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Robust People Detection and Tracking from an Overhead Time-of-Flight Camera

机译:从架空时间摄像机检测和跟踪强大的人

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In this paper we describe a system for robust detection of people in a scene, by using an overhead Time of Flight (ToF) camera. The proposal addresses the problem of robust detection of people, by three means: a carefully designed algorithm to select regions of interest as candidates to belong to people; the generation of a robust feature vector that efficiently model the human upper body; and a people classification stage, to allow robust discrimination of people and other objects in the scene. The proposal also includes a particle filter tracker to allow people identification and tracking. Two classifiers are evaluated, based on Principal Component Analysis (PCA), and Support Vector Machines (SVM). The evaluation is carried out on a subset of a carefully designed dataset with a broad variety of conditions, providing results comparing the PCA and SVM approaches, and also the performance impact of the tracker, with satisfactory results.
机译:在本文中,我们描述了一种用于通过使用飞行的架空(TOF)相机的场景中的人们鲁棒检测系统。该提案解决了鲁棒检测问题的问题,三种方式:精心设计的算法,选择利益区域作为属于人的候选人;生成有效模拟人上半身的稳健特征载体;和一个人分类阶段,以允许在现场中的人民和其他物体歧视。该提议还包括粒子过滤器跟踪器,以允许人员识别和跟踪。基于主成分分析(PCA)和支持向量机(SVM)评估两个分类器。评估是在精心设计的数据集的子集中进行,具有广泛的条件,提供了比较PCA和SVM方法的结果,以及跟踪器的性能影响,结果令人满意。

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