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Both email-processor God-handlers split along the seams that already work in the flat-sibling pattern established by lambdas/shared/, so bare-name imports keep working under the existing bundling glob. PO (5-way split): handler.py keeps only the event loop, fail-closed auth, and email_type routing. extraction.py holds extract_with_claude and _EMAIL_TAG_RE, importing EXTRACTION_PROMPT from prompts.py and parse_raw_email from shared/email_parsing.py rather than recreating a PO-local copy. enrichment.py is a pure code move of enrich_parsed and pad_zip (PO-only; WO has no enrichment stage) with zero behavior change. telemetry.py holds the EMF ParseMethod emit wrappers. persistence.py holds _write_fields/_merge_update/save_*, collapsing the byte-identical save_new_po/save_revision bodies into one _save_merge helper that both now call through, preserving the sticky Cancelled ConditionExpression guard for both callers; save_cancellation stays separate. WO (5 concerns, no enrichment stage): the handler loop keeps validate_ai_fallback and the re.fullmatch(r"[0-9]+", work_order_id) key guard ahead of both save_work_order and save_event, since the guard protects the DynamoDB partition key and the '#'-delimited comment_id range-key segment. _header_date_iso and comment_id determinism stay colocated with persistence.py's save_event for the retry-idempotent event_id key. EXTRACTION_PROMPT (PO) moves to prompts.py with cross-reference headers to derived_fields.py's authoritative trade/site/fiscal rule tables; handler.py re-exports it (from prompts import EXTRACTION_PROMPT) since four tests dereference handler.EXTRACTION_ PROMPT directly. WO's prompt moves the same way. I/O modules (extraction.py's bedrock client, persistence.py's dynamodb resource, handler.py's s3 client) get lazy cached boto3 accessors; pure modules (enrichment.py, prompts.py, telemetry.py) import no boto3. Test monkeypatch surfaces move to the module that now owns the client (e.g. persistence.dynamodb) everywhere tests patch it, and the moto-before-handler-import ordering in _po_parser_support.py is preserved so the moto-backed suites don't hit real AWS. Behavior-preservation pins, verified with tests: PO still emits ParseMethod=ai_fallback before the Bedrock call, with ai_fallback_rejected as the additive second datapoint on rejection. WO still emits after its gate with mutually-exclusive ai_fallback / ai_fallback_rejected. Shadow DerivedFieldAgreement telemetry stays ai_fallback-only. derived_fields.py is untouched (diff against feature/phase-3-shared-extraction is empty). handler(event, context) signatures and the save_* public contract are unchanged on both pipelines; goldens unchanged. PO_EXPECTED_TOP_LEVEL_MODULES and its WO equivalent in tests/test_bundle_consistency.py are updated for the new sibling modules so the AST bundle-consistency test still fails on an unshipped or uncommented-out sibling.
94 lines
3.7 KiB
Python
94 lines
3.7 KiB
Python
"""PO Bedrock AI-fallback extraction.
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Sends the parsed email to Claude on Bedrock for structured extraction when the
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deterministic template parser misses. The untrusted email body is wrapped in an
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explicit XML-tagged data block and tag lookalikes are neutralized before the
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Bedrock call; the downstream validate_ai_fallback gate (run in handler) is the
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fail-closed check on the raw model output.
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"""
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import json
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import os
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import re
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from decimal import Decimal
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import boto3
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from prompts import EXTRACTION_PROMPT
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BEDROCK_MODEL_ID = os.environ.get(
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"BEDROCK_MODEL_ID", "us.anthropic.claude-haiku-4-5-20251001-v1:0"
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)
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# Neutralize forged <email>/</email> tags in untrusted bodies before they are
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# wrapped in the real <email> data block. Single [\s/]* class (NOT two \s*
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# quantifiers around an optional /) keeps matching linear-time -- two adjacent
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# unbounded quantifiers invite quadratic backtracking on '<' + a long whitespace
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# run (ReDoS). Ported from WO #104.
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_EMAIL_TAG_RE = re.compile(r"<[\s/]*email\b", re.IGNORECASE)
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# Lazily-built, cached Bedrock client. Kept under the public name ``bedrock`` so
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# the tests' setattr(extraction, "bedrock", fake) patch surface is unchanged;
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# building at first CALL (not import) keeps the moto-before-handler invariant
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# and honors any patched fake (the accessor returns it when non-None).
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bedrock = None
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def _get_bedrock():
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global bedrock
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if bedrock is None:
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bedrock = boto3.client("bedrock-runtime")
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return bedrock
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def extract_with_claude(email_data: dict) -> dict:
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"""Send parsed email to Claude on Bedrock for structured extraction.
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The untrusted email body is wrapped in an explicit XML-tagged data block
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(<email>) to delimit data from instructions; <email>-tag lookalikes inside
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the untrusted text are neutralized so the boundary cannot be forged. The
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prompt instructs the model to treat the block as data only, which -- in
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combination with the downstream validate_ai_fallback gate -- defends against
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prompt injection from DKIM-passing but attacker-controlled email bodies.
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"""
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email_text = (
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f"Subject: {email_data['subject']}\n"
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f"From: {email_data['sender']}\n"
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f"To: {email_data['to']}\n"
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f"Date: {email_data['date']}\n"
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f"\n---\n\n"
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f"{email_data['body']}"
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)
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# Neutralize forged closing/opening tags BEFORE wrapping, so DKIM-passing but
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# attacker-controlled content cannot escape the <email> data block. Applied
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# to the full assembled text -- subject/from/to/date AND body.
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email_text = _EMAIL_TAG_RE.sub("[email-tag]", email_text)
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resp = _get_bedrock().invoke_model(
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modelId=BEDROCK_MODEL_ID,
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body=json.dumps(
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{
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"anthropic_version": "bedrock-2023-05-31",
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"max_tokens": 2048,
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# Greedy decoding: retries of the same email should get the
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# same extraction back. Not a hard determinism guarantee, so
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# model output still never enters a table key unvalidated (see
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# validate_ai_fallback).
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"temperature": 0,
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"messages": [
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{
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"role": "user",
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"content": f"{EXTRACTION_PROMPT}\n\n<email>\n{email_text}\n</email>",
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}
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],
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}
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),
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)
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response_text = json.loads(resp["body"].read())["content"][0]["text"]
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# Extract JSON from response (handle markdown code blocks)
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json_match = re.search(r"```(?:json)?\s*(.*?)```", response_text, re.DOTALL)
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if json_match:
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response_text = json_match.group(1)
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# parse_float=Decimal is CRITICAL: DynamoDB rejects Python floats.
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return json.loads(response_text.strip(), parse_float=Decimal)
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