Rewrite run_local_agent: code-based flow, concurrency guard, remove isApproved
- Replace LLM-driven triage with code-based directory scan and project fetch - Two-step LLM approach: Step 1 classifies file→project+domains, Step 2 processes with tools - Add domain descriptions to Step 1 prompt for better extraction accuracy - Add _running_agents set for per-agent concurrency guard (one running instance per agent) - Return 409 from route before DB write when agent already running - Remove is_approved from task_agent create/update tools and system prompt - Remove is_approved from timeline_agent create/update tools and system prompt Co-Authored-By: Claude Sonnet 4.6 <noreply@anthropic.com>
This commit is contained in:
@@ -2,11 +2,12 @@
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Drives two agent types:
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* **Local directory agent** — two-phase execution that mirrors the
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``deep_agent.py`` tool-calling pattern. Phase 1 (Triage) explores the
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user's directory via file-system tools and groups files by project.
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Phase 2 (Processing) reads full file contents and performs CRUD
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operations using the standard entity tools (tasks, notes, etc.).
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* **Local directory agent** — two-step execution per file:
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Step 1 (Classification) uses code to fetch all projects and asks the LLM
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to identify which project the file belongs to and which domains are relevant.
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Step 2 (Processing) fetches existing entities for that project/domains via
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code and runs an LLM with tools — existing data in context enforces
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update-first naturally.
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* **Cloud connector agent** — fetches data from third-party APIs (Gmail,
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Teams, Outlook) and pushes extracted items to Electron.
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@@ -43,19 +44,30 @@ from app.agents.task_agent import TASK_TOOLS
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from app.agents.timeline_agent import TIMELINE_TOOLS
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from app.core.device_manager import DeviceConnectionManager
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from app.core.llm import get_llm
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from app.core.ws_context import clear_client_executor, set_client_executor
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from app.core.ws_context import clear_client_executor, execute_on_client, set_client_executor
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from app.db import async_session
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from app.models import AgentRunLog, CloudAgentConfig, LocalAgentConfig
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logger = logging.getLogger(__name__)
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# ── Concurrency guard ─────────────────────────────────────────────────────
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# Tracks agent IDs that currently have a run in progress.
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# Prevents multiple simultaneous runs of the same agent within a single process.
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_running_agents: set[str] = set()
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def is_agent_running(agent_id: str) -> bool:
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"""Return ``True`` if *agent_id* already has a run in progress."""
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return agent_id in _running_agents
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# ── Timeouts ───────────────────────────────────────────────────────────────
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# Max seconds to wait for a single tool-call round-trip (FE → BE).
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_TOOL_CALL_TIMEOUT: int = 30
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# Max LLM reasoning steps per phase.
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_MAX_TRIAGE_STEPS: int = 10
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# Max LLM reasoning steps for Step 2 processing.
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_MAX_PROCESSING_STEPS: int = 12
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# Max directory recursion depth during scan.
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_MAX_SCAN_DEPTH: int = 5
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# ── Data-type to tool mapping ─────────────────────────────────────────────
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@@ -66,46 +78,72 @@ _DATA_TYPE_TOOLS: dict[str, list[Any]] = {
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"timelines": TIMELINE_TOOLS,
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}
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# ── Triage prompt ─────────────────────────────────────────────────────────
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# ── Step 1: Classification prompt ─────────────────────────────────────────
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_TRIAGE_SYSTEM_PROMPT = """\
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You are a file triage assistant for a freelance project management tool.
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Your job is to explore a local directory on the user's device, understand its
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structure, and group files by project context.
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_DOMAIN_DESCRIPTIONS: dict[str, str] = {
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"tasks": (
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"Action items, to-dos, deliverables — anything that describes work to be done, "
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"assigned to someone, or tracked with a due date or status."
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),
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"notes": (
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"Documentation, meeting notes, summaries, reference material — "
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"written content meant to be read and referenced rather than acted on."
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),
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"timelines": (
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"Project milestones, deadlines, scheduled events — "
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"specific dates that mark a point in the progress of a project."
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),
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"projects": (
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"High-level project entities — only relevant if the file clearly introduces "
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"a new project or updates the scope of an existing one."
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),
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}
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You have access to these tools:
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- list_directory: to map folder structure
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- get_file_metadata: to check creation/modification dates
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- read_file_content: to read brief snippets when needed for categorisation
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- list_projects / list_all_projects / get_project: to fetch existing projects
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from the user's workspace and match files to them
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_STEP1_SYSTEM_PROMPT = """\
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You are a file classifier for a freelance project management tool.
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Instructions:
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1. Start by calling list_directory on the configured root path.
