Locally linear discriminant embedding: An efficient method for face recognition

被引:190
|
作者
Li, Bo [1 ,2 ]
Zheng, Chun-Hou [3 ]
Huang, De-Shuang [1 ]
机构
[1] Chinese Acad Sci, Inst Intelligent Machine, Intelligent Comp Lab, Hefei 230031, Anhui, Peoples R China
[2] Univ Sci & Technol China, Dept Automat, Hefei 230027, Anhui, Peoples R China
[3] Qufu Normal Univ, Coll Informat & Commun Technol, Rizhao 276826, Shandong, Peoples R China
基金
国家高技术研究发展计划(863计划); 美国国家科学基金会;
关键词
feature extraction; dimensionality reduction; manifold learning; locally linear embedding; face recognition;
D O I
10.1016/j.patcog.2008.05.027
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
In this paper an efficient feature extraction method named as locally linear discriminant embedding (LLDE) is proposed for face recognition. It is well known that a point can be linearly reconstructed by its neighbors and the reconstruction weights are under the sum-to-one constraint in the classical locally linear embedding (LLE). So the constrained weights obey an important symmetry: for any particular data point, they are invariant to rotations, rescalings and translations. The latter two are introduced to the proposed method to strengthen the classification ability of the original LLE. The data with different class labels are translated by the corresponding vectors and those belonging to the same class are translated by the same vector. In order to cluster the data with the same label closer, they are also rescaled to some extent. So after translation and rescaling, the discriminability of the data will be improved significantly. The proposed method is compared with some related feature extraction methods such as maximum margin criterion (MMC), as well as other supervised manifold learning-based approaches, for example ensemble unified LLE and linear discriminant analysis (En-ULLELDA), locally linear discriminant analysis (LLDA). Experimental results on Yale and CMU PIE face databases convince us that the proposed method provides a better representation of the class information and obtains much higher recognition accuracies. (C) 2008 Elsevier Ltd. All rights reserved.
引用
收藏
页码:3813 / 3821
页数:9
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