286 lines
14 KiB
Python
286 lines
14 KiB
Python
"""
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FILE: app/core/ingestion/ingestion_processor.py
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DESCRIPTION: Der zentrale IngestionService (Orchestrator).
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WP-24c: Integration der Symmetrie-Logik (Automatische inverse Kanten).
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WP-25a: Integration der Mixture of Experts (MoE) Architektur.
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WP-15b: Two-Pass Workflow mit globalem Kontext-Cache.
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WP-20/22: Cloud-Resilienz und Content-Lifecycle integriert.
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AUDIT v3.1.0: Korrektur der bidirektionalen Graph-Injektion für Qdrant.
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VERSION: 3.1.0 (WP-24c: Symmetric Edge Injection Fix)
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STATUS: Active
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"""
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import logging
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import asyncio
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import os
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from typing import Dict, List, Optional, Tuple, Any
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# Core Module Imports
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from app.core.parser import (
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read_markdown, pre_scan_markdown, normalize_frontmatter,
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validate_required_frontmatter, NoteContext
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)
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from app.core.chunking import assemble_chunks
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# MODULARISIERUNG: Neue Import-Pfade für die Datenbank-Ebene
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from app.core.database.qdrant import QdrantConfig, get_client, ensure_collections, ensure_payload_indexes
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from app.core.database.qdrant_points import points_for_chunks, points_for_note, points_for_edges, upsert_batch
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# Services
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from app.services.embeddings_client import EmbeddingsClient
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from app.services.edge_registry import registry as edge_registry
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from app.services.llm_service import LLMService
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# Package-Interne Imports
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from .ingestion_utils import load_type_registry, resolve_note_type, get_chunk_config_by_profile
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from .ingestion_db import fetch_note_payload, artifacts_missing, purge_artifacts
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# WP-24c: Wir nutzen die Basis-Validierung; die Symmetrie wird im Prozessor injiziert
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from .ingestion_validation import validate_edge_candidate
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from .ingestion_note_payload import make_note_payload
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from .ingestion_chunk_payload import make_chunk_payloads
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# Fallback für Edges (Struktur-Verknüpfung)
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try:
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from app.core.graph.graph_derive_edges import build_edges_for_note
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except ImportError:
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def build_edges_for_note(*args, **kwargs): return []
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logger = logging.getLogger(__name__)
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class IngestionService:
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def __init__(self, collection_prefix: str = None):
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"""Initialisiert den Service und nutzt die neue database-Infrastruktur."""
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from app.config import get_settings
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self.settings = get_settings()
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self.prefix = collection_prefix or self.settings.COLLECTION_PREFIX
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self.cfg = QdrantConfig.from_env()
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# Synchronisierung der Konfiguration mit dem Instanz-Präfix
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self.cfg.prefix = self.prefix
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self.client = get_client(self.cfg)
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self.registry = load_type_registry()
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self.embedder = EmbeddingsClient()
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self.llm = LLMService()
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# WP-25a: Auflösung der Dimension über das Embedding-Profil (MoE)
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embed_cfg = self.llm.profiles.get("embedding_expert", {})
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self.dim = embed_cfg.get("dimensions") or self.settings.VECTOR_SIZE
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# Festlegen, welcher Hash für die Change-Detection maßgeblich ist
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self.active_hash_mode = self.settings.CHANGE_DETECTION_MODE
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self.batch_cache: Dict[str, NoteContext] = {} # WP-15b LocalBatchCache
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try:
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# Aufruf der modularisierten Schema-Logik
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ensure_collections(self.client, self.prefix, self.dim)
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ensure_payload_indexes(self.client, self.prefix)
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except Exception as e:
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logger.warning(f"DB initialization warning: {e}")
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async def run_batch(self, file_paths: List[str], vault_root: str) -> List[Dict[str, Any]]:
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"""
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WP-15b: Implementiert den Two-Pass Ingestion Workflow.
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Pass 1: Pre-Scan füllt den Context-Cache (3-Wege-Indexierung).
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Pass 2: Verarbeitung nutzt den Cache für die semantische Prüfung.
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"""
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logger.info(f"🔍 [Pass 1] Pre-Scanning {len(file_paths)} files for Context Cache...")
