeMode(Mode::Command));
3251 assert!(!st.search.is_prompting(), "`:` must not open a search");
3252 st.apply(&Action::InsertChar('w'));
3253 assert!(
3254 st.search.prompt().is_none(),
3255 "typed char went to the ex line"
3256 );
3257 }
3258
3259 #[test]
3260 fn a_missing_pattern_reports_instead_of_failing_silently() {
3261 let mut st = new_state_with("alpha\nbravo\n");
3262 type_search(&mut st, SearchDirection::Forward, "zzz");
3263 assert!(
3264 st.messages.iter().any(|m| m.contains("E486")),
3265 "must report not-found, got {:?}",
3266 st.messages
3267 );
3268 }
3269
3270 #[test]
3271 fn n_without_any_search_reports_rather_than_moving() {
3272 let mut st = new_state_with("alpha\nbravo\n");
3273 let before = st.cursor();
3274 st.apply(&Action::SearchRepeat { reverse: false });
3275 assert_eq!(st.cursor(), before, "cursor must not move");
3276 assert!(
3277 st.messages.iter().any(|m| m.contains("E35")),
3278 "got {:?}",
3279 st.messages
3280 );
3281 }
3282
3283 #[test]
3284 fn search_as_a_motion_composes_with_an_operator() {
3285 // The point of Motion::SearchNext: `d` + search deletes to the match.
3286 let mut st = new_state_with("alpha bravo charlie\n");
3287 type_search(&mut st, SearchDirection::Forward, "charlie");
3288 st.set_cursor(Position::new(0, 0));
3289 let target = st.resolve_motion(Position::new(0, 0), Motion::SearchNext);
3290 assert!(target.is_some(), "search must resolve as a motion");
3291 assert_eq!(target.unwrap().column, 12, "at `charlie`");
3292 }
3293
3294 #[test]
3295 fn search_motion_without_a_pattern_fails_the_motion_instead_of_moving_to_zero() {
3296 // A silent fallback to offset 0 would make `d` + search delete to the
3297 // start of the file — the worst possible failure for an operator.
3298 let st = new_state_with("alpha bravo\n");
3299 assert!(
3300 st.resolve_motion(Position::new(0, 5), Motion::SearchNext)
3301 .is_none()
3302 );
3303 }
3304
3305 #[test]
3306 fn clear_highlight_keeps_the_pattern_usable() {
3307 let mut st = new_state_with("foo\nbar\nfoo\n");
3308 type_search(&mut st, SearchDirection::Forward, "foo");
3309 st.apply(&Action::ClearSearchHighlight);
3310 assert!(st.search.highlights().is_empty(), "nothing lit");
3311 st.apply(&Action::SearchRepeat { reverse: false });
3312 assert!(st.search.pattern().is_some(), "but n still works");
3313 }
3314
3315 #[test]
3316 fn typing_previews_incrementally_before_commit() {
3317 let mut st = new_state_with("alpha\nbravo\ncharlie\n");
3318 st.apply(&Action::SearchOpen(SearchDirection::Forward));
3319 for c in "charlie".chars() {
3320 st.apply(&Action::InsertChar(c));
3321 }
3322 // incsearch: the cursor has already moved, with nothing committed.
3323 assert_eq!(st.cursor().line, 2, "preview moved the cursor");
3324 assert!(st.search.pattern().is_none(), "but nothing is committed");
3325 }
3326
3327 #[test]
3328 fn backspace_corrects_the_prompt_and_reruns_the_preview() {
3329 let mut st = new_state_with("alpha\nbravo\n");
3330 st.apply(&Action::SearchOpen(SearchDirection::Forward));
3331 for c in "bravox".chars() {
3332 st.apply(&Action::InsertChar(c));
3333 }
3334 assert_eq!(st.search.prompt().unwrap().text(), "bravox");
3335 st.apply(&Action::PromptBackspace);
3336 assert_eq!(
3337 st.search.prompt().unwrap().text(),
3338 "bravo",
3339 "typo corrected"
3340 );
3341 assert_eq!(
3342 st.status_model().prompt_text,
3343 "bravo",
3344 "the model reads the PROMPT — the minibuffer is the ex-line's store",
3345 );
3346 assert_eq!(st.cursor().line, 1, "preview re-ran and found it");
3347 }
3348
3349 #[test]
3350 fn backspacing_past_the_slash_closes_the_prompt() {
3351 let mut st = new_state_with("alpha\n");
3352 st.apply(&Action::SearchOpen(SearchDirection::Forward));
3353 st.apply(&Action::InsertChar('a'));
3354 st.apply(&Action::PromptBackspace);
3355 st.apply(&Action::PromptBackspace);
3356 assert!(!st.search.is_prompting(), "prompt closed");
3357 assert_eq!(st.modal.mode(), Mode::Normal);
3358 }
3359
3360 #[test]
3361 fn noh_clears_highlights_and_keeps_the_pattern() {
3362 let mut st = new_state_with("foo\nbar\nfoo\n");
3363 type_search(&mut st, SearchDirection::Forward, "foo");
3364 assert!(!st.search.highlights().is_empty());
3365 st.run_command("noh", &[]);
3366 assert!(st.search.highlights().is_empty(), ":noh turns them off");
3367 assert!(st.search.pattern().is_some(), "but n still works");
3368 }
3369
3370 #[test]
3371 fn noh_accepts_the_vim_aliases() {
3372 for name in ["noh", "nohl", "nohlsearch"] {
3373 let mut st = new_state_with("foo\nfoo\n");
3374 type_search(&mut st, SearchDirection::Forward, "foo");
3375 st.run_command(name, &[]);
3376 assert!(st.search.highlights().is_empty(), "{name} must clear");
3377 }
3378 }
3379
3380 #[test]
3381 fn backspace_on_the_ex_line_does_not_touch_search_state() {
3382 let mut st = new_state_with("foo\n");
3383 st.apply(&Action::ChangeMode(Mode::Command));
3384 st.apply(&Action::InsertChar('w'));
3385 st.apply(&Action::InsertChar('q'));
3386 st.apply(&Action::PromptBackspace);
3387 assert_eq!(st.status_model().prompt_text, "w");
3388 assert!(st.search.prompt().is_none(), "no search was involved");
3389 }
3390
3391 #[test]
3392 fn up_arrow_recalls_the_previous_search() {
3393 let mut st = new_state_with("alpha\nbravo\n");
3394 type_search(&mut st, SearchDirection::Forward, "bravo");
3395 st.apply(&Action::SearchOpen(SearchDirection::Forward));
3396 st.apply(&Action::PromptHistory { back: true });
3397 assert_eq!(st.search.prompt().unwrap().text(), "bravo");
3398 assert_eq!(
3399 st.status_model().prompt_text,
3400 "bravo",
3401 "display follows the prompt"
3402 );
3403 }
3404
3405 #[test]
3406 fn arrowing_back_down_restores_the_half_typed_pattern() {
3407 let mut st = new_state_with("alpha\nbravo\n");
3408 type_search(&mut st, SearchDirection::Forward, "bravo");
3409 st.apply(&Action::SearchOpen(SearchDirection::Forward));
3410 st.apply(&Action::InsertChar('a'));
3411 st.apply(&Action::PromptHistory { back: true });
3412 assert_eq!(st.search.prompt().unwrap().text(), "bravo");
3413 st.apply(&Action::PromptHistory { back: false });
3414 assert_eq!(
3415 st.search.prompt().unwrap().text(),
3416 "a",
3417 "the draft comes back"
3418 );
3419 assert_eq!(st.status_model().prompt_text, "a");
3420 }
3421
3422 #[test]
3423 fn history_arrows_do_nothing_on_the_ex_line() {
3424 let mut st = new_state_with("alpha\n");
3425 st.apply(&Action::ChangeMode(Mode::Command));
3426 st.apply(&Action::InsertChar('w'));
3427 st.apply(&Action::PromptHistory { back: true });
3428 assert_eq!(st.status_model().prompt_text, "w", "ex line untouched");
3429 }
3430
3431 // ── trouble.* — the findings view ────────────────────────────────
3432 //
3433 // These assert on the ROWS the picker would be built from, not on the
3434 // registry: the registry is already tested, and what could be wrong
3435 // here is the projection — scoping, freshness, and whether a row goes
3436 // anywhere when pressed.