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2. Explore subdirectories as needed to understand the structure.
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3. Use get_file_metadata to check modification dates. Skip files that have
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NOT been modified since: {last_run_at}.
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4. Call list_all_projects to get the user's existing projects.
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5. Match files to existing projects by name, folder structure, or content hints.
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6. If files don't match any existing project, group them under "standalone".
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Given a file's content and a list of existing projects, your job is to:
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1. Identify which project this file belongs to (or "standalone" if none match).
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2. Identify which data domains are relevant to extract from this file,
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limited to the allowed domains listed below.
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{custom_prompt_section}
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Domain definitions (only consider domains in the allowed list):
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{domain_definitions}
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Target entity types to extract: {data_types}
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File extensions to consider: {file_extensions}
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Respond ONLY with a JSON object — no markdown, no explanation:
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When you have finished exploring, output ONLY a JSON object (no markdown
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fences, no explanation) mapping project IDs or "standalone" to file path
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arrays:
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{{"project_id": "<uuid> or standalone", "domains": ["tasks", "notes"]}}
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{{"<project_id>": ["<file_path>", ...], "standalone": ["<file_path>", ...]}}
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Return ONLY the JSON object as your final message.
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Existing projects:
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{projects_list}
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"""
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# ── Processing prompt ─────────────────────────────────────────────────────
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# ── Step 2: Processing prompt ─────────────────────────────────────────────
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_PROCESSING_BASE_PROMPT = """\
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_PROCESSING_SYSTEM_PROMPT = """\
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You are a data extraction assistant for a freelance project management tool.
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Your task is to read the file content provided and create or update records
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using the available tools.
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IMPORTANT — update-first rules:
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The existing records below are the source of truth.
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If an existing record semantically matches the content (by title, topic,
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or context), update it instead of creating a duplicate.
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Only create a new record when no existing match is found.
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Set isAiSuggested=1 on all new records.
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{existing_context}
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Project context: {project_context}
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Target domains: {data_types}
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{custom_prompt_section}
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"""
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# ── Cloud processing prompt (kept separate for cloud agent) ───────────────
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_CLOUD_PROCESSING_PROMPT = """\
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You are a data extraction and management assistant for a freelance project
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management tool.
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@@ -124,26 +162,6 @@ Your task:
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4. Do NOT invent data. Only extract what is clearly present in the files.
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5. If a file contains no relevant data for the target entity types, skip it.
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Update-first rules (apply in this order):
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Tasks:
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- Call list_tasks to find a match by title or context.
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- If found: call add_task_comment (author "Adiuva"), update_task to set
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assignees, state (ToDo / In Progress / Completed), or other fields.
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- If NOT found: call create_task with isAiSuggested=1, isApproved=0.
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Timelines:
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- Call list_timelines to find a match by title or date.
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- If found: call update_timeline to edit fields or mark it complete.
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- If NOT found: call create_timeline with isAiSuggested=1, isApproved=0.
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Notes:
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- Call list_notes to find a match by title or topic, then get_note to
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read its current content.
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- If found: call update_note with the merged content.
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- If NOT found: call create_note with isAiSuggested=1, isApproved=0.
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Projects:
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- Call list_all_projects to check for a match first.
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- Only call create_project if the information is clearly significant and
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no existing project matches. Set isAiSuggested=1, isApproved=0.
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{project_context}
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Files to process:
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@@ -168,7 +186,6 @@ def _is_overdue(schedule_cron: str, last_run_at: datetime | None) -> bool:
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try:
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now = datetime.now(timezone.utc)
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if last_run_at is None:
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# Validate the expression before deciding this is overdue.
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croniter(schedule_cron, now)
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return True
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ts = last_run_at
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@@ -179,7 +196,7 @@ def _is_overdue(schedule_cron: str, last_run_at: datetime | None) -> bool:
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return now >= next_run
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except Exception as exc:
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logger.warning("agent_runner: cannot parse cron %r: %s", schedule_cron, exc)
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return False # Fail-safe: don't trigger if expression is invalid.
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return False
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# ── WS executor for agent context ─────────────────────────────────────────
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@@ -207,7 +224,7 @@ def _make_agent_executor(
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return _executor
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# ── LLM tool-calling loop (mirrors deep_agent._run_single_agent) ──────────
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# ── LLM tool-calling loop ─────────────────────────────────────────────────
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def _as_text(content: Any) -> str:
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@@ -235,11 +252,7 @@ async def _run_agent_with_tools(
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tools: list[Any],
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max_steps: int,
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) -> str:
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"""Run an LLM agent with tool-calling, returning the final text response.
