Exploiting polarization-state information for cross-spectrum face recognition

Nathan J. Short, Shuowen Hu, Prudhvi K. Gurram, K. Gurton
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引用次数: 12

Abstract

Face recognition research has primarily focused on the visible spectrum, due to the prevalence and low cost of visible cameras. However, face recognition in the visible spectrum is sensitive to illumination variations, and is infeasible in low-light or nighttime settings. In contrast, thermal imaging acquires naturally emitted radiation from facial skin tissue, and is therefore ideal for nighttime surveillance and intelligence gathering operations. However, conventional thermal face imagery lacks textural and geometrics details that are present in visible spectrum face signatures. In this work, we further explore the impact of polarimetric imaging in the LWIR spectrum for face recognition. Polarization-state information provides textural and geometric facial details unavailable with conventional thermal imaging. Since the frequency content of the conventional thermal, polarimetric thermal, and visible images is quite different, we propose a spatial correlation based procedure to optimize the filtering of polarimetric thermal and visible face images to further facilitate cross-spectrum face recognition. Additionally, we use a more extensive gallery database to more robustly demonstrate an improvement in the performance of cross-spectrum face recognition using polarimetric thermal imaging.
利用偏振态信息进行跨光谱人脸识别
由于可见相机的普及和低成本,人脸识别的研究主要集中在可见光谱上。然而,可见光谱中的人脸识别对光照变化很敏感,在低光或夜间环境下是不可行的。相比之下,热成像从面部皮肤组织获得自然发射的辐射,因此是夜间监视和情报收集行动的理想选择。然而,传统的热人脸图像缺乏可见光谱人脸特征中存在的纹理和几何细节。在这项工作中,我们进一步探讨了偏振成像在LWIR光谱中对人脸识别的影响。偏振状态信息提供了传统热成像无法获得的纹理和几何面部细节。由于常规热、极化热和可见光图像的频率含量存在较大差异,本文提出了一种基于空间相关性的方法来优化极化热和可见光图像的滤波,以进一步促进跨光谱人脸识别。此外,我们使用更广泛的图库数据库来更有力地证明使用偏振热成像的跨光谱人脸识别性能的改进。
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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