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docling_core/
chunker.rs

1//! Document chunking for RAG pipelines — the Rust port of docling-core's
2//! `docling_core.transforms.chunker`.
3//!
4//! Two chunkers, matching docling's semantics output-for-output:
5//!
6//! * [`HierarchicalChunker`] walks the document tree and yields one chunk per
7//!   top-level item (paragraph, whole list, table, picture caption, …), each
8//!   carrying the heading path it sits under. Tables are serialized in
9//!   docling's *triplet* form (`row, column = value`), pictures contribute
10//!   their captions.
11//! * [`HybridChunker`] refines the hierarchical chunks with a tokenizer:
12//!   oversized chunks are split (at item boundaries first, then within the
13//!   text by docling's `semchunk` algorithm), and undersized neighbours that
14//!   share the same headings are merged back together.
15//!
16//! [`contextualize`] renders a chunk to the string an embedding model should
17//! see: the heading path plus the chunk text.
18//!
19//! Anything tokenizer-related is abstracted behind [`ChunkTokenizer`]; a
20//! HuggingFace `tokenizers` implementation ships behind the `chunking` cargo
21//! feature as [`HuggingFaceTokenizer`].
22
23use std::collections::BTreeMap;
24
25use crate::document::{DoclingDocument, Node, Table};
26
27/// What kind of document item a [`ChunkItem`] points at — only what the
28/// hybrid splitting logic needs to know.
29#[derive(Debug, Clone, Copy, PartialEq, Eq)]
30pub enum ChunkItemKind {
31    /// A text-ish item (paragraph, list item, code, formula, caption, …).
32    Text,
33    /// A table item (single-item oversized chunks re-split per line, repeating
34    /// docling's header handling).
35    Table,
36    /// A picture item.
37    Picture,
38}
39
40/// One document item contributing to a chunk — the analogue of an entry in
41/// docling's `DocMeta.doc_items`.
42#[derive(Debug, Clone, PartialEq)]
43pub struct ChunkItem {
44    /// The item's ref in [`DoclingDocument::export_to_json`] output
45    /// (`#/texts/12`, `#/tables/0`, `#/pictures/1`, …).
46    pub self_ref: String,
47    pub kind: ChunkItemKind,
48    /// The item serialized *standalone* (docling re-serializes individual
49    /// items when splitting an oversized multi-item chunk — e.g. a nested
50    /// list item flattens to `- text` with no indentation).
51    pub text: String,
52}
53
54/// One chunk — the analogue of docling's `DocChunk` (text + `DocMeta`).
55#[derive(Debug, Clone, PartialEq)]
56pub struct DocChunk {
57    /// The chunk body (markdown-flavoured, unescaped — same text docling puts
58    /// in `DocChunk.text`).
59    pub text: String,
60    /// The heading path above this chunk, outermost first (`DocMeta.headings`;
61    /// `None` when the chunk sits above any heading).
62    pub headings: Option<Vec<String>>,
63    /// The document items the chunk was built from (`DocMeta.doc_items`).
64    pub doc_items: Vec<ChunkItem>,
65}
66
67/// Render a chunk for embedding: the heading path, then the text, joined with
68/// newlines — docling's `BaseChunker.contextualize()`.
69pub fn contextualize(chunk: &DocChunk) -> String {
70    let mut parts: Vec<&str> = Vec::new();
71    if let Some(h) = &chunk.headings {
72        parts.extend(h.iter().map(String::as_str));
73    }
74    parts.push(&chunk.text);
75    parts.join("\n")
76}
77
78// ---------------------------------------------------------------------------
79// Hierarchical chunker
80// ---------------------------------------------------------------------------
81
82/// Structure-driven chunker: one chunk per document item, lists and inline
83/// groups kept whole, heading path tracked as metadata — docling-core's
84/// `HierarchicalChunker` with default parameters.
85#[derive(Debug, Clone, Default)]
86pub struct HierarchicalChunker;
87
88impl HierarchicalChunker {
89    /// Chunk the document.
90    pub fn chunk(&self, doc: &DoclingDocument) -> Vec<DocChunk> {
91        let mut chunks = Vec::new();
92        self.chunk_with(doc, &mut |c| {
93            chunks.push(c);
94            true
95        });
96        chunks
97    }
98
99    /// Stream the chunks: `sink` is called with each chunk as the document
100    /// walk produces it, so a consumer can process (embed, forward) chunks
101    /// without materializing the whole `Vec` first. A `false` return from
102    /// `sink` cancels the walk. [`Self::chunk`] is this with a collecting
103    /// sink — the chunks and their order are identical.
104    pub fn chunk_with(&self, doc: &DoclingDocument, sink: &mut dyn FnMut(DocChunk) -> bool) {
105        let mut w = Walker {
106            alloc: Alloc::default(),
107            headings: BTreeMap::new(),
108            stopped: false,
109            sink,
110        };
111        w.walk(&doc.nodes);
112    }
113}
114
115/// Ref allocator mirroring the numbering `json.rs` gives every item, so
116/// `ChunkItem::self_ref` matches the document's JSON export.
117#[derive(Debug, Default)]
118struct Alloc {
119    texts: usize,
120    groups: usize,
121    tables: usize,
122    pictures: usize,
123    field_regions: usize,
124    field_items: usize,
125}
126
127impl Alloc {
128    fn text(&mut self) -> String {
129        let r = format!("#/texts/{}", self.texts);
130        self.texts += 1;
131        r
132    }
133    fn group(&mut self) -> String {
134        let r = format!("#/groups/{}", self.groups);
135        self.groups += 1;
136        r
137    }
138    fn table(&mut self) -> String {
139        let r = format!("#/tables/{}", self.tables);
140        self.tables += 1;
141        r
142    }
143    fn picture(&mut self) -> String {
144        let r = format!("#/pictures/{}", self.pictures);
145        self.pictures += 1;
146        r
147    }
148    fn field_region(&mut self) -> String {
149        let r = format!("#/field_regions/{}", self.field_regions);
150        self.field_regions += 1;
151        r
152    }
153    fn field_item(&mut self) -> String {
154        let r = format!("#/field_items/{}", self.field_items);
155        self.field_items += 1;
156        r
157    }
158}
159
160struct Walker<'s> {
161    alloc: Alloc,
162    /// Active heading per docling level (title = 0, `section_header` = its
163    /// `level`), pruned like docling's `heading_by_level`.
164    headings: BTreeMap<u8, String>,
165    /// Set once the sink refuses a chunk; the walk unwinds without emitting.
166    stopped: bool,
167    sink: &'s mut dyn FnMut(DocChunk) -> bool,
168}
169
170impl Walker<'_> {
171    fn emit(&mut self, text: String, doc_items: Vec<ChunkItem>) {
172        if self.stopped || text.is_empty() {
173            return;
174        }
175        let headings: Vec<String> = self.headings.values().cloned().collect();
176        self.stopped = !(self.sink)(DocChunk {
177            text,
178            headings: (!headings.is_empty()).then_some(headings),
179            doc_items,
180        });
181    }
182
183    /// Emit a text chunk whose doc items follow docling's inline granularity:
184    /// mixed inline content (a paragraph docling represents as an inline group)
185    /// contributes one item per span, plain text one item.
186    fn emit_inline(&mut self, md_text: &str, self_ref: String) {
187        self.emit_inline_with_runs(md_text, self_ref, &[]);
188    }
189
190    fn emit_inline_with_runs(
191        &mut self,
192        md_text: &str,
193        self_ref: String,
194        runs: &[crate::InlineRun],
195    ) {
196        let body = unescape_text(md_text);
197        if body.is_empty() {
198            return;
199        }
200        let segments: Vec<String> = inline_segments_tagged(md_text)
201            .into_iter()
202            .flat_map(|(text, is_plain)| {
203                if is_plain {
204                    if let Some(split) = split_plain_by_runs(&text, runs) {
205                        return split;
206                    }
207                }
208                vec![text]
209            })
210            .collect();
211        let items: Vec<ChunkItem> = if segments.len() <= 1 {
212            vec![ChunkItem {
213                self_ref,
214                kind: ChunkItemKind::Text,
215                text: body.clone(),
216            }]
217        } else {
218            segments
219                .into_iter()
220                .map(|text| ChunkItem {
221                    self_ref: self_ref.clone(),
222                    kind: ChunkItemKind::Text,
223                    text,
224                })
225                .collect()
226        };
227        self.emit(body, items);
228    }
229
230    fn set_heading(&mut self, doc_level: u8, text: String) {
231        self.headings.retain(|k, _| *k < doc_level);
232        self.headings.insert(doc_level, text);
233    }
234
235    fn walk(&mut self, nodes: &[Node]) {
236        let mut i = 0;
237        while i < nodes.len() {
238            if self.stopped {
239                return;
240            }
241            if matches!(nodes[i], Node::ListItem { .. }) {
242                let start = i;
243                i += 1;
244                loop {
245                    match nodes.get(i) {
246                        Some(Node::ListItem { .. }) => i += 1,
247                        // An empty paragraph between two list items is absorbed
248                        // into the run (mirrors json.rs / markdown.rs).
249                        Some(Node::Paragraph { text })
250                            if text.is_empty()
251                                && matches!(nodes.get(i + 1), Some(Node::ListItem { .. })) =>
252                        {
253                            i += 1
254                        }
255                        _ => break,
256                    }
257                }
258                self.sibling_lists(&nodes[start..i]);
259            } else {
260                self.one(&nodes[i]);
261                i += 1;
262            }
263        }
264    }
265
266    /// Split a run of list items into sibling lists exactly like
267    /// `json.rs::add_sibling_lists`, chunking each list separately (docling
268    /// yields one chunk per `ListGroup`).
269    fn sibling_lists(&mut self, run: &[Node]) {
270        let base = level_of(&run[0]);
271        let mut seg = 0;
272        for k in 0..run.len() {
273            let Node::ListItem {
274                first_in_list,
275                level,
276                ..
277            } = &run[k]
278            else {
279                continue;
280            };
281            if *level != base {
282                continue; // nested item — handled inside `list`
283            }
284            // The backend's list boundary, as in `json.rs::add_sibling_lists`.
285            if k > seg && *first_in_list {
286                self.list(&run[seg..k]);
287                seg = k;
288            }
289        }
290        self.list(&run[seg..]);
291    }
292
293    /// One `ListGroup`: allocate refs in `json.rs::add_list` order (group,
294    /// then per top item its text ref followed by any nested groups) and emit
295    /// a single chunk whose text is the indented markdown list.
