论文标题

彩色面部识别的四元基质回归

Quaternion matrix regression for color face recognition

论文作者

Miao, Jifei, Kou, Kit Ian

论文摘要

在过去的几年中,基于回归分析的方法已被广泛研究以识别面部识别(FR)。最近,为了更好地处理一些困难的条件,例如遮挡和照明,已经提出了基于核标准的矩阵回归方法来表征误差图像的低级别结构,该结构将基于一维的,基于像素的误差模型推广到二维结构。但是,这些方法是为基于灰度图像的FR而设计的,而无需利用颜色信息,而颜色信息被证明对彩色面部图像有益。受益于四个能够编码颜色图像的跨渠道相关性的四个元素表示,我们通过将颜色FR问题作为基于核标准的Quaternion矩阵回归(NQMR)提出了一种新颖的颜色FR方法。我们通过使用核标准的对数而不是原始的核标准,进一步开发了一个更健壮的模型,称为R-NQMR,该模型可以自适应地分配不同的奇异值,然后将其扩展以处理混合噪声。然后,使用有效的交流方向乘数法(ADMM)来解决所提出的模型。几个公共面部数据库的实验证明了颜色FR的拟议方法的卓越性能和功效,尤其是在某些基于最新的回归分析方法的困难条件(遮挡,照明和混合噪声)上。

Regression analysis-based approaches have been widely studied for face recognition (FR) in the past several years. More recently, to better deal with some difficult conditions such as occlusions and illumination, nuclear norm based matrix regression methods have been proposed to characterize the low-rank structure of the error image, which generalize the one-dimensional, pixel-based error model to the two-dimensional structure. These methods, however, are inherently devised for grayscale image based FR and without exploiting the color information which is proved beneficial for FR of color face images. Benefiting from quaternion representation, which is capable of encoding the cross-channel correlation of color images, we propose a novel color FR method by formulating the color FR problem as a nuclear norm based quaternion matrix regression (NQMR). We further develop a more robust model called R-NQMR by using the logarithm of the nuclear norm, instead of the original nuclear norm, which adaptively assigns weights on different singular values, and then extend it to deal with the mixed noise. The proposed models, then, are solved using the effective alternating direction multiplier method (ADMM). Experiments on several public face databases demonstrate the superior performance and efficacy of the proposed approaches for color FR, especially for some difficult conditions (occlusion, illumination and mixed noise) over some state-of-the-art regression analysis-based approaches.

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