JOURNAL ARTICLE

Fine-Grained Essential Tensor Learning for Robust Multi-View Spectral Clustering

Chong PengKehan KangYongyong ChenZhao KangChenglizhao ChenQiang Cheng

Year: 2024 Journal:   IEEE Transactions on Image Processing Vol: 33 Pages: 3145-3160   Publisher: Institute of Electrical and Electronics Engineers

Abstract

Multi-view subspace clustering (MVSC) has drawn significant attention in recent study. In this paper, we propose a novel approach to MVSC. First, the new method is capable of preserving high-order neighbor information of the data, which provides essential and complicated underlying relationships of the data that is not straightforwardly preserved by the first-order neighbors. Second, we design log-based nonconvex approximations to both tensor rank and tensor sparsity, which are effective and more accurate than the convex approximations. For the associated shrinkage problems, we provide elegant theoretical results for the closed-form solutions, for which the convergence is guaranteed by theoretical analysis. Moreover, the new approximations have some interesting properties of shrinkage effects, which are guaranteed by elegant theoretical results. Extensive experimental results confirm the effectiveness of the proposed method.

Keywords:
Tensor (intrinsic definition) Cluster analysis Subspace topology Convergence (economics) Mathematics Regular polygon Rank (graph theory) Computer science Spectral clustering Robustness (evolution) Mathematical optimization Algorithm Applied mathematics Artificial intelligence Combinatorics Pure mathematics

Metrics

12
Cited By
8.65
FWCI (Field Weighted Citation Impact)
81
Refs
0.97
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Sparse and Compressive Sensing Techniques
Physical Sciences →  Engineering →  Computational Mechanics
Tensor decomposition and applications
Physical Sciences →  Mathematics →  Computational Mathematics
Machine Learning and ELM
Physical Sciences →  Computer Science →  Artificial Intelligence

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