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Loitering Detection Using Bayesian Appearance Tracker and List of Visitors

机译:使用贝叶斯外观跟踪器和访问者列表进行游荡检测

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This paper presents a framework of detecting loitering pedestrians in a video surveillance system. When a pedestrian appears in the field of view of the monitoring camera, he/she is tracked by a Bayesian appearance tracker (BAT). The tracker takes the advantage of Bayesian decision to associate the detected pedestrians according to their color appearances among consecutive frames. The pedestrian's appearance is modeled as a multivariate normal distribution and recorded in a table called list of visitors (LV). LV also records time stamps when the pedestrian appears as an appearing history. Therefore, even though the pedestrian leaves and returns to the scene, he/she can still be recognized and re-identified as a locally or globally loitering suspect by using different rules. A 10-minute video about three loitering pedestrians is used to test the proposed system. They are successfully detected and recognized from other passing-by pedestrians.
机译:本文提出了一种在视频监控系统中检测游荡行人的框架。当行人出现在监视摄像机的视野中时,将由贝叶斯外观跟踪器(BAT)对其进行跟踪。跟踪器利用贝叶斯决策的优势,根据连续帧之间的颜色外观将检测到的行人关联起来。行人的外貌被建模为多元正态分布,并记录在称为访客列表(LV)的表中。当行人出现时,LV还记录时间戳。因此,即使行人离开并返回现场,也可以使用不同的规则将他/她识别并重新识别为本地或全球游荡嫌犯。有关三个游荡行人的10分钟视频用于测试所建议的系统。它们已被其他过往行人成功检测并识别。

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