docling_pdf/pdfium_backend.rs
1//! pdfium-based text extraction and page rendering.
2//!
3//! Text is reconstructed the way docling's `docling-parse` does it, so the
4//! output spacing matches the groundtruth: the page's **character** stream is
5//! grouped into **words** (split at a horizontal gap wider than a fraction of
6//! the font height — font-relative, so letter-tracking in display titles does
7//! not split a word) and words into **lines** (by baseline). pdfium-render's
8//! safe API only exposes whole style runs / `GetBoundedText`, so the character
9//! loop is driven through the raw `PdfiumLibraryBindings` FFI on a second handle
10//! to the same bytes (no fork; stays publishable).
11
12#[cfg(feature = "ocr-prep")]
13use image::RgbImage;
14#[cfg(feature = "ml")]
15use pdfium_render::prelude::*;
16
17/// A run of text with its bounding box, in PDF points with a **top-left** origin
18/// (pdfium's native origin is bottom-left; we flip it to match docling's
19/// `BoundingBox(..., origin=TOPLEFT)`).
20#[derive(Debug, Clone)]
21pub struct TextCell {
22 pub text: String,
23 pub l: f32,
24 pub t: f32,
25 pub r: f32,
26 pub b: f32,
27}
28
29/// Pixels-per-point used to render page images. Layout is scale-invariant (it
30/// scales normalized boxes by the page point size), but OCR benefits from the
31/// extra resolution.
32pub const RENDER_SCALE: f32 = 2.0;
33
34/// One page's geometry, extracted text cells, and a rendered RGB image. The
35/// image is rendered at [`RENDER_SCALE`] pixels per PDF point; `image px =
36/// page point × scale`.
37#[derive(Clone)]
38pub struct PdfPage {
39 pub width: f32,
40 pub height: f32,
41 pub scale: f32,
42 pub cells: Vec<TextCell>,
43 /// Same text grouped for code regions: split only at pdfium space glyphs, so
44 /// monospace runs keep their source spacing instead of the prose heuristic's.
45 pub code_cells: Vec<TextCell>,
46 /// Per-word cells (one per word, not joined into lines) for TableFormer cell
47 /// matching.
48 pub word_cells: Vec<TextCell>,
49 /// The rendered page bitmap. Present whenever pixels are available at all
50 /// (`ocr-prep` ⊂ `ml`): the native pipeline renders it with pdfium, the
51 /// browser pipeline receives it from the host canvas. Picture regions are
52 /// cropped out of it.
53 #[cfg(feature = "ocr-prep")]
54 pub image: RgbImage,
55 /// The **scale-1.0** page image the layout model runs on (docling parity:
56 /// its layout stage calls `page.get_image(scale=1.0)` — pdfium at 1.5×,
57 /// PIL-BICUBIC down to point size — a *different* image from the 2×
58 /// OCR/crop bitmap above, and a different resampling regime than
59 /// stretching that bitmap). `None` on paths without a pdfium renderer
60 /// (browser, METS/TIFF), which fall back to stretching [`Self::image`].
61 #[cfg(feature = "ocr-prep")]
62 pub image_layout: Option<RgbImage>,
63 /// Hyperlink annotations on the page (rect in top-left page coords + target
64 /// URI), restricted to web/mail/tel schemes. Used only by strict Markdown.
65 pub links: Vec<LinkAnnot>,
66 /// The page's `/Rotate` value (0/90/180/270) when it was normalized away
67 /// before inference: a scanned page with `/Rotate` displays its raster
68 /// rotated, which turns OCR into garbage — so extraction un-rotates the
69 /// bitmaps (and swaps `width`/`height`) and records the display rotation
70 /// here. Assembly rotates the finished geometry *back* by this many
71 /// degrees clockwise, so emitted locations and the page size stay in
72 /// display space (matching docling and every PDF viewer). Always 0 for
73 /// text-layer pages (their cells live in display space already) and on
74 /// paths without a pdfium renderer.
75 pub rotation: u16,
76}
77
78impl PdfPage {
79 /// A page built from recognized cells alone — the browser pipeline's
80 /// shape (#157), where the bitmap lives on the JS side. Exists so callers
81 /// compile identically with and without the `ml` feature: under a
82 /// feature-unified workspace build the struct carries the `image` field,
83 /// which a plain literal in a non-`ml` consumer can't spell.
84 #[cfg(feature = "ocr-prep")]
85 pub fn from_cells(width: f32, height: f32, scale: f32, cells: Vec<TextCell>) -> Self {
86 Self {
87 width,
88 height,
89 scale,
90 cells,
91 code_cells: Vec::new(),
92 word_cells: Vec::new(),
93 #[cfg(feature = "ocr-prep")]
94 image: RgbImage::new(0, 0),
95 #[cfg(feature = "ocr-prep")]
96 image_layout: None,
97 links: Vec::new(),
98 rotation: 0,
99 }
100 }
101
102 /// Same as [`from_cells`](Self::from_cells) but carrying the rendered page
103 /// bitmap, so picture regions can be cropped out of it (#157: the browser
104 /// pipeline gets the same figure bytes the native one does).
105 #[cfg(feature = "ocr-prep")]
106 pub fn from_cells_with_image(
107 width: f32,
108 height: f32,
109 scale: f32,
110 cells: Vec<TextCell>,
111 image: RgbImage,
112 ) -> Self {
113 Self {
114 image,
115 ..Self::from_cells(width, height, scale, cells)
116 }
117 }
118
119 /// Un-rotate the page's bitmaps by `deg` (clockwise 90° steps) and record
120 /// the compensating display rotation, composing with any rotation already
121 /// recorded: the raster becomes upright for inference while assembly
122 /// still maps the finished geometry back into display space. Handles both
123 /// `/Rotate` normalization (extraction) and content-detected orientation
124 /// (#225) — the two compose additively (axis-aligned 90° rotations
125 /// commute through the dimension swaps). Link rectangles follow the
126 /// raster; `width`/`height` swap on odd quarter-turns.
127 #[cfg(feature = "ocr-prep")]
128 pub(crate) fn unrotate(&mut self, deg: u16) {
129 if deg == 0 {
130 return;
131 }
132 use image::imageops::{rotate180, rotate270, rotate90};
133 // Display = upright rotated `deg`° clockwise, so upright = display
134 // rotated the complementary amount clockwise.
135 let un = |img: &RgbImage| match deg {
136 90 => rotate270(img),
137 180 => rotate180(img),
138 _ => rotate90(img),
139 };
140 if self.image.width() > 1 {
141 self.image = un(&self.image);
142 }
143 self.image_layout = self.image_layout.as_ref().map(&un);
144 let (width, height) = (self.width, self.height);
145 // Link rects follow the raster from display into upright space (the
146 // inverse of the geometry rotation assembly applies at the end).
147 for l in &mut self.links {
148 let (nl, nt, nr, nb) = match deg {
149 90 => (l.t, width - l.r, l.b, width - l.l),
150 180 => (width - l.r, height - l.b, width - l.l, height - l.t),
151 _ => (height - l.b, l.l, height - l.t, l.r),
152 };
153 (l.l, l.t, l.r, l.b) = (nl, nt, nr, nb);
154 }
155 if deg != 180 {
156 (self.width, self.height) = (height, width);
157 }
158 self.rotation = (self.rotation + deg) % 360;
159 }
160}
161
162/// A PDF link annotation: its rectangle (top-left page coordinates, matching
163/// [`TextCell`]) and target URI.
164#[derive(Debug, Clone)]
165pub struct LinkAnnot {
166 pub l: f32,
167 pub t: f32,
168 pub r: f32,
169 pub b: f32,
170 pub uri: String,
171}
172
173#[cfg(feature = "ml")]
174/// A parsed PDF: per-page text cells and page images.
175pub struct PdfDocument {
176 pub pages: Vec<PdfPage>,
177}
178
179/// Whether to use the docling-parse line sanitizer ([`crate::dp_lines`]) for prose
180/// reconstruction — the default. Set `DOCLING_LEGACY_LINES` to fall back to the
181/// older gap-heuristic `lines_from_glyphs`.
