Mel- and Mellin-cepstral Feature Extraction Algorithms for Face Recognition
In this article, an image feature extraction method based on two-dimensional (2D) Mellin cepstrum is introduced. The concept of one-dimensional (1D) mel-cepstrum that is widely used in speech recognition is extended to two-dimensions using both the ordinary 20 Fourier transform and the Mellin transf...
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Veröffentlicht in: | Computer journal 2011-09, Vol.54 (9), p.1526-1534 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | In this article, an image feature extraction method based on two-dimensional (2D) Mellin cepstrum is introduced. The concept of one-dimensional (1D) mel-cepstrum that is widely used in speech recognition is extended to two-dimensions using both the ordinary 20 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 MeIlin-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. [PUBLICATION ABSTRACT] |
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ISSN: | 0010-4620 1460-2067 |
DOI: | 10.1093/comjnl/bxq100 |