""" Link creation utilities for temporal, semantic, and entity links. """ import logging import time from datetime import UTC, datetime, timedelta from uuid import UUID from ..memory_engine import fq_table from .types import EntityLink logger = logging.getLogger(__name__) def _normalize_datetime(dt): """Normalize datetime to be timezone-aware (UTC) for consistent comparison.""" if dt is None: return None if dt.tzinfo is None: # Naive datetime - assume UTC return dt.replace(tzinfo=UTC) return dt def compute_temporal_links( new_units: dict, candidates: list, time_window_hours: int = 24, ) -> list: """ Compute temporal links between new units and candidate neighbors. This is a pure function that takes query results and returns link tuples, making it easy to test without database access. Args: new_units: Dict mapping unit_id (str) to event_date (datetime) candidates: List of dicts with 'id' and 'event_date' keys (candidate neighbors) time_window_hours: Time window in hours for temporal links Returns: List of tuples: (from_unit_id, to_unit_id, 'temporal', weight, None) """ if not new_units: return [] links = [] for unit_id, unit_event_date in new_units.items(): # Units without event_date can't form temporal links if unit_event_date is None: continue # Normalize unit_event_date for consistent comparison unit_event_date_norm = _normalize_datetime(unit_event_date) # Calculate time window bounds with overflow protection try: time_lower = unit_event_date_norm - timedelta(hours=time_window_hours) except OverflowError: time_lower = datetime.min.replace(tzinfo=UTC) try: time_upper = unit_event_date_norm + timedelta(hours=time_window_hours) except OverflowError: time_upper = datetime.max.replace(tzinfo=UTC) # Filter candidates within this unit's time window matching_neighbors = [ (row["id"], row["event_date"]) for row in candidates if time_lower <= _normalize_datetime(row["event_date"]) <= time_upper ][:10] # Limit to top 10 for recent_id, recent_event_date in matching_neighbors: # Calculate temporal proximity weight time_diff_hours = abs( (unit_event_date_norm - _normalize_datetime(recent_event_date)).total_seconds() / 3600 ) weight = max(0.3, 1.0 - (time_diff_hours / time_window_hours)) links.append((unit_id, str(recent_id), "temporal", weight, None)) return links def compute_temporal_query_bounds( new_units: dict, time_window_hours: int = 24, ) -> tuple: """ Compute the min/max date bounds for querying temporal neighbors. Args: new_units: Dict mapping unit_id (str) to event_date (datetime) time_window_hours: Time window in hours Returns: Tuple of (min_date, max_date) with overflow protection """ if not new_units: return None, None # Normalize all dates to be timezone-aware to avoid comparison issues # Filter out None values — units without event_date can't form temporal links all_dates = [_normalize_datetime(d) for d in new_units.values() if d is not None] if not all_dates: return None, None try: min_date = min(all_dates) - timedelta(hours=time_window_hours) except OverflowError: min_date = datetime.min.replace(tzinfo=UTC) try: max_date = max(all_dates) + timedelta(hours=time_window_hours) except OverflowError: max_date = datetime.max.replace(tzinfo=UTC) return min_date, max_date def _log(log_buffer, message, level="info"): """Helper to log to buffer if available, otherwise use logger. Args: log_buffer: Buffer to append messages to (for main output) message: The log message level: 'info', 'debug', 'warning', or 'error'. Debug messages are not added to buffer. """ if level == "debug": # Debug messages only go to logger, not to buffer logger.debug(message) return if log_buffer is not None: log_buffer.append(message) else: if level == "info": logger.info(message) else: logger.log(logging.WARNING if level == "warning" else logging.ERROR, message) async def extract_entities_batch_optimized( entity_resolver, conn, bank_id: str, unit_ids: list[str], sentences: list[str], context: str, fact_dates: list, llm_entities: list[list[dict]], log_buffer: list[str] = None, entity_labels: list | None = None, ) -> list[tuple]: """ Process LLM-extracted entities for ALL facts in batch. Uses