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引用次数: 11

摘要

视频监控系统是一种用于公共安全监控人员及其活动的强大工具。监视系统的目的不仅是用摄像机代替人眼,而且是使其具有自动识别活动的能力。本文对具有奔跑、弯曲、挥手、跳跃等多种活动的Weizmann数据集进行人体检测和跟踪。第一个背景建模是通过取前n帧的平均值来完成的。在此基础上,利用背景差法进行人体检测,然后利用卡尔曼滤波进行跟踪。对各阶段的结果进行了讨论。所提出的方法显示出良好的结果,可以进一步用于活动识别。
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Background modelling, detection and tracking of human in video surveillance system
Video Surveillance System is a powerful tool used for monitoring people and their activities for public security. The motive of having surveillance system is not only to put cameras in place of human eyes, but also making it capable for recognizing activities automatically. In this paper, human detection and tracking is performed on Weizmann dataset having various activities like run, bend, hand wave, skip, etc. First background modelling is done by taking mean of first n frames. After this, human detection is done using background subtraction algorithm and then tracking is done using Kalman filter. Result of each stage has been discussed. The proposed methodology shows promising results which can further be used for activity recognition.
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