escriba-search 0.1.22

Incremental buffer search for escriba — vim-grade `/` and `?` with smartcase, regex, wrap-around, whole-word `*`/`#`, hlsearch and search history. Pure and side-effect-free: a function of (text, pattern, cursor).
Documentation
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//! Finding matches, and stepping between them.
//!
//! # Offsets
//!
//! The `regex` crate reports **byte** offsets; escriba's buffer addresses text
//! in **char** offsets (`Buffer::char_to_position`). Mixing the two is silently
//! correct for ASCII and silently wrong the moment a document contains a
//! non-ASCII character — the classic bug that survives every test written in
//! English. So the conversion happens exactly once, here, at the boundary, and
//! [`SearchMatch`] is char-offset by construction. Nothing downstream ever sees
//! a byte offset.

use crate::pattern::SearchPattern;
use schemars::JsonSchema;
use serde::{Deserialize, Serialize};

/// Which way a search runs.
#[derive(Debug, Clone, Copy, PartialEq, Eq, Hash, Default, Serialize, Deserialize, JsonSchema)]
pub enum Direction {
    /// `/` — toward the end of the buffer.
    #[default]
    Forward,
    /// `?` — toward the start of the buffer.
    Backward,
}

impl Direction {
    /// The opposite direction — what `N` does to `n`.
    #[must_use]
    pub const fn reversed(self) -> Self {
        match self {
            Self::Forward => Self::Backward,
            Self::Backward => Self::Forward,
        }
    }
}

/// One match, in **char** offsets, half-open `[start, end)`.
#[derive(Debug, Clone, Copy, PartialEq, Eq, Hash, Serialize, Deserialize, JsonSchema)]
pub struct SearchMatch {
    pub start: usize,
    pub end: usize,
}

impl SearchMatch {
    /// Char length of the match. Zero for a zero-width match (`/x*`).
    #[must_use]
    pub const fn len(&self) -> usize {
        self.end - self.start
    }

    /// Whether this is a zero-width match.
    #[must_use]
    pub const fn is_empty(&self) -> bool {
        self.start == self.end
    }

    /// Whether `offset` falls inside this match — what the renderer asks when
    /// deciding to highlight a cell. Zero-width matches contain nothing, so
    /// they never highlight.
    #[must_use]
    pub const fn contains(&self, offset: usize) -> bool {
        offset >= self.start && offset < self.end
    }
}

/// Whether stepping to a match ran off the end and came back around. vim
/// reports this ("search hit BOTTOM, continuing at TOP") and so do we — a wrap
/// that happens silently is how you lose your place in a large file.
#[derive(Debug, Clone, Copy, PartialEq, Eq)]
pub enum Wrapped {
    No,
    /// Ran past the end, resumed at the top.
    AtBottom,
    /// Ran past the start, resumed at the bottom.
    AtTop,
}

impl Wrapped {
    /// The message vim prints, or `None` when nothing wrapped.
    #[must_use]
    pub const fn message(self) -> Option<&'static str> {
        match self {
            Self::No => None,
            Self::AtBottom => Some("search hit BOTTOM, continuing at TOP"),
            Self::AtTop => Some("search hit TOP, continuing at BOTTOM"),
        }
    }
}

/// Where a step landed.
#[derive(Debug, Clone, Copy, PartialEq, Eq)]
pub struct Step {
    pub target: SearchMatch,
    /// Index of `target` within the full match list — drives vim's `[3/17]`
    /// match-count display.
    pub index: usize,
    pub wrapped: Wrapped,
}

/// Every match of `pattern` in `text`, in ascending order, non-overlapping.
///
/// Returns char offsets. An empty result means "no matches", which callers
/// should surface as vim's `E486: Pattern not found` rather than treating as a
/// no-op.
#[must_use]
pub fn find_all(text: &str, pattern: &SearchPattern) -> Vec<SearchMatch> {
    // One pass to build the byte->char map, so the whole conversion is O(n)
    // rather than O(n*m) from repeated `text[..b].chars().count()` calls. On a
    // large buffer with many matches that difference is the whole frame budget.
    let mut byte_to_char = vec![0usize; text.len() + 1];
    for (char_idx, (byte_idx, _)) in text.char_indices().enumerate() {
        byte_to_char[byte_idx] = char_idx;
    }
    byte_to_char[text.len()] = text.chars().count();
    // Interior bytes of a multi-byte char are never match boundaries (regex
    // only reports char-aligned offsets), so leaving them 0 is safe — but fill
    // them forward anyway so a future caller cannot trip over a stale zero.
    let mut last = 0;
    for slot in &mut byte_to_char {
        if *slot == 0 && last != 0 {
            *slot = last;
        } else {
            last = *slot;
        }
    }

    pattern
        .regex()
        .find_iter(text)
        .map(|m| SearchMatch { start: byte_to_char[m.start()], end: byte_to_char[m.end()] })
        .collect()
}

