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hjkl_engine/
search.rs

1//! Engine-owned search state + execution helpers.
2//!
3//! Patch 0.0.35 step 1 of the 33-method classification rollout
4//! (see `DESIGN_33_METHOD_CLASSIFICATION.md`). The pattern, per-row
5//! match cache, and `wrapscan` flag previously lived on
6//! [`hjkl_buffer::View`] (private `SearchState`). Moving the FSM
7//! state out of the buffer keeps multi-window hosts from sharing the
8//! "current search" across panes that happen to share content.
9//!
10//! The buffer keeps `Search::find_next` / `Search::find_prev` (the
11//! SPEC trait surface — pure observers, caller owns the regex). This
12//! module composes those primitives with the Editor-owned
13//! [`SearchState`] to drive `n` / `N` / `*` / `#` / `/` / `?`.
14//!
15//! 0.0.37: the buffer-inherent `search_forward` / `search_backward`
16//! / `search_matches` / `set_search_pattern` / `search_pattern` /
17//! `set_search_wrap` / `search_wraps` accessors are removed. Search
18//! state lives on `Editor::search_state`, the rendering path
19//! (`BufferView`) takes the active `&Regex` as a parameter, and the
20//! `Search` trait impl always wraps (engine controls non-wrap
21//! semantics).
22
23use regex::Regex;
24
25use crate::types::{Cursor, Query, Search};
26use hjkl_vim_types::Operator;
27
28/// Active `/` or `?` search prompt. Text mutations drive the textarea's
29/// live search pattern so matches highlight as the user types.
30#[derive(Debug, Clone)]
31pub struct SearchPrompt {
32    pub text: String,
33    pub cursor: usize,
34    pub forward: bool,
35    /// Operator-pending search (`d/pat`, `c/pat`, `y/pat`): the operator, its
36    /// count, and the cursor position where the operator started. `None` for a
37    /// plain `/` / `?` search. On commit the operator runs over the (exclusive,
38    /// charwise) range from `origin` to the match.
39    pub operator: Option<(Operator, usize, (usize, usize))>,
40}
41
42/// Case-sensitivity policy derived from `:set ignorecase` / `:set smartcase`.
43///
44/// Use [`CaseMode::from_options`] to build from two booleans, then pass to
45/// [`resolve_case_mode`] together with the raw pattern string.
46#[derive(Debug, Clone, Copy, PartialEq, Eq)]
47pub enum CaseMode {
48    /// Always case-sensitive regardless of the pattern.
49    Sensitive,
50    /// Always case-insensitive regardless of the pattern.
51    Insensitive,
52    /// Case-insensitive unless the pattern contains an uppercase rune
53    /// (vim's `smartcase` behaviour).
54    Smart,
55}
56
57impl CaseMode {
58    /// Build a `CaseMode` from the two option booleans.
59    ///
60    /// | `ignorecase` | `smartcase` | Result        |
61    /// |---|---|---|
62    /// | `false` | `*`   | `Sensitive`   |
63    /// | `true`  | `false` | `Insensitive` |
64    /// | `true`  | `true`  | `Smart`       |
65    pub fn from_options(ignorecase: bool, smartcase: bool) -> Self {
66        if !ignorecase {
67            Self::Sensitive
68        } else if smartcase {
69            Self::Smart
70        } else {
71            Self::Insensitive
72        }
73    }
74}
75
76/// Vim's regex "magic" level — controls which characters are special
77/// (regex metacharacters) without a backslash prefix. See `:help magic`.
78///
79/// Ordering (most → least magic): `VeryMagic > Magic > NoMagic > VeryNoMagic`.
80/// A character's inherent level determines its behavior: it is special
81/// unescaped when the current level is *at or above* its inherent level, and
82/// backslash toggles that (forces the opposite treatment).
83#[derive(Debug, Clone, Copy, PartialEq, Eq)]
84enum MagicLevel {
85    /// `\v` — nearly every non-alnum/underscore ASCII character is special
86    /// unescaped (groups, quantifiers, alternation, anchors, boundaries).
87    VeryMagic,
88    /// Default / `\m` — vim's normal mode: `. * [ ] ~` are magic unescaped;
89    /// groups/quantifiers/alternation/boundaries need a backslash.
90    Magic,
91    /// `\M` — only `^ $` are magic unescaped; everything else (including
92    /// `. * [ ]`) is literal unless backslashed.
93    NoMagic,
94    /// `\V` — only `\` is special; every other character is literal unless
95    /// backslashed (mirrors `Magic`'s "very magic" meta chars).
96    VeryNoMagic,
97}
98
99/// Characters whose inherent magic level is "very magic" (`( ) + ? | { } = < >`).
100fn very_magic_special(ch: char) -> bool {
101    matches!(
102        ch,
103        '(' | ')' | '+' | '?' | '|' | '{' | '}' | '=' | '<' | '>'
104    )
105}
106
107/// Characters whose inherent magic level is "magic" (`. * [ ] ~`).
108fn magic_special(ch: char) -> bool {
109    matches!(ch, '.' | '*' | '[' | ']' | '~')
110}
111
112/// Characters whose inherent magic level is "nomagic" (`^ $`).
113fn nomagic_special(ch: char) -> bool {
114    matches!(ch, '^' | '$')
115}
116
117/// `true` when `ch` is a rust-`regex` metacharacter that must be
118/// backslash-escaped to appear as a literal.
119fn regex_meta(ch: char) -> bool {
120    matches!(
121        ch,
122        '\\' | '.' | '+' | '*' | '?' | '(' | ')' | '|' | '[' | ']' | '{' | '}' | '^' | '$'
123    )
124}
125
126/// Whether `ch` is special-without-a-backslash at the given magic `level`.
127fn is_special_unescaped(ch: char, level: MagicLevel) -> bool {
128    if very_magic_special(ch) {
129        level == MagicLevel::VeryMagic
130    } else if magic_special(ch) {
131        matches!(level, MagicLevel::VeryMagic | MagicLevel::Magic)
132    } else if nomagic_special(ch) {
133        level != MagicLevel::VeryNoMagic
134    } else {
135        false
136    }
137}
138
139/// Emit `ch`'s regex-special meaning into `out`. `chars` is consumed further
140/// only for `{` (counted-repeat body) and `[` (character class) is handled by
141/// the caller since it needs to flip a "bracket mode" flag.
142///
143/// `last_sub` is the previous `:s` replacement string, used to expand the
144/// magic `~` (`:h /~`, `:h s/~`).
145fn emit_special(
146    out: &mut String,
147    ch: char,
148    chars: &mut std::iter::Peekable<std::str::Chars>,
149    last_sub: &str,
150) {
151    match ch {
152        '(' => out.push('('),
153        ')' => out.push(')'),
154        '+' => out.push('+'),
155        '?' => out.push('?'),
156        '=' => out.push('?'), // vim `\=` / very-magic `=` — same as `\?`.
157        '|' => out.push('|'),
158        '<' | '>' => out.push_str(r"\b"),
159        '{' => {
160            out.push('{');
161            emit_counted_repeat(out, chars);
162        }
163        '}' => out.push('}'), // stray close — harmless as a literal.
164        '.' => out.push('.'),
165        '*' => out.push('*'),
166        ']' => out.push_str(r"\]"), // stray close — harmless as a literal.
