mirror of
https://github.com/MODSetter/SurfSense.git
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206 lines
7.1 KiB
Python
206 lines
7.1 KiB
Python
from sqlalchemy import select
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from sqlalchemy.exc import SQLAlchemyError
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from sqlalchemy.ext.asyncio import AsyncSession
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from app.agents.podcaster.graph import graph as podcaster_graph
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from app.agents.podcaster.state import State
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from app.db import Chat, Podcast
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from app.services.task_logging_service import TaskLoggingService
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async def generate_document_podcast(
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session: AsyncSession, document_id: int, search_space_id: int, user_id: int
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):
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# TODO: Need to fetch the document chunks, then concatenate them and pass them to the podcast generation model
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pass
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async def generate_chat_podcast(
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session: AsyncSession,
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chat_id: int,
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search_space_id: int,
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podcast_title: str,
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user_id: int,
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):
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task_logger = TaskLoggingService(session, search_space_id)
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# Log task start
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log_entry = await task_logger.log_task_start(
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task_name="generate_chat_podcast",
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source="podcast_task",
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message=f"Starting podcast generation for chat {chat_id}",
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metadata={
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"chat_id": chat_id,
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"search_space_id": search_space_id,
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"podcast_title": podcast_title,
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"user_id": str(user_id),
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},
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)
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try:
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# Fetch the chat with the specified ID
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await task_logger.log_task_progress(
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log_entry, f"Fetching chat {chat_id} from database", {"stage": "fetch_chat"}
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)
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query = select(Chat).filter(
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Chat.id == chat_id, Chat.search_space_id == search_space_id
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)
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result = await session.execute(query)
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chat = result.scalars().first()
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if not chat:
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await task_logger.log_task_failure(
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log_entry,
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f"Chat with id {chat_id} not found in search space {search_space_id}",
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"Chat not found",
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{"error_type": "ChatNotFound"},
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)
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raise ValueError(
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f"Chat with id {chat_id} not found in search space {search_space_id}"
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)
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# Create chat history structure
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await task_logger.log_task_progress(
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log_entry,
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f"Processing chat history for chat {chat_id}",
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{"stage": "process_chat_history", "message_count": len(chat.messages)},
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)
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chat_history_str = "<chat_history>"
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processed_messages = 0
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for message in chat.messages:
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if message["role"] == "user":
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chat_history_str += f"<user_message>{message['content']}</user_message>"
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processed_messages += 1
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elif message["role"] == "assistant":
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# Last annotation type will always be "ANSWER" here
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answer_annotation = message["annotations"][-1]
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answer_text = ""
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if answer_annotation["type"] == "ANSWER":
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answer_text = answer_annotation["content"]
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# If content is a list, join it into a single string
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if isinstance(answer_text, list):
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answer_text = "\n".join(answer_text)
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chat_history_str += (
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f"<assistant_message>{answer_text}</assistant_message>"
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)
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processed_messages += 1
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chat_history_str += "</chat_history>"
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# Pass it to the SurfSense Podcaster
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await task_logger.log_task_progress(
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log_entry,
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f"Initializing podcast generation for chat {chat_id}",
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{
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"stage": "initialize_podcast_generation",
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"processed_messages": processed_messages,
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"content_length": len(chat_history_str),
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},
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)
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config = {
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"configurable": {
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"podcast_title": "SurfSense",
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"user_id": str(user_id),
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}
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}
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# Initialize state with database session and streaming service
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initial_state = State(source_content=chat_history_str, db_session=session)
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# Run the graph directly
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await task_logger.log_task_progress(
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log_entry,
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f"Running podcast generation graph for chat {chat_id}",
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{"stage": "run_podcast_graph"},
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)
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result = await podcaster_graph.ainvoke(initial_state, config=config)
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# Convert podcast transcript entries to serializable format
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await task_logger.log_task_progress(
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log_entry,
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f"Processing podcast transcript for chat {chat_id}",
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{
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"stage": "process_transcript",
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"transcript_entries": len(result["podcast_transcript"]),
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},
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)
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serializable_transcript = []
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for entry in result["podcast_transcript"]:
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serializable_transcript.append(
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{"speaker_id": entry.speaker_id, "dialog": entry.dialog}
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)
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# Create a new podcast entry
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await task_logger.log_task_progress(
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log_entry,
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f"Creating podcast database entry for chat {chat_id}",
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{
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"stage": "create_podcast_entry",
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"file_location": result.get("final_podcast_file_path"),
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},
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)
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podcast = Podcast(
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title=f"{podcast_title}",
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podcast_transcript=serializable_transcript,
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file_location=result["final_podcast_file_path"],
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search_space_id=search_space_id,
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)
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# Add to session and commit
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session.add(podcast)
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await session.commit()
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await session.refresh(podcast)
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# Log success
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await task_logger.log_task_success(
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log_entry,
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f"Successfully generated podcast for chat {chat_id}",
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{
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"podcast_id": podcast.id,
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"podcast_title": podcast_title,
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"transcript_entries": len(serializable_transcript),
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"file_location": result.get("final_podcast_file_path"),
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"processed_messages": processed_messages,
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"content_length": len(chat_history_str),
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},
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)
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return podcast
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except ValueError as ve:
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# ValueError is already logged above for chat not found
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if "not found" not in str(ve):
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await task_logger.log_task_failure(
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log_entry,
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f"Value error during podcast generation for chat {chat_id}",
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str(ve),
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{"error_type": "ValueError"},
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)
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raise ve
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except SQLAlchemyError as db_error:
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await session.rollback()
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await task_logger.log_task_failure(
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log_entry,
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f"Database error during podcast generation for chat {chat_id}",
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str(db_error),
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{"error_type": "SQLAlchemyError"},
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)
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raise db_error
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except Exception as e:
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await session.rollback()
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await task_logger.log_task_failure(
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log_entry,
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f"Unexpected error during podcast generation for chat {chat_id}",
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str(e),
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{"error_type": type(e).__name__},
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)
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raise RuntimeError(
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f"Failed to generate podcast for chat {chat_id}: {e!s}"
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) from e
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