3437
3438 fn finding_at(buffer: BufferId, line: u32, msg: &str) -> escriba_shirube::Finding {
3439 use escriba_core::{Position, Range};
3440 escriba_shirube::Finding::new(
3441 escriba_shirube::Site::in_buffer(
3442 buffer,
3443 Range::new(Position::new(line, 0), Position::new(line, 1)),
3444 ),
3445 escriba_shirube::Severity::Error,
3446 msg.to_string(),
3447 escriba_shirube::Origin::Text("test"),
3448 )
3449 }
3450
3451 #[test]
3452 fn published_findings_become_picker_rows() {
3453 let mut st = new_state_with("a\nb\nc\n");
3454 let world = st.world();
3455 st.results.publish(
3456 "test",
3457 escriba_shirube::ResultList::new(vec![finding_at(st.active, 1, "boom")], world),
3458 );
3459 let rows = st.finding_items(true);
3460 assert_eq!(rows.len(), 1, "the published finding produces a row");
3461 // The row must SAY something an operator can act on: severity,
3462 // 1-based line, and the message.
3463 let label = &rows[0].label;
3464 assert!(label.contains("ERROR"), "{label}");
3465 assert!(label.contains(":2"), "lines are 1-based on screen: {label}");
3466 assert!(label.contains("boom"), "{label}");
3467 }
3468
3469 #[test]
3470 fn a_stale_list_contributes_no_rows() {
3471 // THE load-bearing one. A list anchored to a revision the buffer has
3472 // moved past must vanish from the view rather than offer a line that
3473 // has since shifted — which is the whole reason findings carry an
3474 // anchor instead of just a position.
3475 let mut st = new_state_with("a\nb\nc\n");
3476 let world = st.world();
3477 st.results.publish(
3478 "test",
3479 escriba_shirube::ResultList::new(vec![finding_at(st.active, 1, "boom")], world),
3480 );
3481 assert_eq!(st.finding_items(true).len(), 1, "fresh to begin with");
3482
3483 st.apply(&Action::InsertChar('x'));
3484 assert!(
3485 st.finding_items(true).is_empty(),
3486 "an edit moved the text on; the list is stale and must not be shown"
3487 );
3488 }
3489
3490 #[test]
3491 fn document_scope_excludes_another_buffer() {
3492 // `trouble.document` vs `trouble.workspace` is one bool, so this is
3493 // the only thing that can distinguish them.
3494 let mut st = new_state_with("a\nb\n");
3495 let other = st.buffers.scratch("z\n");
3496 let world = st.world();
3497 st.results.publish(
3498 "test",
3499 escriba_shirube::ResultList::new(
3500 vec![
3501 finding_at(st.active, 0, "mine"),
3502 finding_at(other, 0, "theirs"),
3503 ],
3504 world,
3505 ),
3506 );
3507 let ws = st.finding_items(true);
3508 assert_eq!(ws.len(), 2, "workspace scope shows both");
3509 let doc = st.finding_items(false);
3510 assert_eq!(doc.len(), 1, "document scope shows only the active buffer");
3511 assert!(doc[0].label.contains("mine"), "{}", doc[0].label);
3512 }
3513
3514 #[test]
3515 fn files_under_a_root_produces_rows() {
3516 // `files.open-parent` differs from `files.open` only in the root, so
3517 // what must hold is that a root is actually honoured.
3518 let mut st = new_state_with("");
3519 let rows = st.file_items(std::path::Path::new("."));
3520 assert!(!rows.is_empty(), "the working directory has files");
3521 }
3522
3523 // ── vim text objects ─────────────────────────────────────────────
3524 //
3525 // Asserted through `apply` on real buffer text, so a wrong RANGE shows
3526 // up as wrong text rather than as a range that merely looks plausible.
3527
3528 fn after(text: &str, line: u32, col: u32, act: Action) -> String {
3529 let mut st = new_state_with(text);
3530 st.set_cursor(Position::new(line, col));
3531 st.apply(&act);
3532 st.buffers
3533 .get(st.active)
3534 .map(|b| b.to_string())
3535 .unwrap_or_default()
3536 }
3537
3538 fn del_obj(o: escriba_core::TextObject) -> Action {
3539 Action::ApplyOperatorObject {
3540 op: escriba_core::Operator::Delete,
3541 object: o,
3542 }
3543 }
3544
3545 #[test]
3546 fn dd_removes_the_line_not_just_its_contents() {
3547 // The distinction the newline makes: without it, `dd` blanks a line
3548 // and leaves it behind.
3549 let got = after("a\nb\nc\n", 1, 0, del_obj(escriba_core::TextObject::Line));
3550 assert_eq!(got, "a\nc\n");
3551 }
3552
3553 #[test]
3554 fn dd_on_the_last_line_leaves_no_blank_behind() {
3555 // The case a naive start-of-line..start-of-next range gets wrong:
3556 // there is no following newline to take, so it must take the
3557 // preceding one.
3558 let got = after("a\nb\nc\n", 2, 0, del_obj(escriba_core::TextObject::Line));
3559 assert_eq!(got, "a\nb\n", "no trailing empty line: {got:?}");
3560 }
3561
3562 #[test]
3563 fn dd_on_the_only_line_clears_it_but_keeps_the_line() {
3564 let got = after("solo\n", 0, 2, del_obj(escriba_core::TextObject::Line));
3565 assert!(got.starts_with('\n') || got.is_empty(), "{got:?}");
3566 }
3567
3568 #[test]
3569 fn diw_takes_the_word_and_daw_takes_its_trailing_space() {
3570 let inner = after(
3571 "one two three\n",
3572 0,
3573 5,
3574 del_obj(escriba_core::TextObject::Word { around: false }),
3575 );
3576 assert_eq!(inner, "one three\n", "iw leaves both spaces");
3577 let around = after(
3578 "one two three\n",
3579 0,
3580 5,
3581 del_obj(escriba_core::TextObject::Word { around: true }),
3582 );
3583 assert_eq!(around, "one three\n", "aw takes the trailing space");
3584 }
3585
3586 #[test]
3587 fn iw_from_any_column_inside_the_word_takes_the_whole_word() {
3588 for col in 4..=6 {
3589 let got = after(
3590 "one two three\n",
3591 0,
3592 col,
3593 del_obj(escriba_core::TextObject::Word { around: false }),
3594 );
3595 assert_eq!(got, "one three\n", "from column {col}");
3596 }
3597 }
3598
3599 #[test]
3600 fn iw_on_punctuation_takes_the_punctuation_run() {
3601 // vim's three classes: word / punctuation / whitespace. A `::` is a
3602 // run of punctuation, not part of either identifier.
3603 let got = after(
3604 "foo::bar\n",
3605 0,
3606 3,
3607 del_obj(escriba_core::TextObject::Word { around: false }),
3608 );
3609 assert_eq!(got, "foobar\n");
3610 }
3611
3612 #[test]
3613 fn i_paren_takes_the_inside_and_a_paren_takes_the_brackets_too() {
3614 let inner = after(
3615 "f(a, b)\n",
3616 0,
3617 3,
3618 del_obj(escriba_core::TextObject::Delimited {
3619 open: '(',
3620 close: ')',
3621 around: false,
3622 }),
3623 );
3624 assert_eq!(inner, "f()\n");
3625 let around = after(
3626 "f(a, b)\n",
3627 0,
3628 3,
3629 del_obj(escriba_core::TextObject::Delimited {
3630 open: '(',
3631 close: ')',
3632 around: true,
3633 }),
3634 );
3635 assert_eq!(around, "f\n");
3636 }
3637
3638 #[test]
3639 fn nested_brackets_resolve_to_the_enclosing_pair() {
3640 // THE reason the bracket scan counts depth: an inner pair must not
3641 // terminate the search for the one the cursor is actually inside.
