الباحثون

Hao Wu

المنشورات 7

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MagCilia: A Compact Magnetociliary Tactile Sensor with 3D Force Sensing for Robotic Contact Perception and Grasping Feedback

Yu Feng, Hao Wu, Haotian Guo وآخرون · 2026

Robotic grasping and surface exploration benefit from simultaneous measurement of normal and tangential forces and from surface information obtained through contact. Here, we present a compact magnetociliary tactile sensor (MagCilia) that combines a flexible magnetic-cilia structure with a Hall sensor for 3D force sens …

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How Much Evidence Should a Coding Agent's Self-Correction Carry? Adaptive Dirichlet Evidence for Self-Distillation

Yunbo Long, Guangya Hao, Yuhan Liu وآخرون · 2026

Execution feedback lets coding agents revise programs and learn from their own corrections. A correction's learning weight should reflect both the transitions supported by its executions and the amount of evidence behind that support. We introduce Effective-Evidence Self-Distillation (EESD), which represents these quan …

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FutureWorlds: Learning Robotic World Models from Alternative Futures

Hao Wu, Shengju Qian, Weiyan Wang وآخرون · 2026

Robotic world models predict action-conditioned future scenes, providing a foundation for understanding action outcomes. However, turning alternative predictions into useful learning signals remains challenging: similar candidates limit informative quality comparisons, while diverging trajectories require persistent ma …

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MWOP: Modality-aware Width-wise Operation Pruning for Efficient MLLMs

Xudong Wang, Hao Wu, Haozhe Hu وآخرون · 2026

Multimodal large language models (MLLMs) incur substantial inference costs when processing long visual-textual sequences. While existing operation compression methods exploit modality-level redundancy, they largely treat computation within attention heads and shared feed-forward network (FFN) channels as unified units, …

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Zeva-Ego: Egocentric Mid-Training with In-Context Causal Learning for Robot Manipulation

Bingjia Huang, Xin Ding, Fu Chen وآخرون · 2026

Egocentric video offers a scalable source of physical interaction experience, yet translating it into robot-executable knowledge and enabling continual adaptation remain challenging. We introduce Zeva-Ego, a unified framework that learns physical priors from human experience and evolves through robot interaction. An Ac …

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