entities provided by the LLM (no spaCy needed), then resolves and links them in bulk. Args: entity_resolver: EntityResolver instance for entity resolution conn: Database connection agent_id: bank IDentifier unit_ids: List of unit IDs sentences: List of fact sentences context: Context string fact_dates: List of fact dates llm_entities: List of entity lists from LLM extraction log_buffer: Optional buffer for logging Returns: List of tuples for batch insertion: (from_unit_id, to_unit_id, link_type, weight, entity_id) """ try: # Step 1: Convert LLM entities to the format expected by entity resolver substep_start = time.time() all_entities = [] for entity_list in llm_entities: # Convert List[Entity] or List[dict] to List[Dict] format formatted_entities = [] for ent in entity_list: # Handle both Entity objects and dicts if hasattr(ent, "text"): # Entity objects only have 'text', default type to 'CONCEPT' formatted_entities.append({"text": ent.text, "type": "CONCEPT"}) elif isinstance(ent, dict): formatted_entities.append({"text": ent.get("text", ""), "type": ent.get("type", "CONCEPT")}) all_entities.append(formatted_entities) total_entities = sum(len(ents) for ents in all_entities) _log( log_buffer, f" [6.1] Process LLM entities: {total_entities} entities from {len(sentences)} facts in {time.time() - substep_start:.3f}s", level="debug", ) # Step 2: Resolve entities in BATCH (much faster!) substep_start = time.time() step_6_2_start = time.time() # [6.2.1] Prepare all entities for batch resolution substep_6_2_1_start = time.time() all_entities_flat = [] entity_to_unit = [] # Maps flat index to (unit_id, local_index) for unit_id, entities, fact_date in zip(unit_ids, all_entities, fact_dates): if not entities: continue for local_idx, entity in enumerate(entities): all_entities_flat.append( { "text": entity["text"], "type": entity["type"], "nearby_entities": entities, } ) entity_to_unit.append((unit_id, local_idx, fact_date)) _log( log_buffer, f" [6.2.1] Prepare entities: {len(all_entities_flat)} entities in {time.time() - substep_6_2_1_start:.3f}s", level="debug", ) # Resolve ALL entities in one batch call if all_entities_flat: # [6.2.2] Batch resolve entities - single call with per-entity dates substep_6_2_2_start = time.time() # Add per-entity dates to entity data for batch resolution for idx, (unit_id, local_idx, fact_date) in enumerate(entity_to_unit): all_entities_flat[idx]["event_date"] = fact_date # Resolve ALL entities in ONE batch call (much faster than sequential buckets) # INSERT ... ON CONFLICT handles any race conditions at the DB level resolved_entity_ids = await entity_resolver.resolve_entities_batch( bank_id=bank_id, entities_data=all_entities_flat, context=context, unit_event_date=None, # Not used when per-entity dates provided conn=conn, # Use main transaction connection entity_labels=entity_labels, ) _log( log_buffer, f" [6.2.2] Resolve entities: {len(all_entities_flat)} entities in single batch in {time.time() - substep_6_2_2_start:.3f}s", level="debug", ) # [6.2.3] Create unit-entity links in BATCH substep_6_2_3_start = time.time() # Map resolved entities back to units and collect all (unit, entity) pairs unit_to_entity_ids = {} unit_entity_pairs = [] for idx, (unit_id, local_idx, fact_date) in enumerate(entity_to_unit): if unit_id not in unit_to_entity_ids: unit_to_entity_ids[unit_id] = [] entity_id = resolved_entity_ids[idx] unit_to_entity_ids[unit_id].append(entity_id) unit_entity_pairs.append((unit_id, entity_id)) # Batch insert all unit-entity links (MUCH faster!) await entity_resolver.link_units_to_entities_batch(unit_entity_pairs, conn=conn) _log( log_buffer, f" [6.2.3] Create unit-entity links (batched): {len(unit_entity_pairs)} links in {time.time() - substep_6_2_3_start:.3f}s", level="debug", ) _log( log_buffer, f" [6.2] Entity resolution (batched): {len(all_entities_flat)} entities resolved in {time.time() - step_6_2_start:.3f}s", level="debug", ) else: unit_to_entity_ids = {} _log( log_buffer, f" [6.2] Entity resolution (batched): 0 entities in {time.time() - step_6_2_start:.3f}s", level="debug", ) # Step 3: Create entity links between units