296    fn list(&mut self, items: &[Node]) {
297        self.alloc.group();
298        let mut chunk_items = Vec::new();
299        self.list_refs(items, &mut chunk_items);
300        let text = render_list(items);
301        self.emit(text, chunk_items);
302    }
303
304    /// Allocate refs for one list's items (and nested sibling lists), mirroring
305    /// `json.rs::add_list` / `add_sibling_lists` recursion, collecting the
306    /// non-furniture items in allocation (= document) order.
307    fn list_refs(&mut self, items: &[Node], out: &mut Vec<ChunkItem>) {
308        let base = level_of(&items[0]);
309        let mut i = 0;
310        while i < items.len() {
311            let Node::ListItem {
312                ordered,
313                number,
314                text,
315                level,
316                layer,
317                ..
318            } = &items[i]
319            else {
320                i += 1;
321                continue;
322            };
323            if *level > base {
324                i += 1;
325                continue;
326            }
327            let item_ref = self.alloc.text();
328            let mut j = i + 1;
329            while j < items.len() && level_of(&items[j]) > base {
330                j += 1;
331            }
332            let has_nested = j > i + 1;
333            if layer.is_none() {
334                let marker = if *ordered {
335                    format!("{number}.")
336                } else {
337                    "-".to_string()
338                };
339                // An item that carries both inline spans and a nested list is an
340                // empty list item wrapping an inline group in docling's model:
341                // its marker and each inline span are separate doc items.
342                // docling represents a list item whose content is not pure
343                // inline text (it carries a nested list or child pictures) as
344                // an empty item wrapping an inline group: its marker and each
345                // inline span become separate doc items.
346                // docling represents a list item whose content is not pure
347                // inline text (it carries a nested list or its own images) as
348                // an empty item wrapping an inline group: its marker and each
349                // inline span become separate doc items. The chunker's
350                // image placeholder is empty, so the markers are stripped from
351                // the text before segmentation.
352                let has_pics = text.contains("<!-- image -->");
353                let text = strip_image_markers(text);
354                let text = text.as_str();
355                let segments = inline_segments(text);
356                if (has_nested || has_pics) && segments.len() > 1 && text.contains("](") {
357                    out.push(ChunkItem {
358                        self_ref: item_ref.clone(),
359                        kind: ChunkItemKind::Text,
360                        text: format!("{marker} "),
361                    });
362                    for seg in segments {
363                        out.push(ChunkItem {
364                            self_ref: item_ref.clone(),
365                            kind: ChunkItemKind::Text,
366                            text: seg,
367                        });
368                    }
369                } else {
370                    out.push(ChunkItem {
371                        self_ref: item_ref.clone(),
372                        kind: ChunkItemKind::Text,
373                        text: format!("{marker} {}", unescape_text(text)),
374                    });
375                }
376            }
377            // nested items group under this one; each nested sibling list is a
378            // fresh group ref
379            if j > i + 1 {
380                self.nested_sibling_lists(&items[i + 1..j], out);
381            }
382            i = j;
383        }
384    }
385
386    fn nested_sibling_lists(&mut self, run: &[Node], out: &mut Vec<ChunkItem>) {
387        let base = level_of(&run[0]);
388        let mut seg = 0;
389        for k in 0..run.len() {
390            let Node::ListItem {
391                first_in_list,
392                level,
393                ..
394            } = &run[k]
395            else {
396                continue;
397            };
398            if *level != base {
399                continue;
400            }
401            if k > seg && *first_in_list {
402                self.alloc.group();
403                self.list_refs(&run[seg..k], out);
404                seg = k;
405            }
406        }
407        self.alloc.group();
408        self.list_refs(&run[seg..], out);
409    }
410
411    fn one(&mut self, node: &Node) {
412        match node {
413            Node::Heading { level, text } => {
414                let doc_level = if *level == 1 {
415                    0
416                } else {
417                    level.saturating_sub(1)
418                };
419                let self_ref = self.alloc.text();
420                // docling stores heading text unformatted: a heading that is one
421                // uniformly formatted span keeps its plain text; a *partially*
422                // formatted heading becomes an empty heading whose content is an
423                // inline group — which the chunker then yields as a chunk of its
424                // own (under the freshly-set empty heading).
425                let runs = crate::inline_runs_from_markdown(text);
426                if runs.len() <= 1 {
427                    let plain = runs
428                        .first()
429                        .map(|r| r.text.clone())
430                        .unwrap_or_else(|| text.clone());
431                    self.set_heading(doc_level, unescape_text(&plain));
432                } else {
433                    self.set_heading(doc_level, String::new());
434                    let body = unescape_text(text);
435                    self.emit(
436                        body.clone(),
437                        vec![ChunkItem {
438                            self_ref,
439                            kind: ChunkItemKind::Text,
440                            text: body,
441                        }],
442                    );
443                }
444            }
445            Node::Paragraph { text } => {
446                let t = text.trim();
447                let self_ref = self.alloc.text();
448                // A whole-paragraph display equation is a formula item; docling's
449                // chunk serializer re-wraps the raw latex in `$$…$$`.
450                if let Some(inner) = t
451                    .strip_prefix("$$")
452                    .and_then(|s| s.strip_suffix("$$"))
453                    .filter(|s| !s.is_empty())
454                {
455                    let body = format!("$${inner}$$");
456                    self.emit(
457                        body.clone(),
458                        vec![ChunkItem {
459                            self_ref,
460                            kind: ChunkItemKind::Text,
461                            text: body,
462                        }],
463                    );
464                    return;
465                }
466                self.emit_inline(text, self_ref);
467            }
468            // A standalone caption chunks like any text item (docling's chunker
469            // does not treat `caption` specially outside a table/picture).
470            Node::Caption { text, .. } => {
471                let self_ref = self.alloc.text();
472                self.emit_inline(text, self_ref);
473            }
474            Node::CheckboxItem { checked, text } => {
475                let self_ref = self.alloc.text();
476                let mark = if *checked { "- [x] " } else { "- [ ] " };
477                let body = format!("{mark}{}", unescape_text(text));
478                self.emit(
479                    body.clone(),
480                    vec![ChunkItem {
481                        self_ref,
482                        kind: ChunkItemKind::Text,
483                        text: body,
484                    }],
485                );
486            }
487            // An enriched display formula chunks like docling's formula item:
488            // the LaTeX is the chunk text.
489            Node::Formula { latex, .. } => {
490                let self_ref = self.alloc.text();
491                let body = format!("$${}$$", latex);
492                self.emit(
493                    body.clone(),
494                    vec![ChunkItem {
495                        self_ref,
496                        kind: ChunkItemKind::Text,
497                        text: body,
498                    }],
499                );
500            }
501            Node::Code { text, .. } => {
502                let self_ref = self.alloc.text();
503                let body = format!("```\n{}\n```", unescape_text(text));
504                self.emit(
505                    body.clone(),
506                    vec![ChunkItem {
507                        self_ref,
508                        kind: ChunkItemKind::Text,
509                        text: body,
510                    }],
511                );
512            }
513            Node::Table(t) => {
514                let self_ref = self.alloc.table();
515                let body = triplet_table_text(t);
516                self.emit(
517                    body.clone(),
518                    vec![ChunkItem {
519                        self_ref,
520                        kind: ChunkItemKind::Table,
521                        text: body,
522                    }],
523                );
524            }
525            Node::Picture { caption, .. } => {
526                let cap = caption.as_deref().filter(|c| !c.is_empty());
527                let cap_item = cap.map(|c| ChunkItem {
528                    self_ref: self.alloc.text(),
529                    kind: ChunkItemKind::Text,
530                    text: unescape_text(c),
531                });
532                self.alloc.picture();
533                // The picture itself serializes to the (empty) chunking image
534                // placeholder, and its caption is already consumed by the
535                // caption chunk — so only the caption text is emitted.
536                if let Some(cap_item) = cap_item {
537                    let body = cap_item.text.clone();
538                    self.emit(body, vec![cap_item]);
539                }
540            }
541            Node::Chart {
542                kind,
543                table,
544                caption,
545                ..
546            } => {
547                let cap = caption.as_deref().filter(|c| !c.is_empty());
548                let cap_item = cap.map(|c| ChunkItem {
549                    self_ref: self.alloc.text(),
550                    kind: ChunkItemKind::Text,
551                    text: unescape_text(c),
552                });
553                let pic_ref = self.alloc.picture();
554                // caption, humanized classification, then the chart's data grid
555                // as a (padded) markdown table — docling's picture serializer
556                // parts, joined with blank lines.
557                let mut parts: Vec<String> = Vec::new();
558                if let Some(ci) = &cap_item {
559                    parts.push(ci.text.clone());
560                }
561                parts.push(humanize_label(kind));
562                let grid = crate::markdown::render_table(table, false);
563                if !grid.is_empty() {
564                    parts.push(unescape_text(&grid));
565                }
566                let body = parts.join("\n\n");
567                // Re-serialized standalone (the hybrid window join), the picture
568                // carries its caption itself, while the caption *item* renders
569                // empty — docling's markdown serializer emits caption-label text
570                // only through the picture.
571                let pic_item = ChunkItem {
572                    self_ref: pic_ref,
573                    kind: ChunkItemKind::Picture,
574                    text: body.clone(),
575                };
576                let items = match cap_item {
577                    Some(mut ci) => {
578                        ci.text = String::new();
579                        vec![ci, pic_item]
580                    }
581                    None => vec![pic_item],
582                };
583                self.emit(body, items);
584            }
585            // A group on a non-body layer (a hidden spreadsheet sheet) carries
586            // no chunkable content, like every other non-body item.
587            Node::Group { layer: Some(_), .. } => {}
588            Node::Group { children, .. } => {
589                // A generic group is a structural container: docling recurses
590                // into it rather than chunking it whole.
591                self.alloc.group();
592                self.walk(children);
593            }
594            // A key-value graph holds no text items, so no chunk comes of it.
595            Node::KeyValueGraph { .. } => {}
596            Node::FieldRegion { items } => {
597                // Each field part (marker / key / value) is its own text item,
598                // and docling chunks each one individually.