182pub(crate) fn use_dp_lines() -> bool {
183 !docling_core::env::flag("DOCLING_LEGACY_LINES")
184}
185
186/// Whether to source **word** cells from the pure-Rust parser (roadmap item 6),
187/// the default. The parser's `word_cells` reproduce docling-parse's word grouping
188/// byte-for-byte — the per-word tokens TableFormer matches table-grid cells
189/// against — which moves table extraction closer to docling on the heavy
190/// multi-column fixtures. Set `DOCLING_PDFIUM_WORDS` to keep pdfium's word cells,
191/// or `DOCLING_PDFIUM_TEXT` to fall back to pdfium for all text.
192pub(crate) fn use_parser_words() -> bool {
193 !docling_core::env::flag("DOCLING_PDFIUM_WORDS")
194 && !docling_core::env::flag("DOCLING_PDFIUM_TEXT")
195}
196
197/// Whether to source **code** cells from the parser too (the default) — the last
198/// text layer to leave pdfium, fully retiring its text path. The parser's
199/// gap-based code grouping ([`code_cells_from_glyphs`]) reconstructs monospace
200/// spacing from positioning gaps (`function add(a, b) { … }`), so it no longer
201/// drops the inter-token spaces the old space-glyph-only grouping lost
202/// (`functionadd`). Reverts to pdfium with `DOCLING_PDFIUM_WORDS` (alongside word
203/// cells) or `DOCLING_PDFIUM_TEXT` (all text).
204pub(crate) fn use_parser_code() -> bool {
205 use_parser_words()
206}
207
208#[cfg(feature = "ml")]
209/// Try binding pdfium from a directory (or a literal library file path):
210/// `<dir>/<platform library name>` first, else `<dir>` itself as the file.
211fn try_bind_dir(path: &str) -> Option<Box<dyn pdfium_render::prelude::PdfiumLibraryBindings>> {
212 let name = Pdfium::pdfium_platform_library_name_at_path(path);
213 if let Ok(b) = Pdfium::bind_to_library(&name) {
214 return Some(b);
215 }
216 Pdfium::bind_to_library(path).ok()
217}
218
219#[cfg(feature = "ml")]
220/// Bind to the pdfium dynamic library. Honors `PDFIUM_DYNAMIC_LIB_PATH` (a
221/// directory or file) first; else falls back to `.pdfium/lib` relative to the
222/// current directory (the layout `scripts/install/download_dependencies.sh` and
223/// `scripts/install/pdf_setup.sh` both produce); else the system library.
224fn bind() -> Result<Pdfium, PdfiumError> {
225 if let Some(path) = docling_core::env::nonempty("PDFIUM_DYNAMIC_LIB_PATH") {
226 if let Some(b) = try_bind_dir(&path) {
227 return Ok(Pdfium::new(b));
228 }
229 }
230 // No env var (or it didn't resolve): fall back to `.pdfium/lib` relative to
231 // the current directory — mirroring `layout.rs`/`ocr.rs`'s `.models/…`
232 // defaults — the layout `scripts/install/download_dependencies.sh` (and
233 // `scripts/install/pdf_setup.sh`) produce, so a checkout with the dependencies
234 // downloaded next to it needs no env var at all.
235 if let Some(b) = try_bind_dir(&crate::resolve_asset(".pdfium/lib")) {
236 return Ok(Pdfium::new(b));
237 }
238 Pdfium::bind_to_system_library().map(Pdfium::new)
239}
240
241#[cfg(feature = "ml")]
242impl PdfDocument {
243 /// Parse a PDF from bytes, optionally decrypting with `password`.
244 ///
245 /// Note: this materialises **every** page's rendered bitmap in memory at
246 /// once. For large documents prefer [`for_each_page`], which streams.
247 pub fn open(bytes: &[u8], password: Option<&str>) -> Result<Self, PdfiumError> {
248 let pdfium = bind()?;
249 let ffi = FfiText::load(pdfium.bindings(), bytes, password);
250 let doc = pdfium.load_pdf_from_byte_slice(bytes, password)?;
251 let mut rust = rust_parser_cells(bytes);
252 let mut pages = Vec::new();
253 for (i, page) in doc.pages().iter().enumerate() {
254 let rc = rust.as_mut().and_then(|v| v.get_mut(i).map(std::mem::take));
255 pages.push(extract_page(&page, &ffi, i as i32, rc, true, true)?);
256 }
257 Ok(PdfDocument { pages })
258 }
259}
260
261#[cfg(feature = "ml")]
262/// Per-page prose line cells from the pure-Rust text parser. This is the
263/// **default** text layer (it matches docling-parse's char geometry and is a
264/// strict improvement on byte-conformance — e.g. it recovers the Arabic
265/// sentence-period attachment in `right_to_left_01`). Set `DOCLING_PDFIUM_TEXT`
266/// to fall back to pdfium's text layer. The parser returns an empty page when a
267/// PDF (or a page) has no parseable text layer; the caller keeps pdfium's cells
268/// in that case, so scanned/edge-case pages are unaffected.
269fn rust_parser_cells(bytes: &[u8]) -> Option<Vec<crate::textparse::PageParserCells>> {
270 if docling_core::env::flag("DOCLING_PDFIUM_TEXT") {
271 return None;
272 }
273 Some(crate::timing::timed("textparse", || {
274 crate::textparse::pdf_all_cells(bytes)
275 }))
276}
277
278#[cfg(feature = "ml")]
279/// Number of pages in a PDF, without rendering any of them — used to decide
280/// whether a document is worth spinning up the parallel worker pool.
281pub fn page_count(bytes: &[u8], password: Option<&str>) -> Result<usize, PdfiumError> {
282 let pdfium = bind()?;
283 let doc = pdfium.load_pdf_from_byte_slice(bytes, password)?;
284 Ok(doc.pages().len() as usize)
285}
286
287#[cfg(feature = "ml")]
288/// Render + extract pages one at a time, handing each (owned) [`PdfPage`] to `f`.
289/// Only one page bitmap is resident at a time — a rendered page is ~5 MB, so a
290/// large PDF would otherwise hold gigabytes of bitmaps at once. `f` receives the
291/// zero-based page index and the total page count.
292///
293/// `render_image` controls whether the page bitmap is rasterized at all: layout,
294/// OCR, TableFormer, and picture cropping all need it, but a caller that skips
295/// every one of those (the `no_ocr` fast path) doesn't, and rasterizing +
296/// downsampling a page is by far the most expensive step per page — skipping it
297/// is most of `no_ocr`'s speedup. `PdfPage::image` is a 1×1 placeholder when
298/// `false`; do not read it.
299///
300/// `extract_text` decodes the page's text layer (parser or pdfium cells); pass
301/// `false` when full-page OCR is forced and the cells would be discarded
302/// unread (docling#4061).
303///
304/// `range` restricts the walk to a **0-based inclusive** page window (issue
305/// #80's `--pages`); out-of-window pages are skipped *before* text extraction
306/// and rasterization, so a 3-page window over a 500-page PDF costs three
307/// pages, not five hundred. `f` still receives the absolute page index, so
308/// downstream page numbering refers to the source document.
309///
310/// `E` is the caller's error type; pdfium errors convert into it via `From`.
311pub fn for_each_page<E, F>(
312 bytes: &[u8],
313 password: Option<&str>,
314 render_image: bool,
315 extract_text: bool,
316 range: Option<(usize, usize)>,
317 mut f: F,
318) -> Result<(), E>
319where
320 E: From<PdfiumError>,
321 F: FnMut(usize, usize, PdfPage) -> Result<(), E>,
322{
323 let pdfium = bind()?;
324 let ffi = FfiText::load(pdfium.bindings(), bytes, password);
325 let doc = pdfium.load_pdf_from_byte_slice(bytes, password)?;
326 // `extract_text = false` (full-page OCR forced, docling#4061 / 2.122):
327 // the text layer would be cleared unread, so neither the pure-Rust parser
328 // nor pdfium's text page is decoded at all — on vector-dense pages (CAD
329 // drawings as 100k+ path segments) that decode is most of the page cost.
