Address PR #863 round 3: - classify_from_text emits the "scanned" flag (was "no_text_layer") for the empty-text-layer case -- same name + meaning as classify_pdf, so astrolabe_document_classifier_flag_total isn't split across two labels for the same concept (and matches the metric's documented vocab). - classify_from_text logs at DEBUG when image_coverage length != the expected min(pages, MAX_SAMPLED_PAGES), so a 1:1-alignment contract break (extractor reorders/skips pages) surfaces instead of silently misattributing coverage. Co-Authored-By: Claude Opus 4.8 (1M context) <noreply@anthropic.com>
287 lines
10 KiB
Python
287 lines
10 KiB
Python
"""Unit tests for the tier-0 document classifier.
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Pins the routing decisions and the text-quality heuristic that drive which
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extraction tier a PDF starts in:
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* a clean born-digital PDF (text, no full-page images) -> ``fast`` (tier 1);
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* a full-page-image scan -> ``ocr`` (tier 3), since handwriting/stamps aren't
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in any text layer;
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* the text-quality score distinguishes clean prose from mashed/space-less junk.
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"""
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import pymupdf
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import pytest
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from nextcloud_mcp_server.document_processors import classifier as clf
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pytestmark = pytest.mark.unit
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def _digital_pdf(
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pages: int = 3, body: str = "Hello world this is clean text. "
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) -> bytes:
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doc = pymupdf.open()
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for _ in range(pages):
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page = doc.new_page(width=595, height=842)
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page.insert_text((50, 60), body * 8)
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data: bytes = doc.tobytes()
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doc.close()
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return data
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def _full_page_image_pdf(pages: int = 2) -> bytes:
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# A page whose entire area is a raster image -> looks scanned.
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doc = pymupdf.open()
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pix = pymupdf.Pixmap(pymupdf.csRGB, pymupdf.IRect(0, 0, 600, 850))
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pix.clear_with(255)
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img = pix.tobytes("png")
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del pix # Pixmap holds native memory; release it before the loop
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for _ in range(pages):
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page = doc.new_page(width=595, height=842)
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page.insert_image(page.rect, stream=img)
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data: bytes = doc.tobytes()
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doc.close()
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return data
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# --- text-quality heuristic --------------------------------------------------
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def test_text_quality_clean_prose_scores_high():
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assert clf._text_quality("the quick brown fox jumps over the lazy dog") > 0.8
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def test_text_quality_mashed_tokens_scores_low():
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# space-less / mashed layer (the "Student 147" failure mode)
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mashed = "01322234567mobileoutstandingresilienceacademicachievementhurdles"
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assert clf._text_quality(mashed) < clf.MIN_TEXT_QUALITY
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def test_text_quality_empty_is_zero():
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assert clf._text_quality("") == pytest.approx(0.0)
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# --- routing -----------------------------------------------------------------
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def test_digital_pdf_routes_fast():
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c = clf.classify_pdf(_digital_pdf())
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assert c.recommended_tier == "fast"
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assert c.ocr_page_fraction == pytest.approx(0.0)
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assert "image_heavy" not in c.flags
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assert c.mean_text_quality > 0.8
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def test_full_page_image_routes_ocr():
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c = clf.classify_pdf(_full_page_image_pdf())
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assert c.recommended_tier == "ocr"
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assert c.ocr_page_fraction == pytest.approx(1.0)
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assert "image_heavy" in c.flags
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assert "scanned" in c.flags # no text layer at all
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# --- sampling bounds large docs ----------------------------------------------
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def test_large_doc_is_sampled():
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c = clf.classify_pdf(_digital_pdf(pages=120))
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assert c.page_count == 120
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assert c.sampled_pages <= clf.MAX_SAMPLED_PAGES
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def test_sample_indices_includes_first_and_last_page():
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idx = clf._sample_indices(100)
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assert idx[0] == 0
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assert idx[-1] == 99 # last page must be sampled (scanned-tail case)
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assert len(idx) <= clf.MAX_SAMPLED_PAGES
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# --- flag paths --------------------------------------------------------------
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def _image_with_mashed_text_pdf(pages: int = 2) -> bytes:
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# Full-page image with a junk (mashed/space-less) text layer over it -- a
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# scan whose OCR'd text layer is unusable.