599                self.alloc.field_region();
600                for item in items {
601                    self.alloc.field_item();
602                    for part in [&item.marker, &item.key, &item.value].into_iter().flatten() {
603                        let self_ref = self.alloc.text();
604                        let body = unescape_text(part);
605                        self.emit(
606                            body.clone(),
607                            vec![ChunkItem {
608                                self_ref,
609                                kind: ChunkItemKind::Text,
610                                text: body,
611                            }],
612                        );
613                    }
614                }
615            }
616            Node::InlineGroup { md_text, runs, .. } => {
617                let self_ref = self.alloc.text();
618                self.emit_inline_with_runs(md_text, self_ref, runs);
619            }
620            Node::TextDump(text) => {
621                let self_ref = self.alloc.text();
622                let body = unescape_text(text);
623                self.emit(
624                    body.clone(),
625                    vec![ChunkItem {
626                        self_ref,
627                        kind: ChunkItemKind::Text,
628                        text: body,
629                    }],
630                );
631            }
632            // Layout provenance and comment annotations are transparent.
633            Node::Located { inner, .. }
634            | Node::Prov { inner, .. }
635            | Node::Commented { inner, .. } => self.one(inner),
636            // Non-body layers and doclang-only nodes don't reach the chunker
637            // (nor the JSON body).
638            Node::CommentSection { .. }
639            | Node::Furniture { .. }
640            | Node::PageFurniture { .. }
641            | Node::PageBreak
642            | Node::PageInfo { .. }
643            | Node::DoclangOnly(_) => {}
644            // Runs are grouped by `walk`; a stray single item (hand-built
645            // document, `Located` wrapper) still chunks instead of panicking.
646            Node::ListItem { .. } => self.sibling_lists(std::slice::from_ref(node)),
647        }
648    }
649}
650
651fn level_of(node: &Node) -> u8 {
652    match node {
653        Node::ListItem { level, .. } => *level,
654        _ => 0,
655    }
656}
657
658/// Render one sibling list as its markdown chunk text (indented items, same
659/// rules as the full markdown serializer's list rendering).
660fn render_list(items: &[Node]) -> String {
661    let mut lines: Vec<String> = Vec::new();
662    for item in items {
663        let Node::ListItem {
664            ordered,
665            number,
666            text,
667            level,
668            layer,
669            ..
670        } = item
671        else {
672            continue;
673        };
674        if layer.is_some() {
675            continue;
676        }
677        let indent = "    ".repeat(*level as usize);
678        let marker = if *ordered {
679            format!("{number}.")
680        } else {
681            "-".to_string()
682        };
683        lines.push(format!(
684            "{indent}{marker} {}",
685            unescape_text(&strip_image_markers(text))
686        ));
687    }
688    lines.join("\n")
689}
690
691/// Strip the Markdown image placeholders a list item's own images fold into
692/// its text (the chunking serializer's `image_placeholder` is empty, so
693/// docling's chunk text carries no marker), collapsing the newlines that
694/// carried them.
695fn strip_image_markers(text: &str) -> String {
696    if !text.contains("<!-- image -->") {
697        return text.to_string();
698    }
699    let cleaned: Vec<&str> = text
700        .split('\n')
701        .map(str::trim_end)
702        .filter(|l| *l != "<!-- image -->")
703        .collect();
704    cleaned.join("\n").trim_end().to_string()
705}
706
707/// docling-core's `_humanize_text`: underscores to spaces, first letter
708/// capitalized (`line_chart` → `Line chart`).
709fn humanize_label(label: &str) -> String {
710    let text = label.replace('_', " ");
711    let mut chars = text.chars();
712    match chars.next() {
713        Some(f) => f.to_uppercase().collect::<String>() + chars.as_str(),
714        None => text,
715    }
716}
717
718/// docling's `TripletTableSerializer` over `export_to_dataframe` semantics: the
719/// leading rows carrying column-header cells become the dataframe's column
720/// names (multiple header rows join per column with `.`; no header rows at all
721/// yield pandas' integer column names), the rest are data rows; the dataframe
722/// is then rendered as `row, column = value` sentences (with the header-only /
723/// single-column special cases and the plain-text flatten fallback).
724fn triplet_table_text(t: &Table) -> String {
725    let rows: Vec<Vec<String>> = t
726        .rows
727        .iter()
728        .enumerate()
729        .map(|(ri, r)| (0..r.len()).map(|ci| cell_chunk_text(t, ri, ci)).collect())
730        .collect();
731    let num_rows = rows.len();
732    let num_cols = rows.iter().map(Vec::len).max().unwrap_or(0);
733    if num_rows == 0 || num_cols == 0 {
734        return String::new();
735    }
736    let cell = |r: usize, c: usize| -> &str {
737        rows.get(r)
738            .and_then(|row| row.get(c))
739            .map(String::as_str)
740            .unwrap_or("")
741    };
742
743    // The header block is the leading run of rows on which a column-header
744    // cell *starts* (docling-core#756): the grid replicates a spanning header
745    // into every row it covers, and the rows beneath it are data, not more
746    // header. Unlike the Markdown serializer there is no "no flags -> row 0"
747    // fallback here: pandas then gets integer column names.
748    let num_headers = {
749        let derived;
750        let cells: &[crate::TableCell] = match &t.cells {
751            Some(c) if !c.is_empty() => c,
752            _ => {
753                derived = t.derive_cells();
754                &derived
755            }
756        };
757        (0..num_rows)
758            .take_while(|&r| cells.iter().any(|c| c.column_header && c.start_row == r))
759            .count()
760    };
761
762    // Column names: header-row texts joined per column with '.', or the integer
763    // positions when there are no header rows.
764    let columns: Vec<String> = if num_headers > 0 {
765        (0..num_cols)
766            .map(|c| {
767                let mut name = String::new();
768                for r in 0..num_headers {
769                    if !name.is_empty() {
770                        name.push('.');
771                    }
772                    name.push_str(cell(r, c));
773                }
774                name
775            })
776            .collect()
777    } else {
778        (0..num_cols).map(|c| c.to_string()).collect()
779    };
780    let data_rows = num_headers..num_rows;
781    let n_data = data_rows.len();
782
783    // Header-only table: emit the header texts directly.
784    if n_data == 0 {
785        return columns
786            .iter()
787            .map(|s| s.trim())
788            .filter(|s| !s.is_empty())
789            .collect::<Vec<_>>()
790            .join(". ");
791    }
792
793    let data = |r: usize, c: usize| -> &str { cell(num_headers + r, c) };
794    let text = if num_cols == 1 {
795        // Single-column: the first data row is the column name, the rest are
796        // values (a single data row emits its cell text alone).
797        let col_name = data(0, 0).trim().to_string();
798        if n_data == 1 {
799            col_name
800        } else {
801            (1..n_data)
802                .map(|r| format!("{col_name} = {}", data(r, 0).trim()))
803                .collect::<Vec<_>>()
804                .join(". ")
805        }
806    } else {
807        // Triplets over the dataframe with the column names copied as row 0.
808        let mut parts = Vec::new();
809        for r in 0..n_data {
810            for (c, col_name) in columns.iter().enumerate().skip(1) {
811                parts.push(format!(
812                    "{}, {} = {}",
813                    data(r, 0).trim(),
814                    col_name.trim(),
815                    data(r, c).trim()
816                ));
817            }
818        }
819        parts.join(". ")
820    };
821    if !text.is_empty() {
822        return text;
823    }
824
825    // Last-resort flatten: the data rows' non-blank cells joined with '. '
826    // (the header rows are the dataframe's columns, so they are not included).
827    (0..n_data)
828        .flat_map(|r| (0..num_cols).map(move |c| (r, c)))
829        .map(|(r, c)| data(r, c).trim())
830        .filter(|s| !s.is_empty())
831        .collect::<Vec<_>>()
832        .join(". ")
833}
834
835/// Split a markdown-flavoured text into docling's inline-item granularity: a
836/// hyperlink / formatted span / inline formula is its own document item in
837/// docling's model, with plain text runs between them. Returns the standalone
838/// serialization of each item (`[text](url)`, `**bold**`, a formula re-wrapped
839/// as `$$latex$$`, plain text), or a single-element vector when the text is one
840/// uniform item. The single space docling's serializer inserts between inline
841/// items is stripped from the adjacent plain runs.
842fn inline_segments(md: &str) -> Vec<String> {
843    inline_segments_tagged(md)
844        .into_iter()
845        .map(|(t, _)| t)
846        .collect()
847}
848
849/// Like [`inline_segments`], with each segment tagged `true` when it came from
850/// plain (unmarked) text — those may still need splitting at run boundaries
851/// invisible in markdown (underline, soft breaks).
852fn inline_segments_tagged(md: &str) -> Vec<(String, bool)> {
853    let chars: Vec<char> = md.chars().collect();
854    let n = chars.len();
855    let find = |from: usize, pat: &str| -> Option<usize> {
856        let hay: String = chars[from..].iter().collect();
857        hay.find(pat).map(|p| from + hay[..p].chars().count())
858    };
859    let mut out: Vec<(String, bool)> = Vec::new();
860    let mut plain = String::new();
861    let mut after_span = false;
862
863    fn flush(
864        out: &mut Vec<(String, bool)>,
865        plain: &mut String,
866        before_span: bool,
867        after_span: bool,
868    ) {
869        let mut p = std::mem::take(plain);
870        if after_span {
871            if let Some(rest) = p.strip_prefix(' ') {
872                p = rest.to_string();
873            }
874        }
875        if before_span {
876            if let Some(rest) = p.strip_suffix(' ') {
877                p = rest.to_string();
878            }
879        }
880        if !p.is_empty() {
881            out.push((unescape_text(&p), true));
882        }
883    }
884
885    let mut i = 0;
886    while i < n {
887        let rest: String = chars[i..].iter().collect();
888        // A hyperlink span (not an image): the whole `[text](url)` is one item.
889        // The URL may itself contain balanced parentheses (`/Duck_(film)`),
890        // so the closing `)` is found by paren depth, not first match.
891        if chars[i] == '[' && !rest.starts_with("[](") {
892            // The label may itself contain balanced brackets (`[[ 1 ]](#ref)`
893            // has label `[ 1 ]`), but an *unbalanced* `[` means this bracket is
894            // plain text preceding a real link (`[ [*note*](url) ]`).