167        // Magic `~` — expands to the previous `:s` replacement text
168        // (`:h /~`, `:h s/~`). Inserted verbatim into the translated
169        // (rust-regex) output: like vim, the text is dropped in "as pattern"
170        // without re-escaping. Ordinary word replacements (`BAR`) round-trip
171        // exactly; a replacement carrying regex metacharacters or vim
172        // replacement escapes (`\1`, `&`, `\u`…) is a documented
173        // sub-limitation and may not compile. Empty `last_sub` (no prior
174        // `:s`) → empty expansion (see `translate_pattern`).
175        '~' => out.push_str(last_sub),
176        '^' => out.push('^'),
177        '$' => out.push('$'),
178        _ => out.push(ch),
179    }
180}
181
182/// Copy a `\{n,m}` / `{n,m}` counted-repeat body through to `out`, closing on
183/// either a bare `}` (vim's permissive default-magic form, `\{n,m}`) or an
184/// escaped `\}`. Assumes the opening `{` has already been pushed to `out`.
185fn emit_counted_repeat(out: &mut String, chars: &mut std::iter::Peekable<std::str::Chars>) {
186    loop {
187        match chars.next() {
188            Some('\\') => {
189                if chars.peek() == Some(&'}') {
190                    chars.next();
191                    out.push('}');
192                    return;
193                } else if let Some(c2) = chars.next() {
194                    out.push(c2);
195                } else {
196                    return;
197                }
198            }
199            Some('}') => {
200                out.push('}');
201                return;
202            }
203            Some(c2) => out.push(c2),
204            None => return,
205        }
206    }
207}
208
209/// Emit `ch` as a literal character, escaping it if it happens to be a rust
210/// `regex` metacharacter.
211fn emit_literal(out: &mut String, ch: char) {
212    if regex_meta(ch) {
213        out.push('\\');
214    }
215    out.push(ch);
216}
217
218/// Translate a raw vim pattern into rust-`regex` syntax and extract any
219/// `\c`/`\C` case override. This is the core of [`resolve_case_mode`].
220///
221/// Handles vim's default-magic transforms (`\( \) \+ \? \= \|` → group /
222/// quantifier / alternation syntax; the inverse — unescaped `( ) + ? | { }`
223/// become literals), the `\<` / `\>` word-boundary rewrite (already
224/// magic-level-independent), `\{n,m}` counted repeats (including vim's
225/// permissive unescaped-closing-brace form), and the `\v` / `\V` / `\m` /
226/// `\M` magic-level mode switches (mid-pattern, not just at the start).
227///
228/// `\1`-`\9` backreferences in the PATTERN (not the replacement) are not
229/// supported by the rust `regex` crate (no backtracking engine) — they pass
230/// through unchanged, which either fails to compile or fails to match,
231/// preserving the pre-fix "silent no-match" behavior rather than corrupting
232/// text.
233///
234/// A simple bracket-depth flag skips translation inside `[...]` character
235/// classes, mirroring how vim (and rust-regex) treat class contents mostly
236/// literally. A `~` inside `[...]` is therefore a literal class member (as in
237/// vim), never a last-substitute expansion.
238///
239/// ### Magic `~` (last-substitute expansion)
240///
241/// `last_sub` is the previous `:s` replacement string. Under default magic a
242/// bare `~` expands to it (`\~` stays a literal tilde); under `\M`/`\V` the
243/// roles swap (`\~` expands, bare `~` is literal) — both fall out of the
244/// existing symmetric magic-level logic since `~` is a "magic"-inherent char.
245/// The expansion is inserted verbatim into the rust-regex output (see
246/// [`emit_special`]). When `last_sub` is empty (no `:s` has run yet) the
247/// expansion is empty rather than an error — nvim raises `E33` here, but the
248/// empty-string choice is safe (never corrupts the buffer) and matches this
249/// repo's "silent no-op over hard error" search convention.
250fn translate_pattern(pat: &str, last_sub: &str) -> (String, Option<bool>) {
251    let mut out = String::with_capacity(pat.len());
252    let mut level = MagicLevel::Magic;
253    let mut override_mode: Option<bool> = None;
254    let mut chars = pat.chars().peekable();
255    let mut in_bracket = false;
256    // Parity of the run of backslashes immediately preceding the current
257    // in-bracket char: `\]` is an ESCAPED literal `]` member (vim
258    // `[a\]b]` = {a, ], b}), so a `]` closes the class only when the run is
259    // even; `\\]` closes. Reset on any non-backslash.
260    let mut bracket_backslash_parity = false;
261
262    while let Some(ch) = chars.next() {
263        if in_bracket {
264            // `\a` / `\A` inside a class: rust-regex would read `\a` as Bell
265            // and reject `\A`; vim reads them as the alphabetic class, so
266            // emit the range directly. `\A` → `^A-Za-z` is only correct as
267            // the class's FIRST element (vim treats it as a literal member
268            // otherwise) — best approximation.
269            if ch == '\\' && matches!(chars.peek(), Some('a') | Some('A')) {
270                let c = chars.next().unwrap();
271                out.push_str(if c == 'a' { "A-Za-z" } else { "^A-Za-z" });
272                // The consumed pair ends in a non-backslash.
273                bracket_backslash_parity = false;
274                continue;
275            }
276            if ch == '\\' {
277                bracket_backslash_parity = !bracket_backslash_parity;
278                out.push(ch);
279                continue;
280            }
281            if ch == ']' && !bracket_backslash_parity {
282                in_bracket = false;
283            }
284            bracket_backslash_parity = false;
285            out.push(ch);
286            continue;
287        }
288
289        if ch == '\\' {
290            match chars.next() {
291                Some('c') => override_mode = Some(true),  // \c → insensitive
292                Some('C') => override_mode = Some(false), // \C → sensitive
293                // vim `\Z` — ignore case for the rest of the pattern,
294                // identical to `\c` (`:h /\Z`).
295                Some('Z') => override_mode = Some(true),
296                // vim `\a` = `[A-Za-z]` (rust-regex `\a` is Bell) and
297                // `\A` = `[^A-Za-z]` (rust-regex `\A` is a start-of-text
298                // anchor). `\e` = ESC (rust-regex has no `\e`).
299                Some('a') => out.push_str("[A-Za-z]"),
300                Some('A') => out.push_str("[^A-Za-z]"),
301                Some('e') => out.push('\u{001b}'),
302                Some('v') => level = MagicLevel::VeryMagic,
303                Some('V') => level = MagicLevel::VeryNoMagic,
304                Some('m') => level = MagicLevel::Magic,
305                Some('M') => level = MagicLevel::NoMagic,
306                Some(d @ '0'..='9') => {
307                    // Backreference — unsupported by rust-regex. Pass through
308                    // unchanged (keeps prior no-match/error behavior).
309                    out.push('\\');
310                    out.push(d);
311                }
312                Some(c2) if very_magic_special(c2) || magic_special(c2) || nomagic_special(c2) => {
313                    if is_special_unescaped(c2, level) {
314                        // Already special unescaped at this level — backslash
315                        // forces the literal reading.
316                        emit_literal(&mut out, c2);
317                    } else if c2 == '[' {
318                        out.push('[');
319                        in_bracket = true;
320                    } else {
321                        emit_special(&mut out, c2, &mut chars, last_sub);
322                    }
323                }
324                Some(other) => {
325                    // \d \s \w \b \B \n \t \r \& \~ \\ etc. — already
326                    // valid rust-regex syntax (or handled by the caller) and
327                    // identical in vim's default magic. Pass through.
