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20212024
most citedCoBEVT: Cooperative Bird's Eye View Semantic Segmentation with Sparse Transformers

79 citations · 130 across the 10 of their papers we have counts for

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9 papers · 1 filter

cs.CV20242 cited

Light the Night: A Multi-Condition Diffusion Framework for Unpaired Low-Light Enhancement in Autonomous Driving

Jinlong Li, Baolu Li, Zhengzhong Tu +5

Vision-centric perception systems for autonomous driving have gained considerable attention recently due to their cost-effectiveness and scalability, especially compared to LiDAR-b…

cs.CV2024

Breaking Data Silos: Cross-Domain Learning for Multi-Agent Perception from Independent Private Sources

Jinlong Li, Baolu Li, Xinyu Liu +3

The diverse agents in multi-agent perception systems may be from different companies. Each company might use the identical classic neural network architecture based encoder for fea…

cs.CV202318 cited

DUSA: Decoupled Unsupervised Sim2Real Adaptation for Vehicle-to-Everything Collaborative Perception

Xianghao Kong, Wentao Jiang, Jinrang Jia +3

Vehicle-to-Everything (V2X) collaborative perception is crucial for autonomous driving. However, achieving high-precision V2X perception requires a significant amount of annotated…

cs.CV2023

Optimizing the Placement of Roadside LiDARs for Autonomous Driving

Wentao Jiang, Hao Xiang, Xinyu Cai +5

Multi-agent cooperative perception is an increasingly popular topic in the field of autonomous driving, where roadside LiDARs play an essential role. However, how to optimize the p…

cs.CV202318 cited

Towards Vehicle-to-everything Autonomous Driving: A Survey on Collaborative Perception

Si Liu, Chen Gao, Yuan Chen +8

Vehicle-to-everything (V2X) autonomous driving opens up a promising direction for developing a new generation of intelligent transportation systems. Collaborative perception (CP) a…

cs.CV2023

HM-ViT: Hetero-modal Vehicle-to-Vehicle Cooperative perception with vision transformer

Hao Xiang, Runsheng Xu, Jiaqi Ma

Vehicle-to-Vehicle technologies have enabled autonomous vehicles to share information to see through occlusions, greatly enhancing perception performance. Nevertheless, existing wo…