3642 let got = after(
3643 "f(g(x), y)\n",
3644 0,
3645 8,
3646 del_obj(escriba_core::TextObject::Delimited {
3647 open: '(',
3648 close: ')',
3649 around: false,
3650 }),
3651 );
3652 assert_eq!(got, "f()\n", "took the outer pair");
3653 }
3654
3655 #[test]
3656 fn quotes_do_not_nest_so_the_nearest_pair_wins() {
3657 let got = after(
3658 r#"say "hi there" ok"#,
3659 0,
3660 7,
3661 del_obj(escriba_core::TextObject::Delimited {
3662 open: '"',
3663 close: '"',
3664 around: false,
3665 }),
3666 );
3667 assert_eq!(got, "say \"\" ok");
3668 }
3669
3670 #[test]
3671 fn an_unmatched_delimiter_resolves_to_nothing_rather_than_guessing() {
3672 let mut st = new_state_with("f(a, b\n");
3673 st.set_cursor(Position::new(0, 3));
3674 let before = st
3675 .buffers
3676 .get(st.active)
3677 .map(|b| b.to_string())
3678 .unwrap_or_default();
3679 st.apply(&del_obj(escriba_core::TextObject::Delimited {
3680 open: '(',
3681 close: ')',
3682 around: false,
3683 }));
3684 let got_after = st
3685 .buffers
3686 .get(st.active)
3687 .map(|b| b.to_string())
3688 .unwrap_or_default();
3689 assert_eq!(got_after, before, "no closing bracket: change nothing");
3690 }
3691
3692 fn new_state_with(text: &str) -> EditorState {
3693 let mut bufs = BufferSet::new();
3694 let id = bufs.scratch(text);
3695 EditorState::new_with_buffer(bufs, id)
3696 }
3697
3698 /// The refresh-seal driver (theory/ESCRIBA.md §Refresh-Seal): an applied
3699 /// action advances `edit_gen` (so the renderer repaints), and merely
3700 /// reading the generation does not. This is what lets `gpu.rs` gate the
3701 /// re-highlight/re-shape on a generation change — an idle frame observes an
3702 /// unchanged generation and reuses its cached buffer.
3703 #[test]
3704 fn edit_gen_advances_on_applied_action_not_on_read() {
3705 let mut s = new_state_with("hello\nworld\n");
3706 let g0 = s.edit_gen();
3707 s.apply(&Action::InsertChar('X'));
3708 assert_ne!(
3709 s.edit_gen(),
3710 g0,
3711 "an applied action must advance the refresh generation",
3712 );
3713 // Reading the generation is not a mutation — idle frames stay put.
3714 let g1 = s.edit_gen();
3715 assert_eq!(s.edit_gen(), g1, "reading edit_gen must not advance it");
3716 }
3717
3718 /// The M1 refresh node (theory/ESCRIBA.md §X): a mutation widens the typed
3719 /// `Damage` to cover exactly what changed — local for an in-place edit,
3720 /// to-end-of-document when the line count shifts — and the renderer drains
3721 /// it per frame. `Damage ⊇ changed` by construction; it never narrows.
3722 #[test]
3723 fn damage_tracks_edit_scope_and_drains() {
3724 let mut s = new_state_with("hello\nworld\n");
3725 assert!(s.damage().is_none(), "a fresh state has no damage");
3726
3727 s.apply(&Action::InsertChar('X')); // in-place edit on line 0
3728 assert_eq!(
3729 s.damage(),
3730 Damage::Lines { from: 0, to: 0 },
3731 "a local edit damages just its line",
3732 );
3733
3734 let drained = s.take_damage();
3735 assert_eq!(drained, Damage::Lines { from: 0, to: 0 });
3736 assert!(s.damage().is_none(), "take_damage drains to None");
3737
3738 s.apply(&Action::InsertChar('\n')); // splits line 0 → line count grows
3739 assert_eq!(
3740 s.damage(),
3741 Damage::Lines {
3742 from: 0,
3743 to: u32::MAX,
3744 },
3745 "a line-count change damages to end-of-document",
3746 );
3747 }
3748
3749 /// A state whose active window is a deliberately tiny viewport
3750 /// (`visible_lines` × `visible_columns`) so the scroll-to-contain
3751 /// invariant is exercised on small inputs.
3752 fn new_state_small_viewport(text: &str, vis_lines: u32, vis_cols: u32) -> EditorState {
3753 let mut s = new_state_with(text);
3754 for w in s.layout.windows_mut() {
3755 w.viewport.visible_lines = vis_lines;
3756 w.viewport.visible_columns = vis_cols;
3757 }
3758 s
3759 }
3760
3761 /// The core regression invariant: the active window's viewport CONTAINS
3762 /// the cursor on BOTH axes. This is the operator's exact complaint —
3763 /// "typing past the bottom (or right) leaves the cursor off-screen" —
3764 /// made into a checkable property.
3765 fn assert_cursor_in_viewport(s: &EditorState, ctx: &str) {
3766 let w = s.layout.active_window().expect("active window");
3767 let v = w.viewport;
3768 let c = s.cursor();
3769 assert!(
3770 v.top_line <= c.line && c.line < v.top_line + v.visible_lines,
3771 "[{ctx}] cursor line {} not in vertical window [{}, {}); viewport={v:?}",
3772 c.line,
3773 v.top_line,
3774 v.top_line + v.visible_lines,
3775 );
3776 assert!(
3777 v.left_column <= c.column && c.column < v.left_column + v.visible_columns,
3778 "[{ctx}] cursor column {} not in horizontal window [{}, {}); viewport={v:?}",
3779 c.column,
3780 v.left_column,
3781 v.left_column + v.visible_columns,
3782 );
3783 }
3784
3785 /// `dd` from the KEYBOARD, not from a synthesized action.
3786 ///
3787 /// The FSM composition is unit-tested, but what an operator actually
3788 /// does is press `d` twice — and that path goes through the keymap and
3789 /// the sequence stepper, either of which could swallow the second `d`.
3790 #[test]
3791 fn pressing_d_twice_deletes_the_line() {
3792 let mut st = new_state_with("alpha\nbeta\ngamma\n");
3793 st.set_cursor(Position::new(1, 0));
3794 st.tick(&press(KeyCode::Char('d')));
3795 st.tick(&press(KeyCode::Char('d')));
3796 let got = st
3797 .buffers
3798 .get(st.active)
3799 .map(|b| b.to_string())
3800 .unwrap_or_default();
3801 assert_eq!(got, "alpha\ngamma\n", "dd from the keyboard");
3802 }
3803
3804 #[test]
3805 fn pressing_2_d_d_deletes_two_lines() {
3806 let mut st = new_state_with("a\nb\nc\nd\n");
3807 st.set_cursor(Position::new(0, 0));
3808 for k in ['2', 'd', 'd'] {
3809 st.tick(&press(KeyCode::Char(k)));
3810 }
3811 let got = st
3812 .buffers
3813 .get(st.active)
3814 .map(|b| b.to_string())
3815 .unwrap_or_default();
3816 assert_eq!(got, "c\nd\n", "count applies to the doubled operator");
3817 }
3818
3819 /// Text objects FROM THE KEYBOARD — the layer the last commit said was
3820 /// missing. `i` is `ChangeMode(Insert)` in Normal and `a` and every
3821 /// bracket are unbound, so all of this had to be decided on the KEY.
3822
3823 fn keys(text: &str, line: u32, col: u32, seq: &str) -> String {
3824 let mut st = new_state_with(text);
3825 st.set_cursor(Position::new(line, col));
3826 for c in seq.chars() {
3827 st.tick(&press(KeyCode::Char(c)));
3828 }
3829 st.buffers
3830 .get(st.active)
3831 .map(|b| b.to_string())
3832 .unwrap_or_default()
3833 }
3834
3835 #[test]
3836 fn diw_from_the_keyboard() {
3837 assert_eq!(keys("one two three\n", 0, 5, "diw"), "one three\n");
3838 }
3839
3840 #[test]
3841 fn daw_from_the_keyboard_takes_the_space() {
3842 assert_eq!(keys("one two three\n", 0, 5, "daw"), "one three\n");
3843 }
3844
3845 #[test]
3846 fn ciw_deletes_and_enters_insert() {
3847 let mut st = new_state_with("one two\n");
3848 st.set_cursor(Position::new(0, 5));
3849 for c in "ciw".chars() {
3850 st.tick(&press(KeyCode::Char(c)));
3851 }
3852 assert_eq!(st.modal.mode(), Mode::Insert, "change leaves you inserting");
3853 let got = st
3854 .buffers
3855 .get(st.active)
3856 .map(|b| b.to_string())
3857 .unwrap_or_default();
3858 assert_eq!(got, "one \n");
3859 }
3860
3861 #[test]
3862 fn di_paren_and_da_paren_from_the_keyboard() {
3863 assert_eq!(keys("f(a, b)\n", 0, 3, "di("), "f()\n");
3864 assert_eq!(keys("f(a, b)\n", 0, 3, "da("), "f\n");
3865 }
3866
3867 #[test]
3868 fn the_closing_bracket_and_b_are_aliases() {
3869 // vim accepts `i(`, `i)` and `ib` for the same object.