895            let balanced = |c: usize| {
896                let mut d = 0i32;
897                for &ch in &chars[i + 1..c] {
898                    match ch {
899                        '[' => d += 1,
900                        ']' => d -= 1,
901                        _ => {}
902                    }
903                }
904                d == 0
905            };
906            if let Some(close) = find(i + 1, "](").filter(|&c| balanced(c)) {
907                let mut depth = 0usize;
908                let mut url_end = None;
909                for (k, &c) in chars.iter().enumerate().skip(close + 2) {
910                    match c {
911                        '(' => depth += 1,
912                        ')' => {
913                            if depth == 0 {
914                                url_end = Some(k);
915                                break;
916                            }
917                            depth -= 1;
918                        }
919                        _ => {}
920                    }
921                }
922                if let Some(endp) = url_end {
923                    flush(&mut out, &mut plain, true, after_span);
924                    out.push((
925                        unescape_text(&chars[i..=endp].iter().collect::<String>()),
926                        false,
927                    ));
928                    i = endp + 1;
929                    after_span = true;
930                    continue;
931                }
932            }
933        }
934        // A formatted span; longest markers first. An inline code span is a
935        // code item in docling's model, whose standalone form is a fenced block.
936        let mut matched = false;
937        for marker in ["***", "**", "*", "~~", "`"] {
938            if rest.starts_with(marker) {
939                let mlen = marker.chars().count();
940                if let Some(end) = find(i + mlen, marker) {
941                    // A whitespace-only span (`* *` from a literal asterisk in
942                    // running text next to a real italic) is not a docling run:
943                    // treat the marker as plain text.
944                    let inner_blank = chars[i + mlen..end].iter().all(|c| c.is_whitespace());
945                    if end > i + mlen && !inner_blank {
946                        flush(&mut out, &mut plain, true, after_span);
947                        if marker == "`" {
948                            let inner: String = chars[i + 1..end].iter().collect();
949                            out.push((format!("```\n{}\n```", unescape_text(&inner)), false));
950                        } else {
951                            out.push((
952                                unescape_text(&chars[i..end + mlen].iter().collect::<String>()),
953                                false,
954                            ));
955                        }
956                        i = end + mlen;
957                        after_span = true;
958                        matched = true;
959                    }
960                }
961                break;
962            }
963        }
964        if matched {
965            continue;
966        }
967        // A literal `$$` inside running text is not an inline formula: copy it
968        // through as plain characters.
969        if rest.starts_with("$$") {
970            plain.push_str("$$");
971            i += 2;
972            continue;
973        }
974        // An inline formula: standalone it re-serializes in display form.
975        if chars[i] == '$' {
976            if let Some(end) = find(i + 1, "$") {
977                if end > i + 1 {
978                    flush(&mut out, &mut plain, true, after_span);
979                    let latex: String = chars[i + 1..end].iter().collect();
980                    out.push((format!("$${latex}$$"), false));
981                    i = end + 1;
982                    after_span = true;
983                    continue;
984                }
985            }
986        }
987        plain.push(chars[i]);
988        i += 1;
989    }
990    flush(&mut out, &mut plain, false, after_span);
991    if out.is_empty() {
992        out.push((unescape_text(md), true));
993    }
994    out
995}
996
997/// Split a plain markdown segment at run boundaries the markdown cannot show
998/// (an underlined run, a `<sub>`/`<sup>` run): when a consecutive window of
999/// two or more unmarked runs exactly covers the segment, each run is its own
1000/// document item.
1001fn split_plain_by_runs(segment: &str, runs: &[crate::InlineRun]) -> Option<Vec<String>> {
1002    let target = segment.trim();
1003    if target.is_empty() {
1004        return None;
1005    }
1006    let plainish =
1007        |r: &crate::InlineRun| !r.bold && !r.italic && !r.strike && !r.code && !r.formula;
1008    let fully_plain =
1009        |r: &crate::InlineRun| plainish(r) && !r.underline && r.script == crate::Script::Baseline;
1010    let unmarked: Vec<(&str, bool)> = runs
1011        .iter()
1012        .filter(|r| plainish(r))
1013        .map(|r| (r.text.as_str(), fully_plain(r)))
1014        .collect();
1015    for start in 0..unmarked.len() {
1016        let mut rest = target;
1017        let mut taken: Vec<(String, bool)> = Vec::new();
1018        for (t, fully) in &unmarked[start..] {
1019            let t = t.trim();
1020            if t.is_empty() {
1021                continue;
1022            }
1023            match rest.strip_prefix(t) {
1024                Some(r) => {
1025                    taken.push((unescape_text(t), *fully));
1026                    rest = r.trim_start();
1027                    if rest.is_empty() {
1028                        break;
1029                    }
1030                }
1031                None => break,
1032            }
1033        }
1034        if rest.is_empty() && taken.len() >= 2 {
1035            // Consecutive fully-plain pieces (no underline / sub / sup) are one
1036            // annotation in docling's model — `simplify_text_elements` merges
1037            // them joined with a space, so they never split between themselves.
1038            // Only an underline / sub / sup run is a genuine boundary.
1039            let mut merged: Vec<(String, bool)> = Vec::new();
1040            for (t, fully) in taken {
1041                match merged.last_mut() {
1042                    Some((last, true)) if fully => {
1043                        last.push(' ');
1044                        last.push_str(&t);
1045                    }
1046                    _ => merged.push((t, fully)),
1047                }
1048            }
1049            if merged.len() >= 2 {
1050                return Some(merged.into_iter().map(|(t, _)| t).collect());
1051            }
1052            return None;
1053        }
1054    }
1055    None
1056}
1057
1058/// A table cell's text for the triplet serializer. A *rich* cell (one carrying
1059/// block content) is re-serialized the way docling's chunking serializer sees
1060/// it: paragraphs joined with blank lines, a nested table as its own triplet
1061/// sentences, pictures as an empty placeholder. Plain cells use the flat text
1062/// with the markdown image placeholder stripped (the chunking serializer's
1063/// `image_placeholder` is empty).
1064fn cell_chunk_text(t: &Table, r: usize, c: usize) -> String {
1065    if let Some(blocks) = t
1066        .cell_blocks
1067        .as_ref()
1068        .and_then(|b| b.get(r))
1069        .and_then(|row| row.get(c))
1070        .filter(|b| !b.is_empty())
1071    {
1072        let mut parts: Vec<String> = Vec::new();
1073        for node in blocks.iter() {
1074            let part = block_chunk_text(node);
1075            if !part.is_empty() {
1076                parts.push(part);
1077            }
1078        }
1079        return parts.join("\n\n");
1080    }
1081    let flat = t
1082        .rows
1083        .get(r)
1084        .and_then(|row| row.get(c))
1085        .map(String::as_str)
1086        .unwrap_or("");
1087    unescape_text(flat)
1088        .replace("<!-- image -->", "")
1089        .trim()
1090        .to_string()
1091}
1092
1093/// One block of a rich cell, serialized for chunking.
1094fn block_chunk_text(node: &Node) -> String {
1095    match node {
1096        Node::Paragraph { text } => unescape_text(text),
1097        Node::InlineGroup { md_text, .. } => unescape_text(md_text),
1098        Node::Code { text, .. } => format!("```\n{}\n```", unescape_text(text)),
1099        Node::Table(inner) => triplet_table_text(inner),
1100        Node::Picture { caption, .. } => caption
1101            .as_deref()
1102            .filter(|c| !c.is_empty())
1103            .map(unescape_text)
1104            .unwrap_or_default(),
1105        Node::ListItem {
1106            ordered,
1107            number,
1108            text,
1109            ..
1110        } => {
1111            let marker = if *ordered {
1112                format!("{number}.")
1113            } else {
1114                "-".to_string()
1115            };
1116            format!("{marker} {}", unescape_text(text))
1117        }
1118        Node::CheckboxItem { checked, text } => {
1119            let mark = if *checked { "- [x] " } else { "- [ ] " };
1120            format!("{mark}{}", unescape_text(text))
1121        }
1122        Node::Heading { text, .. } => unescape_text(text),
1123        Node::Located { inner, .. } | Node::Prov { inner, .. } | Node::Commented { inner, .. } => {
1124            block_chunk_text(inner)
1125        }
1126        Node::Group { layer: Some(_), .. } => String::new(),
1127        Node::Group { children, .. } => children
1128            .iter()
1129            .map(block_chunk_text)
1130            .filter(|s| !s.is_empty())
1131            .collect::<Vec<_>>()
1132            .join("\n"),
1133        _ => String::new(),
1134    }
1135}
1136
1137/// Reverse the model's baked markdown text escaping — same mapping as the JSON
1138/// exporter (docling chunks carry raw text).
1139fn unescape_text(s: &str) -> String {
1140    s.replace("&lt;", "<")
1141        .replace("&gt;", ">")
1142        .replace("&amp;", "&")
1143        .replace("\\_", "_")
1144}
1145
1146// ---------------------------------------------------------------------------
1147// Hybrid chunker
1148// ---------------------------------------------------------------------------
1149
1150/// Token counting for [`HybridChunker`] — docling's `BaseTokenizer`.
1151pub trait ChunkTokenizer {
1152    /// Number of tokens in `text` (no special tokens).
1153    fn count_tokens(&self, text: &str) -> usize;
1154    /// The chunk budget (docling's `max_tokens`, e.g. 256 for MiniLM).
1155    fn max_tokens(&self) -> usize;
1156}
1157
1158/// Tokenization-aware chunker on top of [`HierarchicalChunker`] — docling's
1159/// `HybridChunker` with default parameters (`merge_peers`,
1160/// `repeat_table_header` on; `omit_header_on_overflow` off).
1161pub struct HybridChunker<T: ChunkTokenizer> {
1162    tokenizer: T,
1163    merge_peers: bool,
1164}
1165
1166impl<T: ChunkTokenizer> HybridChunker<T> {
1167    pub fn new(tokenizer: T) -> Self {
1168        Self {
1169            tokenizer,
1170            merge_peers: true,
1171        }
1172    }
1173
1174    /// Disable merging of undersized same-heading neighbours.
1175    pub fn with_merge_peers(mut self, merge_peers: bool) -> Self {
1176        self.merge_peers = merge_peers;
1177        self
1178    }
1179
1180    pub fn max_tokens(&self) -> usize {
1181        self.tokenizer.max_tokens()
1182    }
1183
1184    /// Chunk the document.
