首页> 外文会议>International Conference on Advances in Biometrics(ICB 2006); 20060105-07; Hong Kong(CN) >An Uncorrelated Fisherface Approach for Face and Palmprint Recognition
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An Uncorrelated Fisherface Approach for Face and Palmprint Recognition

机译:人脸和掌纹识别的不相关Fisherface方法

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摘要

The Fisherface method is a most representative method of the linear discrimination analysis (LDA) technique. However, there persist in the Fisherface method at least two areas of weakness. The first weakness is that it cannot make the achieved discrimination vectors completely satisfy the statistical un-correlation while costing a minimum of computing time. The second weakness is that not all the discrimination vectors are useful in pattern classification. In this paper, we propose an uncorrelated Fisherface approach (UFA) to improve the Fisherface method in these two areas. Experimental results on different image databases demonstrate that UFA outperforms the Fisherface method and the uncorrelated optimal discrimination vectors (UODV) method.
机译:Fisherface方法是线性判别分析(LDA)技术中最具代表性的方法。但是,Fisherface方法至少存在两个弱点。第一个缺点是,它不能使获得的判别矢量完全满足统计不相关性,同时又要花费最少的计算时间。第二个缺点是,并非所有的判别向量都可用于模式分类。在本文中,我们提出了一种不相关的Fisherface方法(UFA)来改进这两个方面的Fisherface方法。在不同图像数据库上的实验结果表明,UFA优于Fisherface方法和不相关的最佳判别向量(UODV)方法。

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