A New Diverse Dataset and Comparison of Algorithms for Pedestrian Detection in Top-View Fisheye Images

Sheng-Ho Chiang, T. Wang, Yi-Fu Chen
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Abstract

Pedestrian detection in images has been extensively researched, however existing detectors designed for perspective images usually fail to detect people on top-view fisheye images due to the various appearances of people. In this paper, we establish a new diverse fisheye dataset which consist of indoor and outdoor fisheye images from public and private datasets. We also adapt three types of spatial transformation to make the visual look of the pedestrians as upright as possible and four commonly used algorithms for pedestrian detection without retraining of the detector models. In addition, we analyze the pedestrian detection results with different conditions to figure out the reason of the results.
一种新的多样化数据集及俯视鱼眼图像行人检测算法比较
图像中的行人检测已经得到了广泛的研究,但是现有的针对透视图像设计的检测器,由于人的各种外观,通常无法检测到俯视图鱼眼图像中的人。在本文中,我们建立了一个新的多样化鱼眼数据集,该数据集由来自公共和私人数据集的室内和室外鱼眼图像组成。我们还采用了三种类型的空间变换,使行人的视觉外观尽可能直立,并采用了四种常用的行人检测算法,而无需对检测器模型进行重新训练。此外,我们对不同条件下的行人检测结果进行分析,找出结果产生的原因。
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