People re-identification by classification of silhouettes based on sparse representation

D. T. Cong, C. Achard, L. Khoudour
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引用次数: 22

Abstract

The research presented in this paper consists in developing an automatic system for people re-identification across multiple cameras with non-overlapping fields of view. We first propose a robust algorithm for silhouette extraction which is based on an adaptive spatio-colorimetric background and foreground model coupled with a dynamic decision framework. Such a method is able to deal with the difficult conditions of outdoor environments where lighting is not stable and distracting motions are very numerous. A robust classification procedure, which exploits the discriminative nature of sparse representation, is then presented to perform people re-identification task. The global system is tested on two real data sets recorded in very difficult environments. The experimental results show that the proposed system leads to very satisfactory results compared to other approaches of the literature.
基于稀疏表示的人物轮廓分类再识别
本文的研究内容是开发一种跨多摄像机、视场不重叠的人的自动再识别系统。本文首先提出了一种基于自适应空间比色背景前景模型和动态决策框架的鲁棒轮廓提取算法。这种方法能够处理光线不稳定和分散运动非常多的室外环境的困难条件。然后,利用稀疏表示的判别特性,提出了一种鲁棒分类方法来执行人的再识别任务。全球系统是在非常困难的环境中记录的两个真实数据集上进行测试的。实验结果表明,与文献中的其他方法相比,所提出的系统取得了令人满意的结果。
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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