330 let mut rust = if extract_text {
331 rust_parser_cells(bytes)
332 } else {
333 None
334 };
335 let pages = doc.pages();
336 let total = pages.len() as usize;
337 let (first, last) = range.unwrap_or((0, total.saturating_sub(1)));
338 for (i, page) in pages.iter().enumerate() {
339 if i < first || i > last {
340 continue;
341 }
342 let rc = rust.as_mut().and_then(|v| v.get_mut(i).map(std::mem::take));
343 let extracted = extract_page(&page, &ffi, i as i32, rc, render_image, extract_text)?;
344 f(i, total, extracted)?;
345 }
346 Ok(())
347}
348
349/// One rasterized page from [`render_pages`] (#243): the absolute 1-based page
350/// number in the source document, the pixel dimensions, and the PNG bytes.
351#[cfg(feature = "ml")]
352#[derive(Debug, Clone)]
353pub struct RenderedPage {
354 pub page_no: usize,
355 pub width: u32,
356 pub height: u32,
357 pub png: Vec<u8>,
358}
359
360#[cfg(feature = "ml")]
361/// Rasterize a PDF's pages to PNG (#243) — the lean path behind serve's
362/// `to=images`: pdfium render only, no text extraction, no models, and only
363/// one page bitmap resident at a time (each is PNG-encoded and dropped before
364/// the next renders). `scale` is pixels per PDF point — 2.0 matches the
365/// pipeline's [`RENDER_SCALE`] (144 dpi). Unlike the pipeline's render there
366/// is no 1.5× supersample + downsample pass: that dance exists only because
367/// TableFormer is pixel-pinned to docling's bitmaps, and nothing downstream
368/// of this output is — a single render is nearly twice as fast.
369///
370/// `range` is a **1-based** inclusive page window (issue #80's `pages`
371/// semantics: the end clamps to the document, a start past the end errors).
372///
373/// pdfium is not thread-safe — callers must serialize this against any other
374/// pdfium use (docling-serve holds its pipeline mutex around this call for
375/// exactly that reason).
376pub fn render_pages(
377 bytes: &[u8],
378 password: Option<&str>,
379 range: Option<(usize, usize)>,
380 scale: f32,
381) -> Result<Vec<RenderedPage>, crate::PdfError> {
382 let pdfium = bind()?;
383 let doc = pdfium.load_pdf_from_byte_slice(bytes, password)?;
384 let pages = doc.pages();
385 let total = pages.len() as usize;
386 let (first, last) = match range {
387 None => (0, total.saturating_sub(1)),
388 Some((first, last)) => {
389 if first == 0 || last < first {
390 return Err(crate::PdfError::Pdfium(format!(
391 "invalid page range {first}-{last} (pages are 1-based, first <= last)"
392 )));
393 }
394 if first > total {
395 return Err(crate::PdfError::Pdfium(format!(
396 "page range {first}-{last} is outside the document ({total} page(s))"
397 )));
398 }
399 (first - 1, last.min(total) - 1)
400 }
401 };
402 let mut out = Vec::with_capacity(last.saturating_sub(first) + 1);
403 for (i, page) in pages.iter().enumerate() {
404 if i < first || i > last {
405 continue;
406 }
407 // pdfium applies /Rotate itself, so the bitmap is the page as a viewer
408 // shows it — no orientation handling needed (the pipeline's scanned-page
409 // un-rotation is an OCR-conformance concern, not a display one).
410 let tw = (page.width().value * scale).round().max(1.0) as i32;
411 let th = (page.height().value * scale).round().max(1.0) as i32;
412 let cfg = PdfRenderConfig::new()
413 .set_target_width(tw)
414 .set_target_height(th);
415 let bitmap = crate::timing::timed("pdfium.rasterize", || {
416 page.render_with_config(&cfg)
417 .map(|b| b.as_image().into_rgb8())
418 })?;
419 let mut png = Vec::new();
420 bitmap
421 .write_to(&mut std::io::Cursor::new(&mut png), image::ImageFormat::Png)
422 .map_err(|e| crate::PdfError::Pdfium(format!("PNG-encoding page {}: {e}", i + 1)))?;
423 out.push(RenderedPage {
424 page_no: i + 1,
425 width: bitmap.width(),
426 height: bitmap.height(),
427 png,
428 });
429 }
430 Ok(out)
431}
432
433#[cfg(feature = "ml")]
434fn extract_page(
435 page: &pdfium_render::prelude::PdfPage<'_>,
436 ffi: &FfiText<'_>,
437 index: i32,
438 rust_cells: Option<crate::textparse::PageParserCells>,
439 render_image: bool,
440 extract_text: bool,
441) -> Result<PdfPage, PdfiumError> {
442 // pdfium reports the page size (and renders) in the *display* frame —
443 // `/Rotate` applied — while every text coordinate (its own text page, the
444 // pure-Rust parser's MediaBox-based glyphs, link annotation rects) lives
445 // in the unrotated frame (docling#4008, 2.121). Keep the unrotated box
446 // around for the y-flips and bring every rect into the display frame.
447 let width = page.width().value;
448 let height = page.height().value;
449 let rotation = match page.rotation() {
450 Ok(PdfPageRenderRotation::Degrees90) => 90u16,
451 Ok(PdfPageRenderRotation::Degrees180) => 180,
452 Ok(PdfPageRenderRotation::Degrees270) => 270,
453 _ => 0,
454 };
455 let (unrot_w, unrot_h) = if rotation == 90 || rotation == 270 {
456 (height, width)
457 } else {
458 (width, height)
459 };
460
461 // Default: use the pure-Rust text parser instead of pdfium's text layer
462 // (override with `DOCLING_PDFIUM_TEXT`). Prose line cells always come from the
463 // parser; word and code cells do too unless `DOCLING_PDFIUM_WORDS` keeps them
464 // on pdfium (the parser's word grouping reproduces docling-parse's, which
465 // TableFormer matches against — roadmap item 6). A page the parser couldn't
466 // read (no text layer) keeps pdfium's cells.
467 let rc = rust_cells.unwrap_or_default();
468 let need_pdfium_prose = extract_text && rc.prose.is_empty();
469 let need_pdfium_words = extract_text && (!use_parser_words() || rc.words.is_empty());
470 let need_pdfium_code = extract_text && (!use_parser_code() || rc.code.is_empty());
471
472 // The parser covers prose/words/code from one shared glyph pass, so on the
473 // common (parser-succeeded) page all three are already satisfied and this
474 // pdfium FFI call — otherwise fully discarded below — is skipped outright.
475 let (mut cells, mut code_cells, mut word_cells) =
476 if need_pdfium_prose || need_pdfium_words || need_pdfium_code {
477 let (mut cells, code_cells, word_cells) =
478 crate::timing::timed("ffi.page_cells", || ffi.page_cells(index, unrot_h));
479 if cells.is_empty() {
480 cells = segment_cells(&page.text()?, unrot_h);
481 }
482 (cells, code_cells, word_cells)
483 } else {
484 (Vec::new(), Vec::new(), Vec::new())
485 };
486 if !rc.prose.is_empty() {
487 cells = rc.prose;
488 }
489 if use_parser_words() && !rc.words.is_empty() {
490 word_cells = rc.words;
491 }
492 if use_parser_code() && !rc.code.is_empty() {
493 code_cells = rc.code;
494 }
495 if rotation != 0 {
496 for c in cells
497 .iter_mut()
498 .chain(word_cells.iter_mut())
499 .chain(code_cells.iter_mut())
500 {
501 let (l, t, r, b) = to_display_frame((c.l, c.t, c.r, c.b), rotation, unrot_w, unrot_h);
502 (c.l, c.t, c.r, c.b) = (l, t, r, b);
503 }
504 }
505
506 let image = if render_image {
507 // docling renders at 1.5× the target scale and downsamples "to make it
508 // sharper" (pypdfium2 → PIL BICUBIC). Replicate exactly: the TableFormer
509 // model is pixel-sensitive, so the page bitmap must match byte-for-byte.
510 // `CatmullRom` is the same a=-0.5 cubic kernel as PIL's BICUBIC.
