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Correlated Motion Based Crowd Analysis in Queueing Situations

机译:排队情况下基于相关运动的人群分析

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Crowd analysis by automated visual surveillance represents a challenging task in many practically relevant scenarios. In this paper we address the problem of capturing relevant correlated movement within a line formed by waiting pedestrians to estimate the time needed for the last person to reach the queue front. To obtain a waiting time estimate we propose to solve two interlinked problems: queue shape delineation and motion characterization estimating the propagation velocity along the segmented queue. Accordingly, we present a scheme to reliably segment the queue shape by finding and refining an optimum path over time. The optimality condition refers to minimizing its length while maximizing its overlap with observed correlated motion patterns. To capture the collective motion of the crowd within the queue we employ a deformable chain structure to temporally aggregate the relevant short-term forward movement by tracking. The resulting tracked chain structure is used to generate a mean forward propagation velocity estimate. The presented approach represents a general analysis scheme, requiring only a set of tracked pedestrians on a calibrated ground plane at every frame. We validate our proposed scheme on two real datasets with time-varying queue structures. Based on a comparison to manually-set ground truth, obtained results show that queue delineation and waiting time estimates are reliable, can cope with motion clutter and well characterize the waiting behavior and its temporal evolution.
机译:在许多实际相关的场景中,通过自动视觉监视进行人群分析是一项艰巨的任务。在本文中,我们解决了在等待行人以估计最后一个人到达队列前面所需的时间的直线内捕获相关运动的问题。为了获得等待时间估计,我们建议解决两个相互关联的问题:队列形状描述和运动特征估计,该运动特征沿着分段队列的传播速度。因此,我们提出了一种通过随时间查找和完善最佳路径来可靠地分割队列形状的方案。最佳条件是指使其长度最小,同时使其与观察到的相关运动模式的重叠最大化。为了捕获队列中人群的集体运动,我们采用了可变形的链结构,通过跟踪在时间上聚合了相关的短期向前运动。所得的跟踪链结构用于生成平均前向传播速度估计。提出的方法代表了一种一般的分析方案,每帧仅需要一组在校准地面上的被跟踪行人。我们在具有时变队列结构的两个真实数据集上验证了我们提出的方案。通过与手动设置的地面事实进行比较,获得的结果表明,队列描述和等待时间估计是可靠的,可以应付运动混乱,并很好地表征了等待行为及其时间演变。

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