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A Novel Features Extracting Technique Useing Location in Face Recognition

机译:基于位置的人脸识别新特征提取技术

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In PCA for the face recognition technique, computing the eigenvalues of the image matrix is the first step. Then these eigenvalues are sorted in descending order. A certain number of vectors, which correspond with these eigenvalues, are chosen by descending order and regarded as features of the face. Furthermore, these features show the whole image's characters. There are differences between the image's features and the face's. In this paper, a novel method based on face facial features specific positioning is proposed. This method consists of four steps: i) Locating the eyes and the middle line of the face, ii) Finding the areas of five sense organs by the face's symmetry, iii) Dimension reduction to each selected area using PCA, iv) Creating the transformation matrix for SVM classification. The recognition rate of this method is higher than the old method's. This suggests that these features from new method are more representative the real face features than old method.
机译:在用于人脸识别技术的PCA中,计算图像矩阵的特征值是第一步。然后,这些特征值按降序排序。按照降序选择与这些特征值相对应的一定数量的矢量,并将其视为人脸特征。此外,这些功能可以显示整个图像的字符。图像的特征和面部的特征之间存在差异。本文提出了一种基于人脸面部特征特定定位的新方法。该方法包括四个步骤:i)定位眼睛和脸部的中线,ii)通过脸部的对称性找到五个感官的区域,iii)使用PCA缩小每个选定区域的尺寸,iv)创建变换支持向量机分类的矩阵。该方法的识别率高于旧方法。这表明新方法的这些特征比旧方法更能代表真实的面部特征。

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