1185    pub fn chunk(&self, doc: &DoclingDocument) -> Vec<DocChunk> {
1186        let mut chunks = Vec::new();
1187        self.chunk_with(doc, &mut |c| {
1188            chunks.push(c);
1189            true
1190        });
1191        chunks
1192    }
1193
1194    /// Stream the chunks: each hierarchical chunk is split against the token
1195    /// budget as the document walk produces it, and the peer merge flushes a
1196    /// merged chunk to `sink` as soon as its window closes (a chunk with
1197    /// different headings arrives, or the budget fills). A `false` return from
1198    /// `sink` cancels the chunking. [`Self::chunk`] is this with a collecting
1199    /// sink — the chunks and their order are identical.
1200    pub fn chunk_with(&self, doc: &DoclingDocument, sink: &mut dyn FnMut(DocChunk) -> bool) {
1201        let mut merger = PeerMerger::default();
1202        let mut alive = true;
1203        HierarchicalChunker.chunk_with(doc, &mut |c| {
1204            for split in self.split_by_doc_items(c) {
1205                for chunk in self.split_using_plain_text(split) {
1206                    if !alive {
1207                        return false;
1208                    }
1209                    alive = if self.merge_peers {
1210                        self.merge_push(&mut merger, chunk, sink)
1211                    } else {
1212                        sink(chunk)
1213                    };
1214                }
1215            }
1216            alive
1217        });
1218        if alive {
1219            self.merge_flush(&mut merger, sink);
1220        }
1221    }
1222
1223    fn count_chunk_tokens(&self, chunk: &DocChunk) -> usize {
1224        self.tokenizer.count_tokens(&contextualize(chunk))
1225    }
1226
1227    /// docling's `_make_chunk_from_doc_items`: single-item chunks keep their
1228    /// text; multi-item windows re-join the items' standalone serializations.
1229    fn window_chunk(&self, chunk: &DocChunk, start: usize, end: usize) -> DocChunk {
1230        let doc_items: Vec<ChunkItem> = chunk.doc_items[start..=end].to_vec();
1231        let text = if chunk.doc_items.len() == 1 {
1232            chunk.text.clone()
1233        } else {
1234            doc_items
1235                .iter()
1236                .filter(|it| !it.text.is_empty())
1237                .map(|it| it.text.as_str())
1238                .collect::<Vec<_>>()
1239                .join("\n")
1240        };
1241        DocChunk {
1242            text,
1243            headings: chunk.headings.clone(),
1244            doc_items,
1245        }
1246    }
1247
1248    fn split_by_doc_items(&self, chunk: DocChunk) -> Vec<DocChunk> {
1249        if chunk.doc_items.is_empty() {
1250            return vec![chunk];
1251        }
1252        let max = self.max_tokens();
1253        let num_items = chunk.doc_items.len();
1254        let mut chunks = Vec::new();
1255        let mut window_start = 0usize;
1256        let mut window_end = 0usize; // inclusive
1257        while window_end < num_items {
1258            let mut new_chunk = self.window_chunk(&chunk, window_start, window_end);
1259            if self.count_chunk_tokens(&new_chunk) <= max {
1260                if window_end < num_items - 1 {
1261                    window_end += 1;
1262                    continue;
1263                } else {
1264                    window_end = num_items; // last loop
1265                }
1266            } else if window_start == window_end {
1267                // One item that doesn't fit: keep it; the plain-text splitter
1268                // takes over.
1269                window_end += 1;
1270                window_start = window_end;
1271            } else {
1272                // The window without its last item fit; flush that and start a
1273                // new window at the current item.
1274                new_chunk = self.window_chunk(&chunk, window_start, window_end - 1);
1275                window_start = window_end;
1276            }
1277            chunks.push(new_chunk);
1278        }
1279        chunks
1280    }
1281
1282    fn split_using_plain_text(&self, chunk: DocChunk) -> Vec<DocChunk> {
1283        let total = self.count_chunk_tokens(&chunk);
1284        let max = self.max_tokens();
1285        if total <= max {
1286            return vec![chunk];
1287        }
1288        let text_len = self.tokenizer.count_tokens(&chunk.text);
1289        let other_len = total - text_len;
1290        if other_len >= max {
1291            // Headings alone exceed the budget: drop them and retry.
1292            let stripped = DocChunk {
1293                headings: None,
1294                ..chunk
1295            };
1296            return self.split_using_plain_text(stripped);
1297        }
1298        let available = max - other_len;
1299
1300        let segments =
1301            if chunk.doc_items.len() == 1 && chunk.doc_items[0].kind == ChunkItemKind::Table {
1302                // Table: split line-based, repeating headers. The triplet
1303                // serializer has no header lines, so this is a line-preserving
1304                // split of the table text. (docling constructs the line chunker
1305                // with the *tokenizer's* max_tokens — the `max_tokens=available`
1306                // argument is silently dropped by pydantic — so the line budget is
1307                // the full window, not `available`.)
1308                let lines: Vec<String> = chunk
1309                    .text
1310                    .split('\n')
1311                    .filter(|l| !l.trim().is_empty())
1312                    .map(|l| l.to_string())
1313                    .collect();
1314                line_chunk_text(&lines, &self.tokenizer, max)
1315            } else {
1316                semchunk(&chunk.text, available, &self.tokenizer)
1317            };
1318        segments
1319            .into_iter()
1320            .map(|s| DocChunk {
1321                text: s,
1322                headings: chunk.headings.clone(),
1323                doc_items: chunk.doc_items.clone(),
1324            })
1325            .collect()
1326    }
1327
1328    /// One step of docling's `_merge_chunks_with_matching_metadata`, streamed:
1329    /// extend the window with `chunk` when its headings match the window's and
1330    /// the merged candidate stays within budget, otherwise flush the window to
1331    /// `sink` and start a new one at `chunk`. Returns `false` once the sink
1332    /// cancels.
1333    fn merge_push(
1334        &self,
1335        m: &mut PeerMerger,
1336        chunk: DocChunk,
1337        sink: &mut dyn FnMut(DocChunk) -> bool,
1338    ) -> bool {
1339        if m.window.is_empty() {
1340            m.window.push(chunk);
1341            return true;
1342        }
1343        let candidate = DocChunk {
1344            text: m
1345                .window
1346                .iter()
1347                .map(|c| c.text.as_str())
1348                .chain([chunk.text.as_str()])
1349                .collect::<Vec<_>>()
1350                .join("\n"),
1351            headings: m.window[0].headings.clone(),
1352            doc_items: m
1353                .window
1354                .iter()
1355                .flat_map(|c| c.doc_items.iter().cloned())
1356                .chain(chunk.doc_items.iter().cloned())
1357                .collect(),
1358        };
1359        if chunk.headings == m.window[0].headings
1360            && self.count_chunk_tokens(&candidate) <= self.max_tokens()
1361        {
1362            m.window.push(chunk);
1363            m.merged = Some(candidate);
1364            true
1365        } else {
1366            let alive = self.merge_flush(m, sink);
1367            m.window.push(chunk);
1368            alive
1369        }
1370    }
1371
1372    /// Flush the merge window: a single chunk passes through unchanged, a
1373    /// multi-chunk window emits its precomputed merge. Returns `false` once
1374    /// the sink cancels.
1375    fn merge_flush(&self, m: &mut PeerMerger, sink: &mut dyn FnMut(DocChunk) -> bool) -> bool {
1376        let alive = if m.window.len() == 1 {
1377            sink(m.window.pop().expect("single-chunk window"))
1378        } else if !m.window.is_empty() {
1379            m.window.clear();
1380            sink(m.merged.take().expect("multi-chunk window has a merge"))
1381        } else {
1382            true
1383        };
1384        m.merged = None;
1385        alive
1386    }
1387}
1388
1389/// The in-flight peer-merge window of [`HybridChunker::chunk_with`].
1390#[derive(Default)]
1391struct PeerMerger {
1392    window: Vec<DocChunk>,
1393    merged: Option<DocChunk>,
1394}
1395
1396// ---------------------------------------------------------------------------
1397// Line-based token chunking (docling's LineBasedTokenChunker, empty prefix)
1398// ---------------------------------------------------------------------------
1399
1400/// Pack lines into chunks of at most `max_tokens`, splitting a line only when
1401/// it exceeds the budget on its own — docling's `LineBasedTokenChunker
1402/// .chunk_text` with an empty prefix (which is what the triplet table
1403/// serializer yields). Reproduces its exact output, including the `\n` it
1404/// prepends to a carried-over segment of an oversized line.
1405fn line_chunk_text<T: ChunkTokenizer>(lines: &[String], tok: &T, max_tokens: usize) -> Vec<String> {
1406    let mut chunks: Vec<String> = Vec::new();
1407    let mut current = String::new();
1408    let mut current_len = 0usize;
1409
1410    for line in lines {
1411        let mut remaining: Vec<char> = line.chars().collect();
1412        loop {
1413            let rem_str: String = remaining.iter().collect();
1414            let line_tokens = tok.count_tokens(&rem_str);
1415            let available = max_tokens.saturating_sub(current_len);
1416
1417            if line_tokens <= available {
1418                current.push_str(&rem_str);
1419                current_len += line_tokens;
1420                break;
1421            }
1422            if line_tokens <= max_tokens {
1423                chunks.push(std::mem::take(&mut current));
1424                current_len = 0;
1425                continue;
1426            }
1427            // Too large even for an empty chunk: split off what fits.
1428            let (mut take, rest) = split_by_token_limit(&remaining, available, tok);
1429            let mut rest = rest;
1430            if take.is_empty() {
1431                if rest.is_empty() {
1432                    break;
1433                }
1434                take = rest[..1].iter().collect();
1435                rest = rest[1..].to_vec();
1436            }
1437            current.push('\n');
1438            current.push_str(&take);
1439            chunks.push(std::mem::take(&mut current));
1440            current_len = 0;
1441            remaining = rest;
1442        }
1443    }
1444    if !current.is_empty() {
1445        chunks.push(current);
1446    }
1447    chunks
1448}
1449
1450/// Binary-search the longest char-prefix of `text` within `token_limit`
1451/// tokens, preferring to break at the last ASCII space — docling's
1452/// `split_by_token_limit`.
