A spectral feature based approach for face recognition with one training sample
In this paper, a novel spectral feature image-based 2DLDA (two-dimensional linear discriminant analysis) ensemble algorithm is proposed for face recognition with one sample image per person. In our algorithm, multi-resolution spectral feature images are constructed to represent the face images. The...
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sg-ntu-dr.10356-979252020-03-07T13:24:48Z A spectral feature based approach for face recognition with one training sample Sun, Zhan-Li Lam, Kin-Man Dong, Zhao-Yang Wang, Han School of Electrical and Electronic Engineering IEEE International Conference on Signal Processing, Communications and Computing (2012 : Hong Kong) DRNTU::Engineering::Electrical and electronic engineering In this paper, a novel spectral feature image-based 2DLDA (two-dimensional linear discriminant analysis) ensemble algorithm is proposed for face recognition with one sample image per person. In our algorithm, multi-resolution spectral feature images are constructed to represent the face images. The proposed method is inspired by our finding that, among these spectral feature images, features extracted from some orientations and scales using 2DLDA are not sensitive to variations of illumination and expression. In order to maintain the positive characteristics of these filters and to make correct category assignments, the strategy of classifier committee learning (CCL) is designed to combine the results obtained from different spectral feature images. Experimental results on the standard databases demonstrate the feasibility and efficiency of the proposed method. 2013-07-23T08:56:39Z 2019-12-06T19:48:24Z 2013-07-23T08:56:39Z 2019-12-06T19:48:24Z 2012 2012 Conference Paper Sun, Z.-L., Lam, K.-M., Dong, Z.-Y.,& Wang, H. (2012). A spectral feature based approach for face recognition with one training sample. 2012 IEEE International Conference on Signal Processing, Communication and Computing (ICSPCC 2012). https://hdl.handle.net/10356/97925 http://hdl.handle.net/10220/12081 10.1109/ICSPCC.2012.6335726 en © 2012 IEEE. |
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DRNTU::Engineering::Electrical and electronic engineering Sun, Zhan-Li Lam, Kin-Man Dong, Zhao-Yang Wang, Han A spectral feature based approach for face recognition with one training sample |
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In this paper, a novel spectral feature image-based 2DLDA (two-dimensional linear discriminant analysis) ensemble algorithm is proposed for face recognition with one sample image per person. In our algorithm, multi-resolution spectral feature images are constructed to represent the face images. The proposed method is inspired by our finding that, among these spectral feature images, features extracted from some orientations and scales using 2DLDA are not sensitive to variations of illumination and expression. In order to maintain the positive characteristics of these filters and to make correct category assignments, the strategy of classifier committee learning (CCL) is designed to combine the results obtained from different spectral feature images. Experimental results on the standard databases demonstrate the feasibility and efficiency of the proposed method. |
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School of Electrical and Electronic Engineering |
author_facet |
School of Electrical and Electronic Engineering Sun, Zhan-Li Lam, Kin-Man Dong, Zhao-Yang Wang, Han |
format |
Conference or Workshop Item |
author |
Sun, Zhan-Li Lam, Kin-Man Dong, Zhao-Yang Wang, Han |
author_sort |
Sun, Zhan-Li |
title |
A spectral feature based approach for face recognition with one training sample |
title_short |
A spectral feature based approach for face recognition with one training sample |
title_full |
A spectral feature based approach for face recognition with one training sample |
title_fullStr |
A spectral feature based approach for face recognition with one training sample |
title_full_unstemmed |
A spectral feature based approach for face recognition with one training sample |
title_sort |
spectral feature based approach for face recognition with one training sample |
publishDate |
2013 |
url |
https://hdl.handle.net/10356/97925 http://hdl.handle.net/10220/12081 |
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1681039726882062336 |