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Enhanced facial texture illumination normalization for face recognition

机译:增强的面部纹理照明归一化,可用于面部识别

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摘要

An uncontrolled lighting condition is one of the most critical challenges for practical face recognition applications. An enhanced facial texture illumination normalization method is put forward to resolve this challenge. An adaptive relighting algorithm is developed to improve the brightness uniformity of face images. Facial texture is extracted by using an illumination estimation difference algorithm. An anisotropic histogram-stretching algorithm is proposed to minimize the intraclass distance of facial skin and maximize the dynamic range of facial texture distribution. Compared with the existing methods, the proposed method can more effectively eliminate the redundant information of facial skin and illumination. Extensive experiments show that the proposed method has superior performance in normalizing illumination variation and enhancing facial texture features for illumination-insensitive face recognition. (C) 2015 Optical Society of America
机译:对于实际的人脸识别应用而言,不受控制的照明条件是最关键的挑战之一。提出了一种增强的面部纹理照度归一化方法来解决这一挑战。开发了一种自适应补光算法来提高人脸图像的亮度均匀性。通过使用光照估计差异算法提取面部纹理。提出了一种各向异性直方图拉伸算法,以最小化面部皮肤的类内距离并最大化面部纹理分布的动态范围。与现有方法相比,该方法可以更有效地消除面部皮肤和光照的冗余信息。大量实验表明,所提出的方法在归一化照明变化和增强面部纹理特征方面对照明不敏感的人脸识别具有优异的性能。 (C)2015年美国眼镜学会

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