511 const SUPERSAMPLE: f32 = 1.5;
512 let tw = (width * RENDER_SCALE * SUPERSAMPLE).round().max(1.0) as i32;
513 let th = (height * RENDER_SCALE * SUPERSAMPLE).round().max(1.0) as i32;
514 let cfg = PdfRenderConfig::new()
515 .set_target_width(tw)
516 .set_target_height(th);
517 let big = crate::timing::timed("pdfium.render", || {
518 page.render_with_config(&cfg)
519 .map(|b| b.as_image().into_rgb8())
520 })?;
521 let dw = (width * RENDER_SCALE).round().max(1.0) as u32;
522 let dh = (height * RENDER_SCALE).round().max(1.0) as u32;
523 crate::timing::timed("image.resize", || fast_downscale(&big, dw, dh))
524 } else {
525 RgbImage::new(1, 1)
526 };
527 // The layout model's input image, built exactly like docling's
528 // `get_page_image(scale=1.0)`: a pdfium render at 1.5× (pypdfium2 sizes
529 // with `ceil`), PIL-BICUBIC down to the point-size image (PIL `resize`'s
530 // default kernel; Python `round` = ties-to-even). Distinct from the 2×
531 // bitmap above — resampling 1224→640 and 612→640 are different regimes,
532 // and the heron model's borderline scores follow the pixels.
533 let image_layout = if render_image {
534 let tw = f64::from(width * 1.5).ceil().max(1.0) as i32;
535 let th = f64::from(height * 1.5).ceil().max(1.0) as i32;
536 let cfg = PdfRenderConfig::new()
537 .set_target_width(tw)
538 .set_target_height(th);
539 let big = crate::timing::timed("pdfium.render_layout", || {
540 page.render_with_config(&cfg)
541 .map(|b| b.as_image().into_rgb8())
542 })?;
543 let dw = f64::from(width).round_ties_even().max(1.0) as u32;
544 let dh = f64::from(height).round_ties_even().max(1.0) as u32;
545 Some(crate::timing::timed("image.resize_layout", || {
546 crate::resample::pil_resize(&big, dw, dh, crate::resample::PilFilter::Bicubic)
547 }))
548 } else {
549 None
550 };
551
552 let mut links = extract_links(page, unrot_h);
553 if rotation != 0 {
554 for l in &mut links {
555 let (a, t, r, b) = to_display_frame((l.l, l.t, l.r, l.b), rotation, unrot_w, unrot_h);
556 (l.l, l.t, l.r, l.b) = (a, t, r, b);
557 }
558 }
559
560 // `/Rotate` normalization for scanned pages: pdfium renders the page as a
561 // viewer displays it — `/Rotate` applied — so a rotated scan hands layout
562 // and OCR a sideways/upside-down raster and the recognition output is
563 // garbage. A page with a text layer needs none of this (its cells carry
564 // the geometry; the models never see its pixels decide text), so the
565 // normalization is gated to pages with no cells at all — exactly the set
566 // the OCR path fires on. The bitmaps are un-rotated to upright (lossless
567 // 90° steps), `width`/`height` swap to the upright box, and the display
568 // rotation is recorded so assembly can rotate the finished geometry back
569 // into display space (docling reports rotated pages in display coords).
570 let scanned = cells.is_empty() && word_cells.is_empty() && code_cells.is_empty();
571 let mut page = PdfPage {
572 width,
573 height,
574 scale: RENDER_SCALE,
575 image_layout,
576 cells,
577 code_cells,
578 word_cells,
579 image,
580 links,
581 rotation: 0,
582 };
583 if rotation != 0 && scanned && render_image {
584 page.unrotate(rotation);
585 }
586 Ok(page)
587}
588
589#[cfg(feature = "ml")]
590/// The supersample→target downscale via `fast_image_resize` (SIMD convolution;
591/// the same a=-0.5 Catmull-Rom kernel as `image::imageops::resize(...,
592/// CatmullRom)` and PIL BICUBIC — see the render comment above). Set
593/// `DOCLING_RS_SLOW_RESIZE=1` to fall back to the `image`-crate scalar resize
594/// (byte-parity with the pre-SIMD pipeline, several times slower).
595fn fast_downscale(big: &RgbImage, dw: u32, dh: u32) -> RgbImage {
596 use fast_image_resize as fir;
597 static SLOW: std::sync::OnceLock<bool> = std::sync::OnceLock::new();
598 let slow = *SLOW.get_or_init(|| docling_core::env::flag("DOCLING_RS_SLOW_RESIZE"));
599 if !slow {
600 if let Some(out) = (|| {
601 let src = fir::images::ImageRef::new(
602 big.width(),
603 big.height(),
604 big.as_raw(),
605 fir::PixelType::U8x3,
606 )
607 .ok()?;
608 let mut dst = fir::images::Image::new(dw, dh, fir::PixelType::U8x3);
609 fir::Resizer::new()
610 .resize(
611 &src,
612 &mut dst,
613 &fir::ResizeOptions::new()
614 .resize_alg(fir::ResizeAlg::Convolution(fir::FilterType::CatmullRom)),
615 )
616 .ok()?;
617 RgbImage::from_raw(dw, dh, dst.into_vec())
618 })() {
619 return out;
620 }
621 // Unreachable in practice; fall through to the scalar path on any error.
622 }
623 image::imageops::resize(big, dw, dh, image::imageops::FilterType::CatmullRom)
624}
625
626#[cfg(feature = "ml")]
627/// Collect web/mail/tel hyperlink annotations on a page, mapping each link's
628/// rectangle into top-left page coordinates (like [`TextCell`]). `file://` and
629/// in-document destinations are skipped — only externally meaningful targets are
630/// rendered. pdfium occasionally lists a link twice; rects are kept as-is and the
631/// caller dedupes by resolved anchor text.
632fn extract_links(page: &pdfium_render::prelude::PdfPage<'_>, page_h: f32) -> Vec<LinkAnnot> {
633 let mut out = Vec::new();
634 for link in page.links().iter() {
635 let Some(uri) = link
636 .action()
637 .and_then(|a| a.as_uri_action().and_then(|u| u.uri().ok()))
638 else {
639 continue;
640 };
641 let scheme_ok = ["http://", "https://", "mailto:", "tel:"]
642 .iter()
643 .any(|s| uri.starts_with(s));
644 if !scheme_ok {
645 continue;
646 }
647 if let Ok(rect) = link.rect() {
648 out.push(LinkAnnot {
649 l: rect.left().value,
650 t: page_h - rect.top().value,
651 r: rect.right().value,
652 b: page_h - rect.bottom().value,
653 uri,
654 });
655 }
656 }
657 out
658}
659
660/// Map a top-left-origin rect from a page's unrotated (MediaBox) frame into its
661/// `/Rotate`d display frame — the counterpart of docling's pypdfium2
662/// `_rect_to_display_frame` (docling#4008) for our y-down coordinates.
663/// `unrot_w`/`unrot_h` are the unrotated page box; the display box is the same
664/// for 180° and swapped for 90°/270°.
665pub(crate) fn to_display_frame(
666 (l, t, r, b): (f32, f32, f32, f32),
667 rotation: u16,
668 unrot_w: f32,
669 unrot_h: f32,
670) -> (f32, f32, f32, f32) {
671 match rotation {
672 // Page turned 90° clockwise for display: the unrotated top edge becomes
673 // the display right edge, so x' runs from the old bottom edge up.
674 90 => (unrot_h - b, l, unrot_h - t, r),
675 180 => (unrot_w - r, unrot_h - b, unrot_w - l, unrot_h - t),
676 270 => (t, unrot_w - r, b, unrot_w - l),
677 _ => (l, t, r, b),
678 }
679}
680
681#[cfg(feature = "ml")]
682/// Fallback line cells from pdfium-render's style segments (one cell per
683/// segment). Used only when the raw-FFI text page can't be loaded.
684fn segment_cells(text: &PdfPageText, page_h: f32) -> Vec<TextCell> {
685 text.segments()
686 .iter()
687 .filter_map(|seg| {
688 let s = seg.text();
689 if s.trim().is_empty() {
690 return None;
691 }
692 let r = seg.bounds();
693 Some(TextCell {
694 text: s,
695 l: r.left().value,
696 t: page_h - r.top().value,
697 r: r.right().value,
698 b: page_h - r.bottom().value,
699 })
700 })
701 .collect()
702}
703
704#[cfg(feature = "ml")]
705/// A second, raw-FFI handle on the same PDF used to drive the character loop
706/// (`FPDFText_GetUnicode`/`GetCharBox`) that pdfium-render's safe API doesn't
707/// expose. Closes the document on drop.
