most cited4D Contrastive Superflows are Dense 3D Representation Learners

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cs.CV2025

Enhanced Spatiotemporal Consistency for Image-to-LiDAR Data Pretraining

Xiang Xu, Lingdong Kong, Hui Shuai +5

LiDAR representation learning has emerged as a promising approach to reducing reliance on costly and labor-intensive human annotations. While existing methods primarily focus on sp…

cs.CV2025

LargeAD: Large-Scale Cross-Sensor Data Pretraining for Autonomous Driving

Lingdong Kong, Xiang Xu, Youquan Liu +6

Recent advancements in vision foundation models (VFMs) have revolutionized visual perception in 2D, yet their potential for 3D scene understanding, particularly in autonomous drivi…

cs.CV20241 cited

4D Contrastive Superflows are Dense 3D Representation Learners

Xiang Xu, Lingdong Kong, Hui Shuai +5

In the realm of autonomous driving, accurate 3D perception is the foundation. However, developing such models relies on extensive human annotations -- a process that is both costly…

cs.CV2024

An Empirical Study of Training State-of-the-Art LiDAR Segmentation Models

Jiahao Sun, Chunmei Qing, Xiang Xu +10

In the rapidly evolving field of autonomous driving, precise segmentation of LiDAR data is crucial for understanding complex 3D environments. Traditional approaches often rely on d…

cs.CV2024

Benchmarking and Improving Bird's Eye View Perception Robustness in Autonomous Driving

Shaoyuan Xie, Lingdong Kong, Wenwei Zhang +4

Recent advancements in bird's eye view (BEV) representations have shown remarkable promise for in-vehicle 3D perception. However, while these methods have achieved impressive resul…

cs.CV2024

Calib3D: Calibrating Model Preferences for Reliable 3D Scene Understanding

Lingdong Kong, Xiang Xu, Jun Cen +4

Safety-critical 3D scene understanding tasks necessitate not only accurate but also confident predictions from 3D perception models. This study introduces Calib3D, a pioneering eff…