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Multiple graph regularized nonnegative matrix factorization

delete2013-10-01
delete102
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H
Halima Bensmail
高欣 (Xin Gao) *
DOI:10.1016/j.patcog.2013.03.007delete
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Abstract

Abstract

En 中文
Non-negative matrix factorization (NMF) has been widely used as a data representation method based on components. To overcome the disadvantage of NMF in failing to consider the manifold structure of a data set, graph regularized NMF (GrNMF) has been proposed by Cai et al. by constructing an affinity graph and searching for a matrix factorization that respects graph structure. Selecting a graph model and its corresponding parameters is critical for this strategy. This process is usually carried out by cross-validation or discrete grid search, which are time consuming and prone to overfitting. In this paper, we propose a GrNMF, called MultiGrNMF, in which the intrinsic manifold is approximated by a linear combination of several graphs with different models and parameters inspired by ensemble manifold regularization. Factorization metrics and linear combination coefficients of graphs are determined simultaneously within a unified object function. They are alternately optimized in an iterative algorithm, thus resulting in a novel data representation algorithm. Extensive experiments on a protein subcellular localization task and an Alzheimer's disease diagnosis task demonstrate the effectiveness of the proposed algorithm. (C) 2013 Elsevier Ltd. All rights reserved.
Keywords:
Data representation
Nonnegative matrix factorization
Graph Laplacian
Ensemble manifold regularization
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Journal

Pattern Recognition cover
Pattern Recognition
IF:
7.6
Papers:
1.3W
Citations:
4.5W

Organization

K
king abdullah university of science & technology
Scholars:
1.3W
Papers: 1.3W
Citations: 32
Q
qatar foundation (qf)
Scholars:
6.3K
Papers: 7.0K
Citations: 8
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