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Face Recognition Using LBP Eigenfaces

Authors
Lei, LeiKim, Dae-HwanPark, Won-JaeKo, Sung-Jea
Issue Date
7월-2014
Publisher
IEICE-INST ELECTRONICS INFORMATION COMMUNICATIONS ENG
Keywords
LBP; eigenfaces; PCA; face recognition
Citation
IEICE TRANSACTIONS ON INFORMATION AND SYSTEMS, v.E97D, no.7, pp.1930 - 1932
Indexed
SCIE
SCOPUS
Journal Title
IEICE TRANSACTIONS ON INFORMATION AND SYSTEMS
Volume
E97D
Number
7
Start Page
1930
End Page
1932
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/98000
DOI
10.1587/transinf.E97.D.1930
ISSN
1745-1361
Abstract
In this paper, we propose a simple and efficient face representation feature that adopts the eigenfaces of Local Binary Pattern (LBP) space, referred to as the LBP eigenfaces, for robust face recognition. In the proposed method, LBP eigenfaces are generated by first mapping the original image space to the LBP space and then projecting the LBP space to the LBP eigenface subspace by Principal Component Analysis (PCA). Therefore, LBP eigenfaces capture both the local and global structures of face images. In the experiments, the proposed LBP eigenfaces are integrated into two types of classification methods, Nearest Neighbor (NN) and Collaborative Representation-based Classification (CRC). Experimental results indicate that the classification with the LBP eigenfaces outperforms that with the original eigenfaces and LBP histogram.
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