3870 for sel in ["di(", "di)", "dib"] {
3871 assert_eq!(keys("f(a, b)\n", 0, 3, sel), "f()\n", "{sel}");
3872 }
3873 }
3874
3875 #[test]
3876 fn di_quote_from_the_keyboard() {
3877 assert_eq!(keys("say \"hi\" ok\n", 0, 6, "di\""), "say \"\" ok\n");
3878 }
3879
3880 #[test]
3881 fn i_alone_still_enters_insert_when_no_operator_is_pending() {
3882 // The load-bearing negative: the object layer must not steal `i`
3883 // from ordinary use.
3884 let mut st = new_state_with("abc\n");
3885 st.tick(&press(KeyCode::Char('i')));
3886 assert_eq!(st.modal.mode(), Mode::Insert);
3887 }
3888
3889 #[test]
3890 fn an_unknown_object_key_cancels_rather_than_staying_armed() {
3891 // `diz` is not an object. The operator must disarm, and the buffer
3892 // must be untouched — not left waiting to eat the next keystroke.
3893 let mut st = new_state_with("one two\n");
3894 st.set_cursor(Position::new(0, 5));
3895 for c in "diz".chars() {
3896 st.tick(&press(KeyCode::Char(c)));
3897 }
3898 let got = st
3899 .buffers
3900 .get(st.active)
3901 .map(|b| b.to_string())
3902 .unwrap_or_default();
3903 assert_eq!(got, "one two\n", "nothing was deleted");
3904 assert_eq!(*st.op_pending.state(), OpState::Resting, "and it disarmed");
3905 }
3906
3907 // ── the register under a count ───────────────────────────────────
3908
3909 #[test]
3910 fn a_counted_delete_puts_ALL_of_it_in_the_register() {
3911 // `3dw` is one delete of three words as far as the register is
3912 // concerned. Each repetition emits its own Yank, and each used to
3913 // overwrite — so `3dwP` put back only the third word and silently
3914 // lost two.
3915 let mut st = new_state_with("one two three four\n");
3916 st.set_cursor(Position::new(0, 0));
3917 for c in "3dw".chars() {
3918 st.tick(&press(KeyCode::Char(c)));
3919 }
3920 assert_eq!(
3921 st.register.as_deref(),
3922 Some("one two three "),
3923 "all three words, in the order they were deleted"
3924 );
3925 }
3926
3927 #[test]
3928 fn an_uncounted_delete_still_replaces_the_register() {
3929 // The combining flag must not leak: a later single delete replaces.
3930 let mut st = new_state_with("alpha beta\n");
3931 st.set_cursor(Position::new(0, 0));
3932 for c in "3dw".chars() {
3933 st.tick(&press(KeyCode::Char(c)));
3934 }
3935 let mut st2 = new_state_with("gamma delta\n");
3936 st2.set_cursor(Position::new(0, 0));
3937 for c in "dw".chars() {
3938 st2.tick(&press(KeyCode::Char(c)));
3939 }
3940 assert_eq!(st2.register.as_deref(), Some("gamma "));
3941 }
3942
3943 #[test]
3944 fn two_separate_counted_deletes_do_not_accumulate_into_each_other() {
3945 // The flag is cleared after each group, so the second `2dw` starts
3946 // from empty rather than appending to the first.
3947 let mut st = new_state_with("a b c d e f\n");
3948 st.set_cursor(Position::new(0, 0));
3949 for c in "2dw".chars() {
3950 st.tick(&press(KeyCode::Char(c)));
3951 }
3952 let first = st.register.clone();
3953 for c in "2dw".chars() {
3954 st.tick(&press(KeyCode::Char(c)));
3955 }
3956 assert_eq!(first.as_deref(), Some("a b "));
3957 assert_eq!(st.register.as_deref(), Some("c d "), "not \"a b c d \"");
3958 }
3959
3960 #[test]
3961 fn a_counted_yank_accumulates_without_changing_the_buffer() {
3962 let mut st = new_state_with("one two three\n");
3963 st.set_cursor(Position::new(0, 0));
3964 let before = st
3965 .buffers
3966 .get(st.active)
3967 .map(|b| b.to_string())
3968 .unwrap_or_default();
3969 for c in "2yw".chars() {
3970 st.tick(&press(KeyCode::Char(c)));
3971 }
3972 assert_eq!(st.register.as_deref(), Some("one two "));
3973 let after = st
3974 .buffers
3975 .get(st.active)
3976 .map(|b| b.to_string())
3977 .unwrap_or_default();
3978 assert_eq!(after, before, "yank does not edit");
3979 }
3980
3981 // ── the anchored reply (Negai::ErrandReply) ──────────────────────
3982 //
3983 // Landed BEFORE the courier that will produce these. The class being
3984 // closed: a reply computed off the tick, applied against a world that
3985 // has since moved, and RESEALED as fresh by the interpreter — which is
3986 // what every synchronous slip correctly does and what an async one must
3987 // never do.
3988
3989 fn a_finding(buffer: BufferId, line: u32) -> escriba_shirube::Finding {
3990 use escriba_core::{Position, Range};
3991 escriba_shirube::Finding::new(
3992 escriba_shirube::Site::in_buffer(
3993 buffer,
3994 Range::new(Position::new(line, 0), Position::new(line, 1)),
3995 ),
3996 escriba_shirube::Severity::Error,
3997 "computed off the tick".to_string(),
3998 escriba_shirube::Origin::Text("test"),
3999 )
4000 }
4001
4002 #[test]
4003 fn a_fresh_errand_reply_is_honoured() {
4004 let mut st = new_state_with("a\nb\nc\n");
4005 let anchor = st.world();
4006 st.honour_one(escriba_madoguchi::Negai::ErrandReply {
4007 anchor,
4008 then: Box::new(escriba_madoguchi::Negai::PublishFindings {
4009 list: "lsp".to_string(),
4010 findings: vec![a_finding(st.active, 1)],
4011 }),
4012 });
4013 assert_eq!(st.finding_items(true).len(), 1, "the world had not moved");
4014 }
4015
4016 /// THE red run. Without the freshness check this passes findings
4017 /// straight through, and `PublishFindings` reseals them with the
4018 /// CURRENT world — so they are reported fresh at columns that moved.
4019 #[test]
4020 fn a_stale_errand_reply_is_dropped_not_resealed() {
4021 let mut st = new_state_with("a\nb\nc\n");
4022 // Capture the world the "server" computed against...
4023 let anchor = st.world();
4024 // ...then let the operator keep typing, which is the whole point.
4025 st.apply(&Action::InsertChar('x'));
4026
4027 st.honour_one(escriba_madoguchi::Negai::ErrandReply {
4028 anchor,
4029 then: Box::new(escriba_madoguchi::Negai::PublishFindings {
4030 list: "lsp".to_string(),
4031 findings: vec![a_finding(st.active, 1)],
4032 }),
4033 });
4034 assert!(
4035 st.finding_items(true).is_empty(),
4036 "a reply computed against an older text revision must be DROPPED, \
4037 not resealed against the current one"
4038 );
4039 }
4040
4041 /// The failure the wrapper exists for, and the reason it wraps a slip
4042 /// rather than adding an anchor field to PublishFindings: a stale EDIT
4043 /// corrupts the file, where a stale diagnostic merely mis-decorates it.
