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Improving the interest operator for face recognition

机译:提升兴趣识别者的面部识别能力

摘要

When the conventional interest operator is used as the feature extraction procedure of face recognition, it has the following two shortcomings: first, though the purpose of the conventional interest operator is to use the intensity variation between neighboring pixels to represent the image, it cannot obtain all variation information between neighboring pixels. Second, under varying lighting conditions two images of the same face usually have different feature extraction results even though the face itself does not have obvious change. In this paper, we propose two new interest operators for face recognition, which are used to calculate the pixel intensity variation information of overlapping blocks produced from the original face image. The following two factors allow the new operators to perform better than the conventional interest operator: the first factor is that by taking the relative rather than absolute variation of the pixel intensity as the feature of an image block, the new operators can obtain robust block features. The second factor is that the scheme to partition an image into overlapping rather than non-overlapping blocks allows the proposed operators to produce more representation information for the face image. Experimental results show that the proposed operators offer significant accuracy improvement over the conventional interest operator.
机译:当将常规兴趣算子用作人脸识别的特征提取过程时,它具有以下两个缺点:首先,尽管常规兴趣算子的目的是使用相邻像素之间的强度变化来表示图像,但它无法获得相邻像素之间的所有变化信息。第二,在变化的照明条件下,即使脸部本身没有明显变化,同一张脸部的两个图像通常也会具有不同的特征提取结果。在本文中,我们提出了两个用于面部识别的新兴趣运算符,用于计算从原始面部图像产生的重叠块的像素强度变化信息。以下两个因素使新算子的性能优于常规兴趣算子:第一个因素是,通过将像素强度的相对变化而不是绝对变化作为图像块的特征,新算子可以获得可靠的块特征。第二个因素是,将图像划分为重叠块而不是非重叠块的方案允许所提议的运算符为面部图像生成更多的表示信息。实验结果表明,与传统的兴趣算子相比,提出的算子提供了显着的精度提高。

著录项

  • 作者

    Xu Y; Yao L; Zhang D; Yang JY;

  • 作者单位
  • 年度 2009
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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