Person re-identification using part based hybrid descriptor

P. Sathish, S. Balaji
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引用次数: 1

Abstract

Real time person re-identification systems require robust descriptors for useful feature extraction. This paper focuses on a novel descriptor which can efficiently re-identify persons in varied views and change in illumination. The descriptors detect the features by dividing the person image into multiple parts. We use a combination of local and global feature descriptors to form a reliable descriptor. Performance evaluation is done on a benchmarking dataset.
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使用基于部件的混合描述符进行人员重新识别
实时人员再识别系统需要鲁棒描述符来提取有用的特征。本文研究了一种新的描述符,可以有效地重新识别不同视角和光照变化下的人物。描述符通过将人物图像分成多个部分来检测特征。我们使用局部和全局特征描述符的组合来形成一个可靠的描述符。性能评估是在基准测试数据集上完成的。
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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