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Follows the same pattern as ``deep_agent._run_single_agent``:
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bind tools → invoke → handle tool calls → repeat until final text.
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"""
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"""Run an LLM agent with tool-calling, returning the final text response."""
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llm = get_llm()
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llm_with_tools = llm.bind_tools(tools)
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messages: list[Any] = [
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@@ -247,7 +260,6 @@ async def _run_agent_with_tools(
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HumanMessage(content=user_message),
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]
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tool_calls_count = 0
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tool_map = {tool_def.name: tool_def for tool_def in tools}
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for _ in range(max_steps):
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@@ -258,7 +270,6 @@ async def _run_agent_with_tools(
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return _as_text(response.content)
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for call in response.tool_calls:
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tool_calls_count += 1
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call_id = str(call.get("id", ""))
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call_name = str(call.get("name", ""))
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call_args = call.get("args", {})
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@@ -277,47 +288,19 @@ async def _run_agent_with_tools(
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logger.info(
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"agent_runner: tool_result name=%s output=%s",
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call_name,
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str(tool_output)[:1200],
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str(tool_output)[:200],
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)
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messages.append(ToolMessage(content=str(tool_output), tool_call_id=call["id"]))
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# Fallback: exceeded max steps, get final response without tools.
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final = await llm.ainvoke(messages)
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return _as_text(final.content)
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# ── Triage map parser ─────────────────────────────────────────────────────
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def _parse_triage_map(raw: str) -> dict[str, list[str]] | None:
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"""Extract the JSON triage map from the LLM's final response."""
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text = raw.strip()
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# Try direct parse first.
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try:
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parsed = json.loads(text)
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if isinstance(parsed, dict):
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return {k: v for k, v in parsed.items() if isinstance(v, list)}
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except json.JSONDecodeError:
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pass
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# Try extracting JSON from markdown fences or surrounding text.
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import re
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match = re.search(r"\{[\s\S]*\}", text)
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if match:
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try:
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parsed = json.loads(match.group(0))
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if isinstance(parsed, dict):
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return {k: v for k, v in parsed.items() if isinstance(v, list)}
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except json.JSONDecodeError:
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pass
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return None
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# ── Tool list builder ─────────────────────────────────────────────────────
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def _build_processing_tools(data_types: list[str]) -> list[Any]:
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"""Build the tool list for Phase 2 based on user's data_types selection."""
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"""Build the tool list for processing based on user's data_types selection."""
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tools: list[Any] = list(FILESYSTEM_TOOLS)
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for dt in data_types:
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dt_tools = _DATA_TYPE_TOOLS.get(dt)
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@@ -326,7 +309,223 @@ def _build_processing_tools(data_types: list[str]) -> list[Any]:
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return tools
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# ── Local agent runner (two-phase) ─────────────────────────────────────────
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# ── Code-based directory scanner ─────────────────────────────────────────
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async def _scan_directories(
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paths: list[str],
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extensions: list[str],
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last_run_at: datetime | None,
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) -> list[str]:
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"""Walk directories via WS tool calls and return filtered file paths.
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Recursion is capped at ``_MAX_SCAN_DEPTH``. Files are filtered by
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extension (if configured) and by modification date (if ``last_run_at``
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is set). Fails open: if metadata cannot be read, the file is included.
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"""
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all_files: list[str] = []
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ext_set = {e.lstrip(".").lower() for e in extensions} if extensions else set()
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async def _walk(path: str, depth: int) -> None:
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if depth > _MAX_SCAN_DEPTH:
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return
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try:
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result = await execute_on_client(action="list_directory", data={"path": path})
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except Exception as exc:
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logger.warning("agent_runner: list_directory failed %r: %s", path, exc)
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return
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for entry in result.get("entries", []):
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entry_path = entry.get("path", "")
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if not entry_path:
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continue
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if entry.get("type") == "directory":
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await _walk(entry_path, depth + 1)
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elif entry.get("type") == "file":
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if ext_set:
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dot_pos = entry_path.rfind(".")
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file_ext = entry_path[dot_pos + 1:].lower() if dot_pos != -1 else ""
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if file_ext not in ext_set:
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continue
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all_files.append(entry_path)
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for root in paths:
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await _walk(root, depth=0)
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if last_run_at is None:
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return all_files
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# Filter by modification date.
