Classifying and tracking multiple persons for proactive surveillance of mass transport systems

Suyu Kong, Conrad Sanderson, B. Lovell
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引用次数: 15

Abstract

We describe a pedestrian classification and tracking system that is able to track and label multiple people in an outdoor environment such as a railway station. The features selected for appearance modelling are circular colour histograms for the hue and conventional colour histograms for the saturation and value components. We combine blob matching with a particle filter for tracking and augment these algorithms with colour appearance models to track multiple people in the presence of occlusion. In the object classification stage, hierarchical chamfer matching combined with particle filtering is applied to classify commuters in the railway station into several classes. Classes of interest include normal commuters, commuters with backpacks, commuters with suitcases, and mothers with their children.
对多人进行分类和跟踪,以便对大众运输系统进行主动监测
我们描述了一种行人分类和跟踪系统,该系统能够在火车站等户外环境中跟踪和标记多人。为外观建模选择的特征是色调的圆形颜色直方图和饱和度和值组件的常规颜色直方图。我们将blob匹配与粒子过滤器相结合进行跟踪,并将这些算法与颜色外观模型相增强,以在遮挡的情况下跟踪多个人。在目标分类阶段,采用分层倒角匹配和粒子滤波相结合的方法,对火车站的通勤者进行分类。兴趣阶层包括普通的通勤者,带着背包的通勤者,带着行李箱的通勤者,带着孩子的母亲。
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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