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Small group people behavior analysis based on temporal recursive trajectory identification

机译:基于时间递归轨迹识别的小人群行为分析

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Small group people behavior analysis has attracted much attention in recent years. How to detect, track and analyze the group behavior of related people is a challenging problem. In this paper, a framework for small group people behavior analysis is proposed in video surveillance applications, which is based on temporal recursive trajectory identification. According to real applications, a specific surveillance scene is divided into several zones and correspondent zone connectivity relations are obtained. After that, people counting methods are used to get numbers of people in each zone. Together with zone connectivity relation, a temporal recursive method is applied to identify trajectory that represents the movement of each person between zones. From these determined motion trajectories, groups of people are detected and distributed and their behaviors are analyzed. Experiments on Shanghai World Expo 2010 video surveillance database are conducted to show the effectiveness of the proposed framework.
机译:近年来,小组人的行为分析引起了人们的广泛关注。如何检测,跟踪和分析相关人员的群体行为是一个具有挑战性的问题。本文提出了一种基于时间递归轨迹识别的小人群行为分析框架。根据实际应用,将特定的监视场景划分为多个区域,并获得对应的区域连接关系。之后,使用人数计数方法来获取每个区域中的人数。与区域连接关系一起,使用时间递归方法来识别代表每个人在区域之间移动的轨迹。根据这些确定的运动轨迹,可以检测并分配人群,并分析其行为。通过对2010年上海世博会视频监控数据库进行实验,证明了该框架的有效性。

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