Performance Evaluation of a People Tracking System on PETS2009 Database

Donatello Conte, P. Foggia, G. Percannella, M. Vento
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引用次数: 40

Abstract

In this paper a system for autonomous video surveillance in relatively unconstrained environments is described. The system consists of two principal phases: object detection and object tracking. An adaptive background subtraction, together with a set of corrective algorithms, is used to cope with variable lighting, dynamic and articulate scenes, etc. The tracking algorithm is based on a matrix representation of the problem, and is used to face splitting and occlusion problems. When the tracking algorithm fails in following actual object trajectories, an appearancebased module is used to restore object identities. An experimental evaluation, carried out on the PETS2009 dataset for tracking, shows promising results.
基于PETS2009数据库的人员跟踪系统性能评价
本文介绍了一种相对无约束环境下的自主视频监控系统。该系统包括两个主要阶段:目标检测和目标跟踪。采用自适应背景减法,结合一套校正算法,解决了光照变化、动态和清晰场景等问题。该跟踪算法基于问题的矩阵表示,并用于面对分裂和遮挡问题。当跟踪算法无法跟踪实际目标轨迹时,使用基于外观的模块来恢复目标身份。在PETS2009数据集上进行的跟踪实验评估显示了令人满意的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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