Humanoid Robot Demonstrates Monkey Bar Skills
IEEE Spectrum Robotics highlights a humanoid robot that can traverse monkey bars, showcasing its agility and precision. This technology, developed by ETH Zurich Robotic Systems Lab, represents a significant step forward in humanoid robot capabilities. The robot can jump to structures, traverse them through interactions, and safely land, demonstrating its ability to handle thin, overhanging…
Key points
- Humanoid robot demonstrates agility in traversing monkey bars
- ETH Zurich Robotic Systems Lab develops the technology
- Unitree majorly opens-source a new embodied foundation model
The story so far
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Video Friday: Humanoid Robot Takes On Monkey Bars
IEEE Spectrum Robotics · 11 September 2026
Video Friday is your weekly selection of awesome robotics videos, collected by your friends at IEEE Spectrum robotics. We also post a weekly calendar of upcoming robotics events for the next few months. Please send us your events for inclusion.
Humanoids Summit Seoul: 22–23 September 2026, SEOUL
IROS 2026: 27 September–1 October 2026, PITTSBURGH
CoRL 2026: 9–12 November 2026, AUSTIN
Enjoy today’s videos!
Traversing sparse 3D structures requires humanoid robots to perceive thin, overhanging geometry while executing agile, accurate whole-body motions. We study this problem through monkey-bar traversal, where the robot must jump to the structure, traverse it through sparse bar interactions, and land safely.
The list of obstacles that you can traverse to escape a robot is getting shorter.
[ ETH Zurich Robotic Systems Lab ]
YES GIVE ROBOTS TWO HEADS I LOVE IT!
9/11 was the first documented use of robots for urban search and rescue and helped create the field of disaster robotics. Personnel began assembling on the afternoon of September 11 and worked the pile from late on September 11 through October 2, when the last available robot failed. The robots found no survivors, but they located remains and helped search for routes through the rubble toward basements and stairwells where trapped firefighters might have gone.
[ CRASAR ]
Unitree majorly fully open-sources the UnifoLM-WLA-1.0 embodied foundation model, achieving new SOTA results across multiple benchmarks among open-source models worldwide. A single model coordinates desktop and whole-body mobile manipulation, supporting cross-task and cross-end-effector generalization, driven by one model, whole-body coordination.
[ Unitree ]
Compliance is very important in physical interaction. In this work, we show how a multilined aerial robot uses its centroid and joint motion to achieve hybrid impedance–admittance control in contact-rich aerial manipulation tasks such as surface sliding. This work will be presented in IEEE IROS 2026.
[ DRAGON Lab ]
Thanks, Moju!
Remind me not to get too close to this.
[ RaiLab Kaist ]
Welcome to this edition of Things That Really Seem Like They Should Not Fly.
Achieving agile and generalized legged locomotion across terrains requires tight integration of perception and control, especially under occlusions and sparse footholds. Existing methods have demonstrated agility on parkour courses but often rely on end-to-end sensorimotor models with limited generalization and interpretability. By contrast, methods targeting generalized locomotion typically exhibit limited agility and struggle with visual occlusions. We introduce a unified reinforcement learning (RL) framework for agile and generalized locomotion that incorporates a novel attention-based map encoder in the control policy.
[ ETH Zurich Robotic Systems Lab ]
Finally, the killer app for humanoid robots! But we probably shouldn’t call it that.
[ Unitree ]
I suspect that this demo avoids many of the things that are actually difficult about doing dishes. Not just the water and the slippery soapiness, but also identifying when a dish is dirty as well as when it is actually clean.
[ Flexiv ]
Sure, I guess I might want a robot to deliver a burrito to me while I’m hiking to the top of a mountain in the rain...?
[ DEEP Robotics ]
AI has transformed the digital world. It writes our code, generates our images, reasons in our language. But the physical world—the plants that make our power, our fuel, our steel and chemicals—it has barely touched. ANYbotics CEO and Co-Founder Péter Fankhauser on the bet behind the company: why legged robots turned out to be the way into the world’s most demanding industrial plants, what it took to certify one for explosive atmospheres after experts called it impossible, and where autonomous industrial work goes next.
This text was published by IEEE Spectrum Robotics and written by Evan Ackerman. It is reproduced here with attribution so you can read it in full; the rights remain with the publisher. Read it at the source ↗
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