الباحثون

Xinhu Zheng

المنشورات 5

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Commit While Futures Agree: Consequence-Aware Adaptive Action Chunking for Robot Manipulation

Yuyan Li, Yujia Wang, Yusong Huang وآخرون · 2026

Action-chunking policies predict multi-step control sequences, but a fundamental question remains: how much of a predicted action chunk should be committed before replanning? Existing systems typically execute a fixed-length prefix, implicitly assuming that the same execution horizon remains trustworthy across states. …

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LightVLN: Efficient Aerial Vision-and-Language Navigation with Compact Memory and History-Guided Local Aggregation

Yiming Zhao, Tianshun Li, Jingle He وآخرون · 2026

Aerial vision-and-language navigation (VLN) enables unmanned aerial vehicles to execute long-horizon natural-language instructions from visual observations in complex three-dimensional environments. However, recent aerial VLN models often rely on large-scale vision-language backbones and dense visual histories, imposin …

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Efficient Multi-Modal Planning with Reward-Guided Preference Optimization for Autonomous Driving

Chenglin Chen, Lujia Wang, Xinhu Zheng وآخرون · 2026

Safe and efficient trajectory planning is essential in autonomous driving. However, existing end-to-end approaches often fall short in both computational efficiency and safety guarantees. Methods based on imitation learning suffer from causal confusion, while rule-based scoring approaches often incur heavy computationa …

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SLIP-VLA: Single-Step Latent Imagination for Policy Learning in Vision-Language-Action Models

Tianfu Li, Haoxuan Xu, Wenbo Chen وآخرون · 2026

Vision-Language-Action models are increasingly effective for robotic manipulation, yet most predict actions directly from current observations without explicitly modeling future scene evolution. Recent methods introduce future prediction to improve action generation, but dense future modeling often requires expensive i …

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ActiveScale: Scaling Active Perception for Robots across Model, Data, and Hardware

Shuai Zhou, Kaisheng Pang, Wenxuan Song وآخرون · 2026

Active perception is essential for robotic manipulation when fixed viewpoints leave task-relevant information occluded or unobserved. However, enabling vision-language-action (VLA) models to reason across changing viewpoints and actively acquire informative observations remains challenging. We present ActiveScale, a fr …

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