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Nuclear Norm Based Matrix Regression with Applications to Face Recognition with Occlusion and Illumination Changes

机译:基于核范数的矩阵回归及其在遮挡和照明变化的人脸识别中的应用

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Recently, regression analysis has become a popular tool for face recognition. Most existing regression methods use the one-dimensional, pixel-based error model, which characterizes the representation error individually, pixel by pixel, and thus neglects the two-dimensional structure of the error image. We observe that occlusion and illumination changes generally lead, approximately, to a low-rank error image. In order to make use of this low-rank structural information, this paper presents a two-dimensional image-matrix-based error model, namely, nuclear norm based matrix regression (NMR), for face representation and classification. NMR uses the minimal nuclear norm of representation error image as a criterion, and the alternating direction method of multipliers (ADMM) to calculate the regression coefficients. We further develop a fast ADMM algorithm to solve the approximate NMR model and show it has a quadratic rate of convergence. We experiment using five popular face image databases: the Extended Yale B, AR, EURECOM, Multi-PIE and FRGC. Experimental results demonstrate the performance advantage of NMR over the state-of-the-art regression-based methods for face recognition in the presence of occlusion and illumination variations.
机译:最近,回归分析已成为用于面部识别的流行工具。现有的大多数回归方法使用基于像素的一维误差模型,该模型逐个像素地逐个表征表示误差,因此忽略了误差图像的二维结构。我们观察到,遮挡和照度变化通常大致导致低等级错误图像。为了利用这种低级结构信息,本文提出了一种基于二维图像矩阵的误差模型,即基于核范数的矩阵回归(NMR),用于面部表示和分类。 NMR使用表示误差图像的最小核范数作为准则,并使用乘数的交替方向方法(ADMM)计算回归系数。我们进一步开发了一种快速的ADMM算法来求解近似NMR模型,并证明它具有二次收敛速率。我们使用五个流行的人脸图像数据库进行了实验:扩展耶鲁B,AR,EURECOM,Multi-PIE和FRGC。实验结果证明,在存在遮挡和照明变化的情况下,NMR相对于基于最新回归模型的人脸识别方法具有性能优势。

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