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Enhanced Face Preprocessing and Feature Extraction Methods Robust to Illumination Variation

机译:增强的面部预处理和特征提取方法,对照明变化具有鲁棒性

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This paper presents an enhanced facial preprocessing and feature extraction technique for an illumination-roust face recognition system. Overall, the proposed face recognition system consists of a novel preprocessing descriptor, a differential two-dimensional principal component analysis technique, and a fusion module as sequential steps. In particular, the proposed system additionally introduces an enhanced center-symmetric local binary pattern as preprocessing descriptor to achieve performance improvement. To verify the proposed system, performance evaluation was carried out using various binary pattern descriptors and recognition algorithms on the extended Yale B database. As a result, the proposed system showed the best recognition accuracy of 99.03% compared to other approaches, and we confirmed that the proposed approach is effective for consumer applications.
机译:本文提出了一种增强的面部预处理和特征提取技术,用于照明-生锈的面部识别系统。总体而言,拟议的人脸识别系统包括一个新颖的预处理描述符,一个差分二维主成分分析技术和一个作为顺序步骤的融合模块。特别地,所提出的系统另外引入了增强的中心对称局部二进制模式作为预处理描述符,以实现性能改善。为了验证所提出的系统,在扩展的Yale B数据库上使用各种二进制模式描述符和识别算法进行了性能评估。结果,与其他方法相比,所提出的系统显示出最佳的识别准确度,为99.03%,并且我们证实了所提出的方法对于消费者应用是有效的。

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