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Wenyu Liu

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Preprint Sep 2026

Rethinking Representations for World-Action Modeling

World-action models jointly learn robot policies and predict future observations, making the representation space an interface between control and prediction. We study the design of this space through controlled comparisons, finding that neither reconstruction fidelity nor pre-trained perceptual features alone ensure e...

Hao-Yi Jiang, Liu Liu, Xin-Jiang Wang et al. · 0 citations
Preprint Sep 2026

ReDrive: Shaping Representations with World Modeling for End-to-End Driving

Driving policies require capabilities of scene understanding and future evolution prediction. To achieve this goal, current end-to-end models typically construct complex perception-planning pipelines or introduce world models that explicitly predict future states, resulting in a complex system architecture. Inspired by...

Yue-Ting Zhu, Shao-Yu Chen, Yue-Hao Song et al. · 0 citations
#artificial intelligence Preprint Sep 2026

Adaptive Vision-Language Grasping via Composable Foundation Priors and Generalizable Grasp Synthesis

This paper proposes AdaRoboVLG, a task-adaptive Vision-Language-Grasp (VLG) framework that supports generalizable grasp synthesis across different robotic hands. Unlike existing VLG methods that tightly couple foundation models with end-to-end grasp policies, AdaRoboVLG learns an efficient generalizable base policy tha...

Si-Xu Yan, Shi-Kang Wang, Bin-Hua Huang et al. · 1 citation
Preprint Aug 2026

DreamWAM: Beyond RGB Future Prediction for World Action Models

DreamWAM is introduced, which reformulates future prediction as structured world modeling beyond RGB, representing future states through complementary views of appearance, motion, geometry, and semantics, showing that robust world-action learning depends not only on predicting the future, but on representing it in a fo...

Shanglin Yuan, Weiheng Zhao, Xin Shi et al. · 4 citations
Jul 2026

Behavior Foundations for Quadruped Robots: ABot-C0 Technical Report

ABot-C0 is presented, a generalist motion-control system for quadruped robots that establishes three complementary behavior foundations: a scalable multi-source motion-data pipeline, robust policy learning across motion tracking, locomotion, and scene interaction, and a unified deployment stack for reliable real-world...

Xufeng Zhao, Fu-Zhi Yang, Jianhui Chen et al. · 0 citations

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