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doc = pymupdf.open()
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pix = pymupdf.Pixmap(pymupdf.csRGB, pymupdf.IRect(0, 0, 600, 850))
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pix.clear_with(255)
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img = pix.tobytes("png")
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del pix # Pixmap holds native memory; release it before the loop
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mashed = "01322234567mobileoutstandingresilienceacademicachievement " * 3
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for _ in range(pages):
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page = doc.new_page(width=595, height=842)
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page.insert_image(page.rect, stream=img)
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page.insert_text((50, 60), mashed)
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data: bytes = doc.tobytes()
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doc.close()
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return data
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def test_scanned_flag_when_no_text_layer():
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c = clf.classify_pdf(_full_page_image_pdf())
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assert c.total_chars == 0
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assert "scanned" in c.flags
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assert c.recommended_tier == "ocr"
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def test_bad_text_layer_flag_on_image_with_junk_text():
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c = clf.classify_pdf(_image_with_mashed_text_pdf())
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assert c.total_chars > 0
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assert c.mean_text_quality < clf.MIN_TEXT_QUALITY
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assert "bad_text_layer" in c.flags
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assert c.recommended_tier == "ocr"
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def _mostly_text_one_image_pdf() -> bytes:
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# 3 digital text pages + 1 full-page-image page: one image-heavy page, but
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# ocr_frac = 1/4 < OCR_PAGE_FRACTION, so the doc routes fast.
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doc = pymupdf.open()
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pix = pymupdf.Pixmap(pymupdf.csRGB, pymupdf.IRect(0, 0, 600, 850))
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pix.clear_with(255)
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img = pix.tobytes("png")
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del pix # Pixmap holds native memory; release it before the loop
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for _ in range(3):
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page = doc.new_page(width=595, height=842)
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page.insert_text((50, 60), "Hello world this is clean text. " * 8)
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page = doc.new_page(width=595, height=842)
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page.insert_image(page.rect, stream=img)
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data: bytes = doc.tobytes()
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doc.close()
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return data
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def test_image_heavy_flag_without_ocr_routing():
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# The documented asymmetry operators rely on: a mostly-digital doc with one
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# full-page image carries the image_heavy flag yet still routes fast.
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c = clf.classify_pdf(_mostly_text_one_image_pdf())
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assert "image_heavy" in c.flags
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assert c.recommended_tier == "fast"
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assert c.ocr_page_fraction < clf.OCR_PAGE_FRACTION
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# --- classify_from_text (hot-path, derived from tier-1 extraction) -----------
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def test_classify_from_text_clean_routes_fast():
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txt = "the quick brown fox jumps over the lazy dog " * 3
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c = clf.classify_from_text(
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txt, [{"page": 1, "start_offset": 0, "end_offset": len(txt)}]
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)
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assert c.recommended_tier == "fast"
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assert c.mean_text_quality > 0.8
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assert c.flags == set()
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def test_classify_from_text_empty_routes_ocr():
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c = clf.classify_from_text("", [{"page": 1, "start_offset": 0, "end_offset": 0}])
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assert c.recommended_tier == "ocr"
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assert "scanned" in c.flags # unified with classify_pdf's flag name
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assert c.total_chars == 0
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def test_classify_from_text_no_pages_routes_fast():
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# An empty/corrupt PDF (no page boundaries) is not OCR evidence -> "fast",
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# so the recorded classification metric isn't a misleading "ocr".
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c = clf.classify_from_text("", [])
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assert c.recommended_tier == "fast"
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assert c.ocr_page_fraction == pytest.approx(0.0)
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assert c.flags == set()
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def test_classify_from_text_junk_layer_flags_bad_text_layer():
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# Each short segment (<MIN_PAGE_CHARS) sets needs_ocr -> high ocr_frac, and
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# total_chars>0 with mean_quality<MIN_TEXT_QUALITY (no-whitespace junk scores
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# 0.0) -> bad_text_layer (gated on ocr_frac, matching classify_pdf).
