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People Tracking and Recognition using the Multi-Object Particle Filter Algorithm and Hierarchical PCA Method

机译:多目标粒子滤波算法和递阶PCA方法进行人的跟踪与识别

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This paper presents a method to detect, recognize and track people using mount cameras fixed on a building. The method consists of two independent stages. One is dedicated to detect and track any moving object within the image frame. The other one is in charge to discard any moving object that is not a human being. To perform the first task, a Particle Filter algorithm is used, in such way that it can perform the tracking of multiple objects. For the recognition stage a PCA (Principal Components Analysis) method is applied to several body parts (head, arms, etc) respecting their geometrical constraints. The performance of the system has been tested successfully. Some experimental results and conclusions are presented.
机译:本文提出了一种使用固定在建筑物上的摄像机来检测,识别和跟踪人的方法。该方法包括两个独立的阶段。一种专用于检测和跟踪图像帧内的任何移动物体。另一个负责丢弃不是人类的任何移动物体。为了执行第一个任务,使用了粒子过滤器算法,该算法可以执行多个对象的跟踪。在识别阶段,将PCA(主成分分析)方法应用于几个身体部位(头部,手臂等),并考虑其几何约束。系统性能已成功测试。给出了一些实验结果和结论。

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