328                    out.push('\\');
329                    out.push(other);
330                }
331                None => out.push('\\'),
332            }
333            continue;
334        }
335
336        if is_special_unescaped(ch, level) {
337            if ch == '[' {
338                out.push('[');
339                in_bracket = true;
340            } else {
341                emit_special(&mut out, ch, &mut chars, last_sub);
342            }
343        } else {
344            emit_literal(&mut out, ch);
345        }
346    }
347
348    (out, override_mode)
349}
350
351/// Strip `\c` / `\C` overrides from `pat`, resolve the effective
352/// [`CaseMode`], and return the cleaned pattern together with the
353/// resolved mode.
354///
355/// ### Override rules (mirrors vim)
356///
357/// - `\c` anywhere in `pat` forces case-insensitive.
358/// - `\C` anywhere in `pat` forces case-sensitive.
359/// - When both appear the **last** one wins.
360/// - Both are stripped from the returned pattern.
361///
362/// ### Magic-mode translation
363///
364/// As of the default-magic regex fix, this function also translates vim's
365/// default-magic (and `\v`/`\V`/`\m`/`\M`-switched) regex syntax into
366/// rust-`regex` syntax — see [`translate_pattern`] for the full transform
367/// list. `vim_to_rust_regex` is a thin wrapper that discards the case mode.
368///
369/// ### Smart-case detection
370///
371/// When `base` is [`CaseMode::Smart`] and no `\c`/`\C` override was
372/// found, the pattern is scanned for uppercase Unicode letters. Any
373/// uppercase letter → `Sensitive`; otherwise → `Insensitive`.
374///
375/// ### Per-substitute flag interaction
376///
377/// The `:s/…/…/i` and `:s/…/…/I` flags are handled in
378/// `apply_substitute` **before** calling this function (they
379/// short-circuit entirely). This function is not involved.
380///
381/// ### Magic `~` expansion
382///
383/// `last_sub` is the previous `:s` replacement string (pass `""` when there is
384/// no substitute context, e.g. `*`/`#` word search). Callers get it from
385/// [`crate::editor::Editor::last_substitute_replacement`]. See
386/// [`translate_pattern`] for the expansion + escaping rules.
387pub fn resolve_case_mode(pat: &str, base: CaseMode, last_sub: &str) -> (String, CaseMode) {
388    let (out, override_mode) = translate_pattern(pat, last_sub);
389
390    let resolved = match override_mode {
391        Some(true) => CaseMode::Insensitive,
392        Some(false) => CaseMode::Sensitive,
393        None => match base {
394            CaseMode::Smart => {
395                // Any uppercase rune → sensitive. Scan the TRANSLATED
396                // pattern so control sequences consumed during translation
397                // (`\c` `\C` `\v` `\V` `\m` `\M`) don't spuriously count —
398                // matches the pre-existing behavior this function had before
399                // magic-mode translation was added.
400                if out.chars().any(|c| c.is_uppercase()) {
401                    CaseMode::Sensitive
402                } else {
403                    CaseMode::Insensitive
404                }
405            }
406            other => other,
407        },
408    };
409
410    (out, resolved)
411}
412
413/// Rewrite vim-style word-boundary escapes to Rust `regex`-compatible form
414/// **and** strip `\c`/`\C` case overrides.
415///
416/// The `regex` crate supports `\b` (symmetric word boundary) but not the
417/// vim/PCRE `\<` (word-boundary start) or `\>` (word-boundary end) variants.
418/// This function performs a single-pass rewrite:
419///
420/// - `\<` → `\b`
421/// - `\>` → `\b`
422/// - `\c` / `\C` stripped (case override — handled by [`resolve_case_mode`])
423/// - `\\<` / `\\>` (literal double-backslash followed by `<`/`>`) are left
424///   untouched — only the unescaped form transforms.
425/// - All other syntax (`\b`, `\B`, `\d`, anchors, …) passes through unchanged.
426///
427/// Call this on the raw user-typed pattern string **before** passing to
428/// `regex::Regex::new`. Keep the original string for display / history.
429///
430/// Prefer [`resolve_case_mode`] when you also need to apply case semantics;
431/// that function performs the same boundary rewrite internally.
432///
433/// This thin wrapper passes an empty last-substitute string, so a magic `~`
434/// expands to the empty string. Use [`resolve_case_mode`] directly with the
435/// editor's last-substitute replacement when `~` expansion matters.
436pub fn vim_to_rust_regex(pat: &str) -> String {
437    resolve_case_mode(pat, CaseMode::Sensitive, "").0
438}
439
440/// Per-row match cache keyed against the buffer's `dirty_gen`. Live
441/// alongside the active pattern so re-running `n` doesn't re-scan
442/// rows the buffer hasn't touched.
443#[derive(Debug, Clone, Default)]
444pub struct SearchState {
445    /// Active pattern, if any. `None` clears highlighting and makes
446    /// `n` / `N` no-op until the next `/` / `?` commit.
447    pub pattern: Option<Regex>,
448    /// `true` for `/`, `false` for `?` — drives `n` vs `N` direction.
449    /// Mirrors `vim.last_search_forward`; consolidated so future
450    /// patches can drop the duplicate.
451    pub forward: bool,
452    /// `matches[row]` is the `(byte_start, byte_end)` runs cached on
453    /// `row`, captured at `gen[row]`. Length grows lazily.
454    pub matches: Vec<Vec<(usize, usize)>>,
455    /// Per-row generation tag. When the buffer's `dirty_gen` for a
456    /// row diverges, the row gets re-scanned on next access.
457    pub generations: Vec<u64>,
458    /// Wrap past buffer ends. Mirrors `Settings::wrapscan`.
459    pub wrap_around: bool,
460}
461
462impl SearchState {
463    /// Empty state — no pattern, forward direction, wraps.
464    pub fn new() -> Self {
465        Self {
466            pattern: None,
467            forward: true,
468            matches: Vec::new(),
469            generations: Vec::new(),
470            wrap_around: true,
471        }
472    }
473
474    /// Replace the active pattern. Drops the cached match runs so
475    /// the next access re-scans against the new regex.
476    pub fn set_pattern(&mut self, re: Option<Regex>) {
477        self.pattern = re;
478        self.matches.clear();
479        self.generations.clear();
480    }
481
482    /// Refresh `matches[row]` if either the row's gen has rolled or
483    /// we never scanned it. Returns the cached slice.
484    ///
485    /// `get_line` is materialized lazily — only invoked on a cache
486    /// miss (never scanned, or the row's gen rolled). A steady-state
487    /// warm cache returns the cached runs without allocating the line.
488    pub fn matches_for(
489        &mut self,
490        row: usize,
491        dirty_gen: u64,
492        get_line: impl FnOnce() -> String,
493    ) -> &[(usize, usize)] {
494        let Some(ref re) = self.pattern else {
495            return &[];
496        };
497        if self.matches.len() <= row {
498            self.matches.resize_with(row + 1, Vec::new);
499            self.generations.resize(row + 1, u64::MAX);
500        }
501        if self.generations[row] != dirty_gen {
502            // Shared scanner (`hjkl_buffer::search_match_ranges`) — the same
503            // byte-range computation the hlsearch painter and the quickfix
504            // dock's match overlay use, so navigation and highlighting can
505            // never disagree about where a match is.
