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See Through Vehicles: Fully Occluded Vehicle Detection with Millimeter Wave Radar

Chenming He, Chengzhen Meng, Chunwang He, Xiaoran Fan, Beibei Wang, Yubo Yan, Yanyong Zhang

2024Year
10Citations
4Top-tier citations

Abstract

A crucial task in autonomous driving is to continuously detect nearby vehicles. Problems thus arise when a vehicle is occluded and becomes "unseeable", which may lead to accidents. In this study, we develop mmOVD, a system that can detect fully occluded vehicles by involving millimeter-wave radars to capture the ground-reflected signals passing beneath the blocking vehicle's chassis. The foremost challenge here is coping with ghost points caused by frequent multi-path reflections, which highly resemble the true points. We devise a set of features that can efficiently distinguish the ghost points by exploiting the neighbor points' spatial and velocity distributions. We also design a cumulative clustering algorithm to effectively aggregate the unstable ground-reflected radar points over consecutive frames to derive the bounding boxes of the vehicles.

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