Supervised classification of type of crowd motion in video surveillance system

Gauri Deshmukh, Manasi Pathade, M. Khambete
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引用次数: 1

Abstract

Automated surveillance is of vital importance in public places which has large extent of dynamics to be addressed. The complexity of analysis of such surveillance increases as the size of crowd goes on increasing. This paper attempts to propose an algorithm to analyze and classify the type of motion in a crowd. The analysis is based on texture analysis of video sequence. Nearest neighbor classification is used to classify the motion into predefined classes. The algorithm is tested on standard PETS database.
视频监控系统中人群运动类型的监督分类
在公共场所,自动化监控是至关重要的,因为公共场所有很大程度的动态需要解决。随着人群规模的不断增加,这种监控分析的复杂性也随之增加。本文试图提出一种算法来分析和分类人群中的运动类型。该分析是基于视频序列的纹理分析。最近邻分类是将运动划分为预定义的类。在标准PETS数据库上对该算法进行了测试。
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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