4044 #[test]
4045 fn a_stale_errand_reply_cannot_edit_the_buffer() {
4046 let mut st = new_state_with("hello\n");
4047 let anchor = st.world();
4048 st.apply(&Action::InsertChar('!'));
4049 let before = st
4050 .buffers
4051 .get(st.active)
4052 .map(|b| b.to_string())
4053 .unwrap_or_default();
4054
4055 st.honour_one(escriba_madoguchi::Negai::ErrandReply {
4056 anchor,
4057 then: Box::new(escriba_madoguchi::Negai::Edit {
4058 buffer: st.active,
4059 edit: escriba_core::Edit {
4060 range: Range::new(Position::new(0, 0), Position::new(0, 0)),
4061 kind: escriba_core::EditKind::Insert {
4062 text: "FORMATTED".to_string(),
4063 },
4064 },
4065 }),
4066 });
4067 let after = st
4068 .buffers
4069 .get(st.active)
4070 .map(|b| b.to_string())
4071 .unwrap_or_default();
4072 assert_eq!(
4073 after, before,
4074 "a stale formatter reply must not touch the text"
4075 );
4076 }
4077
4078 fn press(kc: KeyCode) -> AppEvent {
4079 AppEvent::Key(KeyEvent {
4080 key: kc,
4081 pressed: true,
4082 modifiers: Modifiers::default(),
4083 text: None,
4084 })
4085 }
4086
4087 // ── operator-over-motion (the `dw`/`c$`/`y0` verbs) ──────────────
4088
4089 fn line0_len(s: &EditorState) -> u32 {
4090 s.buffers.get(s.active).unwrap().line_len_chars(0)
4091 }
4092
4093 #[test]
4094 fn delete_to_line_end_clears_line_and_fills_register() {
4095 let mut s = new_state_with("hello world");
4096 s.apply(&Action::ApplyOperator {
4097 op: Operator::Delete,
4098 motion: Motion::LineEnd,
4099 });
4100 assert_eq!(line0_len(&s), 0, "d$ deletes to end of line");
4101 assert_eq!(
4102 s.register(),
4103 Some("hello world"),
4104 "delete fills the register"
4105 );
4106 assert_eq!(
4107 s.cursor(),
4108 Position::ZERO,
4109 "cursor lands at the range start"
4110 );
4111 }
4112
4113 #[test]
4114 fn delete_over_right_motion_removes_one_char() {
4115 let mut s = new_state_with("abc");
4116 s.apply(&Action::ApplyOperator {
4117 op: Operator::Delete,
4118 motion: Motion::Right,
4119 });
4120 assert_eq!(
4121 s.buffers.get(s.active).unwrap().line(0).as_deref(),
4122 Some("bc")
4123 );
4124 assert_eq!(s.register(), Some("a"));
4125 }
4126
4127 #[test]
4128 fn change_to_line_end_deletes_and_enters_insert() {
4129 let mut s = new_state_with("hello world");
4130 assert_eq!(s.modal.mode(), Mode::Normal);
4131 s.apply(&Action::ApplyOperator {
4132 op: Operator::Change,
4133 motion: Motion::LineEnd,
4134 });
4135 assert_eq!(line0_len(&s), 0, "c$ deletes the range");
4136 assert_eq!(
4137 s.modal.mode(),
4138 Mode::Insert,
4139 "change enters Insert to type the replacement"
4140 );
4141 assert_eq!(
4142 s.register(),
4143 Some("hello world"),
4144 "change fills the register"
4145 );
4146 }
4147
4148 #[test]
4149 fn yank_to_line_end_fills_register_without_mutating() {
4150 let mut s = new_state_with("hello world");
4151 s.apply(&Action::ApplyOperator {
4152 op: Operator::Yank,
4153 motion: Motion::LineEnd,
4154 });
4155 assert_eq!(line0_len(&s), 11, "yank does not mutate the buffer");
4156 assert_eq!(s.register(), Some("hello world"), "yank fills the register");
4157 assert_eq!(s.modal.mode(), Mode::Normal, "yank stays in Normal");
4158 }
4159
4160 #[test]
4161 fn resolve_motion_is_the_shared_target_for_move_and_operator() {
4162 // The encapsulation proof: apply_motion (cursor move) and
4163 // apply_operator (range end) BOTH stand on resolve_motion — so a move
4164 // to LineEnd lands at exactly the position the operator deletes to.
4165 let mut s = new_state_with("hello world");
4166 let target = s.resolve_motion(Position::ZERO, Motion::LineEnd).unwrap();
4167 assert_eq!(target, Position::new(0, 11));
4168 s.apply_motion(Motion::LineEnd);
4169 assert_eq!(
4170 s.cursor(),
4171 target,
4172 "the move path resolves the same target the operator uses"
4173 );
4174 }
4175
4176 #[test]
4177 fn empty_motion_range_is_a_no_op() {
4178 // An operator over a zero-width motion (cursor already at line start)
4179 // mutates nothing and leaves the register untouched.
4180 let mut s = new_state_with("abc");
4181 s.apply(&Action::ApplyOperator {
4182 op: Operator::Delete,
4183 motion: Motion::LineStart,
4184 });
4185 assert_eq!(
4186 s.buffers.get(s.active).unwrap().line(0).as_deref(),
4187 Some("abc")
4188 );
4189 assert_eq!(s.register(), None);
4190 }
4191
4192 #[test]
4193 fn operator_then_motion_composes_through_the_pending_fsm() {
4194 // The full keymap→FSM→engine path: dispatching the `d` operator action
4195 // then a `$` motion composes `d$` via the zenmai operator-pending FSM —
4196 // the operator key alone does nothing until the motion arrives.
4197 let mut s = new_state_with("hello world");
4198 s.apply(&Action::Operator(Operator::Delete));
4199 assert_eq!(line0_len(&s), 11, "the operator key alone mutates nothing");
4200 s.apply(&Action::Move(Motion::LineEnd));
4201 assert_eq!(
4202 line0_len(&s),
4203 0,
4204 "d then $ composes d$ and deletes the line"
4205 );
4206 assert_eq!(s.register(), Some("hello world"));
4207 }
4208
4209 #[test]
4210 fn change_operator_through_fsm_enters_insert() {
4211 let mut s = new_state_with("hello world");
4212 s.apply(&Action::Operator(Operator::Change));
4213 s.apply(&Action::Move(Motion::LineEnd));
4214 assert_eq!(s.modal.mode(), Mode::Insert, "c$ deletes and enters Insert");
4215 }
4216
4217 #[test]
4218 fn lone_motion_after_no_operator_just_moves() {
4219 // Without a preceding operator the motion passes through unchanged.
4220 let mut s = new_state_with("hello world");
4221 s.apply(&Action::Move(Motion::LineEnd));
4222 assert_eq!(s.cursor(), Position::new(0, 11));
4223 assert_eq!(line0_len(&s), 11, "a bare motion never mutates");
4224 }
4225
4226 #[test]
4227 fn counted_operator_deletes_count_times() {
4228 // `3d` + a right-motion = `3dl` = delete 3 chars. The operator's count
4229 // flows through the FSM to the composed motion (the bug fix: previously
4230 // the count repeated the operator key and toggled the FSM).
4231 let mut s = new_state_with("abcdef");
4232 s.apply_counted(&Action::Operator(Operator::Delete), 3);
4233 assert_eq!(line0_len(&s), 6, "the operator key alone mutates nothing");
4234 s.apply(&Action::Move(Motion::Right));
4235 assert_eq!(
4236 s.buffers.get(s.active).unwrap().line(0).as_deref(),
4237 Some("def")
4238 );
4239 }
4240
4241 #[test]
4242 fn operator_and_motion_counts_multiply_end_to_end() {
4243 // `2d3l` = delete 2×3 = 6 chars.
4244 let mut s = new_state_with("abcdefgh");
4245 s.apply_counted(&Action::Operator(Operator::Delete), 2);
4246 s.apply_counted(&Action::Move(Motion::Right), 3);
4247 assert_eq!(
4248 s.buffers.get(s.active).unwrap().line(0).as_deref(),
4249 Some("gh")
4250 );
4251 }
4252
4253 #[test]
4254 fn bare_counted_motion_still_repeats_no_regression() {
4255 // `3j` still moves down 3 lines — the count passes through the FSM
4256 // unchanged when no operator is pending.
4257 let mut s = new_state_with("a\nb\nc\nd\ne");
4258 s.apply_counted(&Action::Move(Motion::Down), 3);
4259 assert_eq!(s.cursor().line, 3, "5j-style counted motion preserved");
4260 }
4261
4262 /// A monotonic clock for the key-repeat gate in tests — each `next()`
4263 /// jumps a full second past the previous, so every press it stamps is
4264 /// well outside the 80ms debounce window and therefore an INTENTIONAL
4265 /// press (never a storm tick). Used by tests that fire the *same*
4266 /// navigation key twice and assert editor logic, not debounce timing.
