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Gabor-scale binary pattern for face recognition

机译:Gabor尺度二进制模式用于人脸识别

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摘要

In this paper, a novel face descriptor, the Gabor-scale binary pattern (GSBP), is proposed to explore the neighboring relationship in spatial, frequency and orientation domains for the purpose of face recognition. In order to extract the GSBP feature, the Gabor-scale volume and the Gabor-scale vector are introduced by using a group of Gabor wavelet coefficients with a special orientation. Moreover, the Gabor-scale length pattern and the Gabor-scale ratio pattern are proposed. Compared with the existed methods, GSBP utilizes the deep relations between neighboring Gabor subimages instead of directly combining Gabor wavelet transform and local binary pattern. For estimating the performance of GSBP, we compare the proposed method with the related methods on several popular face databases, including LFW, FERET, AR, Yale and Extended YaleB databases. The experimental results show that the proposed method outperforms several popular face recognition methods.
机译:本文提出了一种新颖的人脸描述符Gabor-scale二进制模式(GSBP),以探索人脸识别在空间,频率和方向域中的相邻关系。为了提取GSBP特征,通过使用一组具有特殊方向的Gabor小波系数来引入Gabor尺度体积和Gabor尺度向量。此外,提出了Gabor尺度长度模式和Gabor尺度比例模式。与现有方法相比,GSBP利用了相邻Gabor子图像之间的深层关系,而不是直接结合Gabor小波变换和局部二值模式。为了评估GSBP的性能,我们在几种流行的人脸数据库(包括LFW,FERET,AR,Yale和Extended YaleB数据库)上比较了所提出的方法和相关方法。实验结果表明,该方法优于几种流行的人脸识别方法。

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