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🚀 New work [ICML 2026]: Structured 4D Latent Predictive Model for Robot Planning. Can robots plan by imagining future 3D structure, not just pixels? Multi-view obs + language → 3D latent rollouts → 3D-consistent subgoals for robot actions.
99,470 görüntüleme • 2 ay önce •via X (Twitter)
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(1/7) Why 3D in planning? A general-purpose robot in the real world must reason about where objects are, how they move, and how actions change the scene. 2D pixels can look plausible but be geometrically inconsistent. For control, predictions need 3D structures.

(2/7) Key idea: predict future 3D structure directly. Multi-view observations are encoded into a structured 3D latent, then rolled forward over time conditioned on text instructions.

(7/7) Takeaway: future 3D prediction is a useful bridge between generative world models and robot control. Please visit our project page for more results, visualizations, and details:

(4/7) Generation results: the model unrolls language-conditioned 4D futures across tasks, from stacking and insertion to longer-horizon manipulation. Rendered views and point clouds stay coherent over time, showing strong 3D consistency.

(3/7) How it works: reconstruct current 3D latent, use a Single Dynamics Model for coarse structure and a Latent Generator for details, then decode future latents into point clouds/3D Gaussians, which are then converted to robot actions by inverse dynamics.

(5/7) Generalization: for robot planning, small unseen changes—lighting, noise, background color, or camera pose—can break policies. Structured 3D rollouts make the planner more robust under these shifts.

(6/7) Real world: we train from block-in-basket demos with 4 RGB-D cameras. Predicted 3D subgoals are registered to recover gripper poses, then executed with training-free point cloud registration-based motion planning, showing the pipeline can transfer beyond simulation.

Many thanks to my advisor @du_yilun and all coauthors @PeilinWu64 @xshenhan @ruojin8!

can’t beat this

Planning in 3D structure instead of raw pixels feels like a much closer match to how humans actually imagine actions.

Structured 4D latent space for planning, really elegant approach! 🚀 Love that it generalizes to novel viewpoints without retraining

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Really enjoyed this!