708struct FfiText<'a> {
709 bindings: &'a dyn PdfiumLibraryBindings,
710 doc: FPDF_DOCUMENT,
711}
712
713/// One glyph: codepoint + native (y-up) box edges. `l/b/r/t` is pdfium's *tight*
714/// ink box (used by the legacy `lines_from_glyphs`); `ll/lb/lr/lt` is the *loose*
715/// box (font ascent/descent + advance — uniform per font/size), which the
716/// docling-parse-style sanitizer needs so adjacent glyphs share a top edge.
717pub(crate) struct Glyph {
718 pub(crate) ch: char,
719 pub(crate) l: f32,
720 pub(crate) b: f32,
721 pub(crate) r: f32,
722 pub(crate) t: f32,
723 pub(crate) ll: f32,
724 pub(crate) lb: f32,
725 pub(crate) lr: f32,
726 pub(crate) lt: f32,
727 /// Hash of the PDF font name + flags (0 when not fetched). The sanitizer uses
728 /// it for docling-parse's `enforce_same_font` (keeps a bold label and regular
729 /// value as separate line cells, e.g. `LABEL : value`).
730 pub(crate) font: u64,
731}
732
733#[cfg(feature = "ml")]
734impl<'a> FfiText<'a> {
735 fn load(bindings: &'a dyn PdfiumLibraryBindings, bytes: &[u8], password: Option<&str>) -> Self {
736 let doc = bindings.FPDF_LoadMemDocument(bytes, password);
737 FfiText { bindings, doc }
738 }
739
740 /// Reconstruct line cells for page `index` (zero-based) via the
741 /// chars→words→lines grouping. Returns `(prose_cells, code_cells)` — the same
742 /// glyphs grouped two ways (gap-heuristic for prose, space-glyph-only for
743 /// code). Both empty on any failure (caller falls back).
744 fn page_cells(&self, index: i32, page_h: f32) -> (Vec<TextCell>, Vec<TextCell>, Vec<TextCell>) {
745 let empty = || (Vec::new(), Vec::new(), Vec::new());
746 if self.doc.is_null() {
747 return empty();
748 }
749 let b = self.bindings;
750 let page = b.FPDF_LoadPage(self.doc, index);
751 if page.is_null() {
752 return empty();
753 }
754 let tp = b.FPDFText_LoadPage(page);
755 let out = if tp.is_null() {
756 empty()
757 } else {
758 let dp = use_dp_lines();
759 let g = glyphs(b, tp, dp);
760 b.FPDFText_ClosePage(tp);
761 // Prose line cells: the docling-parse-style sanitizer (behind a flag
762 // while it's validated) or the legacy gap-heuristic reconstruction.
763 let prose = if dp {
764 crate::dp_lines::line_cells(&g, page_h, false)
765 } else {
766 lines_from_glyphs(&g, page_h, Grouping::Prose)
767 };
768 (
769 prose,
770 lines_from_glyphs(&g, page_h, Grouping::CodeSpaceOnly),
771 words_from_glyphs(&g, page_h),
772 )
773 };
774 b.FPDF_ClosePage(page);
775 out
776 }
777}
778
779#[cfg(feature = "ml")]
780impl Drop for FfiText<'_> {
781 fn drop(&mut self) {
782 if !self.doc.is_null() {
783 self.bindings.FPDF_CloseDocument(self.doc);
784 }
785 }
786}
787
788#[cfg(feature = "ml")]
789/// Read every glyph (codepoint + native box) from the text page, in document
790/// order. A space glyph is kept as a word-boundary marker (NaN box, char `' '`);
791/// pdfium emits these on most lines and they pin word splits exactly. Hard line
792/// breaks are dropped (line structure comes from geometry); the gap heuristic in
793/// [`lines_from_glyphs`] is the fallback for the lines pdfium leaves space-less.
794/// Debug helper: the raw pdfium glyph stream (codepoint + native bottom-left
795/// box) for a page, in pdfium's character order. For comparing against
796/// docling-parse's char cells.
797pub fn debug_glyphs(bytes: &[u8], index: i32) -> Vec<(char, f32, f32)> {
798 let Ok(pdfium) = bind() else {
799 return Vec::new();
800 };
801 let ffi = FfiText::load(pdfium.bindings(), bytes, None);
802 if ffi.doc.is_null() {
803 return Vec::new();
804 }
805 let b = ffi.bindings;
806 let page = b.FPDF_LoadPage(ffi.doc, index);
807 if page.is_null() {
808 return Vec::new();
809 }
810 let tp = b.FPDFText_LoadPage(page);
811 let mut out = Vec::new();
812 if !tp.is_null() {
813 for g in glyphs(b, tp, true) {
814 out.push((g.ch, g.ll, g.lr));
815 }
816 b.FPDFText_ClosePage(tp);
817 }
818 b.FPDF_ClosePage(page);
819 out
820}
821
822#[cfg(feature = "ml")]
823/// One text object on a page, for the hidden-layer diagnostic.
824#[derive(Debug, Clone)]
825pub struct DebugTextObject {
826 /// True when the object is drawn invisibly (text render mode 3) — the marker of
827 /// a hidden duplicate text layer.
828 pub invisible: bool,
829 /// Bounding box in native PDF points (bottom-left origin).
830 pub l: f32,
831 pub b: f32,
832 pub r: f32,
833 pub t: f32,
834 /// The object's text (best-effort; empty if it could not be read).
835 pub text: String,
836}
837
838#[cfg(feature = "ml")]
839/// Diagnostic: every text object on page `index`, each tagged visible/invisible
840/// (via the object-level [`FPDFTextObj_GetTextRenderMode`], which — unlike the
841/// per-character render-mode API — is available on the default pdfium binding).
842/// A hidden duplicate text layer shows up as invisible objects repeating the
843/// visible text. Used by the `dump_render_modes` example.
844///
845/// [`FPDFTextObj_GetTextRenderMode`]: pdfium_render::prelude::PdfiumLibraryBindings::FPDFTextObj_GetTextRenderMode
846pub fn debug_text_objects(bytes: &[u8], index: i32) -> Vec<DebugTextObject> {
847 let Ok(pdfium) = bind() else {
848 return Vec::new();
849 };
850 let ffi = FfiText::load(pdfium.bindings(), bytes, None);
851 if ffi.doc.is_null() {
852 return Vec::new();
853 }
854 let b = ffi.bindings;
855 let page = b.FPDF_LoadPage(ffi.doc, index);
856 if page.is_null() {
857 return Vec::new();
858 }
859 let tp = b.FPDFText_LoadPage(page);
860 let mut out = Vec::new();
861 let n = b.FPDFPage_CountObjects(page);
862 for i in 0..n {
863 let obj = b.FPDFPage_GetObject(page, i);
864 if obj.is_null() || b.FPDFPageObj_GetType(obj) != FPDF_PAGEOBJ_TEXT as i32 {
865 continue;
866 }
867 let (mut l, mut bot, mut r, mut top) = (0f32, 0f32, 0f32, 0f32);
868 if b.FPDFPageObj_GetBounds(obj, &mut l, &mut bot, &mut r, &mut top) == 0 {
869 continue;
870 }
871 let invisible = b.FPDFTextObj_GetTextRenderMode(obj) == INVISIBLE_RENDER_MODE;
872 let text = if tp.is_null() {
873 String::new()
874 } else {
875 // FPDFTextObj_GetText returns the count of UTF-16 code units, including
876 // the trailing NUL; call once for the size, once to fill.
877 let need = b.FPDFTextObj_GetText(obj, tp, std::ptr::null_mut(), 0);
878 if need <= 1 {
879 String::new()
880 } else {
881 let mut buf = vec![0u16; need as usize];
882 b.FPDFTextObj_GetText(obj, tp, buf.as_mut_ptr(), need);
883 if let Some(&0) = buf.last() {
884 buf.pop();
885 }
886 String::from_utf16_lossy(&buf)
887 }
888 };
889 out.push(DebugTextObject {
890 invisible,
891 l,
892 b: bot,
893 r,
894 t: top,
895 text,
896 });
897 }
898 if !tp.is_null() {
899 b.FPDFText_ClosePage(tp);
900 }
901 b.FPDF_ClosePage(page);
902 out
903}
904
905#[cfg(feature = "ml")]
906/// Hash a glyph's PDF font name + flags, for `enforce_same_font`. 0 if unavailable.
