首页> 外文会议>Asian Conference on Computer Vision(ACCV 2007) pt.2; 20071118-22; Tokyo(JP) >Kernel Discriminant Analysis Based on Canonical Differences for Face Recognition in Image Sets
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Kernel Discriminant Analysis Based on Canonical Differences for Face Recognition in Image Sets

机译:基于规范差异的核判别分析用于图像集人脸识别

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摘要

A novel kernel discriminant transformation (KDT) algorithm based on the concept of canonical differences is presented for automatic face recognition applications. For each individual, the face recognition system compiles a multi-view facial image set comprising images with different facial expressions, poses and illumination conditions. Since the multi-view facial images are non-linearly distributed, each image set is mapped into a high-dimensional feature space using a nonlinear mapping function. The corresponding linear subspace, I.e. the kernel subspace, is then constructed via a process of kernel principal component analysis (KPCA). The similarity of two kernel subspaces is assessed by evaluating the canonical difference between them based on the angle between their respective canonical vectors. Utilizing the kernel Fisher discriminant (KFD), a KDT algorithm is derived to establish the correlation between kernel subspaces based on the ratio of the canonical differences of the between-classes to those of the within-classes. The experimental results demonstrate that the proposed classification system outperforms existing subspace comparison schemes and has a promising potential for use in automatic face recognition applications.
机译:提出了一种基于经典差异概念的新颖的内核判别变换(KDT)算法,用于自动人脸识别应用。对于每个人,面部识别系统都会编译一个多视图面部图像集,其中包括具有不同面部表情,姿势和照明条件的图像。由于多视图面部图像是非线性分布的,因此使用非线性映射函数将每个图像集映射到高维特征空间。相应的线性子空间,即然后通过内核主成分分析(KPCA)的过程构造内核子空间。通过基于两个内核子空间各自规范向量之间的角度来评估它们之间的规范差异,可以评估两个内核子空间的相似性。利用核Fisher判别式(KFD),根据类间与类内的规范差异之比得出一种KDT算法,以建立内核子空间之间的相关性。实验结果表明,提出的分类系统优于现有的子空间比较方案,并且在自动人脸识别应用中具有广阔的应用前景。

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