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Sparse people group and crowd detection using spatial point statistics in airborne images

机译:稀疏的人群和人群使用空中图像中的空间点统计数据

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Crowd monitoring is an important task of security forces. If an emergency occurs during large events, authorities should take urgent measures to prevent causalities. Also understanding crowd dynamics such as tracking crowds or sparse people goups before an emergency occurs is a need. Therefore, crowd detection and analysis is a critical research area. There are several studies for crowd monitoring that use street or indoor cameras which may not be directly used for analyzing large crowds. In this study, we approach the problem using aerial images. We propose two novel methods. In the first method, we use first-order spatial point statistics. It uses the nearest neighbor relations for each person in the image to detect crowd regions. Our second method also uses the first order statistics with an additional sparse people group detection flexibility. We test the proposed methods on two aerial images and provide quantitative test results.
机译:人群监测是安全部队的重要任务。如果在大型事件期间发生紧急情况,当局应采取紧急措施来防止因果关系。在紧急情况发生之前,还了解人群动态,如跟踪人群或稀疏的人收到Goups。因此,人群检测和分析是一个关键的研究区域。使用街道或室内相机有几个人群监测,这可能不会直接用于分析大人群。在这项研究中,我们使用空中图像接近问题。我们提出了两种新方法。在第一种方法中,我们使用一阶空间点统计信息。它使用图像中的每个人的最近邻居关系来检测人群区域。我们的第二种方法还使用了一个额外的稀疏人组检测灵活性的一阶统计信息。我们在两个航拍图像上测试所提出的方法,并提供定量测试结果。

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