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Adds the full parser_compare experiment for the multimodal_doc suite:
six arms compared on 30 PDFs / 171 questions from MMLongBench-Doc with
anthropic/claude-sonnet-4.5 across the board.
Source code:
- core/parsers/{azure_di,llamacloud,pdf_pages}.py: direct parser SDK
callers (Azure Document Intelligence prebuilt-read/layout, LlamaParse
parse_page_with_llm/parse_page_with_agent) used by the LC arms,
bypassing the SurfSense backend so each (basic/premium) extraction
is a clean A/B independent of backend ETL routing.
- suites/multimodal_doc/parser_compare/{ingest,runner,prompt}.py:
six-arm benchmark (native_pdf, azure_basic_lc, azure_premium_lc,
llamacloud_basic_lc, llamacloud_premium_lc, surfsense_agentic) with
byte-identical prompts per question, deterministic grader, Wilson
CIs, and the per-page preprocessing tariff cost overlay.
Reproducibility:
- pyproject.toml + uv.lock pin pypdf, azure-ai-documentintelligence,
llama-cloud-services as new deps.
- .env.example documents the AZURE_DI_* and LLAMA_CLOUD_API_KEY env
vars now required for parser_compare.
- 12 analysis scripts under scripts/: retry pass with exponential
backoff, post-retry accuracy merge, McNemar / latency / per-PDF
stats, context-overflow hypothesis test, etc. Each produces one
number cited by the blog report.
Citation surface:
- reports/blog/multimodal_doc_parser_compare_n171_report.md: 1219-line
technical writeup (16 sections) covering headline accuracy, per-format
accuracy, McNemar pairwise significance, latency / token / per-PDF
distributions, error analysis, retry experiment, post-retry final
accuracy, cost amortization model with closed-form derivation, threats
to validity, and reproducibility appendix.
- data/multimodal_doc/runs/2026-05-14T00-53-19Z/parser_compare/{raw,
raw_retries,raw_post_retry}.jsonl + run_artifact.json + retry summary
whitelisted via data/.gitignore as the verifiable numbers source.
Gitignore:
- ignore logs_*.txt + retry_run.log; structured artifacts cover the
citation surface, debug logs are noise.
- data/.gitignore default-ignores everything, whitelists the n=171 run
artifacts only (parser manifest left ignored to avoid leaking local
Windows usernames in absolute paths; manifest is fully regenerable
via 'ingest multimodal_doc parser_compare').
- reports/.gitignore now whitelists hand-curated reports/blog/.
Also retires the abandoned CRAG Task 3 implementation (download script,
streaming Task 3 ingest, CragTask3Benchmark + tests) and trims the
runner / ingest module APIs to match.
Co-authored-by: Cursor <cursoragent@cursor.com>
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83 lines
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# surfsense_evals — environment template.
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#
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# Copy this file to `.env` (in the surfsense_evals/ project root or your
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# CWD) and fill in the values. `python-dotenv` loads it automatically
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# the first time `core.config` is imported, so every CLI subcommand
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# (`setup`, `ingest`, `run`, `report`, `teardown`, `models list`, …)
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# will pick the values up.
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#
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# cp .env.example .env
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# # then edit .env with your values
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#
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# `.env` is gitignored — never commit real secrets.
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# ---------------------------------------------------------------------------
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# 1. Backend target — REQUIRED (default works for a local dev backend)
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# ---------------------------------------------------------------------------
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SURFSENSE_API_BASE=http://localhost:8000
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# ---------------------------------------------------------------------------
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# 2. OpenRouter — REQUIRED for any `run` invocation
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# ---------------------------------------------------------------------------
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# The `native_pdf` arm calls OpenRouter directly; the `surfsense` arm
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# routes through SurfSense which uses the same key under the hood.
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OPENROUTER_API_KEY=sk-or-...
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# Override only if you proxy OpenRouter through a private gateway:
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# OPENROUTER_BASE_URL=https://openrouter.ai/api/v1
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# Multimodal benchmarks (medxpertqa, mmlongbench) require a vision-capable
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# slug. Recommended (verify in your catalog with `models list --grep ...`):
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# anthropic/claude-sonnet-4.5 (default recommendation)
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# anthropic/claude-opus-4.7 (strongest)
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# openai/gpt-5 (top-tier vision)
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# google/gemini-2.5-pro (1M-token context, best for long PDFs)
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# DO NOT use openai/gpt-5.4-mini for image-bearing benchmarks — it's
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# text-only on PDF content and the runner emits a warning if pinned.
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# ---------------------------------------------------------------------------
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# 3. Auth — pick EXACTLY ONE of the two modes below
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# ---------------------------------------------------------------------------
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# --- Mode A: LOCAL (backend started with AUTH_TYPE=LOCAL)
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# The harness POSTs these to /auth/jwt/login automatically.
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# SURFSENSE_USER_EMAIL=you@example.com
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# SURFSENSE_USER_PASSWORD=...
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# --- Mode B: GOOGLE OAuth (or any pre-issued JWT)
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# Open the SurfSense web UI in your browser, log in via Google, then in
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# DevTools → Application → Local Storage copy:
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# surfsense_bearer_token → SURFSENSE_JWT
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# surfsense_refresh_token → SURFSENSE_REFRESH_TOKEN (optional, enables
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# auto-refresh on 401)
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# SURFSENSE_JWT=eyJhbGciOi...
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# SURFSENSE_REFRESH_TOKEN=eyJhbGciOi...
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# ---------------------------------------------------------------------------
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# 4. Filesystem paths — OPTIONAL (defaults below)
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# ---------------------------------------------------------------------------
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# Where datasets, rendered PDFs, ingestion id maps, run outputs, and
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# state.json live. Default: <surfsense_evals>/data/
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# EVAL_DATA_DIR=./data
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# Where generated reports (summary.md / summary.json) get written.
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# Default: <surfsense_evals>/reports/
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# EVAL_REPORTS_DIR=./reports
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# ---------------------------------------------------------------------------
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# 5. Parser SDKs — REQUIRED for the multimodal_doc / parser_compare suite
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# ---------------------------------------------------------------------------
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# parser_compare calls Azure Document Intelligence and LlamaParse SDKs
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# directly from the eval harness so each (basic / premium) extraction
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# is a clean A/B test independent of the SurfSense backend's ETL routing.
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#
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# Azure Document Intelligence — used for the `azure_basic_lc` (prebuilt-read)
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# and `azure_premium_lc` (prebuilt-layout) arms. Get an endpoint + key from
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# https://portal.azure.com (Document Intelligence resource, F0 / S0 tier).
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# AZURE_DI_ENDPOINT=https://<your-resource>.cognitiveservices.azure.com/
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# AZURE_DI_KEY=<your-32-char-key>
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#
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# LlamaCloud (LlamaParse) — used for `llamacloud_basic_lc` (parse_page_with_llm)
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# and `llamacloud_premium_lc` (parse_page_with_agent). Get a key from
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# https://cloud.llamaindex.ai/api-key.
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# LLAMA_CLOUD_API_KEY=llx-...
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