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A discriminant color space method for face representation and verification on a large-scale database

机译:一种用于大型数据库中人脸表示和验证的判别颜色空间方法

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In a wide range of color-related computer vision applications, researchers tried to select one of the conventional color spaces as the optimum one. This paper, however, addresses the problem of how to learn an optimum color space from the given training sample set. We seek a set of optimal coefficients to combine the R, G and B components based on a discriminant criterion and then gain one discriminant color component for representing color image for recognition purposes. Further, we can obtain three sets of optimal combination coefficients and use them to generate a three-dimensional discriminant color space (DCS). The proposed DCS method was assessed on Experiment 4 of the Face Recognition Grand Challenge (FRGC) database and the experimental results show the proposed discriminant color space significantly outperforms the RGB and Ig(r-g) color spaces.
机译:在各种与颜色相关的计算机视觉应用中,研究人员试图选择一种传统的色彩空间作为最佳色彩空间。但是,本文解决了如何从给定的训练样本集中学习最佳色彩空间的问题。我们基于判别准则寻求一组最佳系数来组合R,G和B分量,然后获得一个可辨别的颜色分量来表示彩色图像以进行识别。此外,我们可以获得三组最佳组合系数,并使用它们来生成三维判别色空间(DCS)。在人脸识别大挑战(FRGC)数据库的实验4上评估了提出的DCS方法,实验结果表明,提出的判别色空间明显优于RGB和Ig(r-g)色空间。

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