Fall detection and safe shutdown logic - how much do commercial robots actually have?

Whole-body control, RL policies, VLA models, sim-to-real, ROS2, and the software stack that makes a humanoid actually walk and act.
robertmiller
Posts: 61
Joined: Sun Feb 01, 2026 4:05 pm

Re: Fall detection and safe shutdown logic - how much do commercial robots actually have?

Post by robertmiller »

This raises a question for me - Domain randomization - varying friction, mass, sensor noise, and even visual textures during training - is one of the more reliable tricks for improving sim-to-real transfer, but overdoing it can make training slower to converge and produce overly conservative policies. Balance-recovery controllers are usually evaluated with push-recovery tests (a known, repeatable lateral push) in demos, but real-world robustness also depends on recovering from unstructured events like uneven flooring, unexpected contact, or a dropped payload shifting the center of mass mid-stride - which is a much harder, less demo-friendly test.
Ex-automotive, now full-time robots.
kim37
Posts: 109
Joined: Mon Jul 21, 2025 11:21 pm

Re: Fall detection and safe shutdown logic - how much do commercial robots actually have?

Post by kim37 »

Here's what I know on this: OpenVLA is a notable open-source VLA model - roughly 7 billion parameters, trained on hundreds of thousands of real-world robot demonstrations - and has been shown to outperform much larger closed models on some manipulation benchmarks, which says a lot about how much of VLA performance comes from data curation rather than raw scale.
deborahperez
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Joined: Sat Aug 31, 2024 4:22 am

Re: Fall detection and safe shutdown logic - how much do commercial robots actually have?

Post by deborahperez »

@kim37 This matches what I've seen too. ROS2 remains common in research and early-stage products for its tooling and ecosystem, but a number of production humanoid companies run custom, more tightly-optimized middleware for their real-time control loops, using ROS2-like tooling mainly for development, visualization, and non-real-time subsystems. Model predictive control (MPC) is still very much alive in production humanoids, often working alongside or underneath learned policies - MPC handles short-horizon dynamically-consistent trajectory optimization while learned components handle perception, task-level decisions, or recovery behaviors that are hard to hand-model. Kind of makes me think about how different this all looked even three years ago.
tmartin
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Joined: Mon May 25, 2026 8:56 pm

Re: Fall detection and safe shutdown logic - how much do commercial robots actually have?

Post by tmartin »

@deborahperez I'll believe the stronger version of that claim when it's independently verified. Zero Moment Point (ZMP) control keeps the robot's center of pressure within its support polygon and has been the classical backbone of bipedal walking for two decades - it's robust and well-understood, but tends to produce a somewhat conservative, flat-footed gait compared to more dynamic approaches.
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thomasmitchell
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Joined: Mon Apr 13, 2026 6:08 am

Re: Fall detection and safe shutdown logic - how much do commercial robots actually have?

Post by thomasmitchell »

This matches something I went through recently. Sim-to-real transfer still commonly breaks on contact dynamics - friction, restitution, and deformable/compliant surfaces are the hardest things to model accurately in simulation, so policies trained purely in sim often need real-world fine-tuning specifically around contact-rich tasks.
"The best actuator is the one that doesn't overheat."
harmonicjen60
Posts: 64
Joined: Sat Feb 07, 2026 7:12 am

Re: Fall detection and safe shutdown logic - how much do commercial robots actually have?

Post by harmonicjen60 »

This matches something I went through recently. Sim-to-real transfer still commonly breaks on contact dynamics - friction, restitution, and deformable/compliant surfaces are the hardest things to model accurately in simulation, so policies trained purely in sim often need real-world fine-tuning specifically around contact-rich tasks.
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