most citedDGGT: Feedforward 4D Reconstruction of Dynamic Driving Scenes using Unposed Images

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cs.RO2026

GeoWorldAD: Geometry World Action Model for Autonomous Driving

Songyan Zhang, Jinyuan Tian, Hanbing Li +9

Autonomous driving requires both safe and efficient planning decisions in dynamic 3D environments. Although recent Vision/Video-Action models learn policies directly from visual ob…

cs.RO2026

Pondering the Way: Spatial-perceiving World Action Model for Embodied Navigation

Hong Chen, Daqi Liu, Zehan Zhang +10

Existing world model-based planners for visual navigation typically follow a verification-centric paradigm, decoupling goal intent from trajectory synthesis. This approach suffers…

cs.RO2026

Beyond Imitation: Learning Safe End-to-End Autonomous Driving from Hard Negatives

Junli Wang, Zhihua Hua, Xueyi Liu +7

Existing imitation learning methods for end-to-end autonomous driving predominantly learn from successful demonstrations by minimizing geometric deviations from expert trajectories…

cs.RO2026

Unleashing the Potential of Diffusion Models for End-to-End Autonomous Driving

Yinan Zheng, Tianyi Tan, Bin Huang +11

Diffusion models have become a popular choice for decision-making tasks in robotics, and more recently, are also being considered for solving autonomous driving tasks. However, the…

cs.RO2026

DeCoNav: Dialog enhanced Long-Horizon Collaborative Vision-Language Navigation

Sunyao Zhou, Yunzi Wu, Tianhang Wang +5

Long-horizon collaborative vision-language navigation (VLN) is critical for multi-robot systems to accomplish complex tasks beyond the capability of a single agent. CoNavBench take…

cs.RO2026

PerlAD: Towards Enhanced Closed-loop End-to-end Autonomous Driving with Pseudo-simulation-based Reinforcement Learning

Yinfeng Gao, Qichao Zhang, Deqing Liu +8

End-to-end autonomous driving policies based on Imitation Learning (IL) often struggle in closed-loop execution due to the misalignment between inadequate open-loop training object…