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Graph-regularized concept factorization for multi-view document clustering

Publication ,  Journal Article
Zhan, K; Shi, J; Wang, J; Tian, F
Published in: Journal of Visual Communication and Image Representation
October 1, 2017

We propose a novel multi-view document clustering method with the graph-regularized concept factorization (MVCF). MVCF makes full use of multi-view features for more comprehensive understanding of the data and learns weights for each view adaptively. It also preserves the local geometrical structure of the manifolds for multi-view clustering. We have derived an efficient optimization algorithm to solve the objective function of MVCF and proven its convergence by utilizing the auxiliary function method. Experiments carried out on three benchmark datasets have demonstrated the effectiveness of MVCF in comparison to several state-of-the-art approaches in terms of accuracy, normalized mutual information and purity.

Duke Scholars

Published In

Journal of Visual Communication and Image Representation

DOI

EISSN

1095-9076

ISSN

1047-3203

Publication Date

October 1, 2017

Volume

48

Start / End Page

411 / 418

Related Subject Headings

  • Artificial Intelligence & Image Processing
  • 4607 Graphics, augmented reality and games
  • 4603 Computer vision and multimedia computation
  • 3606 Visual arts
  • 1905 Visual Arts and Crafts
  • 1203 Design Practice and Management
  • 0801 Artificial Intelligence and Image Processing
 

Citation

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Zhan, K., Shi, J., Wang, J., & Tian, F. (2017). Graph-regularized concept factorization for multi-view document clustering. Journal of Visual Communication and Image Representation, 48, 411–418. https://doi.org/10.1016/j.jvcir.2017.02.019
Zhan, K., J. Shi, J. Wang, and F. Tian. “Graph-regularized concept factorization for multi-view document clustering.” Journal of Visual Communication and Image Representation 48 (October 1, 2017): 411–18. https://doi.org/10.1016/j.jvcir.2017.02.019.
Zhan K, Shi J, Wang J, Tian F. Graph-regularized concept factorization for multi-view document clustering. Journal of Visual Communication and Image Representation. 2017 Oct 1;48:411–8.
Zhan, K., et al. “Graph-regularized concept factorization for multi-view document clustering.” Journal of Visual Communication and Image Representation, vol. 48, Oct. 2017, pp. 411–18. Scopus, doi:10.1016/j.jvcir.2017.02.019.
Zhan K, Shi J, Wang J, Tian F. Graph-regularized concept factorization for multi-view document clustering. Journal of Visual Communication and Image Representation. 2017 Oct 1;48:411–418.
Journal cover image

Published In

Journal of Visual Communication and Image Representation

DOI

EISSN

1095-9076

ISSN

1047-3203

Publication Date

October 1, 2017

Volume

48

Start / End Page

411 / 418

Related Subject Headings

  • Artificial Intelligence & Image Processing
  • 4607 Graphics, augmented reality and games
  • 4603 Computer vision and multimedia computation
  • 3606 Visual arts
  • 1905 Visual Arts and Crafts
  • 1203 Design Practice and Management
  • 0801 Artificial Intelligence and Image Processing