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Single-Pedestrian Detection Aided by Two-Pedestrian Detection

机译:两行检测辅助单行检测

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摘要

In this paper, we address the challenging problem of detecting pedestrians who appear in groups. A new approach is proposed for single-pedestrian detection aided by two-pedestrian detection. A mixture model of two-pedestrian detectors is designed to capture the unique visual cues which are formed by nearby pedestrians but cannot be captured by single-pedestrian detectors. A probabilistic framework is proposed to model the relationship between the configurations estimated by single- and two-pedestrian detectors, and to refine the single-pedestrian detection result using two-pedestrian detection. The two-pedestrian detector can integrate with any single-pedestrian detector. Twenty-five state-of-the-art single-pedestrian detection approaches are combined with the two-pedestrian detector on three widely used public datasets: Caltech, TUD-Brussels, and ETH. Experimental results show that our framework improves all these approaches. The average improvement is percent on the Caltech-Test dataset, percent on the TUD-Brussels dataset and percent on the ETH dataset in terms of average miss rate. The lowest average miss rate is reduced from to percent on the Caltech-Test dataset, from to percent on the TUD-Brussels dataset and from to percent on the ETH dataset.
机译:在本文中,我们解决了检测出现在人群中的行人这一具有挑战性的问题。提出了一种新的方法,用于两行人检测的单行人检测。设计了两个行人检测器的混合模型,以捕获附近行人形成的独特视觉提示,但不能由单行人检测器捕获。提出了一个概率框架来建模由单行人检测器和两行人检测器估计的配置之间的关系,并使用两行人检测来细化单行人检测结果。两行检测器可以与任何单行检测器集成。在三个广泛使用的公共数据集(Caltech,TUD-Brussels和ETH)上,将二十五个最新的单行人检测方法与两行人检测器结合在一起。实验结果表明,我们的框架改进了所有这些方法。就平均未命中率而言,平均改进为Caltech-Test数据集的百分比,TUD-Brussels数据集的百分比和ETH数据集的百分比。最低的平均未命中率从Caltech-Test数据集的百分比降低到,从TUD-Brussels数据集的百分比降低到ETH数据集的百分比。

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