4267 struct SpacedClock(std::time::Instant);
4268 impl SpacedClock {
4269 fn new() -> Self {
4270 Self(std::time::Instant::now())
4271 }
4272 fn next(&mut self) -> std::time::Instant {
4273 self.0 += std::time::Duration::from_secs(1);
4274 self.0
4275 }
4276 }
4277
4278 #[test]
4279 fn hjkl_moves_cursor() {
4280 let mut s = new_state_with("hello\nworld");
4281 s.tick(&press(KeyCode::Char('l')));
4282 assert_eq!(s.cursor().column, 1);
4283 s.tick(&press(KeyCode::Char('j')));
4284 assert_eq!(s.cursor().line, 1);
4285 s.tick(&press(KeyCode::Char('h')));
4286 assert_eq!(s.cursor().column, 0);
4287 }
4288
4289 #[test]
4290 fn insert_mode_inserts_chars() {
4291 let mut s = new_state_with("");
4292 s.tick(&press(KeyCode::Char('i')));
4293 assert_eq!(s.modal.mode(), Mode::Insert);
4294 s.tick(&press(KeyCode::Char('h')));
4295 s.tick(&press(KeyCode::Char('i')));
4296 assert_eq!(s.buffers.get(s.active).unwrap().to_string(), "hi");
4297 assert_eq!(s.cursor().column, 2);
4298 }
4299
4300 #[test]
4301 fn esc_returns_to_normal() {
4302 let mut s = new_state_with("");
4303 s.tick(&press(KeyCode::Char('i')));
4304 s.tick(&press(KeyCode::Escape));
4305 assert_eq!(s.modal.mode(), Mode::Normal);
4306 }
4307
4308 #[test]
4309 fn count_prefix_repeats_motion() {
4310 let mut s = new_state_with("abcdefghij");
4311 s.tick(&press(KeyCode::Char('5')));
4312 s.tick(&press(KeyCode::Char('l')));
4313 assert_eq!(s.cursor().column, 5);
4314 }
4315
4316 #[test]
4317 fn close_event_requests_quit() {
4318 let mut s = new_state_with("");
4319 s.tick(&AppEvent::CloseRequested);
4320 assert!(s.quit_requested);
4321 }
4322
4323 #[test]
4324 fn word_next_jumps_past_whitespace() {
4325 let mut s = new_state_with("foo bar baz");
4326 // Two INTENTIONAL `w` presses, spaced past the key-repeat window so
4327 // the gate passes both (a real user's two taps are ≥80ms apart).
4328 let mut clk = SpacedClock::new();
4329 s.tick_at(&press(KeyCode::Char('w')), clk.next());
4330 assert_eq!(s.cursor().column, 4);
4331 s.tick_at(&press(KeyCode::Char('w')), clk.next());
4332 assert_eq!(s.cursor().column, 8);
4333 }
4334
4335 // ── Multi-key / leader pending-stroke ───────────────────────────
4336
4337 #[test]
4338 fn leader_sequence_holds_then_resolves() {
4339 let mut s = new_state_with("a\nbb\nccc");
4340 s.keymap.bind_sequence(
4341 Mode::Normal,
4342 vec![Key::Char(','), Key::Char('g')],
4343 Action::Move(Motion::DocEnd),
4344 "doc end",
4345 );
4346 // `,` begins the sequence — held pending, nothing applied yet.
4347 s.on_key(&Key::Char(','));
4348 assert_eq!(s.pending_keys, vec![Key::Char(',')]);
4349 assert_eq!(s.cursor(), Position::ZERO);
4350 // `g` completes `<leader>g` → DocEnd; pending clears.
4351 s.on_key(&Key::Char('g'));
4352 assert!(s.pending_keys.is_empty());
4353 assert_eq!(s.cursor().line, 2);
4354 }
4355
4356 #[test]
4357 fn two_key_gg_jumps_doc_start() {
4358 let mut s = new_state_with("a\nbb\nccc");
4359 s.keymap.bind_sequence(
4360 Mode::Normal,
4361 vec![Key::Char('g'), Key::Char('g')],
4362 Action::Move(Motion::DocStart),
4363 "doc start",
4364 );
4365 let mut clk = SpacedClock::new();
4366 s.tick_at(&press(KeyCode::Char('j')), clk.next());
4367 s.tick_at(&press(KeyCode::Char('j')), clk.next());
4368 assert_eq!(s.cursor().line, 2);
4369 s.on_key(&Key::Char('g')); // pending
4370 assert_eq!(s.pending_keys, vec![Key::Char('g')]);
4371 s.on_key(&Key::Char('g')); // resolve
4372 assert_eq!(s.cursor(), Position::ZERO);
4373 }
4374
4375 #[test]
4376 fn broken_sequence_aborts_and_clears_pending() {
4377 let mut s = new_state_with("hello");
4378 s.keymap.bind_sequence(
4379 Mode::Normal,
4380 vec![Key::Char('g'), Key::Char('g')],
4381 Action::Move(Motion::DocEnd),
4382 "doc end",
4383 );
4384 s.on_key(&Key::Char('g')); // pending [g]
4385 assert_eq!(s.pending_keys, vec![Key::Char('g')]);
4386 s.on_key(&Key::Char('x')); // breaks gg → abort; x is unbound → no-op
4387 assert!(s.pending_keys.is_empty());
4388 assert_eq!(s.cursor(), Position::ZERO);
4389 }
4390
4391 #[test]
4392 fn single_binding_wins_over_sequence_prefix() {
4393 // A key that is BOTH a complete single binding and the start of
4394 // a sequence fires the single binding immediately (no chord
4395 // timeout needed). Here `h` (move-left) also prefixes `hz`.
4396 let mut s = new_state_with("abcde");
4397 let mut clk = SpacedClock::new();
4398 s.tick_at(&press(KeyCode::Char('l')), clk.next());
4399 s.tick_at(&press(KeyCode::Char('l')), clk.next());
4400 assert_eq!(s.cursor().column, 2);
4401 s.keymap.bind_sequence(
4402 Mode::Normal,
4403 vec![Key::Char('h'), Key::Char('z')],
4404 Action::Move(Motion::DocEnd),
4405 "shadowed",
4406 );
4407 s.on_key(&Key::Char('h'));
4408 assert!(s.pending_keys.is_empty(), "single binding should not pend");
4409 assert_eq!(s.cursor().column, 1, "h moved left immediately");
4410 }
4411
4412 // ── tatara-lisp runtime bridge (imperative programmability) ─────
4413
4414 #[test]
4415 fn lisp_set_option_writes_live_options() {
4416 let mut s = new_state_with("");
4417 s.run_lisp(r#"(set-option "number" "true")"#).unwrap();
4418 assert_eq!(s.options.get("number").map(String::as_str), Some("true"));
4419 }
4420
4421 #[test]
4422 fn lisp_insert_modifies_buffer_and_advances_cursor() {
4423 let mut s = new_state_with("");
4424 s.run_lisp(r#"(insert "abc")"#).unwrap();
4425 assert_eq!(s.buffers.get(s.active).unwrap().to_string(), "abc");
4426 assert_eq!(s.cursor(), Position::new(0, 3));
4427 }
4428
4429 #[test]
4430 fn lisp_message_appends_to_messages() {
4431 let mut s = new_state_with("");
4432 s.run_lisp(r#"(message "hello from lisp")"#).unwrap();
4433 assert_eq!(s.messages, vec!["hello from lisp".to_string()]);
4434 }
4435
4436 #[test]
4437 fn lisp_reads_snapshot_and_branches_to_effect() {
4438 // Genuine programmability: Lisp reads the live cursor line and
4439 // an `if` decides which option to set.
4440 let mut s = new_state_with("one\ntwo\nthree");
4441 // cursor at line 0 → "top" branch
4442 s.run_lisp(r#"(if (= (cursor-line) 0) (set-option "pos" "top") (set-option "pos" "mid"))"#)
4443 .unwrap();
4444 assert_eq!(s.options.get("pos").map(String::as_str), Some("top"));
4445 }
4446
4447 #[test]
4448 fn lisp_run_command_effect_drives_registry() {
4449 // `(run-command "undo")` reaches the live command registry and
4450 // reverts a prior Lisp-driven insert — proving the RunCommand
4451 // effect dispatches through real editor commands.
