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TARS robot control library with daemon, dashboard, and SDK

Project description

TARS

โš ๏ธ Note to Visitors

This repository is a personal fork for experimenting with a new distributed architecture. If you're looking for the main TARS-AI project, please visit:

๐Ÿ‘‰ https://github.com/TARS-AI-Community/TARS-AI

This fork splits TARS into a dual-machine setup:

  • Host Computer (macOS/Windows/Linux): Handles all AI processing (STT, TTS, LLM, Vision)
  • Raspberry Pi 5: Handles all hardware I/O (servos, camera, audio)

Architecture Overview

New Architecture: RPi is self-contained and runs a WebRTC server + gRPC server. The host computer connects to it as a client.

RPi 5 (tars) - Standalone Robot            Host Computer (tars-conversation-app) - AI Brain
โ”Œโ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”        โ”Œโ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”
โ”‚ WEBRTC + gRPC SERVERS        โ”‚        โ”‚ WEBRTC CLIENT + AI          โ”‚
โ”‚                              โ”‚        โ”‚                             โ”‚
โ”‚ tars_daemon.py               โ”‚        โ”‚ tars_bot.py                 โ”‚
โ”‚                              โ”‚        โ”‚                             โ”‚
โ”‚ On boot:                     โ”‚        โ”‚ Connects to RPi:            โ”‚
โ”‚ - Starts WebRTC server       โ”‚ WebRTC โ”‚ - aiortc client             โ”‚
โ”‚ - Starts gRPC server         โ”‚โ—„โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”ค - POST /api/offer           โ”‚
โ”‚ - POST /api/offer endpoint   โ”‚  P2P   โ”‚                             โ”‚
โ”‚                              โ”‚        โ”‚ Audio Pipeline:             โ”‚
โ”‚ Audio Routing:               โ”‚        โ”‚ โ”Œโ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”     โ”‚
โ”‚ - Mic โ†’ WebRTC track โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”ผโ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”ผโ–บโ”‚ VAD โ†’ STT โ†’ LLM     โ”‚     โ”‚
โ”‚ - WebRTC track โ†’ Speaker โ—„โ”€โ”€โ”€โ”ผโ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”ผโ”€โ”ค โ†’ TTS โ†’ Audio Out   โ”‚     โ”‚
โ”‚                              โ”‚        โ”‚ โ””โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”˜     โ”‚
โ”‚ DataChannel State Sync:      โ”‚        โ”‚                             โ”‚
โ”‚ - Receives eye states        โ”‚        โ”‚ Services:                   โ”‚
โ”‚ - Sends battery status       โ”‚        โ”‚ - Deepgram STT              โ”‚
โ”‚                              โ”‚        โ”‚ - GPT LLM + Tools           โ”‚
โ”‚ gRPC API (port 50051):       โ”‚        โ”‚ - ElevenLabs TTS            โ”‚
โ”‚ - Move(movement, speed)      โ”‚โ—„โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”ค - Vision (tool calls)       โ”‚
โ”‚ - CaptureCamera(w, h, q)     โ”‚  gRPC  โ”‚                             โ”‚
โ”‚ - SetEmotion(emotion)        โ”‚        โ”‚ Tools call RPi via gRPC     โ”‚
โ”‚ - SetEyeState(state)         โ”‚        โ”‚                             โ”‚
โ”‚ - GetStatus()                โ”‚        โ”‚                             โ”‚
โ””โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”˜        โ””โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”˜
          โ”‚
          โ”‚ I2C + USB + CSI
          โ–ผ
โ”Œโ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”
โ”‚ Hardware         โ”‚
โ”‚ - Servos         โ”‚
โ”‚ - USB Soundcard  โ”‚
โ”‚ - Pi Camera      โ”‚
โ”‚ - Display        โ”‚
โ”‚ - Battery        โ”‚
โ””โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”€โ”˜

Key Principle: The robot is self-contained. It boots up and waits for an AI brain to connect, not the other way around.


๐Ÿ“ฆ Installation

SDK Only (App Development)

For controlling TARS from your computer (Mac/Windows/Linux):

pip install tars-robot

This installs only the lightweight SDK (~3 dependencies) needed to connect to the robot via gRPC.