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last_run_ms = int(last_run_at.timestamp() * 1000)
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filtered: list[str] = []
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for file_path in all_files:
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try:
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meta = await execute_on_client(action="get_file_metadata", data={"path": file_path})
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modified_at = meta.get("modifiedAt")
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if modified_at is None:
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filtered.append(file_path)
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continue
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if isinstance(modified_at, (int, float)):
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mod_ms = int(modified_at)
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else:
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mod_ms = int(datetime.fromisoformat(str(modified_at)).timestamp() * 1000)
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if mod_ms > last_run_ms:
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filtered.append(file_path)
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except Exception:
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filtered.append(file_path) # fail-open
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return filtered
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# ── Code-based entity fetchers ────────────────────────────────────────────
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async def _fetch_projects() -> list[dict]:
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"""Fetch all projects from the Electron client via WS."""
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try:
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result = await execute_on_client(action="select", table="projects")
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return result.get("rows", [])
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except Exception as exc:
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logger.warning("agent_runner: failed to fetch projects: %s", exc)
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return []
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_DOMAIN_TABLE: dict[str, str] = {
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"tasks": "tasks",
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"notes": "notes",
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"timelines": "timelines",
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"projects": "projects",
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}
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async def _fetch_domain_entities(domain: str, project_id: str) -> list[dict]:
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"""Fetch existing rows for a domain, scoped to a project where applicable."""
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table = _DOMAIN_TABLE.get(domain)
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if not table:
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return []
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filters: dict[str, Any] = {}
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if project_id != "standalone" and domain != "projects":
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filters["projectId"] = project_id
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try:
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result = await execute_on_client(
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action="select",
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table=table,
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filters=filters if filters else None,
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)
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return result.get("rows", [])
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except Exception as exc:
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logger.warning("agent_runner: failed to fetch %s: %s", domain, exc)
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return []
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|
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def _format_entities_for_context(domain: str, rows: list[dict]) -> str:
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"""Format existing entity rows as a readable context block for the LLM.
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Includes enough detail per record for the LLM to make a confident
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update-vs-create decision without overwhelming the context.
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Note content is truncated to 200 chars to stay within token budget.
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||||
"""
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if not rows:
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return f"No existing {domain}."
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lines: list[str] = []
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for r in rows:
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if domain == "tasks":
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desc = r.get("description") or ""
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||||
desc_part = f" — {desc[:120]}" if desc else ""
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assignee = r.get("assignee") or r.get("assignees") or ""
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due = r.get("dueDate") or r.get("due_date") or ""
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meta = ", ".join(filter(None, [
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f"priority: {r.get('priority', '')}" if r.get("priority") else "",
|
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f"assignee: {assignee}" if assignee else "",
|
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f"due: {due}" if due else "",
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]))
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lines.append(
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f" - [{r.get('status', '?')}] {r.get('title', '')}{desc_part}"
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||||
f" ({meta}, id: {r['id']})"
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||||
)
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||||
elif domain == "notes":
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||||
snippet = (r.get("content") or "")[:200].replace("\n", " ")
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||||
snippet_part = f"\n Preview: {snippet}" if snippet else ""
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||||
lines.append(
|
||||
f" - {r.get('title', '')} (id: {r['id']}){snippet_part}"
|
||||
)
|
||||
elif domain == "timelines":
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||||
lines.append(
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||||
f" - {r.get('title', '')} date={r.get('date', '')} (id: {r['id']})"
|
||||
)
|
||||
elif domain == "projects":
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||||
summary = (r.get("aiSummary") or r.get("ai_summary") or "")[:120]
|
||||
summary_part = f" — {summary}" if summary else ""
|
||||
lines.append(
|
||||
f" - {r.get('name', '')} [{r.get('status', '')}]{summary_part}"
|
||||
f" (id: {r['id']})"
|
||||
)
|
||||
return f"Existing {domain}:\n" + "\n".join(lines)
|
||||
|
||||
|
||||
# ── Step 1: LLM file classifier ───────────────────────────────────────────
|
||||
|
||||
|
||||
async def _classify_file(
|
||||
file_path: str,
|
||||
file_content: str,
|
||||
projects: list[dict],
|
||||
config_data_types: list[str],
|
||||
) -> tuple[str, list[str]]:
|
||||
"""Call the LLM to classify a file by project and relevant domains.
|
||||
|
||||
Returns ``(project_id_or_"standalone", domains)``.
|
||||
Falls back to ``("standalone", config_data_types)`` on any error.