4452 let mut s = new_state_with("");
4453 s.run_lisp(r#"(insert "abc")"#).unwrap();
4454 assert_eq!(s.buffers.get(s.active).unwrap().to_string(), "abc");
4455 s.run_lisp(r#"(run-command "undo")"#).unwrap();
4456 assert_eq!(s.buffers.get(s.active).unwrap().to_string(), "");
4457 }
4458
4459 #[test]
4460 fn lisp_run_command_quit_sets_quit_requested_via_typed_flag() {
4461 // The full imperative-quit path: (run-command "quit") routes
4462 // through the registry's typed `quit_requested` signal — no string
4463 // sentinel, and no minibuffer pollution (the editor stays in a
4464 // clean Normal state, which has no minibuffer at all).
4465 let mut s = new_state_with("");
4466 s.run_lisp(r#"(run-command "quit")"#).unwrap();
4467 assert!(s.quit_requested, "lisp-driven quit must set quit_requested");
4468 assert_eq!(
4469 s.modal.minibuffer(),
4470 "",
4471 "quit must not pollute any command line — Normal mode has no minibuffer",
4472 );
4473 }
4474
4475 // ── Lazy plugin activation (PluginHost) ────────────────────────
4476
4477 #[test]
4478 fn lazy_plugin_activates_on_command_trigger() {
4479 // A user plugin gated on `Command: LazyGo` has its entry applied
4480 // the first time that command runs — proving the lazy.nvim
4481 // `cmd =` model works end-to-end against live editor state.
4482 let mut s = new_state_with("");
4483 s.register_lazy_plugin(
4484 "user-lazy",
4485 vec![LazyTrigger::Command("LazyGo".into())],
4486 r#"(defoption :name "lazy-loaded" :value "yes")
4487 (defcmd :name "LazyGo" :description "noop" :action "editor.noop")"#,
4488 );
4489 assert_eq!(s.plugin_host.pending(), 1);
4490 assert!(
4491 s.options.get("lazy-loaded").is_none(),
4492 "entry not applied yet"
4493 );
4494
4495 // Drive the command through the public imperative path.
4496 s.run_lisp(r#"(run-command "LazyGo")"#).unwrap();
4497
4498 assert_eq!(
4499 s.options.get("lazy-loaded").map(String::as_str),
4500 Some("yes"),
4501 "the command trigger applied the plugin's entry",
4502 );
4503 assert_eq!(s.plugin_host.pending(), 0, "plugin activated exactly once");
4504 }
4505
4506 #[test]
4507 fn lazy_plugin_activates_on_filetype() {
4508 let mut s = new_state_with("");
4509 s.register_lazy_plugin(
4510 "user-rust",
4511 vec![LazyTrigger::FileType("rust".into())],
4512 r#"(defoption :name "rust-plugin" :value "on")"#,
4513 );
4514 let n = s.activate_filetype_plugins("rust");
4515 assert_eq!(n, 1);
4516 assert_eq!(s.options.get("rust-plugin").map(String::as_str), Some("on"));
4517 // A second open of the same filetype is a no-op (one-shot).
4518 assert_eq!(s.activate_filetype_plugins("rust"), 0);
4519 }
4520
4521 #[test]
4522 fn cached_vm_serves_multiple_run_lisp_calls() {
4523 let mut s = new_state_with("");
4524 s.run_lisp(r#"(message "one")"#).unwrap();
4525 assert!(
4526 s.lisp_vm.is_some(),
4527 "VM should be cached after first run_lisp"
4528 );
4529 s.run_lisp(r#"(message "two")"#).unwrap();
4530 assert_eq!(s.messages, vec!["one".to_string(), "two".to_string()]);
4531 }
4532
4533 #[test]
4534 fn lisp_define_persists_across_run_lisp_calls() {
4535 // The cached VM's top-level env persists across calls (REPL
4536 // semantics): a `define` in one call is visible in the next.
4537 let mut s = new_state_with("");
4538 s.run_lisp(r#"(define greeting "hi")"#).unwrap();
4539 s.run_lisp(r#"(message greeting)"#).unwrap();
4540 assert_eq!(s.messages, vec!["hi".to_string()]);
4541 }
4542
4543 #[test]
4544 fn snapshot_is_isolated_within_one_run_lisp_call_and_refreshes_across() {
4545 // Within ONE call a program cannot observe its own writes — the
4546 // read snapshot is captured before eval, effects apply after. A
4547 // later call sees the refreshed snapshot.
4548 let mut s = new_state_with("");
4549 s.run_lisp(
4550 r#"(insert "ab") (set-option "col" (if (= (cursor-column) 0) "stale-zero" "live"))"#,
4551 )
4552 .unwrap();
4553 assert_eq!(s.buffers.get(s.active).unwrap().to_string(), "ab");
4554 assert_eq!(
4555 s.options.get("col").map(String::as_str),
4556 Some("stale-zero"),
4557 "cursor-column within the same call reads the pre-eval snapshot",
4558 );
4559 // After the first call the cursor advanced to column 2; the next
4560 // call's snapshot reflects it.
4561 s.run_lisp(r#"(set-option "col2" (if (= (cursor-column) 2) "live-two" "other"))"#)
4562 .unwrap();
4563 assert_eq!(
4564 s.options.get("col2").map(String::as_str),
4565 Some("live-two"),
4566 "a later call sees the refreshed snapshot",
4567 );
4568 }
4569
4570 #[test]
4571 fn insert_text_effect_multiline_lands_cursor_on_last_line() {
4572 let mut s = new_state_with("");
4573 s.apply_host_effects(vec![Negai::InsertText("foo\nbar".to_string())]);
4574 assert_eq!(s.buffers.get(s.active).unwrap().to_string(), "foo\nbar");
4575 assert_eq!(s.cursor(), Position::new(1, 3));
4576 }
4577
4578 #[test]
4579 fn visual_mode_sequence_resolves() {
4580 let mut s = new_state_with("abc");
4581 s.modal.enter(Mode::Visual);
4582 s.keymap.bind_sequence(
4583 Mode::Visual,
4584 vec![Key::Char('g'), Key::Char('e')],
4585 Action::Move(Motion::DocEnd),
4586 "ge",
4587 );
4588 s.on_key(&Key::Char('g'));
4589 assert_eq!(s.pending_keys, vec![Key::Char('g')]);
4590 s.on_key(&Key::Char('e'));
4591 assert!(s.pending_keys.is_empty());
4592 assert_eq!(
4593 s.cursor().column,
4594 3,
4595 "ge resolved to doc-end in visual mode"
4596 );
4597 }
4598
4599 #[test]
4600 fn sequence_abort_with_bound_breaking_key_redispatches() {
4601 // gg is a sequence; `l` (move-right) is a bound single key. After
4602 // `g` pends, `l` breaks gg, aborts, and is re-dispatched fresh.
4603 let mut s = new_state_with("abcde");
4604 s.keymap.bind_sequence(
4605 Mode::Normal,
4606 vec![Key::Char('g'), Key::Char('g')],
4607 Action::Move(Motion::DocEnd),
4608 "gg",
4609 );
4610 s.on_key(&Key::Char('g'));
4611 assert_eq!(s.pending_keys, vec![Key::Char('g')]);
4612 s.on_key(&Key::Char('l'));
4613 assert!(s.pending_keys.is_empty());
4614 assert_eq!(
4615 s.cursor().column,
4616 1,
4617 "the breaking key l should re-dispatch as move-right",
4618 );
4619 }
4620
4621 // ── Viewport-follows-cursor invariant (both axes) ───────────────
4622
4623 #[test]
4624 fn viewport_contains_cursor_after_every_op() {
4625 // Tiny window: 5 visible lines × 10 visible columns. Drive a
4626 // representative scripted sequence and assert the viewport contains
4627 // the cursor after EVERY mutating step.
4628 let mut s = new_state_small_viewport("", 5, 10);
4629 assert_cursor_in_viewport(&s, "initial");
4630
4631 // Enter insert mode and type 30 newline-separated lines — this is
4632 // the exact "type past the bottom" complaint.
4633 s.tick(&press(KeyCode::Char('i')));
4634 assert_eq!(s.modal.mode(), Mode::Insert);
4635 for line in 0..30u32 {
4636 for c in "line".chars() {
4637 s.tick(&press(KeyCode::Char(c)));
4638 assert_cursor_in_viewport(&s, "typing chars");
4639 }
4640 s.tick(&press(KeyCode::Enter));
4641 assert_cursor_in_viewport(&s, &format!("newline after line {line}"));
4642 }
4643
4644 // Type a long (200-char) line — the "type past the right edge"
4645 // complaint. The cursor must stay horizontally visible the whole way.