506            self.matches[row] = hjkl_buffer::search_match_ranges(re, &get_line());
507            self.generations[row] = dirty_gen;
508        }
509        &self.matches[row]
510    }
511}
512
513/// Move the cursor to the next match starting from (or just after,
514/// when `skip_current = true`) the cursor. Wraps end-of-buffer to
515/// row 0 when `state.wrap_around`. Returns `true` when a match was
516/// found.
517///
518/// Pure observe + cursor mutation — no auto-scroll. The Editor's
519/// post-step `ensure_cursor_in_scrolloff` reapplies viewport
520/// follow.
521pub fn search_forward<B: Cursor + Query + Search>(
522    buf: &mut B,
523    state: &mut SearchState,
524    skip_current: bool,
525) -> bool {
526    let Some(re) = state.pattern.clone() else {
527        return false;
528    };
529    let cursor = buf.cursor();
530    let total = buf.line_count();
531    if total == 0 {
532        return false;
533    }
534    // To "skip the current cell", advance `from` one char past the
535    // cursor before asking `find_next` for the at-or-after match.
536    // `pos_at_byte` rounds a mid-char byte DOWN to the enclosing
537    // char's start, so stepping a single byte from the first byte of
538    // a multi-byte char lands back on the cursor itself and `n` never
539    // advances. Step by the full char width instead; when the cursor
540    // sits past end-of-line (no char there), fall back to one byte —
541    // `pos_at_byte` clamps overflow to end-of-buffer so this is safe
542    // even when the cursor sits at the trailing edge.
543    let from = if skip_current {
544        let from_byte = buf.byte_offset(cursor);
545        let width = buf
546            .line(cursor.line)
547            .chars()
548            .nth(cursor.col as usize)
549            .map_or(1, char::len_utf8);
550        buf.pos_at_byte(from_byte.saturating_add(width))
551    } else {
552        cursor
553    };
554    if let Some(range) = buf.find_next(from, &re) {
555        // Honour engine wrap policy explicitly. The buffer impl uses
556        // its own (deprecated) wrap flag; for new search state the
557        // engine SearchState is the source of truth.
558        if !state.wrap_around && range.start.line < cursor.line {
559            return false;
560        }
561        Cursor::set_cursor(buf, range.start);
562        return true;
563    }
564    false
565}
566
567/// Symmetric counterpart of [`search_forward`].
568pub fn search_backward<B: Cursor + Query + Search>(
569    buf: &mut B,
570    state: &mut SearchState,
571    skip_current: bool,
572) -> bool {
573    let Some(re) = state.pattern.clone() else {
574        return false;
575    };
576    let cursor = buf.cursor();
577    let total = buf.line_count();
578    if total == 0 {
579        return false;
580    }
581    // View's `Search::find_prev` returns the at-or-before match
582    // for the anchor `from`. For `skip_current`, we want the
583    // rightmost match whose start is *strictly before* the cursor.
584    // Strategy: query find_prev(cursor); if the returned match
585    // covers/starts-at the cursor, step the anchor back one byte
586    // past that match's start and re-query so the next find_prev
587    // skips it. Otherwise the at-or-before match is already strictly
588    // before the cursor and we accept it.
589    let initial = buf.find_prev(cursor, &re);
590    let range = if skip_current {
591        match initial {
592            Some(m) if m.start == cursor => {
593                // Cursor sits exactly on a match start (typical post-
594                // commit state). Step past and re-query.
595                let cb = buf.byte_offset(m.start);
596                if cb == 0 {
597                    // Current match starts at buffer byte 0 — there is
598                    // nothing earlier to step back to. Wrap to the
599                    // buffer's last match instead; when the current
600                    // match is the only one, `find_prev` from
601                    // end-of-buffer returns it again and the cursor
602                    // stays (matches vim).
603                    let end = buf.pos_at_byte(buf.len_bytes());
604                    buf.find_prev(end, &re)
605                } else {
606                    let anchor = buf.pos_at_byte(cb.saturating_sub(1));
607                    buf.find_prev(anchor, &re)
608                }
609            }
610            other => other,
611        }
612    } else {
613        initial
614    };
615    if let Some(range) = range {
616        if !state.wrap_around && range.start.line > cursor.line {
617            return false;
618        }
619        Cursor::set_cursor(buf, range.start);
620        return true;
621    }
622    false
623}
624
625/// Match positions on `row` as `(byte_start, byte_end)`. Used by
626/// the engine's highlight pipeline. Reads through the cache so a
627/// steady-state buffer doesn't re-scan every frame.
628///
629/// Returns a borrow of the per-row cache (no per-call `Vec` clone).
630pub fn search_matches<'a, B: Query>(
631    buf: &B,
632    state: &'a mut SearchState,
633    dirty_gen: u64,
634    row: usize,
635) -> &'a [(usize, usize)] {
636    if state.pattern.is_none() {
637        return &[];
638    }
639    let line_count = buf.line_count() as usize;
640    if row >= line_count {
641        return &[];
642    }
643    // Materialize the line lazily — only when the cache misses. A warm
644    // steady-state cache skips the per-row allocation entirely.
645    state.matches_for(row, dirty_gen, || buf.line(row as u32))
646}
647
648/// Warm the per-row match cache for `row` without producing a result.
649///
650/// Same cache path as [`search_matches`] (identical miss/hit behaviour),
651/// but returns nothing — the renderer's pre-pass only wants the cache
652/// populated, and building a `Vec` per visible row just to drop it is
653/// pure allocation churn.
654pub fn warm_matches<B: Query>(buf: &B, state: &mut SearchState, dirty_gen: u64, row: usize) {
655    if state.pattern.is_none() {
656        return;
657    }
658    let line_count = buf.line_count() as usize;
659    if row >= line_count {
660        return;
661    }
662    state.matches_for(row, dirty_gen, || buf.line(row as u32));
663}
664
665#[cfg(test)]
666mod tests {
667    use super::*;
668    use crate::types::Pos;
669    use hjkl_buffer::View;
670
671    fn re(pat: &str) -> Regex {
672        Regex::new(pat).unwrap()
673    }
674
675    fn vim_re(pat: &str) -> Regex {
676        Regex::new(&vim_to_rust_regex(pat)).unwrap()
677    }
678
679    // ── vim_to_rust_regex unit tests ─────────────────────────────────────────
680
681    /// `\<` and `\>` both rewrite to `\b`.
682    #[test]
683    fn vim_boundary_rewrites_to_b() {
684        assert_eq!(vim_to_rust_regex(r"\<foo\>"), r"\bfoo\b");
685        assert_eq!(vim_to_rust_regex(r"\<"), r"\b");
686        assert_eq!(vim_to_rust_regex(r"\>"), r"\b");
687    }
688
689    /// A literal double-backslash before `<`/`>` must not be consumed.
690    /// `\\<` in the source string is two chars: `\` `\`; the rewriter sees
691    /// the first `\` followed by `\`, emits `\\`, then `<` is plain text.
692    #[test]
693    fn escaped_backslash_left_alone() {
694        // Input: \\< (three chars in source: '\', '\', '<')
695        // Expected output: \\< (the first \ escapes the second, < is literal)
696        let input = r"\\<";
697        let output = vim_to_rust_regex(input);
698        assert_eq!(output, r"\\<");
699    }
700
701    /// Other escape sequences (`\b`, `\B`, `\d`, `\w`, anchors) pass through.
