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Video-based crowd density estimation and prediction system for wide-area surveillance

机译:基于视频的广域监视人群密度估计和预测系统

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摘要

Crowd density estimation in wide areas is a challenging problem for visual surveillance. Because of the high risk of degeneration, the safety of public events involving large crowds has always been a major concern. In this paper, we propose a video-based crowd density analysis and prediction system for wide-area surveillance applications. In monocular image sequences, the Accumulated Mosaic Image Difference (AMID) method is applied to extract crowd areas having irregular motion. The specific number of persons and velocity of a crowd can be adequately estimated by our system from the density of crowded areas. Using a multi-camera network, we can obtain predictions of a crowd's density several minutes in advance. The system has been used in real applications, and numerous experiments conducted in real scenes (station, park, plaza) demonstrate the effectiveness and robustness of the proposed method.
机译:广域人群密度估计对于视觉监控而言是一个具有挑战性的问题。由于变性的高风险,涉及大量人群的公共活动的安全一直是人们关注的主要问题。在本文中,我们提出了一种基于视频的人群密度分析和预测系统,用于广域监视应用。在单眼图像序列中,已应用累积马赛克图像差异(AMID)方法来提取具有不规则运动的人群区域。我们的系统可以从拥挤区域的密度中适当估算出特定人数和拥挤速度。使用多摄像机网络,我们可以提前几分钟获得人群密度的预测。该系统已在实际应用中使用,并且在真实场景(车站,公园,广场)中进行的大量实验证明了该方法的有效性和鲁棒性。

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