907fn font_hash(b: &dyn PdfiumLibraryBindings, tp: FPDF_TEXTPAGE, i: i32) -> u64 {
908 use std::hash::{Hash, Hasher};
909 let mut flags: std::os::raw::c_int = 0;
910 let len = b.FPDFText_GetFontInfo(tp, i, std::ptr::null_mut(), 0, &mut flags);
911 if len == 0 {
912 return 0;
913 }
914 let mut buf = vec![0u8; len as usize];
915 b.FPDFText_GetFontInfo(
916 tp,
917 i,
918 buf.as_mut_ptr() as *mut std::os::raw::c_void,
919 len,
920 &mut flags,
921 );
922 let mut h = std::collections::hash_map::DefaultHasher::new();
923 buf.hash(&mut h);
924 flags.hash(&mut h);
925 h.finish()
926}
927
928#[cfg(feature = "ml")]
929/// A glyph's PDF font name (NUL-trimmed), or empty if unavailable.
930fn font_name_bytes(b: &dyn PdfiumLibraryBindings, tp: FPDF_TEXTPAGE, i: i32) -> Vec<u8> {
931 let mut flags: std::os::raw::c_int = 0;
932 let len = b.FPDFText_GetFontInfo(tp, i, std::ptr::null_mut(), 0, &mut flags);
933 if len == 0 {
934 return Vec::new();
935 }
936 let mut buf = vec![0u8; len as usize];
937 b.FPDFText_GetFontInfo(
938 tp,
939 i,
940 buf.as_mut_ptr() as *mut std::os::raw::c_void,
941 len,
942 &mut flags,
943 );
944 while buf.last() == Some(&0) {
945 buf.pop();
946 }
947 buf
948}
949
950#[cfg(feature = "ml")]
951/// Read the text layer's glyph boxes and font styles for the given **1-based**
952/// pages — the heading-hierarchy stage's style signal (#302). A separate,
953/// on-demand pass over the text pages (no rendering), so the extraction
954/// pipeline itself stays byte-identical whether or not the stage runs; pages
955/// without a text layer (scans) simply yield no glyphs and the stage falls
956/// back to its other signals. Boxes are the *loose* char boxes (font ascent +
957/// descent — the font-size proxy), converted to top-left origin.
958pub(crate) fn glyph_styles(
959 bytes: &[u8],
960 password: Option<&str>,
961 pages: &[usize],
962) -> std::collections::HashMap<usize, Vec<crate::heading_hierarchy::GlyphStyle>> {
963 use crate::heading_hierarchy::GlyphStyle;
964 let mut out = std::collections::HashMap::new();
965 let Ok(pdfium) = bind() else {
966 return out;
967 };
968 let ffi = FfiText::load(pdfium.bindings(), bytes, password);
969 if ffi.doc.is_null() {
970 return out;
971 }
972 let b = ffi.bindings;
973 // Each distinct font name parses once per document.
974 let mut cache: std::collections::HashMap<Vec<u8>, crate::font_style::FontStyle> =
975 std::collections::HashMap::new();
976 for &page_no in pages {
977 if page_no == 0 {
978 continue;
979 }
980 let page = b.FPDF_LoadPage(ffi.doc, (page_no - 1) as i32);
981 if page.is_null() {
982 continue;
983 }
984 let page_h = b.FPDF_GetPageHeightF(page);
985 let tp = b.FPDFText_LoadPage(page);
986 if !tp.is_null() {
987 let n = b.FPDFText_CountChars(tp);
988 let mut styles = Vec::with_capacity(n.max(0) as usize);
989 for i in 0..n {
990 let ch = match char::from_u32(b.FPDFText_GetUnicode(tp, i)) {
991 Some(c) => c,
992 None => continue,
993 };
994 if ch.is_whitespace() {
995 continue;
996 }
997 let mut lr = FS_RECTF {
998 left: 0.0,
999 top: 0.0,
1000 right: 0.0,
1001 bottom: 0.0,
1002 };
1003 if b.FPDFText_GetLooseCharBox(tp, i, &mut lr) == 0 {
1004 continue;
1005 }
1006 let name = font_name_bytes(b, tp, i);
1007 let style = *cache.entry(name).or_insert_with_key(|n| {
1008 crate::font_style::parse_font_style(&String::from_utf8_lossy(n))
1009 });
1010 styles.push(GlyphStyle {
1011 l: lr.left,
1012 t: page_h - lr.top,
1013 r: lr.right,
1014 b: page_h - lr.bottom,
1015 height: lr.top - lr.bottom,
1016 weight_cls: crate::font_style::weight_class(style.weight),
1017 italic: style.italic,
1018 styled: style.known,
1019 });
1020 }
1021 b.FPDFText_ClosePage(tp);
1022 out.insert(page_no, styles);
1023 }
1024 b.FPDF_ClosePage(page);
1025 }
1026 out
1027}
1028
1029#[cfg(feature = "ml")]
1030/// pdfium text render mode 3: the glyph is drawn with neither fill nor stroke —
1031/// an invisible glyph. Web-to-PDF exporters put a hidden plain-text copy of
1032/// syntax-highlighted code (and other "copy"/accessibility layers) in this mode,
1033/// which the char-level text API then extracts as a duplicate of the visible text.
1034const INVISIBLE_RENDER_MODE: i32 = 3;
1035
1036#[cfg(feature = "ml")]
1037fn glyphs(b: &dyn PdfiumLibraryBindings, tp: FPDF_TEXTPAGE, fetch_font: bool) -> Vec<Glyph> {
1038 let n = b.FPDFText_CountChars(tp);
1039 let mut out = Vec::with_capacity(n.max(0) as usize);
1040 for i in 0..n {
1041 let ch = match char::from_u32(b.FPDFText_GetUnicode(tp, i)) {
1042 Some(c) => c,
1043 None => continue,
1044 };
1045 if ch == '\r' || ch == '\n' {
1046 continue;
1047 }
1048 // Spaces are font-neutral (0): pdfium's generated spaces carry a default
1049 // font that would otherwise block every word↔space merge under
1050 // enforce_same_font; docling-parse's spaces inherit the run's font.
1051 let font = if fetch_font && !ch.is_whitespace() {
1052 font_hash(b, tp, i)
1053 } else {
1054 0
1055 };
1056 let (mut l, mut r, mut bot, mut top) = (0f64, 0f64, 0f64, 0f64);
1057 let has_box = b.FPDFText_GetCharBox(tp, i, &mut l, &mut r, &mut bot, &mut top) != 0;
1058 // Loose box: font ascent/descent + glyph advance, uniform per font/size.
1059 let mut lr = FS_RECTF {
1060 left: 0.0,
1061 top: 0.0,
1062 right: 0.0,
1063 bottom: 0.0,
1064 };
1065 let (ll, lb, lrt, ltop) = if b.FPDFText_GetLooseCharBox(tp, i, &mut lr) != 0 {
1066 (lr.left, lr.bottom, lr.right, lr.top)
1067 } else if has_box {
1068 (l as f32, bot as f32, r as f32, top as f32)
1069 } else {
1070 (f32::NAN, 0.0, 0.0, 0.0)
1071 };
1072 if ch.is_whitespace() {
1073 // Keep the space *with its box* (the docling-parse-style line sanitizer
1074 // needs literal space glyphs); NaN `l` if pdfium reports no box (the
1075 // legacy `lines_from_glyphs` ignores the box and only flags a space).