4646 for i in 0..200u32 {
4647 s.tick(&press(KeyCode::Char('x')));
4648 assert_cursor_in_viewport(&s, &format!("long-line char {i}"));
4649 }
4650
4651 // Multi-line insert_text effect (the `(insert …)` Lisp path).
4652 s.insert_text("alpha\nbeta\ngamma delta epsilon zeta");
4653 assert_cursor_in_viewport(&s, "insert_text multiline");
4654
4655 // Back to normal mode and move in all directions / to extremes.
4656 s.tick(&press(KeyCode::Escape));
4657 assert_eq!(s.modal.mode(), Mode::Normal);
4658 for m in [
4659 Motion::DocStart,
4660 Motion::DocEnd,
4661 Motion::Down,
4662 Motion::Down,
4663 Motion::Up,
4664 Motion::Right,
4665 Motion::Right,
4666 Motion::Left,
4667 Motion::LineEnd,
4668 Motion::LineStart,
4669 Motion::GotoLine(1),
4670 Motion::GotoLine(40),
4671 Motion::PageDown,
4672 Motion::PageUp,
4673 ] {
4674 s.apply_motion(m);
4675 assert_cursor_in_viewport(&s, &format!("after motion {m:?}"));
4676 }
4677
4678 // Undo many times — the buffer shrinks; the viewport must re-follow
4679 // the (now clamped) cursor.
4680 for i in 0..50u32 {
4681 s.apply(&Action::Undo);
4682 assert_cursor_in_viewport(&s, &format!("undo {i}"));
4683 }
4684 // Redo back up.
4685 for i in 0..50u32 {
4686 s.apply(&Action::Redo);
4687 assert_cursor_in_viewport(&s, &format!("redo {i}"));
4688 }
4689 }
4690
4691 #[test]
4692 fn insert_at_eof_keeps_cursor_in_bounds() {
4693 // Inserting at the end of the buffer must leave the cursor clamped
4694 // to a valid position (and inside the viewport).
4695 let mut s = new_state_small_viewport("abc", 5, 10);
4696 s.apply_motion(Motion::DocEnd);
4697 s.tick(&press(KeyCode::Char('i')));
4698 s.tick(&press(KeyCode::Char('d')));
4699 let buf = s.buffers.get(s.active).unwrap();
4700 let clamped = buf.clamp(s.cursor());
4701 assert_eq!(
4702 s.cursor(),
4703 clamped,
4704 "cursor must be clamped in-bounds at EOF"
4705 );
4706 assert_cursor_in_viewport(&s, "insert at eof");
4707 }
4708
4709 #[test]
4710 fn count_prefix_then_sequence_repeats() {
4711 // `2` then `gj` (→ move-down) repeats the resolved action twice.
4712 let mut s = new_state_with("a\nb\nc\nd\ne");
4713 s.keymap.bind_sequence(
4714 Mode::Normal,
4715 vec![Key::Char('g'), Key::Char('j')],
4716 Action::Move(Motion::Down),
4717 "gj",
4718 );
4719 s.on_key(&Key::Char('2'));
4720 s.on_key(&Key::Char('g'));
4721 s.on_key(&Key::Char('j'));
4722 assert_eq!(s.cursor().line, 2, "count 2 should repeat the gj motion");
4723 }
4724
4725 // ── Key-repeat gate (awase::KeyRepeatGate) ──────────────────────────
4726
4727 #[test]
4728 fn held_key_repeat_storm_is_debounced_in_normal_mode() {
4729 // The audit's exact complaint: holding `j` floods motion events
4730 // and thrashes the viewport. Simulate an OS key-repeat storm — 20
4731 // identical `j` KeyDowns at 50ms intervals (typical repeat cadence)
4732 // — and assert only the gated subset (one per 80ms window) actually
4733 // moves the cursor.
4734 let mut s = new_state_with(&"x\n".repeat(40));
4735 let t0 = std::time::Instant::now();
4736 let mut delivered = 0u32;
4737 for i in 0..20u32 {
4738 let before = s.cursor().line;
4739 s.tick_at(
4740 &press(KeyCode::Char('j')),
4741 t0 + std::time::Duration::from_millis(u64::from(i) * 50),
4742 );
4743 if s.cursor().line != before {
4744 delivered += 1;
4745 }
4746 }
4747 // 20 events over ~1s at 50ms spacing, 80ms gate ⇒ ~13 pass — far
4748 // fewer than the 20 the ungated path would have applied.
4749 assert!(
4750 (10..=14).contains(&delivered),
4751 "expected the storm debounced to ~13 moves, got {delivered}",
4752 );
4753 assert!(
4754 delivered < 20,
4755 "the gate must drop SOME storm ticks, not pass all 20",
4756 );
4757 }
4758
4759 #[test]
4760 fn spaced_intentional_taps_all_pass() {
4761 // Intentional taps spaced past the debounce window must ALL reach
4762 // the editor — the gate filters storms, never deliberate input.
4763 let mut s = new_state_with(&"x\n".repeat(10));
4764 let t0 = std::time::Instant::now();
4765 for i in 0..5u32 {
4766 s.tick_at(
4767 &press(KeyCode::Char('j')),
4768 // 100ms apart — comfortably past the 80ms window.
4769 t0 + std::time::Duration::from_millis(u64::from(i) * 100),
4770 );
4771 }
4772 assert_eq!(s.cursor().line, 5, "all 5 spaced `j` taps moved the cursor");
4773 }
4774
4775 #[test]
4776 fn distinct_keys_have_independent_clocks() {
4777 // Holding `j` must not block a simultaneous `l` — the gate keys on
4778 // the Key, so independent keys have independent windows.
4779 let mut s = new_state_with("abc\ndef\nghi");
4780 let t = std::time::Instant::now();
4781 s.tick_at(&press(KeyCode::Char('j')), t);
4782 // `j` again within the window is dropped…
4783 s.tick_at(
4784 &press(KeyCode::Char('j')),
4785 t + std::time::Duration::from_millis(10),
4786 );
4787 assert_eq!(s.cursor().line, 1, "second `j` within window dropped");
4788 // …but `l` at the same instant passes (its own clock).
4789 s.tick_at(
4790 &press(KeyCode::Char('l')),
4791 t + std::time::Duration::from_millis(10),
4792 );
4793 assert_eq!(s.cursor().column, 1, "`l` is not blocked by `j`'s clock");
4794 }
4795
4796 // ── Cursors newtype is the single cursor home ──────────────────────
4797
4798 #[test]
4799 fn cursor_home_preserves_single_cursor_behavior() {
4800 // The typed `Cursors` wrapper behaves exactly like the old bare
4801 // `Position` field for single-cursor editing: the read accessor
4802 // tracks every mutation routed through `set_cursor`, and there is
4803 // exactly one caret.
4804 let mut s = new_state_with("hello\nworld\nthere");
4805 assert_eq!(s.cursor(), Position::ZERO);
4806 assert_eq!(s.cursors.count(), 1, "phase-1 holds exactly one caret");
4807
4808 s.apply_motion(Motion::Down);
4809 s.apply_motion(Motion::Right);
4810 s.apply_motion(Motion::Right);
4811 assert_eq!(s.cursor(), Position::new(1, 2));
4812 // Still a single caret after a sequence of motions.
4813 assert_eq!(s.cursors.count(), 1);
4814
4815 // The accessor is the SAME value the viewport-follow path read.
4816 let w = s.layout.active_window().unwrap();
4817 assert!(w.viewport.top_line <= s.cursor().line);
4818 }
4819
4820 #[test]
4821 fn insert_mode_is_ungated_so_repeat_typing_works() {
4822 // Holding a key to repeat-type a character is intended in Insert
4823 // mode — the gate must NOT suppress it. 10 rapid identical `x`
4824 // keystrokes at the same instant must all land as text.
4825 let mut s = new_state_with("");
4826 s.tick(&press(KeyCode::Char('i')));
4827 assert_eq!(s.modal.mode(), Mode::Insert);
4828 let t = std::time::Instant::now();
4829 for _ in 0..10 {
4830 s.tick_at(&press(KeyCode::Char('x')), t);
4831 }
4832 assert_eq!(
4833 s.buffers.get(s.active).unwrap().to_string(),
4834 "xxxxxxxxxx",
4835 "insert-mode repeat typing is ungated",
4836 );
4837 }
4838}