基于光照子空间的鲁棒人脸识别

D. Kern, H. K. Ekenel, R. Stiefelhagen, Aydinlanmadan Kaynaklanan
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摘要

提出了一种基于光照子空间的人脸识别系统。在该系统中,首先使用聚类算法学习主导照明方向;观察到三个主要的照明方向:正面照明、左右照明。在确定主导光照方向类别后,将人脸空间划分为这些类别,将光照引起的变化与不同身份引起的变化区分开来。然后利用基于光照子空间的人脸识别方法,利用光照方向的附加知识。在CMU PIE数据库的照明和照明子集图像上进行了测试。实验结果表明,利用光照方向知识和基于光照子空间的人脸识别性能有明显提高
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Illumination Subspaces based Robust Face Recognition
In this paper a face recognition system that is based on illumination subspaces is presented. In this system, first, the dominant illumination directions are learned using a clustering algorithm. Three main illumination directions are observed: Ones that have frontal illumination, illumination from left and right sides. After determining the dominant illumination direction classes, the face space is divided into these classes to separate the variations caused by illumination from the variations caused by different identities. Then illumination subspaces based face recognition approach is used to benefit from the additional knowledge of the illumination direction. The proposed approach is tested on the images from the illumination and lighting subsets of the CMU PIE database. The experimental results show that by utilizing knowledge of illumination direction and using illumination subspaces based face recognition, the performance is significantly improved
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