1076 out.push(Glyph {
1077 ch: ' ',
1078 l: if has_box { l as f32 } else { f32::NAN },
1079 b: if has_box { bot as f32 } else { 0.0 },
1080 r: if has_box { r as f32 } else { 0.0 },
1081 t: if has_box { top as f32 } else { 0.0 },
1082 ll,
1083 lb,
1084 lr: lrt,
1085 lt: ltop,
1086 font,
1087 });
1088 continue;
1089 }
1090 if !has_box {
1091 continue;
1092 }
1093 out.push(Glyph {
1094 ch,
1095 l: l as f32,
1096 b: bot as f32,
1097 r: r as f32,
1098 t: top as f32,
1099 ll,
1100 lb,
1101 lr: lrt,
1102 lt: ltop,
1103 font,
1104 });
1105 }
1106 // pdfium splits the Arabic lam-alef ligature into two chars at the *same* x
1107 // (it's one glyph) in visual order — `alef-variant, lam`. docling-parse and
1108 // logical order are `lam, alef-variant`. Detect the ligature by the shared x
1109 // and swap. The shared-x test reliably distinguishes a true ligature from a
1110 // genuine `alef + lam` sequence (the article `ال`, or `فعالة`), whose two
1111 // glyphs sit at different x and must NOT be reordered.
1112 for i in 0..out.len().saturating_sub(1) {
1113 let same_x = out[i].l.is_finite()
1114 && out[i + 1].l.is_finite()
1115 && (out[i].l - out[i + 1].l).abs() < 1.0;
1116 if same_x
1117 && matches!(out[i].ch, '\u{0622}' | '\u{0623}' | '\u{0625}' | '\u{0627}')
1118 && out[i + 1].ch == '\u{0644}'
1119 {
1120 out.swap(i, i + 1);
1121 }
1122 }
1123 // Reconstruct degenerate (zero-width) loose space boxes by spanning the gap to
1124 // the next glyph on the same line, so the sanitizer keeps them as word
1125 // separators rather than dropping them (which would merge `Information systems`
1126 // → `Informationsystems`). pdfium gives generated spaces a zero-width box at a
1127 // wrong baseline; a wrap (different baseline) or a touching gap is left alone.
1128 for i in 0..out.len() {
1129 if out[i].ch != ' ' || (out[i].lr - out[i].ll).abs() >= 0.5 {
1130 continue;
1131 }
1132 let prev = out[..i]
1133 .iter()
1134 .rev()
1135 .find(|g| g.ch != ' ' && g.ll.is_finite())
1136 .map(|g| (g.lr, g.lb, g.lt));
1137 let next = out[i + 1..]
1138 .iter()
1139 .find(|g| g.ch != ' ' && g.ll.is_finite())
1140 .map(|g| (g.ll, g.lb));
1141 if let (Some((plr, plb, plt)), Some((nll, nlb))) = (prev, next) {
1142 let line_h = (plt - plb).abs().max(1.0);
1143 if (plb - nlb).abs() < line_h * 0.5 && nll > plr + 0.5 {
1144 out[i].ll = plr;
1145 out[i].lr = nll;
1146 out[i].lb = plb;
1147 out[i].lt = plt;
1148 }
1149 }
1150 }
1151 out
1152}
1153
1154/// How [`lines_from_glyphs`] splits a line into words.
1155#[derive(Clone, Copy, PartialEq)]
1156enum Grouping {
1157 /// Gap heuristic + punctuation glue (`engines,`, `[37`, `98.5`) — prose.
1158 Prose,
1159 /// Split only at literal space glyphs, never glue — pdfium code cells.
1160 /// pdfium's monospace listings carry a real space glyph at every source space,
1161 /// and its overhanging loose boxes would make the gap heuristic over-split
1162 /// (`f un c t i o n`), so honouring just the spaces reproduces the spacing.
1163 CodeSpaceOnly,
1164 /// Split on the inter-glyph **gap** (or a space glyph), but never glue — for
1165 /// the parser's code cells: the parser emits no space glyphs (a source space
1166 /// is a positioning gap), and its clean advance boxes make the gap reliable.
1167 /// Unlike [`Grouping::Prose`] there is no punctuation glue, so a real gap
1168 /// always splits (`et al. 2000`, not `et al.2000`) while genuinely touching
1169 /// tokens stay joined (`add(a,` / `b)`).
1170 CodeGap,
1171}
1172
1173/// Group glyphs (document order) into words then lines, the way docling-parse
1174/// does: a new **word** starts where the horizontal gap to the previous glyph
1175/// exceeds ~0.2 × the font height (a real space is ~0.3 × height; letter
1176/// tracking is smaller, so titles don't shatter); a new **line** starts where
1177/// the baseline drops by ~half the font height (a superscript rises without
1178/// dropping, so it stays on its line). Coordinates are flipped to top-left.
1179/// See [`Grouping`] for how each mode decides word boundaries.
1180fn lines_from_glyphs(gs: &[Glyph], page_h: f32, mode: Grouping) -> Vec<TextCell> {
1181 let mut cells: Vec<TextCell> = Vec::new();
1182 let mut words: Vec<String> = Vec::new(); // words on the current line
1183 let mut word = String::new();
1184 // current line bounding box, native
1185 let (mut ll, mut lb, mut lr, mut lt) = (
1186 f32::INFINITY,
1187 f32::INFINITY,
1188 f32::NEG_INFINITY,
1189 f32::NEG_INFINITY,
1190 );
1191 // Tallest glyph seen on the current line: the word-gap threshold is relative
1192 // to it, so a small-font run on the line (a superscript citation) isn't split
1193 // at its tight digit gaps, while a big display title isn't split at its wider
1194 // letter tracking. A real inter-word space is ~0.3× the font height.
1195 let mut line_h: f32 = 0.0;
1196 let mut prev: Option<&Glyph> = None;
1197 // A space glyph between non-space glyphs pins a word split the gap heuristic
1198 // can miss (tight justified spacing); it carries no geometry.
1199 let mut pending_space = false;
1200
1201 for g in gs {
1202 if g.ch == ' ' {
1203 pending_space = true;
1204 continue;
1205 }
1206 let h = (g.t - g.b).abs().max(1.0);
1207 let (mut new_word, mut new_line) = (false, false);
1208 if let Some(p) = prev {
1209 // A new line drops the baseline *and* resets x leftward; requiring the
1210 // x-reset avoids a descending comma/semicolon faking a line break. A
1211 // *large* drop (≥1.5× the line height — a skipped line, e.g. a centered
1212 // page-number footer below a short last word) is always a new line,
1213 // even without the x-reset.
1214 // LTR wraps reset x leftward (`g.l < p.r`); RTL (Arabic) wraps reset
1215 // rightward (the new line begins at the far right). A large drop
1216 // (≥1.5× line height) is a new line regardless of x.
1217 let x_reset = if is_arabic(g.ch) || is_arabic(p.ch) {
1218 g.l > p.r
1219 } else {
1220 g.l < p.r
1221 };
1222 new_line = (p.b - g.b > h * 0.5 && x_reset) || (p.b - g.b > line_h.max(h) * 1.5);
1223 // Don't split before closing punctuation, after opening punctuation, or
1224 // after a period that runs into a digit/lowercase letter — docling
1225 // keeps `engines,` / `[37` / `i.e.` / `98.5` together even across a
1226 // space or gap.
1227 let glued = is_close_punct(g.ch)
1228 || is_open_punct(p.ch)
1229 || (p.ch.is_ascii_digit() && g.ch.is_ascii_digit())
1230 || (p.ch == '.'
1231 && !pending_space
1232 && (g.ch.is_ascii_digit() || g.ch.is_ascii_lowercase()));
1233 let word_gap = line_h.max(h) * 0.25;
1234 new_word = if mode == Grouping::CodeSpaceOnly {
1235 new_line || pending_space
1236 } else if mode == Grouping::CodeGap {
1237 // Gap-based, no glue: a real gap always splits, touching tokens join.
1238 new_line || pending_space || g.l - p.r > word_gap
1239 } else if is_arabic(g.ch) || is_arabic(p.ch) {
1240 // RTL runs right-to-left, so the inter-word gap is `p.l - g.r`. A
1241 // real word space has a gap; pdfium also emits spurious zero-gap
1242 // space glyphs inside words (`التي`), so require the gap rather
1243 // than trusting a bare space glyph.
