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Mel- and Mellin-cepstral Feature Extraction Algorithms for Face Recognition

机译:用于面部识别的Mel和Mellin倒谱特征提取算法

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摘要

In this article, an image feature extraction method based on two-dimensional (2D) Mellin cepstrum is introduced. The concept of one-dimensional (ID) mel-cepstrum that is widely used in speech recognition is extended to two-dimensions using both the ordinary 2D Fourier transform and the Mellin transform. The resultant feature matrices are applied to two different classifiers such as common matrix approach and support vector machine to test the performance of the mel-cepstrum-and Mellin-cepstrum-based features. The AR face image database, ORL database, Yale database and FRGC database are used in experimental studies, which indicate that recognition rates obtained by the 2D mel-cepstrum-based method are superior to that obtained using 2D principal component analysis, 2D Fourier-Mellin transform and ordinary image matrix-based face recognition in both classifiers. Experimental results indicate that 2D cepstral analysis can also be used in other image feature extraction problems.
机译:本文介绍了一种基于二维(2D)Mellin倒谱的图像特征提取方法。在语音识别中广泛使用的一维(ID)mel倒谱的概念已使用普通的2D傅里叶变换和Mellin变换扩展到了二维。将得到的特征矩阵应用于两个不同的分类器,例如通用矩阵方法和支持向量机,以测试基于mel-cepstrum和Mellin-cepstrum的特征的性能。在实验研究中使用了AR人脸图像数据库,ORL数据库,Yale数据库和FRGC数据库,这表明通过基于2D mel-cepstrum的方法获得的识别率要优于使用2D主成分分析,2D Fourier-Mellin获得的识别率。两个分类器中都进行了变换和基于普通图像矩阵的人脸识别。实验结果表明,二维倒频谱分析也可以用于其他图像特征提取问题。

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