Local linear discriminant analysis with composite kernel for face recognition

Zhan Shi*, Jinglu Hu

*この研究の対応する著者

研究成果: Conference contribution

7 被引用数 (Scopus)

抄録

This paper presents a method for nonlinear discriminant analysis utilizing a composite kernel which is derived from a combination of local linear models with interpolation. The underlying idea is to decompose a complex nonlinear problem into a set of simpler local linear problems. Combining with the theory of nonlinear classification based on kernels, the local linear models with interpolation can be formulated as a composite kernel based discriminant analysis form. In face recognition, linear discriminant analysis (LDA) has been widely adopted owing to its efficiency, but it fails to solve nonlinear problems. Conventional kernel based approaches such as generalized discriminant analysis (GDA) has been successfully applied to extend LDA to nonlinear pattern recognition tasks. However, selecting an appropriate kernel function is usually difficult. Utilizing an implicit kernel mapping may face potential over-training problems for some complex and noised tasks. Our proposed method gives an alternative solution for nonlinear discriminant analysis while the conventional linear and nonlinear approaches are difficult to achieve a satisfactory results. Experiments on both synthetic data and face data set show the effectiveness of the proposed methods.

本文言語English
ホスト出版物のタイトル2012 International Joint Conference on Neural Networks, IJCNN 2012
DOI
出版ステータスPublished - 2012
イベント2012 Annual International Joint Conference on Neural Networks, IJCNN 2012, Part of the 2012 IEEE World Congress on Computational Intelligence, WCCI 2012 - Brisbane, QLD, Australia
継続期間: 2012 6月 102012 6月 15

出版物シリーズ

名前Proceedings of the International Joint Conference on Neural Networks

Conference

Conference2012 Annual International Joint Conference on Neural Networks, IJCNN 2012, Part of the 2012 IEEE World Congress on Computational Intelligence, WCCI 2012
国/地域Australia
CityBrisbane, QLD
Period12/6/1012/6/15

ASJC Scopus subject areas

  • ソフトウェア
  • 人工知能

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