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Double Discrete Cosine Transform-Oriented Multi-View Subspace Clustering

delete2024-01-01
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PRE
AI
Y
Yongyong Chen
S
Shuqin Wang
Y
Yin‐Ping Zhao *
陈晨 cover
陈晨 (C. L. Philip Chen)
DOI:10.1109/TIP.2024.3378471delete
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Abstract

Abstract

En 中文
Low-rank tensor representation with the tensor nuclear norm has been rising in popularity in multi-view subspace clustering (MVSC), in which the tensor nuclear norm is commonly implemented using discrete Fourier transform (DFT). Unfortunately, existing DFT-oriented MVSC methods may provide unsatisfactory results since (1) DFT exploits complex arithmetic in the Fourier domain, usually resulting in high tubal tensor rank, and (2) local structural information is rarely considered. To solve these problems, in this paper, we propose a novel double discrete cosine transform (DCT)-oriented multi-view subspace clustering (D2CTMSC) method, in which the first DCT aims to derive the tensor nuclear norm without complex arithmetic while the second DCT aims to explore the local structure of the self-representation tensor, such that the essential low-rankness and sparsity embedding in multi-view features can be thoroughly exploited. Moreover, we design an effective alternating iteration strategy to solve the proposed model. Experimental results on four types of multi-view datasets (News stories, Face images, Scene images, and Generic objects) demonstrate the superiority of the D2CTMSC method compared with DFT-based methods and other state-of-the-art clustering methods.
Keywords:
Multi-view subspace clustering
low-rank representation
tensor nuclear norm
discrete cosine transform

Journal

IEEE Transactions on Image Processing cover
IEEE Transactions on Image Processing
IF:
13.7
Papers:
1.0W
Citations:
8.4W

Organization

H
harbin institute of technology
Scholars:
8.0W
Papers: 6.6W
Citations: 66
N
Northwestern Polytechnical University
Scholars:
4.6W
Papers: 3.7W
Citations: 5.3W
S
Shandong University of Aeronautics
Scholars:
1.3K
Papers: 917
Citations: 0
S
south china university of technology
Scholars:
6.8W
Papers: 5.1W
Citations: 85
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