ROBOTNESS
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Papers

New robotics and physical-AI papers, with what each one means for the industry.

1 papers
Filtered by technology world-model · clear
arXiv
LearningExpert

Anisotropic Representations Improve Planning in JEPA World Models

Mingu Kang, Yoori Oh, Sookyung Kim, Joonseok Lee

Latent world models learn action-conditioned dynamics in representation space and often score candidate actions by Euclidean distance to a goal representation. Joint training typically regularizes the representation to prevent collapse, but the resulting representation geometry also determines how terminal errors are weighted during planning.

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Papers come from arXiv robotics feeds. Where our summary is not written yet, you see the opening lines of the abstract.