Face Recognition Using a Gabor Filter Bank Approach

Walid Riad Boukabou, L. Ghouti, A. Bouridane
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引用次数: 11

Abstract

Face recognition is a challenging field of research not only because of the complexity of this subject, but also because of its numerous practical applications. Much progress has been made towards recognising faces under controlled conditions, especially under normalised pose and lighting conditions and with neutral expression. However, the recognition of face images acquired in an outdoor environment with changes in illumination and/or pose remains a largely unsolved problem. This is due to the fact that most of face recognition methods assume that the pose of the face is known. In this paper, we propose the use of a Gabor Filter Bank to extract an augmented Gabor-face vector to solve the pose estimation problem, extract some statistical features such as means and variances. And then the classification is performed using the nearest neighbour algorithm with the Euclidean distance. Finally, experimental results are reported to show the robustness of the extracted feature vectors for the recognition problem
基于Gabor滤波器组的人脸识别方法
人脸识别是一个具有挑战性的研究领域,不仅因为该学科的复杂性,而且因为其众多的实际应用。在受控条件下的人脸识别方面已经取得了很大进展,特别是在正常的姿势和光照条件下以及中性表情下。然而,在室外环境中获取的随光照和/或姿态变化的人脸图像的识别仍然是一个悬而未决的问题。这是因为大多数人脸识别方法都假设人脸的姿势是已知的。本文提出利用Gabor Filter Bank提取增广Gabor-face向量来解决姿态估计问题,提取均值和方差等统计特征。然后利用欧几里德距离的最近邻算法进行分类。最后,实验结果显示了提取的特征向量对识别问题的鲁棒性
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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