Have you ever watched Christopher Nolan’s sci-fi masterpiece “Interstellar” and found yourself captivated by TARS, that rectangular, sarcastic robot with its unique walking style? What if I told you that you could build your own miniature version of this iconic movie character?
Today, we’re going to explore the fascinating world of DIY robotics as we dive into creating a functional TARS replica. This isn’t just any static model – we’re talking about a walking, interactive robot that captures the essence of one of cinema’s most memorable AI companions.
Table of contents
- What Makes TARS So Special?
- The Hardware You’ll Need
- Understanding TARS’s Walking Mechanism
- Evolution Through Multiple Versions
- The Software Side
- Building Your Own TARS: A Step-by-Step Approach
- Beyond Basic Movement: Adding Personality
- Learning from the Community
- Why Build a TARS Replica?
- Conclusion: Your Journey with TARS
What Makes TARS So Special?
TARS might not have the humanoid appearance of many sci-fi robots, but its minimalist design and distinctive locomotion make it instantly recognizable. The robot’s rectangular modules and unique walking mechanism present an interesting challenge for makers and robotics enthusiasts.
What appears simple at first glance – essentially blocks connected by hinges – actually involves sophisticated engineering to achieve that signature movement we saw in the film. The seemingly straightforward walking style requires precise servo control, weight distribution, and programming to replicate effectively.
The Hardware You’ll Need
Before diving into construction, let’s look at the essential components that will bring your miniature TARS to life:
Core Components:
- Raspberry Pi 3 Model B (serves as TARS’s brain)
- 5-inch HDMI display (for TARS’s interface)
- Adafruit 16-Channel PWM Servo Driver (to control all movements)
- 8Bitdo Zero 2 Bluetooth Remote (for remote control)
- LiPo Battery (3 cell, 11.1V, 1300mAh)
- 12V to 6V DC Buck Converter (for power management)
Servo Motors:
- 5 Metal Gear “Standard” Servos (for primary movement)
- 4 SG90 Micro-servo motors (for secondary movements)
Structural Components:
- 3D printed chassis parts (various pieces that form TARS’s body)
- Machine screws and hardware for assembly
The beauty of this project is that it combines readily available electronic components with custom 3D-printed parts, making it accessible to makers with different skill levels.
Understanding TARS’s Walking Mechanism
What’s truly fascinating about TARS’s design is the hidden complexity behind its apparently simple movement. When the robot’s creator first attempted to replicate the walking motion, they discovered something surprising – a simple hinge mechanism wasn’t enough.
The movie’s special effects team incorporated a clever translational degree of freedom near the leg joints. This additional movement creates the necessary clearance for the legs as they rotate past the center torso. Without this hidden mechanism, TARS couldn’t achieve its distinctive walk.
This realization highlights an important lesson in robotics: sometimes what looks straightforward in motion requires unexpected engineering solutions to achieve in reality.
Evolution Through Multiple Versions
Like any complex project, creating a working TARS replica involves iteration and learning from failures. The creator went through multiple versions:
TARS V1: The Proof of Concept
The first attempt used NiMH batteries, which made the robot too heavy. This resulted in violent, forceful steps that broke the 3D-printed drive components after just a few steps.

Later Versions: Refinements
Subsequent versions switched to lighter LiPo batteries and improved weight distribution. The walking program was refined, making movements smoother and more reliable. The latest version can walk continuously for hours and even includes robotic arms for interacting with objects.
This evolution demonstrates the value of persistence in DIY projects. Each failure provided insights that led to improvements in the next iteration.
The Software Side
Running a robot like TARS requires several software components working together:
- Raspbian OS: The foundation that runs on the Raspberry Pi
- Servo Controller: Python code that handles the basic movements of each servo
- Servo Abstractor: Combines basic movements into more complex actions
- TARS Runner: The main program that handles communication with the Bluetooth remote
What’s particularly clever about the software architecture is how it abstracts complex movements into simple functions. Want TARS to take a step forward? The code calls stepForward(), which automatically coordinates multiple servos to execute the proper sequence of movements.
Building Your Own TARS: A Step-by-Step Approach
If you’re inspired to create your own TARS, here’s a recommended approach:
- Start with research: Study the original design from the movie and understand the walking mechanism
- Gather components: Source all the electronic parts and prepare for 3D printing
- Print the chassis: Use PETG, PLA, or ABS for most parts (except the flexible components)
- Assemble the electronics: Wire the servo driver to the Raspberry Pi and connect all servos
- Power management: Set up the battery and voltage regulation systems
- Software setup: Install Raspbian and the TARS control software
- First steps: Begin with basic movements and refine as you go
The most rewarding moment will be when your creation takes its first steps, mirroring the iconic walking style from the film.
Beyond Basic Movement: Adding Personality
What made TARS special in Interstellar wasn’t just its unique design and movement, but also its personality. While programming humor settings of 100% might be beyond our current AI capabilities, you can add elements that give your TARS some character:
- Custom display animations on the screen
- Programmed responses to certain commands
- Sound effects or voice responses
- Interactive elements that respond to the environment
Some ambitious builders have even incorporated face recognition, LIDAR detection, and voice interaction using additional modules and APIs.
Learning from the Community
One of the most exciting aspects of this project is that it’s open-source. The creator has shared designs, code, and detailed documentation so others can build their own TARS replicas and potentially improve the design further.
This collaborative approach means that the TARS replica project continues to evolve as makers around the world add their own innovations and refinements.
Why Build a TARS Replica?
Beyond the joy of having your own piece of science fiction brought to life, building a TARS replica offers valuable learning opportunities:
- Practical experience with robotics and servo control
- Programming skills development
- 3D design and printing experience
- Problem-solving through iteration
- Understanding weight distribution and movement dynamics
It’s a project that combines multiple disciplines in a uniquely challenging and rewarding way.
Conclusion: Your Journey with TARS
Creating a working TARS replica isn’t a weekend project – it represents a journey of learning, problem-solving, and iteration. But for those willing to undertake the challenge, the reward is a unique piece of functional art that pays homage to one of cinema’s most interesting robots.
Whether you’re an experienced maker or just beginning your robotics journey, building TARS offers a fascinating window into the intersection of design, engineering, and storytelling. And who knows? Your innovations might lead to the next breakthrough in the community’s ongoing effort to bring this iconic character to life in our world.
Are you ready to build your own sarcastic, rectangular companion? The blueprints are waiting, and a community of fellow enthusiasts is ready to help you along the way.
Have you attempted to build a movie robot replica? Share your experiences in the comments below!
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