How do you structure a training curriculum for a brand-new robot body?
-
nancy_lewi
- Posts: 102
- Joined: Sun Aug 31, 2025 1:11 pm
How do you structure a training curriculum for a brand-new robot body?
Been thinking about this a lot lately.
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. Diffusion policies model the distribution of possible actions and sample from it, which handles multimodal manipulation tasks (multiple valid ways to grasp something) more naturally than a single deterministic action output, at the cost of slower inference.
Interested to see if this matches what others are seeing.
"Torque is a lifestyle."
Re: How do you structure a training curriculum for a brand-new robot body?
Speaking from personal experience here,
A lot of what reads as 'full autonomy' in public demos is closer to a mix of scripted state machines, teleoperation for the hardest sub-tasks, and autonomous execution for the easier, well-rehearsed parts - transparency about this mix varies a lot between companies.
-
nancy_lewi
- Posts: 102
- Joined: Sun Aug 31, 2025 1:11 pm
Re: How do you structure a training curriculum for a brand-new robot body?
Agreed, and I'd add:
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.
"Torque is a lifestyle."
-
jessica_faro
- Posts: 95
- Joined: Sat Oct 11, 2025 5:26 am
Re: How do you structure a training curriculum for a brand-new robot body?
Agreed, and I'd add:
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. Cross-embodiment training (training one policy across data from multiple different robot bodies) has shown some real transfer benefits for high-level behaviors, but low-level control (exact joint torques, timing) still tends to need embodiment-specific fine-tuning.
they/them
Re: How do you structure a training curriculum for a brand-new robot body?
This is exactly the kind of context I was looking for.
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. Physical Intelligence's pi0 pairs a smaller pretrained vision-language backbone with a separate flow-matching 'action expert' module, which is one way to get fast, high-frequency action output without needing the whole giant language model to run at control-loop speed.
they/them
Re: How do you structure a training curriculum for a brand-new robot body?
Slight correction, though the overall point stands:
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.
Opinions my own, not my employer's.
-
giulia.roberts4
- Posts: 109
- Joined: Wed Jun 25, 2025 1:06 pm
Re: How do you structure a training curriculum for a brand-new robot body?
@barbara50 I can speak to this a bit.
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.
"The best actuator is the one that doesn't overheat."
Re: How do you structure a training curriculum for a brand-new robot body?
@giulia.roberts4 This lines up with my experience.
Vision-Language-Action (VLA) models like RT-2, OpenVLA, and Physical Intelligence's pi0 unify a vision-language backbone with an action-output head, letting a robot map a camera image and a text instruction directly to motor commands instead of hand-coding separate perception and planning stages.
she/her | grad student, biped locomotion
Re: How do you structure a training curriculum for a brand-new robot body?
@nicole57 Here's the relevant bit as far as I understand it:
Whole-body control (WBC) formulates locomotion and manipulation as a single optimization problem across all joints simultaneously, respecting contact constraints and task priorities - it's more general than ZMP-only approaches but is computationally heavier and harder to tune. 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.
they/them
Re: How do you structure a training curriculum for a brand-new robot body?
This matches what I've seen too.
Isaac Lab (the successor to Isaac Gym) is widely used for large-scale parallel RL training thanks to GPU-accelerated physics, while MuJoCo is often used as a secondary 'sim-to-sim' validation step because its contact dynamics are generally considered more realistic than Isaac's, even though it trains slower at scale.
This whole thread is a good reminder how young this field still is.
they/them