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Two-Dimensional Face Recognition Methods Comparing with a Riemannian Analysis of Iso-Geodesic Curves

机译:与等大地线曲线的黎曼分析相比的二维人脸识别方法

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In this paper, the authors performed a comparative study of two-dimensional face recognition methods. This study was based on existing methods (PCA, LDA, 2DPCA, 2DLDA, SVM...) and 2D face surface analysis using a Riemannian geometry. The last system uses the representation of the image at gray level as a 2D surface in a 3D space where the third coordinate represent the intensity values of the pixels. The authors' approach is to represent the human face as a collection of closed curves, called facial curves, and apply tools from the analysis of the shape of curves using the Riemannian geometry. Their application has been tested on two well-known databases of face images ORL and YaleB. ORL data base was used to evaluate the performance of their method when the pose and sample size are varied, and the database YaleB was used to examine the performance of the system when the facial expressions and lighting are varied.
机译:在本文中,作者对二维人脸识别方法进行了比较研究。这项研究基于现有方法(PCA,LDA,2DPCA,2DLDA,SVM ...)和使用黎曼几何的2D面部表面分析。最后一个系统使用灰度级的图像表示作为3D空间中的2D表面,其中第三个坐标表示像素的强度值。作者的方法是将人脸表示为闭合曲线(称为面部曲线)的集合,并使用黎曼几何对曲线形状的分析应用工具。它们的应用已在两个知名的人脸图像ORL和YaleB数据库上进行了测试。当姿势和样本大小变化时,ORL数据库用于评估其方法的性能,而在改变面部表情和光照时,数据库YaleB用于检查系统的性能。

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