Pascal — autonomous AI employee runtime
Project description
Pascal — Autonomous AI Employee
An autonomous AI agent that works like a real employee: receives tasks, plans, executes, and reports back.
Getting Started
Install
pip install pascal-agent
Or with all optional features:
pip install "pascal-agent[all]"
Run
pascal
That's it. On first run, Pascal auto-detects your LLM provider or walks you through setup.
Manual setup (optional)
# Interactive setup
pascal setup
# Or set individually
pascal config set provider openai
pascal config set model gpt-5.4-mini
pascal config
Provider setup:
| Provider | Auth | How |
|---|---|---|
| OpenAI | API key | export OPENAI_API_KEY=sk-... |
| Anthropic | API key | export ANTHROPIC_API_KEY=sk-ant-... |
| Codex | ChatGPT Pro OAuth | codex auth login (free with Pro subscription) |
Usage
# Interactive mode (default)
pascal
> Summarize the files in this directory
> Read README.md and explain the architecture
> exit
# One-shot task
pascal "Write a Python script that downloads weather data"
# Set a mission (persistent context)
pascal --mission "You are a data analyst for the marketing team"
# Check current state
pascal --status
# Always-on daemon with Telegram
pascal --daemon
# Resume a paused task
pascal --resume task_abc123
Configuration
Config file (~/.pascal/pascal.toml)
[pascal]
model = "gpt-5.4-mini"
provider = "openai" # openai | anthropic | codex
db_path = "~/.pascal/state.db"
max_effect = "E2" # E0=read E1=analyze E2=write E3=push E4=merge E5=delete
max_tool_rounds = 10 # max tool calls per LLM turn
CLI config commands
pascal config # Show all settings
pascal config set model gpt-5.4-mini # Set a value
pascal config get provider # Get a value
Environment variables (override config file)
PASCAL_MODEL=gpt-5.4-mini
PASCAL_PROVIDER=openai
PASCAL_MAX_EFFECT=E2
API keys can be set as environment variables or saved to ~/.pascal/.env (auto-loaded).
Optional integrations
Telegram bot (~/.pascal/telegram.json):
{"bot_token": "123:ABC...", "owner_chat_id": 12345}
MCP tool servers (~/.pascal/mcp.json):
[{"name": "chrome", "command": "npx", "args": ["chrome-devtools-mcp@latest"]}]
Custom skills (~/.pascal/skills/my-skill.md):
---
name: my-skill
description: What this skill does
---
Instructions for Pascal when this skill is activated...
How It Works
pascal "Do something"
|
v
+---------------------------+
| Desk compiles state | SQLite -> text prompt
| LLM decides next action | 22 action types via function calling
| Execute through safety | Effect Ladder + Trust Scanner + Sandbox
| Record to audit ledger | Hash-chained, append-only
| Repeat |
+---------------------------+
|
v
Task complete / wait / escalate
22 actions: think, execute, plan, delegate, pick_task, create_task, create_subtask, complete_task, fail_task, pause_task, block_task, handle_notification, dismiss_notification, add_todo, complete_todo, memorize, add_rule, remove_rule, set_context, wait, escalate
3 LLM providers: OpenAI, Anthropic Claude, Codex (ChatGPT Pro)
4-layer safety: Effect Ladder (E0-E5) | Trust Scanner | Sandbox (Docker/Restricted) | TrustMap + Audit Ledger
Daemon Mode
Always-on operation with Telegram integration:
# Setup Telegram first
echo '{"bot_token": "YOUR_TOKEN", "owner_chat_id": YOUR_ID}' > ~/.pascal/telegram.json
# Start daemon
pascal --daemon
Features:
- Telegram DM for tasks and approvals
- Adaptive heartbeat (5min active, 30min idle)
- Auto-restart on crash
- STOP/PAUSE control (
~/.pascal/STOPor~/.pascal/PAUSEfile)
Development
git clone https://gitlab.com/laum0621/pascal.git
cd pascal
pip install -e ".[dev]"
# Tests (245 pass)
pytest
# Lint (0 errors)
ruff check src/ tests/
# Type check (0 errors)
mypy src/pascal/
Project Structure
src/pascal/
loop.py ........... Core tool-use loop (LoopRunner)
actions.py ........ 22 action handlers (ActionContext)
state.py .......... SQLite persistence (9 tables, FTS5)
desk.py ........... State -> LLM prompt compiler
tools.py .......... Built-in tools (file, desktop, UIA, clipboard)
effect.py ......... Effect Ladder (E0-E5, hard regex rules)
trust.py .......... Input scanner (injection, credentials, destructive)
capability.py ..... Domain trust map (asymmetric learning)
sandbox.py ........ Docker + Restricted sandbox
receipts.py ....... Hash-chained audit ledger
scheduler.py ...... Cron tick + self-evolution
daemon.py ......... Always-on mode (Telegram + loop + scheduler)
config.py ......... Config loader (CLI > env > TOML > defaults)
schemas.py ........ Tool JSON schemas for LLM function calling
prompt.py ......... System prompt
types.py .......... Shared DTOs
llm/ .............. OpenAI, Anthropic, Codex providers
channels/ ......... Telegram adapter
uia.py ............ Windows UI Automation
License
MIT
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