A New Approach for Supervised Dimensionality Reduction

Author:

Song Yinglei1,Li Yongzhong1,Qu Junfeng2

Affiliation:

1. Jiangsu University of Science and Technology, Zhenjiang, China

2. Clayton State University, Morrow, USA

Abstract

This article develops a new approach for supervised dimensionality reduction. This approach considers both global and local structures of a labelled data set and maximizes a new objective that includes the effects from both of them. The objective can be approximately optimized by solving an eigenvalue problem. The approach is evaluated based on a few benchmark data sets and image databases. Its performance is also compared with a few other existing approaches for dimensionality reduction. Testing results show that, on average, this new approach can achieve more accurate results for dimensionality reduction than existing approaches.

Publisher

IGI Global

Subject

Hardware and Architecture,Software

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