702    #[test]
703    fn other_escapes_unchanged() {
704        assert_eq!(vim_to_rust_regex(r"\b"), r"\b");
705        assert_eq!(vim_to_rust_regex(r"\B"), r"\B");
706        // vim default magic: `+` is a literal unless backslashed. `\d\+`
707        // (digit class, one-or-more quantifier) translates to `\d\+` in
708        // rust-regex syntax (identical spelling — `\+` IS rust-regex's own
709        // escaped-literal-plus, but since the quantifier here is coming from
710        // vim's `\+` we want the rust-regex QUANTIFIER `+`, unescaped).
711        assert_eq!(vim_to_rust_regex(r"\d\+"), r"\d+");
712        assert_eq!(vim_to_rust_regex(r"^\w\+$"), r"^\w+$");
713    }
714
715    /// Mixed: `\<\w\+\>` rewrites to `\b\w+\b` — matches whole words.
716    #[test]
717    fn mixed_boundary_and_word_class() {
718        assert_eq!(vim_to_rust_regex(r"\<\w\+\>"), r"\b\w+\b");
719    }
720
721    // ── Integration: compiled vim patterns match correctly ───────────────────
722
723    /// `/foo\<bar\>` — `bar` as a standalone word is matched, `foobar` is not.
724    #[test]
725    fn vim_boundary_matches_standalone_word_not_suffix() {
726        let re = vim_re(r"foo\<bar\>");
727        // "foobar" — `bar` follows directly after `foo` with no word boundary:
728        // the `\b` between `foo` and `bar` fails here.
729        assert!(!re.is_match("foobar"));
730        // "foo bar" — word boundary between `foo ` and `bar`:
731        // pattern `foo\bbar\b` does not match because `foo` is not adjacent.
732        // Use a pattern that directly tests the intent: `bar` as a whole word.
733        let re2 = vim_re(r"\<bar\>");
734        assert!(re2.is_match("foo bar baz"));
735        assert!(!re2.is_match("foobar"));
736    }
737
738    /// `\<word` matches `word` at start-of-word but not mid-word.
739    #[test]
740    fn vim_boundary_start_only() {
741        let re = vim_re(r"\<word");
742        assert!(re.is_match("word here"));
743        assert!(re.is_match("some word here"));
744        assert!(!re.is_match("sword"));
745        assert!(!re.is_match("aword"));
746    }
747
748    /// `word\>` matches `word` at end-of-word but not when followed by more.
749    #[test]
750    fn vim_boundary_end_only() {
751        let re = vim_re(r"word\>");
752        assert!(re.is_match("some word"));
753        assert!(re.is_match("word"));
754        assert!(!re.is_match("words"));
755        assert!(!re.is_match("wordsmith"));
756    }
757
758    /// Existing `\b` continues to work (sanity check — no double-transform).
759    #[test]
760    fn existing_b_boundary_unchanged() {
761        let re = vim_re(r"\bfoo\b");
762        assert!(re.is_match("foo"));
763        assert!(re.is_match("a foo b"));
764        assert!(!re.is_match("foobar"));
765        assert!(!re.is_match("afoo"));
766    }
767
768    /// Mixed: `\<\w+\>` matches whole words only.
769    #[test]
770    fn vim_whole_word_pattern() {
771        let re = vim_re(r"\<\w\+\>");
772        let matches: Vec<_> = re.find_iter("foo bar baz").map(|m| m.as_str()).collect();
773        assert_eq!(matches, vec!["foo", "bar", "baz"]);
774    }
775
776    #[test]
777    fn empty_state_no_match() {
778        let mut b = View::from_str("anything");
779        let mut s = SearchState::new();
780        assert!(!search_forward(&mut b, &mut s, false));
781        assert!(!search_backward(&mut b, &mut s, false));
782    }
783
784    // ── B8/B9: default-magic + \v/\V/\m/\M translation ───────────────────────
785
786    #[test]
787    fn default_magic_groups_and_backref_replacement_side() {
788        // \( \) → real groups; the PATTERN side is exercised end-to-end via
789        // substitute.rs (replacement-side \1 already worked before this fix).
790        assert_eq!(
791            vim_to_rust_regex(r"\(hello\) \(world\)"),
792            r"(hello) (world)"
793        );
794    }
795
796    #[test]
797    fn default_magic_quantifiers_and_alternation() {
798        assert_eq!(vim_to_rust_regex(r"a\+"), r"a+");
799        assert_eq!(vim_to_rust_regex(r"a\?"), r"a?");
800        assert_eq!(vim_to_rust_regex(r"a\="), r"a?");
801        assert_eq!(vim_to_rust_regex(r"a\|b"), r"a|b");
802    }
803
804    #[test]
805    fn default_magic_counted_repeat_bare_close() {
806        // vim allows `\{n,m}` with an UNESCAPED closing brace.
807        assert_eq!(vim_to_rust_regex(r"a\{1,2}"), r"a{1,2}");
808        // Fully-escaped form also works.
809        assert_eq!(vim_to_rust_regex(r"a\{1,2\}"), r"a{1,2}");
810    }
811
812    #[test]
813    fn default_magic_unescaped_group_chars_are_literal() {
814        // The INVERSE: unescaped ( ) + ? | { } are literals in default magic.
815        assert_eq!(vim_to_rust_regex("(a)"), r"\(a\)");
816        assert_eq!(vim_to_rust_regex("a+b"), r"a\+b");
817        assert_eq!(vim_to_rust_regex("a|b"), r"a\|b");
818        assert_eq!(vim_to_rust_regex("a?b"), r"a\?b");
819    }
820
821    #[test]
822    fn default_magic_dot_star_bracket_caret_dollar_stay_magic() {
823        assert_eq!(vim_to_rust_regex("a.b"), "a.b");
824        assert_eq!(vim_to_rust_regex("a*"), "a*");
825        assert_eq!(vim_to_rust_regex("[0-9]"), "[0-9]");
826        assert_eq!(vim_to_rust_regex("^foo$"), "^foo$");
827    }
828
829    #[test]
830    fn magic_tilde_expands_to_last_sub_empty_via_wrapper() {
831        // `vim_to_rust_regex` passes an empty last-substitute string, so a bare
832        // magic `~` expands to "" (nvim would `E33` with no prior `:s`; we pick
833        // the safe empty expansion). `\~` stays a literal tilde.
834        assert_eq!(vim_to_rust_regex("a~b"), "ab");
835        assert_eq!(vim_to_rust_regex(r"a\~b"), "a~b");
836    }
837
838    // ── Magic `~` PATTERN-side expansion (V5) ────────────────────────────────
839
840    /// `~` expands to the supplied last-substitute string; `\~` stays literal.
841    /// nvim-verified: after `:s/foo/BAR/`, `/~` matches the text `BAR`.
842    #[test]
843    fn magic_tilde_expands_to_last_sub() {
844        let (out, _) = resolve_case_mode("~", CaseMode::Sensitive, "BAR");
845        assert_eq!(out, "BAR");
846        // Surrounded by other pattern text.
847        let (out, _) = resolve_case_mode("x~y", CaseMode::Sensitive, "BAR");
848        assert_eq!(out, "xBARy");
849    }
850
851    /// `\~` is a literal tilde and must NOT expand, even with a last-sub set.
852    /// nvim-verified: `\~` in a pattern matches a real `~` character.