that share entities substep_start = time.time() # Collect all unique entity IDs all_entity_ids = set() for entity_ids in unit_to_entity_ids.values(): all_entity_ids.update(entity_ids) _log(log_buffer, f" [6.3] Creating entity links for {len(all_entity_ids)} unique entities...", level="debug") # Find all units that reference these entities (ONE batched query) entity_to_units = {} if all_entity_ids: query_start = time.time() import uuid entity_id_list = [uuid.UUID(eid) if isinstance(eid, str) else eid for eid in all_entity_ids] rows = await conn.fetch( f""" SELECT entity_id, unit_id FROM {fq_table("unit_entities")} WHERE entity_id = ANY($1::uuid[]) """, entity_id_list, ) _log( log_buffer, f" [6.3.1] Query unit_entities: {len(rows)} rows in {time.time() - query_start:.3f}s", level="debug", ) # Group by entity_id group_start = time.time() for row in rows: entity_id = row["entity_id"] if entity_id not in entity_to_units: entity_to_units[entity_id] = [] entity_to_units[entity_id].append(row["unit_id"]) _log(log_buffer, f" [6.3.2] Group by entity_id: {time.time() - group_start:.3f}s", level="debug") # Create bidirectional links between units that share entities # OPTIMIZATION: Limit links per entity to avoid N² explosion # Only link each new unit to the most recent MAX_LINKS_PER_ENTITY units MAX_LINKS_PER_ENTITY = 50 # Limit to prevent explosion when entity appears in many facts link_gen_start = time.time() links: list[EntityLink] = [] new_unit_set = set(unit_ids) # Units from this batch def to_uuid(val) -> UUID: return UUID(val) if isinstance(val, str) else val for entity_id, units_with_entity in entity_to_units.items(): entity_uuid = to_uuid(entity_id) # Separate new units (from this batch) and existing units new_units = [u for u in units_with_entity if str(u) in new_unit_set or u in new_unit_set] existing_units = [u for u in units_with_entity if str(u) not in new_unit_set and u not in new_unit_set] # Link new units to each other (within batch) - also limited # For very common entities, limit within-batch links too new_units_to_link = ( new_units[-MAX_LINKS_PER_ENTITY:] if len(new_units) > MAX_LINKS_PER_ENTITY else new_units ) for i, unit_id_1 in enumerate(new_units_to_link): for unit_id_2 in new_units_to_link[i + 1 :]: links.append( EntityLink( from_unit_id=to_uuid(unit_id_1), to_unit_id=to_uuid(unit_id_2), entity_id=entity_uuid ) ) links.append( EntityLink( from_unit_id=to_uuid(unit_id_2), to_unit_id=to_uuid(unit_id_1), entity_id=entity_uuid ) ) # Link new units to LIMITED existing units (most recent) existing_to_link = existing_units[-MAX_LINKS_PER_ENTITY:] # Take most recent for new_unit in new_units: for existing_unit in existing_to_link: links.append( EntityLink( from_unit_id=to_uuid(new_unit), to_unit_id=to_uuid(existing_unit), entity_id=entity_uuid ) ) links.append( EntityLink( from_unit_id=to_uuid(existing_unit), to_unit_id=to_uuid(new_unit), entity_id=entity_uuid ) ) _log( log_buffer, f" [6.3.3] Generate {len(links)} links: {time.time() - link_gen_start:.3f}s", level="debug" ) _log( log_buffer, f" [6.3] Entity link creation: {len(links)} links for {len(all_entity_ids)} unique entities in {time.time() - substep_start:.3f}s", level="debug", ) return links except Exception as e: logger.error(f"Failed to extract entities in batch: {str(e)}") import traceback traceback.print_exc() raise async def create_temporal_links_batch_per_fact( conn, bank_id: str, unit_ids: list[str], time_window_hours: int = 24, log_buffer: list[str] = None, ) -> int: """ Create temporal links for multiple units, each with their own event_date. Queries the event_date for each unit from the database and creates temporal links based on individual dates (supports per-fact dating). Args: conn: Database connection agent_id: bank IDentifier unit_ids: List of unit IDs time_window_hours: Time window in hours for temporal links log_buffer: Optional buffer for logging Returns: Number of temporal links created """ if not unit_ids: return 0 try: import time as time_mod # Get the event_date for each new unit fetch_dates_start = time_mod.time() rows = await conn.fetch( f""" SELECT id, event_date FROM {fq_table("memory_units")} WHERE id::text = ANY($1) """, unit_ids, ) new_units = {str(row["id"]): row["event_date"] for row in rows} _log( log_buffer, f" [7.1] Fetch event_dates for {len(unit_ids)} units: {time_mod.time() - fetch_dates_start:.3f}s", ) # Fetch ALL potential temporal neighbors in ONE query (much faster!) # Get time range across all units with overflow protection min_date, max_date = compute_temporal_query_bounds(new_units, time_window_hours) fetch_neighbors_start = time_mod.time() if min_date is not None and max_date is not None: all_candidates = await conn.fetch( f""" SELECT id, event_date FROM {fq_table("memory_units")} WHERE bank_id = $1 AND event_date BETWEEN $2 AND $3 AND id::text != ALL($4) ORDER BY event_date DESC """, bank_id, min_date, max_date, unit_ids, ) else: all_candidates = [] _log( log_buffer, f" [7.2] Fetch {len(all_candidates)} candidate neighbors (1 query): {time_mod.time() - fetch_neighbors_start:.3f}s", ) # Filter and create links in memory (much faster than N queries) link_gen_start = time_mod.time() links = compute_temporal_links(new_units, all_candidates, time_window_hours) # Also compute temporal links WITHIN the new batch (new units to each other) if len(new_units) > 1: # Convert new_units dict to candidate format for within-batch linking new_unit_items = list(new_units.items()) for i, (unit_id, event_date) in enumerate(new_unit_items): if event_date is None: continue # Skip units without event_date for temporal linking unit_event_date_norm = _normalize_datetime(event_date) # Compare with other new units (only those after this one to avoid duplicates) for j in range(i + 1, len(new_unit_items)): other_id, other_event_date = new_unit_items[j] if other_event_date is None: continue # Skip units without event_date other_event_date_norm = _normalize_datetime(other_event_date) # Check if within time window time_diff_hours = abs((unit_event_date_norm - other_event_date_norm).total_seconds() / 3600) if time_diff_hours <= time_window_hours: weight = max(0.3, 1.0 - (time_diff_hours / time_window_hours)) # Create bidirectional links links.append((unit_id, other_id, "temporal", weight, None)) links.append((other_id, unit_id, "temporal", weight, None)) _log(log_buffer, f" [7.3] Generate {len(links)} temporal links: {time_mod.time() - link_gen_start:.3f}s") if links: insert_start = time_mod.time() # Batch inserts to avoid timeout on large batches BATCH_SIZE = 1000 for batch_start in range(0, len(links), BATCH_SIZE): await conn.executemany( f""" INSERT INTO {fq_table("memory_links")} (from_unit_id, to_unit_id, link_type, weight, entity_id) VALUES ($1, $2, $3, $4, $5) ON CONFLICT (from_unit_id, to_unit_id, link_type, COALESCE(entity_id, '00000000-0000-0000-0000-000000000000'::uuid)) DO NOTHING """, links[batch_start : batch_start + BATCH_SIZE], ) _log(log_buffer, f" [7.4] Insert {len(links)} temporal links: {time_mod.time() - insert_start:.3f}s") return len(links) except Exception as e: logger.error(f"Failed to create temporal links: {str(e)}") import traceback traceback.print_exc() raise async def create_semantic_links_batch( conn, bank_id: str, unit_ids: list[str], embeddings: list[list[float]], top_k: int = 5, threshold: float = 0.7, log_buffer: list[str] = None, ) -> int: """ Create semantic links for multiple units efficiently. For each unit, finds similar units and creates links. Args: conn: Database connection agent_id: bank IDentifier unit_ids: List of unit IDs embeddings: List of embedding vectors top_k: Number of top similar units to link threshold: Minimum similarity threshold log_buffer: Optional buffer for logging Returns: Number of semantic links created """ if not unit_ids or not embeddings: return 0 try: import time as time_mod import numpy as np # Use pgvector ANN search (HNSW index) for each new unit instead of fetching # all existing embeddings into Python. At large scale (100K+ units) the old # approach would transfer 100K × 384 floats (~150 MB) per retain call; the # ANN query completes in <5 ms and transfers only top_k rows. ann_start = time_mod.time() all_links = [] # Build UUID exclude list once for all ANN queries