Full Daemon (Raspberry Pi)

For running the robot daemon on the Pi:

pip install tars-robot[daemon]

This installs all dependencies including FastAPI, pygame, Adafruit libraries, etc.

๐Ÿ“– Full Installation Guide - Detailed instructions, usage examples, and troubleshooting


What This Repo Contains

  • gRPC-based control system for Raspberry Pi 5 (low-latency hardware control)
  • WebRTC server for bidirectional audio streaming
  • 19 pre-programmed movements for servo control
  • Camera capture via gRPC (Pi Camera or USB webcam)
  • Real-time state synchronization via WebRTC DataChannel

Quick Start

Web Dashboard

First Boot WiFi Setup:

On first boot, TARS starts a WiFi hotspot:

SSID: TARS-Setup
Password: tars1234
Setup URL: http://tars.local:8000/setup (or http://10.42.0.1:8000/setup)

After WiFi is configured, access the dashboard at:

# Local network (home WiFi)
http://tars.local:8000

# Tailscale (dorm/corporate networks)
http://tars:8000

๐Ÿ“– WiFi Setup Guide - Complete WiFi configuration instructions

Dashboard Features:

  • Monitor robot status (battery, CPU, network)
  • Control movements via joystick
  • Install and manage apps from the App Store
  • Configure WiFi and system settings

Tabs:

  • Status: System metrics, battery, connections
  • Control: Movement controls with joystick interface
  • Apps: Official and community apps marketplace
  • Settings: WiFi management, enterprise WiFi support, updates

Command Line

Start the RPi daemon (waits for AI brain to connect):

# Start WebRTC + gRPC servers (default)
python tars_daemon.py

# Or using start script
./start.sh

# WebRTC only (no gRPC)
python tars_daemon.py --no-grpc

# Specify custom gRPC port
python tars_daemon.py --grpc-port 50052

The RPi will (unified daemon on port 8000):

  1. Start unified HTTP server on port 8000 (WebRTC + REST API + Dashboard)
  2. Start the gRPC server on port 50051 (default)
  3. Wait for host computer to connect via POST /api/offer
  4. Once connected, audio flows bidirectionally and gRPC handles hardware control

Documentation

User Guides:

API Reference:

Architecture & Design:


๐Ÿค Contributing


๐Ÿ“œ License & Attribution

This project is licensed under CC-BY-NC 4.0 for non-commercial use.

Attribution Chain

Based on the mechanical puppet designs by Christopher Nolan, Nathan Crowley, and the production team who originally brought TARS to lifeโ€”miniaturized CAD by Charlie Diaz, with additional modifications by the TARS-AI Community, AtomikSpace, and Latisha B.

Contributors:

  • Christopher Nolan / Production Team - Original TARS character from Interstellar
  • Charlie Diaz - Original miniaturized CAD files and code (Hackster.io)
  • TARS-AI Community - Community project (repo)
  • Charles-Olivier Dion (AtomikSpace) - V2 hardware, modified CAD, hardware modules
  • Latisha B - Daemon architecture, display system, conversation pipeline

See COPYRIGHT.md for detailed ownership and licensing information.

Commercial Use

Commercial use is not permitted under CC-BY-NC 4.0 without explicit written permission from all applicable copyright holders.

Commercial use includes:

  • Selling 3D printed parts, kits, or complete robots
  • Selling or distributing CAD files for money
  • Offering paid assembly, customization, or installation services
  • Monetized content that distributes project files or derivatives
  • Using this project in paid products, commercial research, or corporate projects

For commercial use, you must obtain separate licenses from:

  • AtomikSpace (hardware modules, CAD modifications): atomikspace.labs@gmail.com
  • Latisha B (daemon, dashboard, SDK, display): Contact via GitHub
  • Upstream contributors (Charlie Diaz, TARS-AI Community): As applicable

See DUAL-LICENSE.md for AtomikSpace's dual-license model.


๐Ÿงพ Attribution

Please follow the attribution guidelines when sharing or publishing derivative work:

๐Ÿ‘‰ ATTRIBUTION.md


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