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An Experimental Study on 3D Person Localization in Traffic Scenes

机译:交通场景中3D人定位的实验研究

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This paper presents an experimental study on 3D person localization (i.e. pedestrians, cyclists) in traffic scenes, using monocular vision and LiDAR data. We first analyze the detection performance of two top-ranking methods (PointPillars and AVOD) on the KITTI benchmark, with respect to varying Intersection over Union (IoU) settings and the underlying parameters of 3D bounding box location, extent and orientation. Given that the KITTI dataset contains relatively few 3D person instances, we also consider the new EuroCity Persons 2.5D (ECP2.5D) dataset, which is one order of magnitude larger. We perform domain transfer experiments between the KITTI and ECP2.5D datasets, to examine how these datasets generalize with respect to each other.
机译:本文介绍了三维人本地化(即行人,骑自行车者)在交通场景中的实验研究,使用单眼视觉和激光雷达数据。我们首先分析了在基蒂基准上的两个排名方法(PointPillars和Avod)的检测性能,了解与联盟(iou)设置和3D边界框位置,范围和方向的基础参数不同的交叉点。鉴于Kitti DataSet包含相对较少的3D人类实例,我们还考虑新的EuroCity人员2.5D(ECP2.5D​​)数据集,这是一个幅度较大的数量级。我们在基蒂和ECP2.5D​​数据集之间执行域传输实验,以检查这些数据集如何相互呈现。

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