|
||||
"""
|
||||
fallback = ("standalone", list(config_data_types))
|
||||
|
||||
if not file_content.strip():
|
||||
return fallback
|
||||
|
||||
projects_list = "\n".join(
|
||||
f" - {p.get('name', '')} (id: {p['id']}, status: {p.get('status', '')})"
|
||||
for p in projects
|
||||
) or " (none — all files are standalone)"
|
||||
|
||||
domain_definitions = "\n".join(
|
||||
f" - {d}: {_DOMAIN_DESCRIPTIONS[d]}"
|
||||
for d in config_data_types
|
||||
if d in _DOMAIN_DESCRIPTIONS
|
||||
)
|
||||
|
||||
system = _STEP1_SYSTEM_PROMPT.format(
|
||||
domain_definitions=domain_definitions,
|
||||
projects_list=projects_list,
|
||||
)
|
||||
|
||||
llm = get_llm()
|
||||
try:
|
||||
response = await llm.ainvoke([
|
||||
SystemMessage(content=system),
|
||||
HumanMessage(content=f"File: {file_path}\n\nContent:\n{file_content[:4000]}"),
|
||||
])
|
||||
raw = _as_text(response.content).strip()
|
||||
# Strip markdown fences if the model wraps the JSON.
|
||||
if raw.startswith("```"):
|
||||
raw = raw.split("```")[1]
|
||||
if raw.startswith("json"):
|
||||
raw = raw[4:]
|
||||
parsed = json.loads(raw.strip())
|
||||
project_id: str = str(parsed.get("project_id") or "standalone")
|
||||
domains: list[str] = [
|
||||
d for d in parsed.get("domains", [])
|
||||
if d in config_data_types
|
||||
]
|
||||
if not domains:
|
||||
domains = list(config_data_types)
|
||||
return project_id, domains
|
||||
except Exception as exc:
|
||||
logger.warning(
|
||||
"agent_runner: step1 classification failed for %r: %s", file_path, exc
|
||||
)
|
||||
return fallback
|
||||
|
||||
|
||||
# ── Local agent runner (two-step per file) ────────────────────────────────
|
||||
|
||||
|
||||
async def run_local_agent(
|
||||
@@ -336,24 +535,28 @@ async def run_local_agent(
|
||||
device_mgr: DeviceConnectionManager,
|
||||
run_context: dict | None = None,
|
||||
) -> None:
|
||||
"""Execute a local directory agent run using two-phase LLM-with-tools.
|
||||
"""Execute a local directory agent run using a two-step approach per file.
|
||||
|
||||
Phase 1 — Triage:
|
||||
Explore the directory structure, check metadata, match files to
|
||||
existing projects. Output: a JSON map of project → file paths.
|
||||
Step 1 — Classification (code + 1 LLM call per file, no tools):
|
||||
Code scans directories and fetches all projects via WS.
|
||||
For each file, LLM identifies the project and relevant domains.
|
||||
|
||||
Phase 2 — Processing:
|
||||
For each project group, read full file contents and perform CRUD
|
||||
operations using the standard entity tools.
|
||||
Step 2 — Processing (code + 1 LLM call per file, with tools):
|
||||
Code fetches existing entities for the identified project/domains.
|
||||
LLM receives file content + existing entities in context and uses
|
||||
tools to update existing records or create new ones.
|
||||
"""
|
||||
run_id = run_log.id
|
||||
agent_id = (run_context or {}).get("agent_id") or config.id
|
||||
_running_agents.add(agent_id)
|
||||
|
||||
# ── Device online check ─────────────────────────────────────────
|
||||
target_device_id = config.device_id.strip() if isinstance(config.device_id, str) else ""
|
||||
if target_device_id:
|
||||
is_online = device_mgr.is_online(user_id, target_device_id)
|
||||
else:
|
||||
is_online = device_mgr.is_online(user_id)
|
||||
is_online = (
|
||||
device_mgr.is_online(user_id, target_device_id)
|
||||
if target_device_id
|
||||
else device_mgr.is_online(user_id)
|
||||
)
|
||||
|
||||
if not is_online:
|
||||
logger.info(
|
||||
@@ -377,116 +580,112 @@ async def run_local_agent(
|
||||
items_processed = 0
|
||||
items_created = 0
|
||||
|
||||
custom_section = (
|
||||
f"User instructions:\n{config.prompt_template}"
|
||||
if config.prompt_template
|
||||
else ""
|
||||
)
|
||||
|
||||
try:
|
||||
# ── Phase 1: Triage ─────────────────────────────────────────
|
||||
logger.info("agent_runner: run=%s phase=triage start user=%s", run_id, user_id)
|
||||
|
||||
last_run_str = "never (process all files)"
|
||||
if config.last_run_at:
|
||||
last_run_str = config.last_run_at.isoformat()
|
||||
|
||||
custom_section = ""
|
||||
if config.prompt_template:
|
||||
custom_section = f"User instructions:\n{config.prompt_template}"
|
||||
|
||||
file_ext_str = ", ".join(config.file_extensions) if config.file_extensions else "all"