/// Step from `from` (a char offset, normally the cursor) to the next match in
/// `direction`, wrapping around the buffer.
///
/// vim semantics, deliberately:
/// - Forward finds the first match starting **strictly after** `from`, so `n`
///   on top of a match advances instead of re-finding the same one.
/// - Backward finds the last match starting **strictly before** `from`.
/// - With no match ahead, it wraps and reports [`Wrapped`].
/// - A single match always resolves to itself, reporting a wrap.
#[must_use]
pub fn step(matches: &[SearchMatch], from: usize, direction: Direction) -> Option<Step> {
    if matches.is_empty() {
        return None;
    }
    match direction {
        Direction::Forward => matches
            .iter()
            .position(|m| m.start > from)
            .map(|i| Step { target: matches[i], index: i, wrapped: Wrapped::No })
            .or(Some(Step { target: matches[0], index: 0, wrapped: Wrapped::AtBottom })),
        Direction::Backward => matches
            .iter()
            .rposition(|m| m.start < from)
            .map(|i| Step { target: matches[i], index: i, wrapped: Wrapped::No })
            .or_else(|| {
                let i = matches.len() - 1;
                Some(Step { target: matches[i], index: i, wrapped: Wrapped::AtTop })
            }),
    }
}

/// Like [`step`], but a match starting exactly **at** `from` counts as a hit.
///
/// This is what incremental search needs and `n` must not have. Typing `/foo`
/// while the cursor already sits on a `foo` should light up *that* `foo`;
/// pressing `n` on the same `foo` must move to the next one. The difference is
/// one comparison, and getting it wrong is invisible until the cursor happens
/// to rest on a match.
///
/// `from.saturating_sub(1)` is not a substitute: at offset 0 it saturates back
/// to 0, so a match at 0 stays unreachable — the exact case that fails on the
/// first line of a file.
#[must_use]
pub fn step_inclusive(matches: &[SearchMatch], from: usize, direction: Direction) -> Option<Step> {
    if matches.is_empty() {
        return None;
    }
    match direction {
        Direction::Forward => matches
            .iter()
            .position(|m| m.start >= from)
            .map(|i| Step { target: matches[i], index: i, wrapped: Wrapped::No })
            .or(Some(Step { target: matches[0], index: 0, wrapped: Wrapped::AtBottom })),
        Direction::Backward => matches
            .iter()
            .rposition(|m| m.start <= from)
            .map(|i| Step { target: matches[i], index: i, wrapped: Wrapped::No })
            .or_else(|| {
                let i = matches.len() - 1;
                Some(Step { target: matches[i], index: i, wrapped: Wrapped::AtTop })
            }),
    }
}

/// The word under (or immediately after) `cursor` — what `*` and `#` search
/// for.
///
/// vim's rule, matched here: if the cursor is not on a word character, scan
/// forward on the current line for one. Returns `None` when the rest of the
/// line has no word, which is when vim beeps and does nothing.
#[must_use]
pub fn word_at(text: &str, cursor: usize) -> Option<String> {
    let chars: Vec<char> = text.chars().collect();
    if chars.is_empty() {
        return None;
    }
    let is_word = |c: char| c.is_alphanumeric() || c == '_';

    // Scan forward for a word char, stopping at the line end like vim does.
    let mut i = cursor.min(chars.len().saturating_sub(1));
    while i < chars.len() && !is_word(chars[i]) {
        if chars[i] == '\n' {
            return None;
        }
        i += 1;
    }
    if i >= chars.len() {
        return None;
    }
    let mut start = i;
    while start > 0 && is_word(chars[start - 1]) {
        start -= 1;
    }
    let mut end = i;
    while end < chars.len() && is_word(chars[end]) {
        end += 1;
    }
    Some(chars[start..end].iter().collect())
}