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for path in file_paths:
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try:
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# Übergabe der Registry für dynamische Scan-Tiefe
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ctx = pre_scan_markdown(path, registry=self.registry)
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if ctx:
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# Mehrfache Indizierung für robusten Look-up (ID, Titel, Dateiname)
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self.batch_cache[ctx.note_id] = ctx
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self.batch_cache[ctx.title] = ctx
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fname = os.path.splitext(os.path.basename(path))[0]
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self.batch_cache[fname] = ctx
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except Exception as e:
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logger.warning(f"⚠️ Pre-scan failed for {path}: {e}")
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logger.info(f"🚀 [Pass 2] Semantic Processing of {len(file_paths)} files...")
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return [await self.process_file(p, vault_root, apply=True, purge_before=True) for p in file_paths]
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async def process_file(self, file_path: str, vault_root: str, **kwargs) -> Dict[str, Any]:
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"""Transformiert eine Markdown-Datei in den Graphen."""
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apply = kwargs.get("apply", False)
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force_replace = kwargs.get("force_replace", False)
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purge_before = kwargs.get("purge_before", False)
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note_scope_refs = kwargs.get("note_scope_refs", False)
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hash_source = kwargs.get("hash_source", "parsed")
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hash_normalize = kwargs.get("hash_normalize", "canonical")
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result = {"path": file_path, "status": "skipped", "changed": False, "error": None}
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# 1. Parse & Lifecycle Gate
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try:
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parsed = read_markdown(file_path)
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if not parsed: return {**result, "error": "Empty file"}
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fm = normalize_frontmatter(parsed.frontmatter)
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validate_required_frontmatter(fm)
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except Exception as e:
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return {**result, "error": f"Validation failed: {str(e)}"}
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# Dynamischer Lifecycle-Filter aus der Registry (WP-14)
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ingest_cfg = self.registry.get("ingestion_settings", {})
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ignore_list = ingest_cfg.get("ignore_statuses", ["system", "template", "archive", "hidden"])
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current_status = fm.get("status", "draft").lower().strip()
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if current_status in ignore_list:
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return {**result, "status": "skipped", "reason": "lifecycle_filter"}
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# 2. Payload & Change Detection (Multi-Hash)
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note_type = resolve_note_type(self.registry, fm.get("type"))
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note_pl = make_note_payload(
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parsed, vault_root=vault_root, file_path=file_path,
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hash_source=hash_source, hash_normalize=hash_normalize,
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types_cfg=self.registry
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)
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note_id = note_pl["note_id"]
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# Abgleich mit der Datenbank (Qdrant)
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old_payload = None if force_replace else fetch_note_payload(self.client, self.prefix, note_id)
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# Prüfung gegen den konfigurierten Hash-Modus (body vs. full)
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check_key = f"{self.active_hash_mode}:{hash_source}:{hash_normalize}"
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old_hash = (old_payload or {}).get("hashes", {}).get(check_key)
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new_hash = note_pl.get("hashes", {}).get(check_key)
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# Check ob Chunks oder Kanten in der DB fehlen (Reparatur-Modus)
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c_miss, e_miss = artifacts_missing(self.client, self.prefix, note_id)
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# Wenn Hash identisch und Artefakte vorhanden -> Skip
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if not (force_replace or not old_payload or old_hash != new_hash or c_miss or e_miss):
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return {**result, "status": "unchanged", "note_id": note_id}
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if not apply:
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return {**result, "status": "dry-run", "changed": True, "note_id": note_id}
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# 3. Deep Processing (Chunking, Validation, Embedding)
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try:
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body_text = getattr(parsed, "body", "") or ""
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edge_registry.ensure_latest()
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# Profil-Auflösung via Registry
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profile = note_pl.get("chunk_profile", "sliding_standard")
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chunk_cfg = get_chunk_config_by_profile(self.registry, profile, note_type)
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enable_smart = chunk_cfg.get("enable_smart_edge_allocation", False)
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# WP-15b: Chunker-Aufruf bereitet den Candidate-Pool pro Chunk vor.
