CLAUDE.md rewritten (708 -> ~320 lines): four overlapping release sections collapsed to one, stale v1->v35 schema history dropped (it lives in CHANGELOG), marketplace endpoint internals and verbose process sections moved out or tightened. New focused docs: - docs/RELEASING.md - release process, deploy workflows, CI quirks (RELEASE_TEMPLATE.md folded in as an appendix) - docs/marketplace.md - marketplace ingestion + re-serving internals - docs/README.md - documentation index by audience, linked from README.md and CLAUDE.md Archived under docs/archive/: docs/superpowers/ (52 historical planning artifacts), HACKATHON.md, pd-ps-comments.md, security-audit-2026-04.md, future/NOTIFICATIONS.md. Removed the docs/auto-install.md stub. Fixed dangling links in connectors/jira/README.md and dev_docs/README.md, repointed code/doc references to archived paths.
178 lines
6.9 KiB
Python
178 lines
6.9 KiB
Python
"""VerificationProcessor — first plugin of the session-pipeline framework.
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Wraps the body of the pre-refactor `verification_detector.detector.run()`
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inner loop so the LLM extraction + persist behavior is unchanged after the
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framework refactor. Tests in `tests/test_corporate_memory_v1.py` are the
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regression contract.
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"""
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from __future__ import annotations
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import logging
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from pathlib import Path
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import duckdb
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from connectors.llm import StructuredExtractor
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from connectors.llm.exceptions import LLMError
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from services.corporate_memory import contradiction as contradiction_module
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from services.corporate_memory.confidence import compute_confidence
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from services.session_pipeline.contract import ProcessorResult
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from services.session_pipeline.lib import parse_jsonl
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from services.verification_detector.duplicates import _record_duplicate_candidates
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from services.verification_detector.detector import (
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_generate_id,
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extract_verifications,
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)
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from src.repositories.knowledge import KnowledgeRepository
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logger = logging.getLogger(__name__)
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class VerificationProcessor:
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name: str = "verification"
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cadence_minutes: int = 15
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def __init__(self, extractor: StructuredExtractor):
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self.extractor = extractor
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def process_session(
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self,
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session_path: Path,
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username: str,
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session_key: str,
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conn: duckdb.DuckDBPyConnection,
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**kwargs: object,
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) -> ProcessorResult:
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repo = KnowledgeRepository(conn)
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session_id = f"session-{session_path.stem}-{username}"
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turns = parse_jsonl(session_path)
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if not turns:
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logger.info("Empty session: %s", session_key)
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return ProcessorResult(items_count=0)
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verifications = extract_verifications(self.extractor, username, session_id, turns)
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items_created = 0
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for v in verifications:
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item_id = _generate_id(v["title"], v["content"])
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existing = repo.get_by_id(item_id)
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if existing:
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# Hash collision on (title, content) → another analyst
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# produced the same fact. ADR Decision 3 expects multiple
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# evidence rows to accumulate (one per distinct
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# verification event), so we still persist the new
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# evidence row even though we skip the create+contradiction
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# path. Without this, the second analyst's user_quote and
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# detection_type are silently dropped and the
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# "additional verifiers" boost cannot accumulate.
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logger.info(
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"Duplicate item — recording evidence on existing: %s",
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item_id,
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)
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repo.create_evidence(
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item_id=item_id,
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source_user=username,
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source_ref=session_id,
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detection_type=v.get("detection_type"),
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user_quote=v.get("user_quote"),
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)
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continue
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# Confidence is computed in code from (source_type, detection_type).
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# The LLM is not trusted to set its own credibility — see Q3 in
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# docs/archive/pd-ps-comments.md and the ADR.
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detection_type = v.get("detection_type")
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try:
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confidence_value = compute_confidence("user_verification", detection_type)
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except ValueError:
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# Unknown detection_type from the LLM; fall back to a
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# lookup-keyed default rather than the LLM-supplied value.
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confidence_value = compute_confidence("user_verification", "confirmation")
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repo.create(
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id=item_id,
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title=v["title"],
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content=v["content"],
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category="business_logic",
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source_user=username,
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tags=v.get("entities", []),
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status="pending",
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confidence=confidence_value,
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domain=v.get("domain"),
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entities=v.get("entities"),
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source_type="user_verification",
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source_ref=session_id,
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sensitivity="internal",
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)
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# Persist the verification evidence row — user_quote and
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# detection_type are the raw signal Bayesian re-calibration
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# will need later (Q3).
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repo.create_evidence(
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item_id=item_id,
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source_user=username,
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source_ref=session_id,
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detection_type=detection_type,
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user_quote=v.get("user_quote"),
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)
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items_created += 1
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# Record duplicate-candidate hints inline. Heuristic-only (no
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# LLM call) so it stays cheap; failures must never abort
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# session processing — log and continue. Issue #62.
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try:
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new_item = repo.get_by_id(item_id)
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if new_item is not None:
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_record_duplicate_candidates(repo, new_item)
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except Exception as e:
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logger.warning(
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"Duplicate-candidate detection failed for %s: %s",
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item_id,
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e,
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)
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# Run contradiction detection inline. Failure of the LLM
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# judge must not abort session processing — log and move on.
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try:
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new_item = repo.get_by_id(item_id)
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if new_item is not None:
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contradiction_module.detect_and_record(self.extractor, new_item, repo)
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except LLMError as e:
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logger.warning("Contradiction check failed for %s: %s", item_id, e)
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except Exception as e:
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logger.warning(
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"Unexpected error during contradiction check for %s: %s",
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item_id,
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e,
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)
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logger.info(
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"Processed %s: %d verifications, %d items created",
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session_key,
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len(verifications),
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items_created,
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)
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return ProcessorResult(items_count=items_created)
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def build_verification_processor() -> VerificationProcessor:
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"""Factory that constructs the LLM extractor from instance config + env.
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Mirrors the pattern in services/verification_detector/__main__.py and
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app/api/admin.py:run_verification_detector — both built the extractor
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lazily at call time. Raises if the LLM isn't configured."""
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from connectors.llm import create_extractor_from_env_or_config
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try:
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from app.instance_config import load_instance_config
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try:
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config = load_instance_config()
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except (ValueError, FileNotFoundError):
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config = {}
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ai_config = config.get("ai") if config else None
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except Exception:
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ai_config = None
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extractor = create_extractor_from_env_or_config(ai_config)
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return VerificationProcessor(extractor=extractor)
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