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Fast Crowd Density Estimation in Surveillance Videos without Training

机译:未经培训的监控视频中的快速人群密度估计

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Crowd analytics is becoming a highly desirable feature of Intelligent Video Surveillance (IVS) applications. In this paper we propose a new, practical approach that adds very little computational and configuration overhead to an IVS system. The approach extends a standard IVS system, using available video content analysis data and camera calibration information to provide accurate human count estimation in crowded scenarios. The algorithm is viewpoint independent and requires no training for different camera views. The primary output of the algorithm is a real-time crowd density measurement at each image location. This can be further used to detect various crowd related events. Extensive experiments show that the approach is robust and it has been integrated into a commercially available IVS system.
机译:人群分析正在成为智能视频监控(IVS)应用程序的高度期望的功能。在本文中,我们提出了一种新的实用方法,该方法几乎不增加IVS系统的计算和配​​置开销。该方法扩展了标准IVS系统,使用可用的视频内容分析数据和摄像机校准信息在拥挤的场景中提供准确的人员计数估计。该算法与视点无关,不需要针对不同的相机视图进行训练。该算法的主要输出是每个图像位置的实时人群密度测量。这可以进一步用于检测各种人群相关事件。大量的实验表明,该方法是可靠的,并且已集成到可商购的IVS系统中。

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