1453fn split_by_token_limit<T: ChunkTokenizer>(
1454    text: &[char],
1455    token_limit: usize,
1456    tok: &T,
1457) -> (String, Vec<char>) {
1458    if token_limit == 0 || text.is_empty() {
1459        return (String::new(), text.to_vec());
1460    }
1461    let full: String = text.iter().collect();
1462    if tok.count_tokens(&full) <= token_limit {
1463        return (full, Vec::new());
1464    }
1465    let (mut lo, mut hi) = (0usize, text.len());
1466    let mut best: Option<usize> = None;
1467    while lo <= hi {
1468        let mid = (lo + hi) / 2;
1469        let head: String = text[..mid].iter().collect();
1470        if tok.count_tokens(&head) <= token_limit {
1471            best = Some(mid);
1472            lo = mid + 1;
1473        } else {
1474            if mid == 0 {
1475                break;
1476            }
1477            hi = mid - 1;
1478        }
1479    }
1480    let mut best_idx = match best {
1481        Some(b) if b > 0 => b,
1482        _ => return (String::new(), text.to_vec()),
1483    };
1484    // Snap back to the last space, if that leaves a non-empty head.
1485    if let Some(pos) = text[..best_idx].iter().rposition(|c| *c == ' ') {
1486        if pos > 0 {
1487            best_idx = pos;
1488        }
1489    }
1490    (text[..best_idx].iter().collect(), text[best_idx..].to_vec())
1491}
1492
1493// ---------------------------------------------------------------------------
1494// semchunk port (the plain-text splitter HybridChunker delegates to)
1495// ---------------------------------------------------------------------------
1496
1497/// Semantically meaningful non-whitespace splitters, most desirable first.
1498const NON_WS_SPLITTERS: &[&str] = &[
1499    ".", "?", "!", "*", ";", ",", "(", ")", "[", "]", "\u{201c}", "\u{201d}", "\u{2018}",
1500    "\u{2019}", "'", "\"", "`", ":", "\u{2014}", "\u{2026}", "/", "\\", "\u{2013}", "&", "-",
1501];
1502
1503/// Split `text` into chunks of at most `chunk_size` tokens using the most
1504/// semantically meaningful splitter available — the `semchunk` algorithm
1505/// docling's HybridChunker delegates plain-text splitting to.
1506pub fn semchunk<T: ChunkTokenizer>(text: &str, chunk_size: usize, tok: &T) -> Vec<String> {
1507    let mut cache: std::collections::HashMap<String, usize> = std::collections::HashMap::new();
1508    let mut counter = |s: &str| -> usize {
1509        if let Some(n) = cache.get(s) {
1510            return *n;
1511        }
1512        let n = tok.count_tokens(s);
1513        cache.insert(s.to_string(), n);
1514        n
1515    };
1516    let chunks = semchunk_rec(text, chunk_size, &mut counter);
1517    // top-level: drop empty / all-whitespace chunks
1518    chunks
1519        .into_iter()
1520        .filter(|c| !c.is_empty() && !c.chars().all(char::is_whitespace))
1521        .collect()
1522}
1523
1524/// One recursion level of semchunk: split, merge windows back up to size, and
1525/// recurse into oversized splits.
1526fn semchunk_rec(
1527    text: &str,
1528    chunk_size: usize,
1529    counter: &mut dyn FnMut(&str) -> usize,
1530) -> Vec<String> {
1531    let (splitter, splitter_is_ws, splits) = split_text(text);
1532
1533    let split_lens: Vec<usize> = splits.iter().map(|s| s.chars().count()).collect();
1534    let mut cum_lens = Vec::with_capacity(splits.len() + 1);
1535    cum_lens.push(0usize);
1536    for l in &split_lens {
1537        cum_lens.push(cum_lens.last().unwrap() + l);
1538    }
1539    let num_splits_plus_one = splits.len() + 1;
1540
1541    let mut chunks: Vec<String> = Vec::new();
1542    let mut skips: std::collections::HashSet<usize> = std::collections::HashSet::new();
1543
1544    for i in 0..splits.len() {
1545        if skips.contains(&i) {
1546            continue;
1547        }
1548        let split = &splits[i];
1549        if counter(split) > chunk_size {
1550            let inner = semchunk_rec(split, chunk_size, counter);
1551            chunks.extend(inner);
1552        } else {
1553            let (end, merged) = merge_splits(
1554                &splits,
1555                &cum_lens,
1556                chunk_size,
1557                &splitter,
1558                counter,
1559                i,
1560                num_splits_plus_one,
1561            );
1562            for j in (i + 1)..end {
1563                skips.insert(j);
1564            }
1565            chunks.push(merged);
1566        }
1567        // Re-attach a non-whitespace splitter to the last chunk (or emit it as
1568        // its own chunk if it doesn't fit).
1569        let is_last = i == splits.len() - 1 || ((i + 1)..splits.len()).all(|j| skips.contains(&j));
1570        if !splitter_is_ws && !is_last {
1571            let with_splitter = format!(
1572                "{}{}",
1573                chunks.last().map(String::as_str).unwrap_or(""),
1574                splitter
1575            );
1576            if counter(&with_splitter) <= chunk_size {
1577                if let Some(last) = chunks.last_mut() {
1578                    *last = with_splitter;
1579                } else {
1580                    chunks.push(with_splitter);
1581                }
1582            } else {
1583                chunks.push(splitter.clone());
1584            }
1585        }
1586    }
1587    chunks
1588}
1589
1590/// docling/semchunk's `merge_splits`: extend the window with a cum-length-guided
1591/// binary search until the token budget is hit.
1592fn merge_splits(
1593    splits: &[String],
1594    cum_lens: &[usize],
1595    chunk_size: usize,
1596    splitter: &str,
1597    counter: &mut dyn FnMut(&str) -> usize,
1598    start: usize,
1599    high_init: usize,
1600) -> (usize, String) {
1601    let mut average = 0.2f64;
1602    let mut low = start;
1603    let mut high = high_init;
1604    let offset = cum_lens[start];
1605    let mut target = offset as f64 + (chunk_size as f64 * average);
1606
1607    while low < high {
1608        let i = bisect_left(cum_lens, target, low, high);
1609        let midpoint = i.min(high - 1);
1610        let joined = splits[start..midpoint.max(start)].join(splitter);
1611        let tokens = counter(&joined);
1612        let local_cum = cum_lens[midpoint] - offset;
1613        if local_cum > 0 && tokens > 0 {
1614            average = local_cum as f64 / tokens as f64;
1615            target = offset as f64 + (chunk_size as f64 * average);
1616        }
1617        if tokens > chunk_size {
1618            high = midpoint;
1619        } else {
1620            low = midpoint + 1;
1621        }
1622    }
1623    let end = low - 1;
1624    (end, splits[start..end.max(start)].join(splitter))
1625}
1626
1627fn bisect_left(sorted: &[usize], target: f64, mut low: usize, mut high: usize) -> usize {
1628    while low < high {
1629        let mid = (low + high) / 2;
1630        if (sorted[mid] as f64) < target {
1631            low = mid + 1;
1632        } else {
1633            high = mid;
1634        }
1635    }
1636    low
1637}
1638
1639/// semchunk's `_split_text`: pick the most desirable splitter present.
1640fn split_text(text: &str) -> (String, bool, Vec<String>) {
1641    // Longest run of newlines/carriage returns.
1642    if text.contains('\n') || text.contains('\r') {
1643        let splitter = longest_run(text, |c| c == '\n' || c == '\r');
1644        return (splitter.clone(), true, split_on(text, &splitter));
1645    }
1646    // Longest run of tabs.
1647    if text.contains('\t') {
1648        let splitter = longest_run(text, |c| c == '\t');
1649        return (splitter.clone(), true, split_on(text, &splitter));
1650    }
1651    // Longest run of whitespace.
1652    if text.chars().any(char::is_whitespace) {
1653        let splitter = longest_run(text, char::is_whitespace);
1654        if splitter.chars().count() == 1 {
1655            // Prefer a whitespace char preceded by a semantic splitter.
1656            for preceder in NON_WS_SPLITTERS {
1657                if let Some((ws, parts)) = split_after_preceder(text, preceder) {
1658                    return (ws, true, parts);
1659                }
1660            }
1661        }
1662        return (splitter.clone(), true, split_on(text, &splitter));
1663    }
1664    // Most desirable semantic splitter present.
1665    for s in NON_WS_SPLITTERS {
1666        if text.contains(s) {
1667            return (s.to_string(), false, split_on(text, s));
1668        }
1669    }
1670    // No splitter at all: split into characters.
1671    (
1672        String::new(),
1673        true,
1674        text.chars().map(|c| c.to_string()).collect(),
1675    )
1676}
1677
1678/// The longest maximal run of chars matching `pred` (first one wins ties).
1679fn longest_run(text: &str, pred: impl Fn(char) -> bool) -> String {
1680    let mut best = String::new();
1681    let mut cur = String::new();
1682    for c in text.chars() {
1683        if pred(c) {
1684            cur.push(c);
1685        } else {
1686            if cur.chars().count() > best.chars().count() {
1687                best = cur.clone();
1688            }
1689            cur.clear();
1690        }
1691    }
1692    if cur.chars().count() > best.chars().count() {
1693        best = cur;
1694    }
1695    best
1696}
1697
1698fn split_on(text: &str, splitter: &str) -> Vec<String> {
1699    text.split(splitter).map(str::to_string).collect()
1700}
1701
1702/// Python: `re.search(rf'{p}(\s)', text)` → the first whitespace char preceded
1703/// by `p`; then `re.split(rf'(?<={p}){s}', text)` — split at every occurrence
1704/// of that whitespace char immediately preceded by `p`.
1705fn split_after_preceder(text: &str, preceder: &str) -> Option<(String, Vec<String>)> {
1706    let chars: Vec<char> = text.chars().collect();
1707    let p: Vec<char> = preceder.chars().collect();
1708    let mut ws: Option<char> = None;
1709    for i in p.len()..chars.len() {
1710        if chars[i].is_whitespace() && chars[i - p.len()..i] == p[..] {
1711            ws = Some(chars[i]);
1712            break;
1713        }
1714    }
1715    let ws = ws?;
1716    let mut parts = Vec::new();
1717    let mut cur = String::new();
1718    let mut i = 0usize;
1719    while i < chars.len() {
1720        if chars[i] == ws && i >= p.len() && chars[i - p.len()..i] == p[..] {
1721            parts.push(std::mem::take(&mut cur));
1722            i += 1;
1723            continue;
1724        }
1725        cur.push(chars[i]);
1726        i += 1;
1727    }
1728    parts.push(cur);
1729    Some((ws.to_string(), parts))
1730}
1731
1732// ---------------------------------------------------------------------------
1733// HuggingFace tokenizer (feature `chunking`)
1734// ---------------------------------------------------------------------------
1735
1736#[cfg(feature = "chunking")]
1737mod hf {
1738    use super::ChunkTokenizer;
1739
1740    /// Where `scripts/install/download_dependencies.sh` puts the hybrid
1741    /// chunker's default tokenizer (all-MiniLM-L6-v2's `tokenizer.json`),
1742    /// relative to the process's working directory — the same convention as
1743    /// the `.models/` ONNX files.
