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Representation and classification of iris textures based on diagonal linear discriminant analysis

机译:基于对角线线性判别分析的虹膜纹理的表示与分类

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Subspace methods are frequently used in pattern recognition problems aiming to reduce space dimension by determining its projection vectors. This paper presents subspace methods for feature extraction in an iris image called two-dimensional linear discriminant analysis (2DLDA), diagonal linear discriminant analysis (DiaLDA) and their combination (DiaLDA+2DLDA). The methods were applied in an UBIRIS image database, and the experimental results showed that DiaLDA+2DLDA overcame the 2DLDA method in recognition accuracy. Both methods are powerful in terms of dimension reduction and class discrimination.
机译:子空间方法经常用于模式识别问题,旨在通过确定其投影向量来减少空间尺寸。 本文介绍了虹膜图像中特征提取的子空间方法,称为二维线性判别分析(2DLDA),对角线线性判别分析(Dialda)及其组合(Dialda + 2dlda)。 该方法应用于Ubiris图像数据库,实验结果表明Dialda + 2DLDA以识别精度克服2DLDA方法。 两种方法在减少尺寸和阶级歧视方面都是强大的。

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