Person re-identification via region-of-interest based features

Jianlou Si, Honggang Zhang, Chun-Guang Li
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引用次数: 3

Abstract

Person re-identification is still a challenging task due to large visual appearance variations caused by illumination, background, viewpoints and poses in multi-camera surveillance. To address these challenges, many methods have been proposed. In this paper, we present an efficient method, called Region-of-Interest based Features (ROIF), via combining textural and chromatic features. It consists of two main phases - region-of-interest exploration from image and features extraction from ROI. Experimental results on the database VIPeR show that our method can yield promising accuracy with a quite cheap time cost.
通过基于兴趣区域的特征对人进行重新识别
在多摄像头监控中,由于光照、背景、视点和姿态等因素导致的视觉外观变化较大,对人的再识别仍然是一项具有挑战性的任务。为了应对这些挑战,人们提出了许多方法。在本文中,我们提出了一种有效的方法,称为基于兴趣区域的特征(ROIF),通过结合纹理特征和颜色特征。它包括两个主要阶段:从图像中提取感兴趣区域和从感兴趣区域提取特征。在数据库VIPeR上的实验结果表明,该方法能够以较低的时间成本获得较好的精度。
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