853    #[test]
854    fn escaped_tilde_stays_literal_and_does_not_expand() {
855        let (out, _) = resolve_case_mode(r"\~", CaseMode::Sensitive, "BAR");
856        assert_eq!(out, "~");
857        // Compiled: matches a real tilde, not "BAR".
858        let re = Regex::new(&out).unwrap();
859        assert!(re.is_match("a~b"));
860        assert!(!re.is_match("BAR"));
861    }
862
863    /// `~` inside a `[...]` class is a literal class member, never an
864    /// expansion. nvim-verified: `[~]` matches the tilde character.
865    #[test]
866    fn tilde_in_bracket_class_is_literal() {
867        let (out, _) = resolve_case_mode("[~]", CaseMode::Sensitive, "BAR");
868        assert_eq!(out, "[~]");
869    }
870
871    /// No previous substitute (empty last-sub) → `~` expands to empty.
872    /// Documented divergence from nvim's `E33`; the empty choice never
873    /// corrupts the buffer.
874    #[test]
875    fn magic_tilde_no_previous_sub_expands_empty() {
876        let (out, _) = resolve_case_mode("a~b", CaseMode::Sensitive, "");
877        assert_eq!(out, "ab");
878    }
879
880    #[test]
881    fn very_magic_mode_switch_at_start() {
882        // \v: groups/quantifiers/alternation/boundaries are magic unescaped.
883        assert_eq!(vim_to_rust_regex(r"\v(\w+) (\w+)"), r"(\w+) (\w+)");
884        assert_eq!(vim_to_rust_regex(r"\v\d+"), r"\d+");
885        assert_eq!(vim_to_rust_regex(r"\v<foo>"), r"\bfoo\b");
886        assert_eq!(vim_to_rust_regex(r"\va=b"), r"a?b");
887    }
888
889    #[test]
890    fn very_magic_mode_escaped_chars_are_literal() {
891        // In \v mode, backslash forces the LITERAL reading of an
892        // otherwise-special char.
893        assert_eq!(vim_to_rust_regex(r"\v\(a\)"), r"\(a\)");
894        assert_eq!(vim_to_rust_regex(r"\va\+b"), r"a\+b");
895    }
896
897    #[test]
898    fn very_nomagic_mode_is_all_literal_except_backslash() {
899        // \V: everything literal except `\`-escaped.
900        assert_eq!(vim_to_rust_regex(r"\Va.b"), r"a\.b");
901        assert_eq!(vim_to_rust_regex(r"\V(a)"), r"\(a\)");
902        // Backslash still activates special meaning (mirrors \v).
903        assert_eq!(vim_to_rust_regex(r"\Va\.b"), r"a.b");
904    }
905
906    #[test]
907    fn nomagic_mode_only_caret_dollar_special() {
908        // \M: only ^ $ special unescaped; `.` `*` `[` become literal.
909        assert_eq!(vim_to_rust_regex(r"\M^a.b$"), r"^a\.b$");
910        assert_eq!(vim_to_rust_regex(r"\Ma\.b"), r"a.b");
911    }
912
913    #[test]
914    fn mode_switch_mid_pattern() {
915        // Switching mode partway through the pattern applies from that point on.
916        assert_eq!(vim_to_rust_regex(r"(a)\v(b)"), r"\(a\)(b)");
917        assert_eq!(vim_to_rust_regex(r"\va\mb+"), r"ab\+");
918    }
919
920    #[test]
921    fn backreference_in_pattern_passes_through_unchanged() {
922        // \1-\9 in the PATTERN aren't supported by rust-regex (no
923        // backtracking) — kept as a literal backslash-digit escape so the
924        // net effect (no match / compile error) matches pre-fix behavior
925        // rather than silently corrupting text.
926        assert_eq!(vim_to_rust_regex(r"\(a\)\1"), r"(a)\1");
927    }
928
929    #[test]
930    fn character_class_contents_not_translated() {
931        // Unescaped `(` `)` inside `[...]` are literal class members in both
932        // vim and rust-regex — bracket tracking must not turn them into a
933        // group by escaping/unescaping their contents.
934        assert_eq!(vim_to_rust_regex("[()]"), "[()]");
935    }
936
937    // ── search reveals folds ─────────────────────────────────────────────────
938
939    /// `search_forward` on a buffer with a closed fold hiding the match row:
940    /// after finding the match, calling `reveal_row` opens the fold.
941    /// (Mirrors what `Editor::search_advance_forward` does.)
942    #[test]
943    fn search_forward_reveals_fold() {
944        use hjkl_buffer::View;
945
946        // View: row 0 = "header", row 1 = "needle", row 2 = "footer"
947        // Fold [0..2] closed → row 1 is hidden.
948        let mut buf = View::from_str("header\nneedle\nfooter");
949        buf.add_fold(0, 2, true);
950        assert!(buf.is_row_hidden(1), "row 1 must be hidden before search");
951
952        let mut state = SearchState::new();
953        state.set_pattern(Some(re("needle")));
954
955        // Use search_forward directly on the buffer.
956        let found = search_forward(&mut buf, &mut state, false);
957        assert!(found, "search_forward must find 'needle'");
958
959        // After search_forward, cursor is on row 1. Reveal as Editor does.
960        let row = crate::types::Cursor::cursor(&buf).line as usize;
961        buf.reveal_row(row);
962        assert!(
963            !buf.is_row_hidden(1),
964            "row 1 must be revealed after search finds it there"
965        );
966    }
967
968    /// `search_backward` similarly: finding a match then calling reveal_row opens folds.
969    #[test]
970    fn search_backward_reveals_fold() {
971        use hjkl_buffer::View;
972
973        // row 0 = "footer", row 1 = "needle", row 2 = "header"
974        // fold [0..2] closed → row 1 hidden. Start cursor at row 2.
975        let mut buf = View::from_str("footer\nneedle\nheader");
976        buf.add_fold(0, 2, true);
977        crate::types::Cursor::set_cursor(&mut buf, crate::types::Pos::new(2, 0));
978        assert!(buf.is_row_hidden(1), "row 1 must be hidden before search");
979
980        let mut state = SearchState::new();
981        state.set_pattern(Some(re("needle")));
982
983        let found = search_backward(&mut buf, &mut state, false);
984        assert!(found, "search_backward must find 'needle'");
985
986        let row = crate::types::Cursor::cursor(&buf).line as usize;
987        buf.reveal_row(row);
988        assert!(
989            !buf.is_row_hidden(1),
990            "row 1 must be revealed after backward search finds it"
991        );
992    }
993
994    #[test]
995    fn forward_finds_first_match() {
996        let mut b = View::from_str("foo bar foo baz");
997        let mut s = SearchState::new();
998        s.set_pattern(Some(re("foo")));
999        assert!(search_forward(&mut b, &mut s, false));
1000        assert_eq!(Cursor::cursor(&b), Pos::new(0, 0));
1001    }
1002
1003    #[test]
1004    fn forward_skip_current_walks_past() {
1005        let mut b = View::from_str("foo bar foo baz");
1006        let mut s = SearchState::new();
1007        s.set_pattern(Some(re("foo")));
1008        search_forward(&mut b, &mut s, false);
1009        search_forward(&mut b, &mut s, true);
1010        assert_eq!(Cursor::cursor(&b), Pos::new(0, 8));
1011    }
1012
1013    #[test]
1014    fn forward_wraps_to_top() {
1015        let mut b = View::from_str("zzz\nfoo");
1016        // 0.0.37: wrap policy lives entirely on `SearchState::wrap_around`;
1017        // the buffer-side `set_search_wrap` accessor is gone. Trait
1018        // `find_next` always wraps; the engine search free function
1019        // honours `s.wrap_around` directly.