|
||||
|
||||
triage_prompt = _TRIAGE_SYSTEM_PROMPT.format(
|
||||
last_run_at=last_run_str,
|
||||
custom_prompt_section=custom_section,
|
||||
data_types=", ".join(config.data_types),
|
||||
file_extensions=file_ext_str,
|
||||
# ── Code: scan directories ───────────────────────────────────
|
||||
logger.info("agent_runner: run=%s scanning directories user=%s", run_id, user_id)
|
||||
file_paths = await _scan_directories(
|
||||
paths=config.directory_paths,
|
||||
extensions=config.file_extensions or [],
|
||||
last_run_at=config.last_run_at,
|
||||
)
|
||||
logger.info(
|
||||
"agent_runner: run=%s found %d file(s) after filtering", run_id, len(file_paths)
|
||||
)
|
||||
|
||||
directory_paths = config.directory_paths
|
||||
triage_user_msg = (
|
||||
f"Explore these directories and produce the triage map:\n"
|
||||
f"{json.dumps(directory_paths, ensure_ascii=False)}"
|
||||
)
|
||||
|
||||
triage_tools: list[Any] = list(FILESYSTEM_TOOLS) + list(PROJECT_TOOLS)
|
||||
|
||||
triage_response = await _run_agent_with_tools(
|
||||
system_prompt=triage_prompt,
|
||||
user_message=triage_user_msg,
|
||||
tools=triage_tools,
|
||||
max_steps=_MAX_TRIAGE_STEPS,
|
||||
)
|
||||
|
||||
triage_map = _parse_triage_map(triage_response)
|
||||
if not triage_map:
|
||||
errors.append(f"Triage phase failed to produce a valid file map: {triage_response[:500]}")
|
||||
await _finalize_run(run_log, status="error", errors=errors)
|
||||
if not file_paths:
|
||||
await _finalize_run(run_log, status="success", items_processed=0, items_created=0)
|
||||
return
|
||||
|
||||
logger.info(
|
||||
"agent_runner: run=%s triage complete groups=%d total_files=%d",
|
||||
run_id,
|
||||
len(triage_map),
|
||||
sum(len(files) for files in triage_map.values()),
|
||||
)
|
||||
# ── Code: fetch all projects once ────────────────────────────
|
||||
projects = await _fetch_projects()
|
||||
|
||||
# ── Phase 2: Processing (per group) ─────────────────────────
|
||||
# ── Per-file processing ──────────────────────────────────────
|
||||
processing_tools = _build_processing_tools(config.data_types)
|
||||
|
||||
for group_key, file_paths in triage_map.items():
|
||||
if not file_paths:
|
||||
continue
|
||||
|
||||
logger.info(
|
||||
"agent_runner: run=%s phase=processing group=%s files=%d",
|
||||
run_id,
|
||||
group_key,
|
||||
len(file_paths),
|
||||
)
|
||||
|
||||
# Build project context for the LLM.
|
||||
if group_key == "standalone":
|
||||
project_context = "These files are not associated with any existing project."
|
||||
else:
|
||||
project_context = f"These files belong to project ID: {group_key}. Use this project_id when creating records."
|
||||
|
||||
file_list_str = "\n".join(f"- {fp}" for fp in file_paths)
|
||||
|
||||
processing_prompt = _PROCESSING_BASE_PROMPT.format(
|
||||
data_types=", ".join(config.data_types),
|
||||
project_context=project_context,
|
||||
file_list=file_list_str,
|
||||
custom_prompt_section=custom_section,
|
||||
)
|
||||
|
||||
items_processed += len(file_paths)
|
||||
|
||||
for file_path in file_paths:
|
||||
try:
|
||||
# Read file content via code.
|
||||
file_result = await execute_on_client(
|
||||
action="read_file_content", data={"path": file_path}
|
||||
)
|
||||
file_content: str = file_result.get("content", "")
|
||||
if not file_content:
|
||||
logger.debug("agent_runner: run=%s skipping empty file %r", run_id, file_path)
|
||||
continue
|
||||
|
||||
items_processed += 1
|
||||
|
||||
# Step 1 — classify file.
|
||||
project_id, domains = await _classify_file(
|
||||
file_path=file_path,
|
||||
file_content=file_content,
|
||||
projects=projects,
|
||||
config_data_types=config.data_types,
|
||||
)
|
||||
logger.info(
|
||||
"agent_runner: run=%s file=%r → project=%s domains=%s",
|
||||
run_id,
|
||||
file_path,
|
||||
project_id,
|
||||
domains,
|
||||
)
|
||||
|
||||
# Step 2 — fetch existing entities for this project + domains.
|
||||
existing_blocks: list[str] = []
|
||||
for domain in domains:
|
||||
rows = await _fetch_domain_entities(domain, project_id)
|
||||
existing_blocks.append(_format_entities_for_context(domain, rows))
|
||||
|
||||
existing_context = "\n\n".join(existing_blocks)
|
||||
|
||||
if project_id == "standalone":
|
||||
project_context = "This file is not associated with any existing project."