#[cfg(test)]
mod tests {
    use super::*;
    use crate::pattern::CaseMode;

    fn pat(p: &str) -> SearchPattern {
        SearchPattern::compile(p, CaseMode::Sensitive).unwrap()
    }

    #[test]
    fn finds_every_occurrence_in_order() {
        let m = find_all("foo bar foo baz foo", &pat("foo"));
        assert_eq!(m.len(), 3);
        assert_eq!(m[0], SearchMatch { start: 0, end: 3 });
        assert_eq!(m[1], SearchMatch { start: 8, end: 11 });
        assert_eq!(m[2], SearchMatch { start: 16, end: 19 });
    }

    #[test]
    fn offsets_are_chars_not_bytes() {
        // "héllo foo" — é is 2 bytes, so a byte-offset bug puts `foo` at 7.
        let text = "héllo foo";
        let m = find_all(text, &pat("foo"));
        assert_eq!(m.len(), 1);
        assert_eq!(m[0].start, 6, "char offset; byte offset would be 7");
        // Prove it by slicing the way the buffer would.
        let got: String = text.chars().skip(m[0].start).take(m[0].len()).collect();
        assert_eq!(got, "foo");
    }

    #[test]
    fn multibyte_heavy_text_stays_aligned() {
        let text = "日本語 foo 日本語 foo";
        let m = find_all(text, &pat("foo"));
        assert_eq!(m.len(), 2);
        for mm in &m {
            let got: String = text.chars().skip(mm.start).take(mm.len()).collect();
            assert_eq!(got, "foo");
        }
    }

    #[test]
    fn no_matches_is_empty_not_a_panic() {
        assert!(find_all("abc", &pat("zzz")).is_empty());
        assert!(step(&[], 0, Direction::Forward).is_none());
    }

    #[test]
    fn forward_advances_past_a_match_the_cursor_sits_on() {
        let m = find_all("foo foo foo", &pat("foo"));
        // Cursor at 0 is ON the first match; `n` must go to the second.
        let s = step(&m, 0, Direction::Forward).unwrap();
        assert_eq!(s.target.start, 4);
        assert_eq!(s.index, 1);
        assert_eq!(s.wrapped, Wrapped::No);
    }

    #[test]
    fn forward_wraps_at_the_bottom_and_says_so() {
        let m = find_all("foo foo", &pat("foo"));
        let s = step(&m, 100, Direction::Forward).unwrap();
        assert_eq!(s.target.start, 0);
        assert_eq!(s.wrapped, Wrapped::AtBottom);
        assert!(s.wrapped.message().unwrap().contains("BOTTOM"));
    }

    #[test]
    fn backward_finds_the_previous_match() {
        let m = find_all("foo foo foo", &pat("foo"));
        let s = step(&m, 8, Direction::Backward).unwrap();
        assert_eq!(s.target.start, 4);
        assert_eq!(s.wrapped, Wrapped::No);
    }

    #[test]
    fn backward_wraps_at_the_top_and_says_so() {
        let m = find_all("foo foo", &pat("foo"));
        let s = step(&m, 0, Direction::Backward).unwrap();
        assert_eq!(s.target.start, 4);
        assert_eq!(s.wrapped, Wrapped::AtTop);
        assert!(s.wrapped.message().unwrap().contains("TOP"));
    }

    #[test]
    fn a_lone_match_resolves_to_itself_by_wrapping() {
        let m = find_all("hello foo world", &pat("foo"));
        assert_eq!(m.len(), 1);
        for dir in [Direction::Forward, Direction::Backward] {
            let s = step(&m, m[0].start, dir).unwrap();
            assert_eq!(s.target, m[0], "single match must resolve to itself ({dir:?})");
            assert_ne!(s.wrapped, Wrapped::No, "and must report the wrap");
        }
    }

    #[test]
    fn step_inclusive_finds_a_match_starting_at_the_cursor() {
        let m = find_all("foo foo foo", &pat("foo"));
        // The distinction that matters: exclusive `step` skips the match under
        // the cursor (correct for `n`), inclusive keeps it (correct for
        // incremental search).
        assert_eq!(step(&m, 0, Direction::Forward).unwrap().target.start, 4);
        assert_eq!(step_inclusive(&m, 0, Direction::Forward).unwrap().target.start, 0);
    }