1020        Cursor::set_cursor(&mut b, Pos::new(1, 2));
1021        let mut s = SearchState::new();
1022        s.set_pattern(Some(re("zzz")));
1023        s.wrap_around = true;
1024        assert!(search_forward(&mut b, &mut s, true));
1025        assert_eq!(Cursor::cursor(&b), Pos::new(0, 0));
1026    }
1027
1028    /// `n` from a match whose first byte begins a multi-byte char must
1029    /// advance to the next match. `pos_at_byte` rounds a mid-char byte
1030    /// DOWN to the enclosing char's start, so a one-byte step from the
1031    /// char's first byte lands back on the cursor itself — regression:
1032    /// `n` was permanently stuck on "éé".
1033    #[test]
1034    fn forward_skip_current_past_multibyte_char() {
1035        let mut b = View::from_str("éé");
1036        let mut s = SearchState::new();
1037        s.set_pattern(Some(re("é")));
1038        // Cursor starts on the first `é` (col 0); `n` must land on the
1039        // second one (col 1), not re-find the current match.
1040        assert!(search_forward(&mut b, &mut s, true));
1041        assert_eq!(Cursor::cursor(&b), Pos::new(0, 1));
1042    }
1043
1044    /// `N` from a match that starts at buffer byte 0 wraps to the last
1045    /// match of the buffer instead of staying put — regression: the
1046    /// "no earlier byte" branch returned `None` and never wrapped.
1047    #[test]
1048    fn backward_skip_current_wraps_from_byte_zero() {
1049        let mut b = View::from_str("foo\nfoo");
1050        Cursor::set_cursor(&mut b, Pos::new(0, 0));
1051        let mut s = SearchState::new();
1052        s.set_pattern(Some(re("foo")));
1053        assert!(search_backward(&mut b, &mut s, true));
1054        assert_eq!(Cursor::cursor(&b), Pos::new(1, 0));
1055    }
1056
1057    #[test]
1058    fn search_matches_caches_against_dirty_gen() {
1059        let b = View::from_str("foo bar");
1060        let mut s = SearchState::new();
1061        s.set_pattern(Some(re("bar")));
1062        let dgen = b.dirty_gen();
1063        let initial = search_matches(&b, &mut s, dgen, 0);
1064        assert_eq!(initial, &[(4, 7)][..]);
1065    }
1066
1067    // ── CaseMode::from_options matrix ────────────────────────────────────────
1068
1069    #[test]
1070    fn case_mode_from_options_matrix() {
1071        // ic=false, smart=* → Sensitive
1072        assert_eq!(CaseMode::from_options(false, false), CaseMode::Sensitive);
1073        assert_eq!(CaseMode::from_options(false, true), CaseMode::Sensitive);
1074        // ic=true, smart=false → Insensitive
1075        assert_eq!(CaseMode::from_options(true, false), CaseMode::Insensitive);
1076        // ic=true, smart=true → Smart
1077        assert_eq!(CaseMode::from_options(true, true), CaseMode::Smart);
1078    }
1079
1080    // ── resolve_case_mode unit tests ─────────────────────────────────────────
1081
1082    #[test]
1083    fn resolve_case_mode_no_override_smart_lowercase() {
1084        let (stripped, mode) = resolve_case_mode("foo", CaseMode::Smart, "");
1085        assert_eq!(stripped, "foo");
1086        assert_eq!(mode, CaseMode::Insensitive);
1087    }
1088
1089    #[test]
1090    fn resolve_case_mode_no_override_smart_uppercase() {
1091        let (stripped, mode) = resolve_case_mode("Foo", CaseMode::Smart, "");
1092        assert_eq!(stripped, "Foo");
1093        assert_eq!(mode, CaseMode::Sensitive);
1094    }
1095
1096    #[test]
1097    fn resolve_case_mode_lower_c_override() {
1098        // \c overrides Sensitive → Insensitive; stripped pattern is "Foo"
1099        let (stripped, mode) = resolve_case_mode(r"\cFoo", CaseMode::Sensitive, "");
1100        assert_eq!(stripped, "Foo");
1101        assert_eq!(mode, CaseMode::Insensitive);
1102    }
1103
1104    #[test]
1105    fn resolve_case_mode_upper_c_override() {
1106        // \C overrides Smart → Sensitive; stripped pattern is "foo"
1107        let (stripped, mode) = resolve_case_mode(r"foo\C", CaseMode::Smart, "");
1108        assert_eq!(stripped, "foo");
1109        assert_eq!(mode, CaseMode::Sensitive);
1110    }
1111
1112    #[test]
1113    fn resolve_case_mode_last_wins() {
1114        // \c then \C → last-wins → Sensitive; stripped "foo"
1115        let (stripped, mode) = resolve_case_mode(r"\cfoo\C", CaseMode::Smart, "");
1116        assert_eq!(stripped, "foo");
1117        assert_eq!(mode, CaseMode::Sensitive);
1118    }
1119
1120    // ── Integration: search with smartcase / \c / \C ─────────────────────────
1121
1122    fn build_regex_from(pat: &str, ic: bool, smart: bool) -> Regex {
1123        let base = CaseMode::from_options(ic, smart);
1124        let (stripped, mode) = resolve_case_mode(pat, base, "");
1125        let src = if mode == CaseMode::Insensitive {
1126            format!("(?i){stripped}")
1127        } else {
1128            stripped
1129        };
1130        Regex::new(&src).unwrap()
1131    }
1132
1133    #[test]
1134    fn search_finds_capital_with_smartcase_lowercase_pattern() {
1135        // ic=true, smart=true, pattern "foo" → Insensitive → matches "FOO"
1136        let re = build_regex_from("foo", true, true);
1137        assert!(re.is_match("FOO"), "expected match on 'FOO'");
1138        assert!(re.is_match("foo"), "expected match on 'foo'");
1139    }
1140
1141    #[test]
1142    fn search_skips_capital_with_smartcase_mixed_pattern() {
1143        // ic=true, smart=true, pattern "Foo" → Sensitive → does NOT match "FOO"
1144        let re = build_regex_from("Foo", true, true);
1145        assert!(!re.is_match("FOO"), "must not match 'FOO' (case-sensitive)");
1146        assert!(re.is_match("Foo"), "must match exact 'Foo'");
1147    }
1148
1149    #[test]
1150    fn search_lower_c_override_finds_capital() {
1151        // \cFoo + Sensitive base → Insensitive override → matches "FOO"
1152        let re = build_regex_from(r"\cFoo", false, false);
1153        assert!(re.is_match("FOO"), "\\c override must match 'FOO'");
1154        assert!(re.is_match("foo"), "\\c override must match 'foo'");
1155    }
1156
1157    #[test]
1158    fn vim_to_rust_regex_strips_case_overrides() {
1159        // vim_to_rust_regex is now a thin wrapper; \c and \C are stripped
1160        assert_eq!(vim_to_rust_regex(r"\cfoo"), "foo");
1161        assert_eq!(vim_to_rust_regex(r"foo\C"), "foo");
1162        assert_eq!(vim_to_rust_regex(r"\<bar\>"), r"\bbar\b");
1163    }
1164
1165    /// `*` on word "foo" emits the pattern `\bfoo\b` (all lowercase). Under
1166    /// smartcase that resolves to Insensitive → should match "FOO". This test
1167    /// simulates the word_at_cursor_search pattern-build path.