|
||||
else:
|
||||
project_context = (
|
||||
f"This file belongs to project ID: {project_id}. "
|
||||
"Use this project_id when creating records."
|
||||
)
|
||||
|
||||
system_prompt = _PROCESSING_SYSTEM_PROMPT.format(
|
||||
existing_context=existing_context,
|
||||
project_context=project_context,
|
||||
data_types=", ".join(domains),
|
||||
custom_prompt_section=custom_section,
|
||||
)
|
||||
|
||||
result_text = await _run_agent_with_tools(
|
||||
system_prompt=processing_prompt,
|
||||
user_message="Process the listed files now.",
|
||||
system_prompt=system_prompt,
|
||||
user_message=(
|
||||
f"Process this file and extract relevant information.\n\n"
|
||||
f"File: {file_path}\n\nContent:\n{file_content}"
|
||||
),
|
||||
tools=processing_tools,
|
||||
max_steps=_MAX_PROCESSING_STEPS,
|
||||
)
|
||||
logger.info(
|
||||
"agent_runner: run=%s group=%s processing_result=%s",
|
||||
"agent_runner: run=%s file=%r result=%s",
|
||||
run_id,
|
||||
group_key,
|
||||
result_text[:500],
|
||||
file_path,
|
||||
result_text[:200],
|
||||
)
|
||||
# Count created items by scanning tool call results.
|
||||
# The tools themselves handle creation; we estimate from the
|
||||
# summary. A more precise count would require intercepting
|
||||
# tool results, but the summary is sufficient for the run log.
|
||||
|
||||
except Exception as exc:
|
||||
errors.append(f"Processing error for group '{group_key}': {exc}")
|
||||
errors.append(f"Error processing '{file_path}': {exc}")
|
||||
logger.error(
|
||||
"agent_runner: run=%s group=%s processing failed: %s",
|
||||
run_id,
|
||||
group_key,
|
||||
exc,
|
||||
"agent_runner: run=%s file=%r failed: %s", run_id, file_path, exc
|
||||
)
|
||||
|
||||
except Exception as exc:
|
||||
errors.append(f"Agent run failed: {exc}")
|
||||
logger.error("agent_runner: run=%s failed: %s", run_id, exc)
|
||||
finally:
|
||||
_running_agents.discard(agent_id)
|
||||
clear_client_executor()
|
||||
|
||||
# ── Finalise ────────────────────────────────────────────────────
|
||||
@@ -503,9 +702,6 @@ async def run_local_agent(
|
||||
items_processed=items_processed,
|
||||
items_created=items_created,
|
||||
errors=errors,
|
||||
update_config_last_run=False,
|
||||
config_id=config.id,
|
||||
config_type="local",
|
||||
)
|
||||
logger.info(
|
||||
"agent_runner: run=%s done status=%s processed=%d errors=%d",
|
||||
@@ -515,8 +711,7 @@ async def run_local_agent(
|
||||
len(errors),
|
||||
)
|
||||
|
||||
# Notify the Electron client that the run is complete so it can close
|
||||
# the run record in its local SQLite.
|
||||
# Notify Electron that the run is complete.
|
||||
if run_context and device_mgr.is_online(user_id):
|
||||
try:
|
||||
await device_mgr.send_frame(user_id, {
|
||||
@@ -525,12 +720,13 @@ async def run_local_agent(
|
||||
"status": final_status,
|
||||
})
|
||||
except Exception as exc:
|
||||
logger.warning("agent_runner: run=%s failed to send run_complete: %s", run_id, exc)
|
||||
logger.warning(
|
||||
"agent_runner: run=%s failed to send run_complete: %s", run_id, exc
|
||||
)
|
||||
|
||||
|
||||
# ── Cloud agent runner ─────────────────────────────────────────────────────
|
||||
|
||||
# Default lookback window when an agent has never run before.
|
||||
_CLOUD_DEFAULT_LOOKBACK_DAYS: int = 7
|
||||
|
||||
|
||||
@@ -544,8 +740,7 @@ async def run_cloud_agent(
|
||||
|
||||
Steps:
|
||||
|
||||
1. Verify the user's device is online — results are pushed to Electron
|
||||
via WS tool-call frames. If no device is connected, abort.
