Geometric Multi-resolution Analysis Based Classification for High Dimensional Data

被引:2
|
作者
Tran, Dung N. [1 ]
Chin, Sang Peter [1 ]
机构
[1] Johns Hopkins Univ, Baltimore, MD 21218 USA
来源
CYBER SENSING 2014 | 2014年 / 9097卷
关键词
High Dimensional Data; Classification; Geometric Multi-resolution Analysis; Manifold Learning; Dimension Reduction; REDUCTION;
D O I
10.1117/12.2063316
中图分类号
TP7 [遥感技术];
学科分类号
081102 ; 0816 ; 081602 ; 083002 ; 1404 ;
摘要
Data sets are often modeled as point clouds lying in a high dimensional space. In practice, they usually reside on or near a much lower dimensional manifold embedded in the ambient space; this feature allows for both a simple representation of the data as well as accurate performance for statistical inference procedures such as estimation, regression and classification. In this paper we propose a framework based on geometric multi-resolution analysis (GMRA) to tackle the problem of classifying data lying around a low-dimensional set M embedded in a highdimensional space RD. We test our algorithms on real data sets and demonstrate its efficacy in the presence of noise.
引用
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页数:8
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