import uuid as uuid_mod exclude_uuids = [uuid_mod.UUID(uid) if isinstance(uid, str) else uid for uid in unit_ids] for unit_id, new_embedding in zip(unit_ids, embeddings): emb_str = str(list(new_embedding) if not isinstance(new_embedding, list) else new_embedding) rows = await conn.fetch( f""" SELECT id::text, 1 - (embedding <=> $1::vector) AS similarity FROM {fq_table("memory_units")} WHERE bank_id = $2 AND embedding IS NOT NULL AND id != ALL($3::uuid[]) ORDER BY embedding <=> $1::vector LIMIT $4 """, emb_str, bank_id, exclude_uuids, top_k, ) for row in rows: sim = float(min(1.0, max(0.0, row["similarity"]))) if sim >= threshold: all_links.append((unit_id, str(row["id"]), "semantic", sim, None)) _log( log_buffer, f" [8.1] ANN search for {len(unit_ids)} new units → {len(all_links)} candidate links: {time_mod.time() - ann_start:.3f}s", ) # Also compute similarities WITHIN the new batch (new units to each other) # Apply the same top_k limit per unit as we do for existing units if len(unit_ids) > 1: new_embeddings_matrix = np.array(embeddings) for i, unit_id in enumerate(unit_ids): # Compute similarities with all OTHER new units other_indices = [j for j in range(len(unit_ids)) if j != i] if not other_indices: continue other_embeddings = new_embeddings_matrix[other_indices] similarities = np.dot(other_embeddings, new_embeddings_matrix[i]) # Find top-k above threshold (same logic as existing units) above_threshold = np.where(similarities >= threshold)[0] if len(above_threshold) > 0: # Sort by similarity (descending) and take top-k sorted_local_indices = above_threshold[np.argsort(-similarities[above_threshold])][:top_k] for local_idx in sorted_local_indices: other_idx = other_indices[local_idx] other_id = unit_ids[other_idx] # Clamp to [0, 1] to handle floating point precision issues similarity = float(min(1.0, max(0.0, similarities[local_idx]))) all_links.append((unit_id, other_id, "semantic", similarity, None)) _log( log_buffer, f" [8.2] Within-batch similarities added {len(all_links)} total semantic links", ) if all_links: insert_start = time_mod.time() # Batch inserts to avoid timeout on large batches BATCH_SIZE = 1000 for batch_start in range(0, len(all_links), BATCH_SIZE): await conn.executemany( f""" INSERT INTO {fq_table("memory_links")} (from_unit_id, to_unit_id, link_type, weight, entity_id) VALUES ($1, $2, $3, $4, $5) ON CONFLICT (from_unit_id, to_unit_id, link_type, COALESCE(entity_id, '00000000-0000-0000-0000-000000000000'::uuid)) DO NOTHING """, all_links[batch_start : batch_start + BATCH_SIZE], ) _log( log_buffer, f" [8.3] Insert {len(all_links)} semantic links: {time_mod.time() - insert_start:.3f}s" ) return len(all_links) except Exception as e: logger.error(f"Failed to create semantic links: {str(e)}") import traceback traceback.print_exc() raise async def insert_entity_links_batch(conn, links: list[EntityLink], chunk_size: int = 5000): """ Insert all entity links using COPY to temp table + chunked INSERT for reliability. Uses PostgreSQL COPY (via copy_records_to_table) for bulk loading into a temp table, then INSERT ... ON CONFLICT in chunks of chunk_size. Chunking prevents single-query timeouts on very large tables (100M+ rows). Args: conn: Database connection links: List of EntityLink objects chunk_size: Number of rows per INSERT chunk (default 5000) """ if not links: return import time as time_mod total_start = time_mod.time() # Create temp table with serial for stable chunked access create_start = time_mod.time() await conn.execute(""" CREATE TEMP TABLE IF NOT EXISTS _temp_entity_links ( _row_num SERIAL, from_unit_id uuid, to_unit_id uuid, link_type text, weight float, entity_id uuid ) ON COMMIT DROP """) logger.debug(f" [9.1] Create temp table: {time_mod.time() - create_start:.3f}s") # Clear any existing data in temp table truncate_start = time_mod.time() await conn.execute("TRUNCATE _temp_entity_links") logger.debug(f" [9.2] Truncate temp table: {time_mod.time() - truncate_start:.3f}s") # Convert EntityLink objects to tuples for COPY convert_start = time_mod.time() records = [(link.from_unit_id, link.to_unit_id, link.link_type, link.weight, link.entity_id) for