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text = "x1y2zx1y2z"
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c = clf.classify_from_text(
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text,
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[
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{"page": 1, "start_offset": 0, "end_offset": 5},
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{"page": 2, "start_offset": 5, "end_offset": 10},
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],
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)
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assert c.recommended_tier == "ocr"
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assert c.total_chars > 0
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assert "bad_text_layer" in c.flags
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assert "scanned" not in c.flags # has text, just junk -> not the empty case
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# --- quality + scan escalation triggers (Deck #207) --------------------------
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_JUNK = (
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"ST. TRINIAN'SSCHOOLSTUDENT RECORDFILE struggledsignificantlywith "
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"learningdifficulties demonstrateda positiveattitude academictasks"
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)
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_CLEAN = "the quick brown fox jumps over the lazy dog and then runs away home"
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def _two_page(text_a: str, text_b: str):
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na = len(text_a)
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return text_a + text_b, [
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{"page": 1, "start_offset": 0, "end_offset": na},
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{"page": 2, "start_offset": na, "end_offset": na + len(text_b)},
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]
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def test_classify_from_text_low_quality_routes_ocr():
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full, bounds = _two_page(_JUNK, _JUNK)
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c = clf.classify_from_text(full, bounds)
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assert c.recommended_tier == "ocr"
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assert "bad_text_layer" in c.flags
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def test_quality_floor_override_disables_trigger():
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# min_text_quality=0.0 => quality never trips; text present + not scanned => fast
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full, bounds = _two_page(_JUNK, _JUNK)
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c = clf.classify_from_text(full, bounds, min_text_quality=0.0)
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assert c.recommended_tier == "fast"
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def test_scan_signal_routes_ocr_even_with_clean_text():
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# clean text but every page is a raster scan -> OCR (the Student-147 case)
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full, bounds = _two_page(_CLEAN, _CLEAN)
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c = clf.classify_from_text(full, bounds, image_coverage=[1.0, 1.0])
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assert c.recommended_tier == "ocr"
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assert "image_heavy" in c.flags
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def test_scan_signal_ignored_when_coverage_low():
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full, bounds = _two_page(_CLEAN, _CLEAN)
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c = clf.classify_from_text(full, bounds, image_coverage=[0.1, 0.0])
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assert c.recommended_tier == "fast"
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def test_page_fraction_override():
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# exactly one of two pages is junk -> ocr_frac 0.5
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full, bounds = _two_page(_CLEAN, _JUNK)
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assert (
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clf.classify_from_text(full, bounds, page_fraction=0.5).recommended_tier
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== "ocr"
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)
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assert (
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clf.classify_from_text(full, bounds, page_fraction=0.6).recommended_tier
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== "fast"
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)
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def test_image_coverage_per_page():
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scan = clf.image_coverage_per_page(_full_page_image_pdf(pages=2))
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assert len(scan) == 2 and all(c >= 0.8 for c in scan)
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digital = clf.image_coverage_per_page(_digital_pdf(pages=2))
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assert len(digital) == 2 and all(c < 0.1 for c in digital)
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def test_scan_coverage_shorter_than_pages_falls_back_to_text():
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# image_coverage shorter than the boundaries (the MAX_SAMPLED_PAGES cap):
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# page 0 is flagged scanned; later pages fall back to the text-quality signal.
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n = len(_CLEAN)
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full = _CLEAN * 3
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bounds = [
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{"page": 1, "start_offset": 0, "end_offset": n},
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{"page": 2, "start_offset": n, "end_offset": 2 * n},
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{"page": 3, "start_offset": 2 * n, "end_offset": 3 * n},
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]
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c = clf.classify_from_text(full, bounds, image_coverage=[1.0])
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assert c.pages[0].needs_ocr is True # scanned (coverage)
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assert c.pages[1].needs_ocr is False # clean text, no coverage entry
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assert c.recommended_tier == "fast" # only 1/3 pages bad
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