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chunks = await assemble_chunks(note_id, body_text, note_type, config=chunk_cfg)
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# Semantische Kanten-Validierung (Primärprüfung)
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for ch in chunks:
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new_pool = []
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for cand in getattr(ch, "candidate_pool", []):
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# WP-25a: Profilgesteuerte binäre Validierung
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if cand.get("provenance") == "global_pool" and enable_smart:
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is_valid = await validate_edge_candidate(
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chunk_text=ch.text,
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edge=cand,
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batch_cache=self.batch_cache,
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llm_service=self.llm,
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profile_name="ingest_validator"
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)
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if is_valid:
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new_pool.append(cand)
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else:
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# Explizite Kanten (Wikilinks/Callouts) werden übernommen
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new_pool.append(cand)
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ch.candidate_pool = new_pool
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# Payload-Erstellung für die Chunks
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chunk_pls = make_chunk_payloads(
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fm, note_pl["path"], chunks, file_path=file_path,
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types_cfg=self.registry
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)
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# Vektorisierung der Fenster-Texte
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vecs = await self.embedder.embed_documents([c.get("window") or "" for c in chunk_pls]) if chunk_pls else []
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# Aggregation aller finalen Kanten (Edges)
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raw_edges = build_edges_for_note(
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note_id, chunk_pls,
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note_level_references=note_pl.get("references", []),
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include_note_scope_refs=note_scope_refs
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)
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# --- WP-24c: Symmetrie-Injektion (Invers-Kanten Fix) ---
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# Wir bauen die finalen Kanten-Objekte inklusive ihrer Gegenstücke
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final_edges = []
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for e in raw_edges:
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# 1. Primär-Kante auflösen & kanonisieren
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resolved_kind = edge_registry.resolve(
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e.get("kind", "related_to"),
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provenance=e.get("provenance", "explicit"),
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context={"file": file_path, "note_id": note_id, "line": e.get("line", "system")}
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)
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e["kind"] = resolved_kind
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final_edges.append(e)
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# 2. Symmetrie-Erzeugung via Registry
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inverse_kind = edge_registry.get_inverse(resolved_kind)
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target_id = e.get("target_id")
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# Wir erzeugen eine Inverse nur bei sinnvoller Symmetrie und existierendem Ziel
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if inverse_kind and inverse_kind != resolved_kind and target_id:
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# Deep Copy für die Inverse zur Vermeidung von Side-Effects
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inv_edge = e.copy()
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# Richtungs-Umkehr
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inv_edge["note_id"] = target_id # Ursprung ist nun das Ziel
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inv_edge["target_id"] = note_id # Ziel ist nun die Quelle
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inv_edge["kind"] = inverse_kind
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# Metadaten-Anpassung
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inv_edge["virtual"] = True
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inv_edge["provenance"] = "structure" # Schutz durch Firewall
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inv_edge["confidence"] = e.get("confidence", 0.9) * 0.9 # Leichte Dämpfung
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# Lifecycle-Verankerung: Die Inverse gehört logisch zur Quell-Note
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inv_edge["origin_note_id"] = note_id
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final_edges.append(inv_edge)
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logger.info(f"🔄 [SYMMETRY] Built inverse in payload: {target_id} --({inverse_kind})--> {note_id}")
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edges = final_edges
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# 4. DB Upsert via modularisierter Points-Logik
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if purge_before and old_payload:
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purge_artifacts(self.client, self.prefix, note_id)
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# Speichern der Haupt-Note
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n_name, n_pts = points_for_note(self.prefix, note_pl, None, self.dim)
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upsert_batch(self.client, n_name, n_pts)
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# Speichern der Chunks
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if chunk_pls and vecs:
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c_pts = points_for_chunks(self.prefix, chunk_pls, vecs)[1]
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upsert_batch(self.client, f"{self.prefix}_chunks", c_pts)
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# Speichern der Kanten (inklusive der virtuellen Inversen)
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if edges:
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e_pts = points_for_edges(self.prefix, edges)[1]
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upsert_batch(self.client, f"{self.prefix}_edges", e_pts)
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return {
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"path": file_path,
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"status": "success",
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"changed": True,
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"note_id": note_id,
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"chunks_count": len(chunk_pls),
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"edges_count": len(edges)
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}
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except Exception as e:
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logger.error(f"Processing failed: {e}", exc_info=True)
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return {**result, "error": str(e)}
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async def create_from_text(self, markdown_content: str, filename: str, vault_root: str, folder: str = "00_Inbox") -> Dict[str, Any]:
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"""Erstellt eine Note aus einem Textstream und triggert die Ingestion."""
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target_path = os.path.join(vault_root, folder, filename)
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os.makedirs(os.path.dirname(target_path), exist_ok=True)
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with open(target_path, "w", encoding="utf-8") as f:
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f.write(markdown_content)
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await asyncio.sleep(0.1)
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# Triggert sofortigen Import mit force_replace/purge_before
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return await self.process_file(file_path=target_path, vault_root=vault_root, apply=True, force_replace=True, purge_before=True) |