1244 new_line || (p.l - g.r > word_gap && !glued)
1245 } else {
1246 new_line || ((pending_space || g.l - p.r > word_gap) && !glued)
1247 };
1248 }
1249 pending_space = false;
1250 if new_line {
1251 push_word(&mut word, &mut words);
1252 push_line(&mut words, (ll, lb, lr, lt), page_h, &mut cells);
1253 (ll, lb, lr, lt) = (
1254 f32::INFINITY,
1255 f32::INFINITY,
1256 f32::NEG_INFINITY,
1257 f32::NEG_INFINITY,
1258 );
1259 line_h = 0.0;
1260 } else if new_word {
1261 push_word(&mut word, &mut words);
1262 }
1263 word.push(g.ch);
1264 ll = ll.min(g.l);
1265 lb = lb.min(g.b);
1266 lr = lr.max(g.r);
1267 lt = lt.max(g.t);
1268 line_h = line_h.max(h);
1269 prev = Some(g);
1270 }
1271 push_word(&mut word, &mut words);
1272 push_line(&mut words, (ll, lb, lr, lt), page_h, &mut cells);
1273 cells
1274}
1275
1276/// Code line cells from the **parser**'s glyph stream. Unlike pdfium — whose
1277/// monospace listings carry explicit space glyphs (so [`Grouping::CodeSpaceOnly`]
1278/// keeps their spacing) — the parser emits no space glyphs: a source space is a
1279/// positioning gap. So code cells use [`Grouping::CodeGap`], which splits on the
1280/// inter-glyph gap (a space wherever it exceeds ~0.25× the line height) but never
1281/// glues punctuation, so `et al. 2000` keeps its space while `add(a,` / `b)` stay
1282/// joined. The parser's clean advance boxes make the gap heuristic reliable here,
1283/// where pdfium's overhanging loose boxes would over-split (`f un c t i o n`).
1284pub(crate) fn code_cells_from_glyphs(gs: &[Glyph], page_h: f32) -> Vec<TextCell> {
1285 lines_from_glyphs(gs, page_h, Grouping::CodeGap)
1286}
1287
1288/// Per-word cells (each word's text + top-left bbox), using the same word/line
1289/// splitting as [`lines_from_glyphs`] but emitting one cell per word instead of
1290/// joining into lines — the legacy gap-heuristic word grouping, kept for the
1291/// pdfium word path (`DOCLING_PDFIUM_WORDS`). The default parser path uses
1292/// [`crate::dp_lines::word_cells`] instead.
1293pub(crate) fn words_from_glyphs(gs: &[Glyph], page_h: f32) -> Vec<TextCell> {
1294 let mut cells = Vec::new();
1295 let mut word = String::new();
1296 let inf = (
1297 f32::INFINITY,
1298 f32::INFINITY,
1299 f32::NEG_INFINITY,
1300 f32::NEG_INFINITY,
1301 );
1302 let (mut wl, mut wb, mut wr, mut wt) = inf;
1303 let mut line_h: f32 = 0.0;
1304 let mut prev: Option<&Glyph> = None;
1305 let mut pending_space = false;
1306 for g in gs {
1307 if g.ch == ' ' {
1308 pending_space = true;
1309 continue;
1310 }
1311 let h = (g.t - g.b).abs().max(1.0);
1312 let mut new_line = false;
1313 let mut new_word = false;
1314 if let Some(p) = prev {
1315 // LTR wraps reset x leftward (`g.l < p.r`); RTL (Arabic) wraps reset
1316 // rightward (the new line begins at the far right). A large drop
1317 // (≥1.5× line height) is a new line regardless of x.
1318 let x_reset = if is_arabic(g.ch) || is_arabic(p.ch) {
1319 g.l > p.r
1320 } else {
1321 g.l < p.r
1322 };
1323 new_line = (p.b - g.b > h * 0.5 && x_reset) || (p.b - g.b > line_h.max(h) * 1.5);
1324 // No digit-digit glue here (unlike the prose grouping): table cells in
1325 // adjacent columns are numeric and a column gap must still split them
1326 // (`0.965` `0.934`, not `0.9650.934`). Intra-number digits have no gap
1327 // so they stay together regardless.
1328 let glued = is_close_punct(g.ch)
1329 || is_open_punct(p.ch)
1330 || (p.ch == '.'
1331 && !pending_space
1332 && (g.ch.is_ascii_digit() || g.ch.is_ascii_lowercase()));
1333 let word_gap = line_h.max(h) * 0.25;
1334 new_word = new_line || ((pending_space || g.l - p.r > word_gap) && !glued);
1335 }
1336 pending_space = false;
1337 if new_word && !word.is_empty() {
1338 cells.push(TextCell {
1339 text: std::mem::take(&mut word),
1340 l: wl,
1341 t: page_h - wt,
1342 r: wr,
1343 b: page_h - wb,
1344 });
1345 (wl, wb, wr, wt) = inf;
1346 }
1347 if new_line {
1348 line_h = 0.0;
1349 }
1350 word.push(g.ch);
1351 wl = wl.min(g.l);
1352 wb = wb.min(g.b);
1353 wr = wr.max(g.r);
1354 wt = wt.max(g.t);
1355 line_h = line_h.max(h);
1356 prev = Some(g);
1357 }
1358 if !word.is_empty() {
1359 cells.push(TextCell {
1360 text: word,
1361 l: wl,
1362 t: page_h - wt,
1363 r: wr,
1364 b: page_h - wb,
1365 });
1366 }
1367 cells
1368}
1369
1370fn is_arabic(c: char) -> bool {
1371 ('\u{0600}'..='\u{06FF}').contains(&c)
1372}
1373
1374fn is_close_punct(c: char) -> bool {
1375 matches!(
1376 c,
1377 ',' | '.' | ';' | '!' | '?' | ')' | ']' | '}' | '%' | '\'' | '\u{2019}' | '\u{2018}'
1378 )
1379}
1380
1381fn is_open_punct(c: char) -> bool {
1382 // `@` glues to what follows (`mAP @0.5`, `bpf@zurich`, `@decorator`).
1383 matches!(c, '(' | '[' | '{' | '@')
1384}
1385
1386fn push_word(word: &mut String, words: &mut Vec<String>) {
1387 if !word.is_empty() {
1388 words.push(std::mem::take(word));
1389 }
1390}
1391
1392fn push_line(
1393 words: &mut Vec<String>,
1394 bbox: (f32, f32, f32, f32),
1395 page_h: f32,
1396 cells: &mut Vec<TextCell>,
1397) {
1398 if words.is_empty() {
1399 return;
1400 }
1401 let text = std::mem::take(words).join(" ");
1402 let (l, b, r, t) = bbox;
1403 cells.push(TextCell {
1404 text,
1405 l,
1406 t: page_h - t,
1407 r,
1408 b: page_h - b,
1409 });
1410}
1411
1412#[cfg(test)]
1413mod tests {
1414 use super::to_display_frame;
1415
1416 /// A 612×792 portrait page displayed under `/Rotate`: a rect near the
1417 /// unrotated top-left lands where a viewer shows it (docling#4008).
1418 #[test]
1419 fn display_frame_follows_the_page_rotation() {
1420 let r = (72.0, 63.0, 387.0, 74.0); // top-left origin, unrotated
1421 assert_eq!(to_display_frame(r, 0, 612.0, 792.0), r);
1422 // 90° clockwise: the page becomes 792×612; the old top edge is the
1423 // display right edge, old left edge the display top.
1424 assert_eq!(
1425 to_display_frame(r, 90, 612.0, 792.0),
1426 (718.0, 72.0, 729.0, 387.0)
1427 );
1428 // 180°: both axes mirror inside the same box.
1429 assert_eq!(
1430 to_display_frame(r, 180, 612.0, 792.0),
1431 (225.0, 718.0, 540.0, 729.0)
1432 );
1433 // 270°: the old top edge is the display left edge, old right edge the
1434 // display top.
1435 assert_eq!(
1436 to_display_frame(r, 270, 612.0, 792.0),
1437 (63.0, 225.0, 74.0, 540.0)
1438 );
1439 }
1440
1441 #[test]
1442 fn display_frame_rotations_compose_to_identity() {
1443 let r = (10.0, 20.0, 110.0, 40.0);
1444 // 90° then 270° from the intermediate (792×612) box round-trips.
1445 let once = to_display_frame(r, 90, 612.0, 792.0);
1446 assert_eq!(to_display_frame(once, 270, 792.0, 612.0), r);
1447 let twice = to_display_frame(to_display_frame(r, 180, 612.0, 792.0), 180, 612.0, 792.0);
1448 assert_eq!(twice, r);
1449 }
1450}