1744    pub const DEFAULT_TOKENIZER_PATH: &str = ".models/chunk/tokenizer.json";
1745
1746    /// Resolve the tokenizer path for the hybrid chunker: an explicit path
1747    /// wins; otherwise fall back to [`DEFAULT_TOKENIZER_PATH`] when it exists
1748    /// on disk. Errors with the download instructions when neither is
1749    /// available.
1750    pub fn resolve_tokenizer_path(explicit: Option<&str>) -> Result<String, String> {
1751        if let Some(p) = explicit {
1752            return Ok(p.to_string());
1753        }
1754        let resolved = crate::assets::resolve(DEFAULT_TOKENIZER_PATH);
1755        if std::path::Path::new(&resolved).exists() {
1756            return Ok(resolved);
1757        }
1758        Err(format!(
1759            "the hybrid chunker needs a HuggingFace tokenizer.json: none passed and \
1760             {DEFAULT_TOKENIZER_PATH} does not exist — run \
1761             scripts/install/download_dependencies.sh (or pass an explicit path)"
1762        ))
1763    }
1764
1765    /// [`ChunkTokenizer`] backed by a HuggingFace `tokenizer.json` — the Rust
1766    /// analogue of docling's `HuggingFaceTokenizer` (whose default is
1767    /// `sentence-transformers/all-MiniLM-L6-v2` with `max_tokens` 256).
1768    pub struct HuggingFaceTokenizer {
1769        tok: tokenizers::Tokenizer,
1770        max_tokens: usize,
1771    }
1772
1773    impl HuggingFaceTokenizer {
1774        /// Load the tokenizer from an explicit path, or from
1775        /// [`DEFAULT_TOKENIZER_PATH`] when `path` is `None` (see
1776        /// [`resolve_tokenizer_path`]).
1777        pub fn resolve(path: Option<&str>, max_tokens: usize) -> Result<Self, String> {
1778            Self::from_file(resolve_tokenizer_path(path)?, max_tokens)
1779        }
1780
1781        /// Load a `tokenizer.json`. `max_tokens` is the chunk budget (docling
1782        /// resolves it from the model's `sentence_bert_config.json`; for the
1783        /// default MiniLM model that is 256).
1784        pub fn from_file(
1785            path: impl AsRef<std::path::Path>,
1786            max_tokens: usize,
1787        ) -> Result<Self, String> {
1788            let mut tok = tokenizers::Tokenizer::from_file(path.as_ref())
1789                .map_err(|e| format!("failed to load tokenizer: {e}"))?;
1790            // Counting must see the full text (docling tokenizes without
1791            // truncation, padding, or special tokens — MiniLM's tokenizer.json
1792            // ships with fixed-length padding enabled, which would make every
1793            // short string count as the padded length).
1794            let _ = tok.with_truncation(None);
1795            tok.with_padding(None);
1796            Ok(Self { tok, max_tokens })
1797        }
1798    }
1799
1800    impl ChunkTokenizer for HuggingFaceTokenizer {
1801        fn count_tokens(&self, text: &str) -> usize {
1802            self.tok
1803                .encode(text, false)
1804                .map(|e| e.get_tokens().len())
1805                .unwrap_or(0)
1806        }
1807        fn max_tokens(&self) -> usize {
1808            self.max_tokens
1809        }
1810    }
1811}
1812
1813#[cfg(feature = "chunking")]
1814pub use hf::{resolve_tokenizer_path, HuggingFaceTokenizer, DEFAULT_TOKENIZER_PATH};
1815
1816// ---------------------------------------------------------------------------
1817// Window chunker (feature `chunking`) — docling-rag's Markdown window chunker
1818// ---------------------------------------------------------------------------
1819
1820#[cfg(feature = "chunking")]
1821mod window {
1822    use super::DocChunk;
1823    use pulldown_cmark::{Event, HeadingLevel, Parser, Tag, TagEnd};
1824
1825    /// A contiguous run of body text under a heading path.
1826    #[derive(Debug, Clone, Default)]
1827    pub struct Section {
1828        /// The heading stack in effect for this section, outermost first
1829        /// (e.g. `["Guide", "Setup"]`). Empty for pre-heading / body-only text.
1830        pub heading_path: Vec<String>,
1831        /// The plain words of the section body, markup stripped.
1832        pub words: Vec<String>,
1833    }
1834
1835    impl Section {
1836        /// The heading path rendered as a single context line, e.g.
1837        /// `# Guide > Setup`. Empty string when there is no heading.
1838        pub fn heading_context(&self) -> String {
1839            if self.heading_path.is_empty() {
1840                String::new()
1841            } else {
1842                format!("# {}", self.heading_path.join(" > "))
1843            }
1844        }
1845    }
1846
1847    fn level_index(level: HeadingLevel) -> usize {
1848        match level {
1849            HeadingLevel::H1 => 1,
1850            HeadingLevel::H2 => 2,
1851            HeadingLevel::H3 => 3,
1852            HeadingLevel::H4 => 4,
1853            HeadingLevel::H5 => 5,
1854            HeadingLevel::H6 => 6,
1855        }
1856    }
1857
1858    /// Parse Markdown into heading-bounded sections. A new section starts at
1859    /// every heading; the heading path is maintained as a stack keyed by
1860    /// heading level.
1861    pub fn parse_sections(markdown: &str) -> Vec<Section> {
1862        parse_sections_with_stack(markdown, Vec::new()).0
1863    }
1864
1865    /// [`parse_sections`] with an explicit initial heading stack, returning the
1866    /// final stack — lets a streaming caller carry heading context across
1867    /// pieces. `heading_stack[i]` holds the current heading text at level `i+1`
1868    /// (may be empty when a level was skipped).
1869    pub fn parse_sections_with_stack(
1870        markdown: &str,
1871        initial_stack: Vec<String>,
1872    ) -> (Vec<Section>, Vec<String>) {
1873        let mut heading_stack: Vec<String> = initial_stack;
1874        let mut sections: Vec<Section> = Vec::new();
1875        // Text before the first heading of this piece continues the carried-over
1876        // section, so it keeps the heading path in effect at the split point.
1877        let mut current = Section {
1878            heading_path: heading_stack
1879                .iter()
1880                .filter(|h| !h.is_empty())
1881                .cloned()
1882                .collect(),
1883            words: Vec::new(),
1884        };
1885
1886        let mut in_heading = false;
1887        let mut heading_level = 0usize;
1888        let mut heading_buf = String::new();
1889
1890        let push_words = |section: &mut Section, text: &str| {
1891            for w in text.split_whitespace() {
1892                section.words.push(w.to_string());
1893            }
1894        };
1895
1896        let flush = |sections: &mut Vec<Section>, section: &mut Section| {
1897            if !section.words.is_empty() {
1898                sections.push(std::mem::take(section));
1899            } else {
1900                *section = Section::default();
1901            }
1902        };
1903
1904        for event in Parser::new(markdown) {
1905            match event {
1906                Event::Start(Tag::Heading { level, .. }) => {
1907                    in_heading = true;
1908                    heading_level = level_index(level);
1909                    heading_buf.clear();
1910                }
1911                Event::End(TagEnd::Heading(_)) => {
1912                    in_heading = false;
1913                    // Update the heading stack: set this level, drop anything deeper.
1914                    let idx = heading_level.saturating_sub(1);
1915                    if heading_stack.len() <= idx {
1916                        heading_stack.resize(idx + 1, String::new());
1917                    } else {
1918                        heading_stack.truncate(idx + 1);
1919                    }
1920                    heading_stack[idx] = heading_buf.trim().to_string();
1921                    // A heading begins a new section.
1922                    flush(&mut sections, &mut current);
1923                    current.heading_path = heading_stack
1924                        .iter()
1925                        .filter(|h| !h.is_empty())
1926                        .cloned()
1927                        .collect();
1928                }
1929                Event::Text(t) | Event::Code(t) => {
1930                    if in_heading {
1931                        if !heading_buf.is_empty() {
1932                            heading_buf.push(' ');
1933                        }
1934                        heading_buf.push_str(&t);
1935                    } else {
1936                        push_words(&mut current, &t);
1937                    }
1938                }
1939                // Treat hard/soft breaks and rules as whitespace (words already split).
1940                Event::SoftBreak | Event::HardBreak | Event::Rule => {}
1941                _ => {}
1942            }
1943        }
1944        flush(&mut sections, &mut current);
1945        (sections, heading_stack)
1946    }
1947
1948    /// docling-rag's Markdown **window chunker**: the document is split into
1949    /// heading-bounded [`Section`]s of plain words (markup stripped), and a
1950    /// fixed-size window of [`Self::max_words`] words slides over each section
1951    /// with [`Self::overlap`] fractional overlap. A chunk never crosses a
1952    /// heading boundary; [`Self::contextualize`] prefixes the heading path.
1953    #[derive(Debug, Clone)]
1954    pub struct WindowChunker {
1955        /// Window size in words (docling-rag's default 300).
1956        pub max_words: usize,
1957        /// Fractional overlap between consecutive windows (default 0.05 = 5%).
1958        pub overlap: f32,
1959    }
1960
1961    impl Default for WindowChunker {
1962        fn default() -> Self {
1963            WindowChunker {
1964                max_words: 300,
1965                overlap: 0.05,
1966            }
1967        }
1968    }
1969
1970    impl WindowChunker {
1971        pub fn new(max_words: usize, overlap: f32) -> Self {
1972            WindowChunker { max_words, overlap }
1973        }
1974
1975        /// The window size, kept ≥ 1.
1976        fn word_budget(&self) -> usize {
1977            self.max_words.max(1)
1978        }
1979
1980        /// Number of words carried from one window into the next; capped so
1981        /// the window always advances.
1982        fn overlap_words(&self, budget: usize) -> usize {
1983            let o = (budget as f32 * self.overlap).round() as usize;
1984            o.min(budget.saturating_sub(1))
1985        }
1986
1987        /// Chunk a Markdown document.
