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X-View:非自我中心多视图3D目标检测器

X-View: Non-Egocentric Multi-View 3D Object Detector.

作者信息

Xie Liang, Xu Guodong, Cai Deng, He Xiaofei

出版信息

IEEE Trans Image Process. 2023;32:1488-1497. doi: 10.1109/TIP.2023.3245337. Epub 2023 Mar 2.

Abstract

3D object detection algorithms for autonomous driving reason about 3D obstacles either from 3D birds-eye view or perspective view or both. Recent works attempt to improve the detection performance via mining and fusing from multiple egocentric views. Although the egocentric perspective view alleviates some weaknesses of the birds-eye view, the sectored grid partition becomes so coarse in the distance that the targets and surrounding context mix together, which makes the features less discriminative. In this paper, we generalize the research on 3D multi-view learning and propose a novel multi-view-based 3D detection method, named X-view, to overcome the drawbacks of the multi-view methods. Specifically, X-view breaks through the traditional limitation about the perspective view whose original point must be consistent with the 3D Cartesian coordinate. X-view is designed as a general paradigm that can be applied on almost any 3D detectors based on LiDAR with only little increment of running time, no matter it is voxel/grid-based or raw-point-based. We conduct experiments on KITTI and NuScenes datasets to demonstrate the robustness and effectiveness of our proposed X-view. The results show that X-view obtains consistent improvements when combined with mainstream state-of-the-art 3D methods.

摘要

用于自动驾驶的3D目标检测算法从3D鸟瞰图、透视视图或两者来推断3D障碍物。最近的研究工作试图通过挖掘和融合多个以自我为中心的视图来提高检测性能。尽管以自我为中心的透视图缓解了鸟瞰图的一些弱点,但扇形网格划分在远处变得如此粗糙,以至于目标和周围环境混合在一起,这使得特征的区分度降低。在本文中,我们对3D多视图学习进行了拓展研究,并提出了一种新颖的基于多视图的3D检测方法,名为X-view,以克服多视图方法的缺点。具体而言,X-view突破了传统透视图的限制,即其原点必须与3D笛卡尔坐标一致。X-view被设计为一种通用范式,几乎可以应用于任何基于激光雷达的3D探测器,运行时间仅有少量增加,无论它是基于体素/网格还是基于原始点的。我们在KITTI和NuScenes数据集上进行实验,以证明我们提出的X-view的鲁棒性和有效性。结果表明,当与主流的最先进3D方法相结合时,X-view取得了一致的改进。

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