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org-workspace

Python library that makes org-mode files first-class citizens for AI agent workflows.

Built on a vendored fork of orgparse with write support (PR #77), org-workspace adds multi-file workspace management, structured mutations, concurrency primitives, and query capabilities designed for autonomous AI agents.

Install

pip install org-workspace

Quick start

from pathlib import Path
from org_workspace import OrgWorkspace, Query

# Load workspace
ws = OrgWorkspace(roots=[Path("~/org")])

# Query tasks
q = Query(ws)
next_up = q.next_action()
ai_tasks = q.ai_tasks(states=["TODO"])
deadlines = q.deadlines(days=14)

# Create a task
task = ws.create_node(
    file=Path("~/org/inbox.org"),
    heading="Research org-mode parsing",
    state="TODO",
    tags=["AI", "research"],
    body="Investigate approaches for org-mode mutation",
)

# Transition state
ws.transition(task, "DONE", agent="my-agent")

# Save changes (only modified files are written)
ws.save()

Features

Workspace management

  • Multi-file loading with dirty-file tracking
  • Content-addressed ID generation with dedup
  • Round-trip safe serialization (zero byte-diff on unchanged files)

NodeView pattern

  • Stateless, non-caching read-only views over org nodes
  • Generation-counter staleness detection
  • Safe for concurrent access patterns

Mutations (via OrgWorkspace)

  • create_node() — create headings with state, tags, properties, body
  • refile() — move nodes between files preserving subtree
  • remove_node() — delete nodes from files
  • transition() — state changes with LOGBOOK entries
  • set_property(), set_heading(), set_tags()

Query system

  • agenda(), deadlines(), overdue(), stale()
  • by_state(), by_tag(), by_property()
  • ai_tasks() — find :AI: tagged tasks for agent execution
  • next_action() — GTD next action selection

Dependency DAG (Plan)

  • Parse DEPENDS_ON properties into dependency graphs
  • Topological sort for execution ordering
  • ready_tasks(), blocked_tasks(), cycle detection

Concurrency

  • FileLock — file-level locking
  • OptimisticLock — hash-based conflict detection
  • TaskClaim — agent-level task claiming with staleness timeout
  • multi_lock() — deadlock-free multi-file locking (lexicographic order)

LOGBOOK and session logging

  • add_logbook_entry(), add_state_change_entry(), add_clock_entry()
  • SessionLog for buffered per-session logging

Archive

  • archive_node() — archive with hierarchy preservation
  • archive_done() — bulk archive completed tasks
  • archive_plan() — archive entire dependency plans

Context extraction (for AI agents)

  • build_execution_context() — structured context from task properties
  • get_prompt() — PROMPT property with body fallback
  • get_role() — agent persona from ROLE property

GTD state configuration

from org_workspace import StateConfig

# Default GTD states
config = StateConfig.default()
# sequences: {"gtd": ["TODO", "NEXT", "WAITING", "DONE"]}

# With nightshift (autonomous execution) states
config = StateConfig.nightshift()
# adds: QUEUED, EXECUTING, REVIEW, FAILED

License

BSD 2-Clause. See LICENSE.

This library includes a vendored copy of orgparse (BSD 2-Clause, Copyright 2012 Takafumi Arakaki) with modifications from datacore-one/orgparse PR #77 adding write support.

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