1988        pub fn chunk(&self, markdown: &str) -> Vec<DocChunk> {
1989            let mut chunks = Vec::new();
1990            self.chunk_with(markdown, &mut |c| {
1991                chunks.push(c);
1992                true
1993            });
1994            chunks
1995        }
1996
1997        /// Stream the chunks: `sink` receives each window as it is cut, and a
1998        /// `false` return cancels. [`Self::chunk`] is this with a collecting
1999        /// sink — the chunks and their order are identical.
2000        pub fn chunk_with(&self, markdown: &str, sink: &mut dyn FnMut(DocChunk) -> bool) {
2001            let (sections, _) = parse_sections_with_stack(markdown, Vec::new());
2002            for section in &sections {
2003                if !self.pack_section(section, sink) {
2004                    return;
2005                }
2006            }
2007        }
2008
2009        /// Slide the window over one completed section, feeding each chunk to
2010        /// `sink`. Returns `false` once the sink cancels — exposed so a
2011        /// streaming caller (docling-rag) can pack sections as they complete.
2012        pub fn pack_section(
2013            &self,
2014            section: &Section,
2015            sink: &mut dyn FnMut(DocChunk) -> bool,
2016        ) -> bool {
2017            let words = &section.words;
2018            if words.is_empty() {
2019                return true;
2020            }
2021            let budget = self.word_budget();
2022            let step = budget - self.overlap_words(budget); // ≥ 1 by construction
2023            let mut start = 0;
2024            loop {
2025                let end = (start + budget).min(words.len());
2026                let chunk = DocChunk {
2027                    text: words[start..end].join(" "),
2028                    headings: (!section.heading_path.is_empty())
2029                        .then(|| section.heading_path.clone()),
2030                    doc_items: Vec::new(),
2031                };
2032                if !sink(chunk) {
2033                    return false;
2034                }
2035                if end >= words.len() {
2036                    return true;
2037                }
2038                start += step;
2039            }
2040        }
2041
2042        /// Render a window chunk for embedding — docling-rag's rendering: the
2043        /// heading path as a `# Outer > Inner` context line, a blank line,
2044        /// then the body (just the body above any heading). Note this differs
2045        /// from the docling chunkers' [`contextualize`](super::contextualize),
2046        /// matching docling-rag instead.
2047        pub fn contextualize(chunk: &DocChunk) -> String {
2048            match &chunk.headings {
2049                Some(h) if !h.is_empty() => format!("# {}\n\n{}", h.join(" > "), chunk.text),
2050                _ => chunk.text.clone(),
2051            }
2052        }
2053    }
2054
2055    #[cfg(test)]
2056    mod tests {
2057        use super::*;
2058
2059        #[test]
2060        fn splits_on_headings_and_tracks_path() {
2061            let md = "\
2062intro words
2063# Chapter 1
2064para one
2065## Section 1.1
2066para two
2067# Chapter 2
2068para three";
2069            let secs = parse_sections(md);
2070            // pre-heading intro, Chapter 1, Section 1.1, Chapter 2.
2071            assert_eq!(secs.len(), 4);
2072            assert!(secs[0].heading_path.is_empty());
2073            assert_eq!(secs[1].heading_path, vec!["Chapter 1"]);
2074            assert_eq!(secs[2].heading_path, vec!["Chapter 1", "Section 1.1"]);
2075            // A deeper heading is dropped when we return to H1.
2076            assert_eq!(secs[3].heading_path, vec!["Chapter 2"]);
2077        }
2078
2079        #[test]
2080        fn strips_markup_to_plain_words() {
2081            let md = "# T\n\nSome **bold** and `code` and [a link](http://x).";
2082            let secs = parse_sections(md);
2083            let words = &secs[0].words;
2084            assert!(words.contains(&"bold".to_string()));
2085            assert!(words.contains(&"code".to_string()));
2086            assert!(words.contains(&"link".to_string()));
2087            // No markdown punctuation survives as its own token.
2088            assert!(!words.iter().any(|w| w.contains('*') || w.contains('`')));
2089        }
2090
2091        #[test]
2092        fn windows_overlap_and_never_cross_headings() {
2093            let body: Vec<String> = (0..25).map(|i| format!("w{i}")).collect();
2094            let md = format!("# A\n\n{}\n\n# B\n\nshort tail\n", body.join(" "));
2095            let chunker = WindowChunker::new(10, 0.2); // step 8, overlap 2
2096            let chunks = chunker.chunk(&md);
2097            // Section A: 25 words → windows [0..10), [8..18), [16..25).
2098            let a: Vec<_> = chunks
2099                .iter()
2100                .filter(|c| c.headings.as_deref() == Some(&["A".to_string()][..]))
2101                .collect();
2102            assert_eq!(a.len(), 3);
2103            assert!(a[0].text.starts_with("w0 ") && a[0].text.ends_with(" w9"));
2104            assert!(a[1].text.starts_with("w8 "), "overlap carries 2 words");
2105            assert!(a[2].text.ends_with(" w24"));
2106            // Section B stays its own chunk; nothing crosses the heading.
2107            let b: Vec<_> = chunks
2108                .iter()
2109                .filter(|c| c.headings.as_deref() == Some(&["B".to_string()][..]))
2110                .collect();
2111            assert_eq!(b.len(), 1);
2112            assert_eq!(b[0].text, "short tail");
2113            assert_eq!(WindowChunker::contextualize(b[0]), "# B\n\nshort tail");
2114        }
2115
2116        #[test]
2117        fn sink_false_cancels_the_window_walk() {
2118            let md = format!(
2119                "# A\n\n{}\n",
2120                (0..50)
2121                    .map(|i| format!("w{i}"))
2122                    .collect::<Vec<_>>()
2123                    .join(" ")
2124            );
2125            let chunker = WindowChunker::new(10, 0.0);
2126            let mut n = 0;
2127            chunker.chunk_with(&md, &mut |_| {
2128                n += 1;
2129                false
2130            });
2131            assert_eq!(n, 1);
2132        }
2133    }
2134}
2135
2136#[cfg(feature = "chunking")]
2137pub use window::{parse_sections, parse_sections_with_stack, Section, WindowChunker};
2138
2139#[cfg(test)]
2140mod tests {
2141    use super::*;
2142
2143    /// A whitespace "tokenizer" for algorithm tests.
2144    struct WordTok(usize);
2145    impl ChunkTokenizer for WordTok {
2146        fn count_tokens(&self, text: &str) -> usize {
2147            text.split_whitespace().count()
2148        }
2149        fn max_tokens(&self) -> usize {
2150            self.0
2151        }
2152    }
2153
2154    fn doc_with(nodes: Vec<Node>) -> DoclingDocument {
2155        let mut d = DoclingDocument::new("t");
2156        for n in nodes {
2157            d.push(n);
2158        }
2159        d
2160    }
2161
2162    #[test]
2163    fn hierarchical_headings_and_items() {
2164        let doc = doc_with(vec![
2165            Node::Heading {
2166                level: 1,
2167                text: "Title".into(),
2168            },
2169            Node::Paragraph {
2170                text: "Intro".into(),
2171            },
2172            Node::Heading {
2173                level: 2,
2174                text: "Sec".into(),
2175            },
2176            Node::Paragraph {
2177                text: "Body".into(),
2178            },
2179        ]);
2180        let chunks = HierarchicalChunker.chunk(&doc);
2181        assert_eq!(chunks.len(), 2);
2182        assert_eq!(chunks[0].text, "Intro");
2183        assert_eq!(chunks[0].headings.as_deref(), Some(&["Title".into()][..]));
2184        assert_eq!(chunks[0].doc_items[0].self_ref, "#/texts/1");
2185        assert_eq!(
2186            chunks[1].headings.as_deref(),
2187            Some(&["Title".into(), "Sec".into()][..])
2188        );
2189        assert_eq!(contextualize(&chunks[1]), "Title\nSec\nBody");
2190    }
2191
2192    #[test]
2193    fn heading_shadowing_prunes_deeper_levels() {
2194        let doc = doc_with(vec![
2195            Node::Heading {
2196                level: 2,
2197                text: "A".into(),
2198            },
2199            Node::Heading {
2200                level: 3,
2201                text: "A.1".into(),
2202            },
2203            Node::Heading {
2204                level: 2,
2205                text: "B".into(),
2206            },
2207            Node::Paragraph { text: "p".into() },
2208        ]);
2209        let chunks = HierarchicalChunker.chunk(&doc);
2210        assert_eq!(chunks[0].headings.as_deref(), Some(&["B".into()][..]));
2211    }
2212
2213    #[test]
2214    fn triplet_table() {
2215        let t = Table {
2216            rows: vec![
2217                vec!["".into(), "Col1".into()],
2218                vec!["Row1".into(), "v".into()],
2219            ],
2220            ..Default::default()
2221        };
2222        assert_eq!(triplet_table_text(&t), "Row1, Col1 = v");
2223        // Single-column: row 0 is the dataframe header, the first data row
2224        // becomes the column name, the rest the values.
2225        let single = Table {
2226            rows: vec![vec!["H".into()], vec!["a".into()], vec!["b".into()]],
2227            ..Default::default()
2228        };
2229        assert_eq!(triplet_table_text(&single), "a = b");
2230    }
2231
2232    #[test]
2233    fn hybrid_merges_small_peers_and_splits_large() {
2234        let doc = doc_with(vec![
2235            Node::Heading {
2236                level: 2,
2237                text: "S".into(),
2238            },
2239            Node::Paragraph { text: "a b".into() },
2240            Node::Paragraph { text: "c d".into() },
2241        ]);
2242        let chunks = HybridChunker::new(WordTok(16)).chunk(&doc);
2243        assert_eq!(chunks.len(), 1, "peers under one heading merge");
2244        assert_eq!(chunks[0].text, "a b\nc d");
2245
2246        let long = "w ".repeat(40).trim().to_string();
2247        let doc = doc_with(vec![Node::Paragraph { text: long }]);
2248        let chunks = HybridChunker::new(WordTok(16)).chunk(&doc);
2249        assert!(chunks.len() > 1, "oversized paragraph splits");
2250        for c in &chunks {
2251            assert!(WordTok(16).count_tokens(&contextualize(c)) <= 16);
2252        }
2253    }
2254
2255    #[test]
2256    fn semchunk_prefers_newlines_then_sentences() {
2257        let tok = WordTok(4);
2258        let out = semchunk("one two three. four five six\nseven eight", 4, &tok);
2259        assert!(out.iter().all(|c| tok.count_tokens(c) <= 4), "{out:?}");
2260    }
2261}