link in links] logger.debug(f" [9.3] Convert {len(records)} records: {time_mod.time() - convert_start:.3f}s") # Bulk load using COPY (fastest method) copy_start = time_mod.time() await conn.copy_records_to_table( "_temp_entity_links", records=records, columns=["from_unit_id", "to_unit_id", "link_type", "weight", "entity_id"], ) logger.debug(f" [9.4] COPY {len(records)} records to temp table: {time_mod.time() - copy_start:.3f}s") # Insert from temp table in chunks to avoid single-query timeouts on large tables insert_start = time_mod.time() total_rows = len(records) chunks = 0 for chunk_start in range(0, total_rows, chunk_size): chunk_end = chunk_start + chunk_size await conn.execute( f""" INSERT INTO {fq_table("memory_links")} (from_unit_id, to_unit_id, link_type, weight, entity_id) SELECT from_unit_id, to_unit_id, link_type, weight, entity_id FROM _temp_entity_links WHERE _row_num > $1 AND _row_num <= $2 ON CONFLICT (from_unit_id, to_unit_id, link_type, COALESCE(entity_id, '00000000-0000-0000-0000-000000000000'::uuid)) DO NOTHING """, chunk_start, chunk_end, ) chunks += 1 logger.debug(f" [9.5] INSERT {total_rows} rows in {chunks} chunks: {time_mod.time() - insert_start:.3f}s") logger.debug(f" [9.TOTAL] Entity links batch insert: {time_mod.time() - total_start:.3f}s") async def create_causal_links_batch( conn, unit_ids: list[str], causal_relations_per_fact: list[list[dict]], ) -> int: """ Create causal links between facts based on LLM-extracted causal relationships. Args: conn: Database connection unit_ids: List of unit IDs (in same order as causal_relations_per_fact) causal_relations_per_fact: List of causal relations for each fact. Each element is a list of dicts with: - target_fact_index: Index into unit_ids for the target fact - relation_type: "caused_by" - strength: Float in [0.0, 1.0] representing relationship strength Returns: Number of causal links created Causal link type: - "caused_by": This fact was caused by the target fact """ if not unit_ids or not causal_relations_per_fact: return 0 try: import time as time_mod create_start = time_mod.time() # Build links list links = [] for fact_idx, causal_relations in enumerate(causal_relations_per_fact): if not causal_relations: continue from_unit_id = unit_ids[fact_idx] for relation in causal_relations: target_idx = relation["target_fact_index"] relation_type = relation["relation_type"] strength = relation.get("strength", 1.0) # Validate relation_type - only "caused_by" is supported (DB constraint) valid_types = {"caused_by"} if relation_type not in valid_types: logger.error( f"Invalid relation_type '{relation_type}' (type: {type(relation_type).__name__}) " f"from fact {fact_idx}. Must be one of: {valid_types}. " f"Relation data: {relation}" ) continue # Validate target index if target_idx < 0 or target_idx >= len(unit_ids): logger.warning(f"Invalid target_fact_index {target_idx} in causal relation from fact {fact_idx}") continue to_unit_id = unit_ids[target_idx] # Don't create self-links if from_unit_id == to_unit_id: continue # Add the causal link # link_type is the relation_type (e.g., "causes", "caused_by") # weight is the strength of the relationship links.append((from_unit_id, to_unit_id, relation_type, strength, None)) if links: insert_start = time_mod.time() try: await conn.executemany( f""" INSERT INTO {fq_table("memory_links")} (from_unit_id, to_unit_id, link_type, weight, entity_id) VALUES ($1, $2, $3, $4, $5) ON CONFLICT (from_unit_id, to_unit_id, link_type, COALESCE(entity_id, '00000000-0000-0000-0000-000000000000'::uuid)) DO NOTHING """, links, ) except Exception as db_error: # Log the actual data being inserted for debugging logger.error(f"Database insert failed for causal links. Error: {db_error}") logger.error(f"Attempted to insert {len(links)} links. First few:") for i, link in enumerate(links[:3]): logger.error( f" Link {i}: from={link[0]}, to={link[1]}, type='{link[2]}' (repr={repr(link[2])}), weight={link[3]}, entity={link[4]}" ) raise return len(links) except Exception as e: logger.error(f"Failed to create causal links: {str(e)}") import traceback traceback.print_exc() raise