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Evaluation of statistical and multiple-hypothesis tracking for video traffic surveillance

机译:统计和多假设跟踪的视频流量监控评估

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Conventional tracking methods encounter difficulties as the number of objects, clutter, and sensors increase, because of the requirement for data association. Statistical tracking, based on the concept of network tomography, is an alternative that avoids data association. It estimates the number of trips made from one region to another in a scene based on interregion boundary traffic counts accumulated over time. It is not necessary to track an object through a scene to determine when an object crosses a boundary. This paper describes statistical tracing and presents an evaluation based on the estimation of pedestrian and vehicular traffic intensities at an intersection over a period of 1 month. We compare the results with those from a multiple-hypothesis tracker and manually counted ground-truth estimates.
机译:由于需要数据关联,因此随着对象,杂波和传感器的数量增加,传统的跟踪方法会遇到困难。基于网络层析成像概念的统计跟踪是一种避免数据关联的替代方法。它根据随时间累积的区域间边界流量计数,估计从一个区域到场景中从一个区域到另一个区域的旅行次数。无需通过场景跟踪对象来确定对象何时越过边界。本文介绍了统计跟踪,并提出了一种基于1个月内交叉路口行人和车辆交通强度估计值的评估方法。我们将结果与多重假设跟踪器的结果进行了比较,并手动计算了真实情况的估计值。

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