Computer Engineering and Applications ›› 2010, Vol. 46 ›› Issue (19): 189-192.DOI: 10.3778/j.issn.1002-8331.2010.19.055
• 图形、图像、模式识别 • Previous Articles Next Articles
XIE Yong-lin
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谢永林
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Abstract: Linear Discriminant Analysis(LDA) is a linear feature extracting method using Fisher’s criterion in face recognition. The main challenge of LDA is that its transformation matrix can not be computed directly;consequently,the discriminant vectors become very complicated,for the cases when the number of training samples is less than the dimensionality of thefeature space.In this paper,a new LDA method is proposed using a modified Fisher’s criterion.Experiments are conducted using ORL face database to present the superior performance of the proposed method,particularly for the cases when the number of training samples is small.
摘要: 线性特征提取在人脸识别中的应用非常广泛,LDA是其主要方法之一,它基于Fisher 判别准则,然而,当人脸训练样本数小于人脸样本向量的维数时,变换矩阵将无法直接得到,因此线性判别分析过程失效。采用了一种改进的基于Fisher 准则的LDA方法,针对小样本问题提出了一种有效地解决类内散布矩阵奇异的方法,而且用ORL人脸数据进行了实验验证。实验证明该方法在正确识别率方面表现突出。
CLC Number:
TP391.41
XIE Yong-lin. LDA algorithm and its application to face recognition[J]. Computer Engineering and Applications, 2010, 46(19): 189-192.
谢永林. LDA算法及其在人脸识别中的应用[J]. 计算机工程与应用, 2010, 46(19): 189-192.
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URL: http://cea.ceaj.org/EN/10.3778/j.issn.1002-8331.2010.19.055
http://cea.ceaj.org/EN/Y2010/V46/I19/189