    #[test]
    fn step_inclusive_at_offset_zero_is_reachable() {
        // Regression: the original preview used `from.saturating_sub(1)`, which
        // saturates to 0 and therefore could never reach a match AT 0 — broken
        // precisely on the first line of a file.
        let m = find_all("foo bar", &pat("foo"));
        let s = step_inclusive(&m, 0, Direction::Forward).unwrap();
        assert_eq!(s.target.start, 0);
        assert_eq!(s.wrapped, Wrapped::No, "reaching it must not count as a wrap");
    }

    #[test]
    fn step_inclusive_backward_also_accepts_the_cursor_position() {
        let m = find_all("foo foo foo", &pat("foo"));
        assert_eq!(step(&m, 8, Direction::Backward).unwrap().target.start, 4);
        assert_eq!(step_inclusive(&m, 8, Direction::Backward).unwrap().target.start, 8);
    }

    #[test]
    fn step_inclusive_on_no_matches_is_none() {
        assert!(step_inclusive(&[], 0, Direction::Forward).is_none());
    }

    #[test]
    fn direction_reverses() {
        assert_eq!(Direction::Forward.reversed(), Direction::Backward);
        assert_eq!(Direction::Backward.reversed(), Direction::Forward);
    }

    #[test]
    fn zero_width_matches_terminate_and_never_highlight() {
        // `x*` matches empty at every position — a naive scanner loops forever.
        let m = find_all("abc", &pat("x*"));
        assert!(!m.is_empty());
        assert!(m.iter().all(SearchMatch::is_empty));
        assert!(!m[0].contains(0), "a zero-width match highlights nothing");
    }

    #[test]
    fn contains_is_half_open() {
        let m = SearchMatch { start: 2, end: 5 };
        assert!(!m.contains(1));
        assert!(m.contains(2));
        assert!(m.contains(4));
        assert!(!m.contains(5), "end is exclusive");
    }

    #[test]
    fn word_at_reads_the_whole_word_from_inside_it() {
        assert_eq!(word_at("hello world", 2).as_deref(), Some("hello"));
        assert_eq!(word_at("hello world", 0).as_deref(), Some("hello"));
        assert_eq!(word_at("hello world", 4).as_deref(), Some("hello"));
        assert_eq!(word_at("hello world", 8).as_deref(), Some("world"));
    }

    #[test]
    fn word_at_scans_forward_from_whitespace_like_vim() {
        assert_eq!(word_at("  hello", 0).as_deref(), Some("hello"));
    }

    #[test]
    fn word_at_stops_at_the_line_end() {
        // vim does not jump to the next line looking for a word.
        assert_eq!(word_at("   \nhello", 0), None);
    }

    #[test]
    fn word_at_includes_underscores_and_digits() {
        assert_eq!(word_at("foo_bar99 x", 0).as_deref(), Some("foo_bar99"));
    }

    #[test]
    fn word_at_on_empty_text_is_none() {
        assert_eq!(word_at("", 0), None);
    }

    #[test]
    fn case_insensitive_search_finds_mixed_case() {
        let p = SearchPattern::compile("foo", CaseMode::Ignore).unwrap();
        assert_eq!(find_all("Foo FOO foo", &p).len(), 3);
    }

    #[test]
    fn smartcase_capital_narrows_the_result_set() {
        let loose = SearchPattern::compile("foo", CaseMode::Smart).unwrap();
        let tight = SearchPattern::compile("Foo", CaseMode::Smart).unwrap();
        assert_eq!(find_all("Foo FOO foo", &loose).len(), 3);
        assert_eq!(find_all("Foo FOO foo", &tight).len(), 1);
    }

    #[test]
    fn stepping_forward_through_every_match_returns_to_the_start() {
        let text = "a foo b foo c foo d";
        let m = find_all(text, &pat("foo"));
        let mut at = 0;
        let mut seen = vec![];
        for _ in 0..m.len() {
            let s = step(&m, at, Direction::Forward).unwrap();
            seen.push(s.target.start);
            at = s.target.start;
        }
        // From 0 (before the first match at 2): 2, 8, 14 — a full cycle.
        assert_eq!(seen, vec![2, 8, 14]);
        // One more wraps back to the first.
        assert_eq!(step(&m, at, Direction::Forward).unwrap().target.start, 2);
    }
}