|
||||
1. Verify the user's device is online.
|
||||
2. Decrypt the stored OAuth token from ``config.oauth_token_encrypted``.
|
||||
3. Instantiate the provider client (Gmail or MS Graph).
|
||||
4. Fetch messages/emails since ``config.last_run_at`` (or 7 days ago for
|
||||
@@ -598,11 +793,7 @@ async def run_cloud_agent(
|
||||
try:
|
||||
provider = get_provider(config.provider, credentials_info)
|
||||
except ValueError as exc:
|
||||
await _finalize_run(
|
||||
run_log,
|
||||
status="error",
|
||||
errors=[str(exc)],
|
||||
)
|
||||
await _finalize_run(run_log, status="error", errors=[str(exc)])
|
||||
return
|
||||
|
||||
# ── 4. Fetch messages ─────────────────────────────────────────────
|
||||
@@ -636,9 +827,7 @@ async def run_cloud_agent(
|
||||
raw_messages = []
|
||||
except RuntimeError as exc:
|
||||
logger.error(
|
||||
"agent_runner: provider fetch failed for cloud agent %s: %s",
|
||||
config.id,
|
||||
exc,
|
||||
"agent_runner: provider fetch failed for cloud agent %s: %s", config.id, exc
|
||||
)
|
||||
await _finalize_run(
|
||||
run_log,
|
||||
@@ -664,9 +853,11 @@ async def run_cloud_agent(
|
||||
|
||||
try:
|
||||
processing_tools = _build_processing_tools(config.data_types)
|
||||
custom_section = ""
|
||||
if config.prompt_template:
|
||||
custom_section = f"User instructions:\n{config.prompt_template}"
|
||||
custom_section = (
|
||||
f"User instructions:\n{config.prompt_template}"
|
||||
if config.prompt_template
|
||||
else ""
|
||||
)
|
||||
|
||||
for msg in raw_messages:
|
||||
content_text = msg.as_text
|
||||
@@ -674,7 +865,7 @@ async def run_cloud_agent(
|
||||
continue
|
||||
items_processed += 1
|
||||
|
||||
processing_prompt = _PROCESSING_BASE_PROMPT.format(
|
||||
processing_prompt = _CLOUD_PROCESSING_PROMPT.format(
|
||||
data_types=", ".join(config.data_types),
|
||||
project_context="Determine the appropriate project from the message context.",
|
||||
file_list=f"Message from {config.provider} (id: {msg.id})",
|
||||
@@ -708,7 +899,11 @@ async def run_cloud_agent(
|
||||
await db.commit()
|
||||
logger.debug("agent_runner: refreshed OAuth token persisted for agent %s", config.id)
|
||||
except Exception as exc:
|
||||
logger.warning("agent_runner: failed to persist refreshed token for agent %s: %s", config.id, exc)
|
||||
logger.warning(
|
||||
"agent_runner: failed to persist refreshed token for agent %s: %s",
|
||||
config.id,
|
||||
exc,
|
||||
)
|
||||
|
||||
# ── 8. Finalise ────────────────────────────────────────────────────
|
||||
if errors and items_created == 0:
|
||||
@@ -749,12 +944,6 @@ async def trigger_pending_runs(
|
||||
"""Dispatch any overdue agent runs after an Electron device connects.
|
||||
|
||||
Called as a background task from the device WS endpoint on ``device_hello``.
|
||||
|
||||
Scheduling rules:
|
||||
|
||||
* **Local agents**: only triggered when ``config.device_id == device_id``.
|
||||
* **Cloud agents**: triggered on any connected device (no device binding).
|
||||
* Runs execute **sequentially** to avoid flooding the WS connection.
|
||||
"""
|
||||
logger.info(
|
||||
"agent_runner: pending-run scan skipped for user=%s device=%s (client-owned agent config)",
|
||||
@@ -778,11 +967,7 @@ async def _finalize_run(
|
||||
config_id: str | None = None,
|
||||
config_type: str | None = None,
|
||||
) -> None:
|
||||
"""Persist the run outcome and optionally update ``LocalAgentConfig.last_run_at``.
|
||||
|
||||
Uses a fresh DB session so this is safe to call from background tasks
|
||||
after the original request session has closed.
|
||||
"""
|
||||
"""Persist the run outcome and optionally update ``last_run_at`` on the config."""
|
||||
now = datetime.now(timezone.utc)
|
||||
try:
|
||||
async with async_session() as db:
|
||||
|
||||
Reference in New Issue
Block a user