1168    #[test]
1169    fn star_search_finds_lowercase_when_smartcase_lower_word() {
1170        // word_at_cursor_search escapes the word then wraps \b..\b.
1171        // "foo" is all-lowercase after word-extraction → Smart → Insensitive.
1172        let pat = r"\bfoo\b";
1173        let re = build_regex_from(pat, true, true);
1174        // Case-insensitive → matches "FOO foo Foo".
1175        let text = "FOO foo Foo";
1176        let hits: Vec<_> = re.find_iter(text).map(|m| m.as_str()).collect();
1177        assert!(
1178            hits.contains(&"FOO"),
1179            "smartcase lower-word * must match FOO: {hits:?}"
1180        );
1181        assert!(
1182            hits.contains(&"foo"),
1183            "smartcase lower-word * must match foo: {hits:?}"
1184        );
1185    }
1186
1187    // ── \a / \A / \Z / \e escape translation ─────────────────────────────────
1188
1189    /// vim `\a` = alphabetic. rust-regex would read `\a` as Bell (U+0007),
1190    /// so `:s/\a/x/g` used to silently no-op; it must now match letters.
1191    #[test]
1192    fn backslash_a_is_alphabetic() {
1193        let re = vim_re(r"\a");
1194        assert!(re.is_match("a"));
1195        assert!(re.is_match("B"));
1196        assert!(!re.is_match("1"));
1197        let hits: Vec<_> = Regex::new(&vim_to_rust_regex(r"\a"))
1198            .unwrap()
1199            .find_iter("ab1")
1200            .map(|m| m.as_str())
1201            .collect();
1202        assert_eq!(hits, vec!["a", "b"]);
1203    }
1204
1205    /// vim `\A` = non-alphabetic. rust-regex `\A` is a start-of-text anchor,
1206    /// so `:s/\A/x/` used to insert at position 0 ("ab1" → "xab1"); it must
1207    /// now match the `1` and give vim's "abx".
1208    #[test]
1209    fn backslash_upper_a_is_non_alphabetic() {
1210        let re = vim_re(r"\A");
1211        assert!(re.is_match("1"));
1212        assert!(!re.is_match("a"));
1213        let hits: Vec<_> = Regex::new(&vim_to_rust_regex(r"\A"))
1214            .unwrap()
1215            .find_iter("ab1")
1216            .map(|m| m.as_str())
1217            .collect();
1218        assert_eq!(hits, vec!["1"]);
1219    }
1220
1221    /// `[\a]` inside a class is the alphabetic range, not a Bell escape.
1222    #[test]
1223    fn backslash_a_inside_class_is_alpha_range() {
1224        assert_eq!(vim_to_rust_regex(r"[\a]"), "[A-Za-z]");
1225        let re = vim_re(r"[\a]");
1226        assert!(re.is_match("x"));
1227        assert!(!re.is_match("1"));
1228    }
1229
1230    /// An ESCAPED `]` inside a class is a literal member — vim `[a\]b]` =
1231    /// {a, ], b} — and must not close the class early. The pre-fix translator
1232    /// closed on the escaped `]`, emitting `[a\]b\]` which rust-regex rejects
1233    /// as an unclosed class, so `:s/[a\]b]/x/` errored where vim substitutes.
1234    #[test]
1235    fn escaped_close_bracket_inside_class_is_literal_member() {
1236        let re = vim_re(r"[a\]b]");
1237        assert!(re.is_match("a"), "class must contain a");
1238        assert!(re.is_match("]"), "escaped ] must be a literal member");
1239        assert!(re.is_match("b"), "class must contain b");
1240        assert!(!re.is_match("x"), "class must be exactly {{a, ], b}}");
1241        // The canonical `[a\]]` form, and `\\]` (even backslash run) closing.
1242        assert!(vim_re(r"[a\]]").is_match("]"));
1243        assert!(vim_re(r"[\\]").is_match("\\"));
1244        assert!(!vim_re(r"[\\]").is_match("]"));
1245    }
1246
1247    /// vim `\Z` — ignore case for the rest of the pattern, identical to `\c`
1248    /// (rust-regex rejects `\Z` outright).
1249    #[test]
1250    fn backslash_z_makes_pattern_case_insensitive() {
1251        let (stripped, mode) = resolve_case_mode(r"\Zfoo", CaseMode::Sensitive, "");
1252        assert_eq!(stripped, "foo");
1253        assert_eq!(mode, CaseMode::Insensitive);
1254        // End-to-end: a Sensitive base must be overridden by `\Z`.
1255        let re = build_regex_from(r"\Zfoo", false, false);
1256        assert!(re.is_match("FOO"), "\\Z must make pattern insensitive");
1257        assert!(re.is_match("foo"));
1258    }
1259
1260    /// vim `\e` = ESC (U+001B); rust-regex has no `\e` escape and rejects it.
1261    #[test]
1262    fn backslash_e_is_esc() {
1263        assert_eq!(vim_to_rust_regex(r"\e"), "\u{1b}");
1264        let re = vim_re(r"\e");
1265        assert!(re.is_match("\u{1b}"));
1266        assert!(!re.is_match("e"));
1267    }
1268
1269    // ── substitution-level regression for \a / \A (bug 2) ────────────────────
1270
1271    fn editor_for_substitute(
1272        content: &str,
1273    ) -> crate::Editor<hjkl_buffer::View, crate::types::DefaultHost> {
1274        let mut e = crate::Editor::new(
1275            hjkl_buffer::View::new(),
1276            crate::types::DefaultHost::new(),
1277            crate::types::Options::default(),
1278        );
1279        e.set_content(content);
1280        e
1281    }
1282
1283    /// `:s/\a/x/g` on "ab1" must replace both letters — the pre-fix rust-regex
1284    /// reading of `\a` (Bell) matched nothing and the command silently no-oped.
1285    #[test]
1286    fn substitute_backslash_a_replaces_letters() {
1287        let mut e = editor_for_substitute("ab1");
1288        let cmd = crate::substitute::parse_substitute(r"/\a/x/g").unwrap();
1289        let out = crate::substitute::apply_substitute(&mut e, &cmd, 0..=0).unwrap();
1290        assert_eq!(out.replacements, 2);
1291        assert_eq!(hjkl_buffer::rope_line_str(&e.buffer().rope(), 0), "xx1");
1292    }
1293
1294    /// `:s/\A/x/` (first match per line) on "ab1" gives "abx" — the pre-fix
1295    /// rust-regex `\A` (start-of-text anchor) replaced at position 0 instead,
1296    /// producing "xab1".
1297    #[test]
1298    fn substitute_backslash_upper_a_replaces_first_non_alpha() {
1299        let mut e = editor_for_substitute("ab1");
1300        let cmd = crate::substitute::parse_substitute(r"/\A/x/").unwrap();
1301        let out = crate::substitute::apply_substitute(&mut e, &cmd, 0..=0).unwrap();
1302        assert_eq!(out.replacements, 1);
1303        assert_eq!(hjkl_buffer::rope_line_str(&e.buffer().rope(), 0), "abx");
1304    }
1305}