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TPCH: Tensor-interacted Projection and Cooperative Hashing for Multi-view Clustering
December 25, 2024 ยท Declared Dead ยท ๐ AAAI Conference on Artificial Intelligence
Authors
Zhongwen Wang, Xingfeng Li, Yinghui Sun, Quansen Sun, Yuan Sun, Han Ling, Jian Dai, Zhenwen Ren
arXiv ID
2412.18847
Category
cs.LG: Machine Learning
Citations
7
Venue
AAAI Conference on Artificial Intelligence
Repository
https://github.com/jankin-wang/TPCH}}
Last Checked
1 month ago
Abstract
In recent years, anchor and hash-based multi-view clustering methods have gained attention for their efficiency and simplicity in handling large-scale data. However, existing methods often overlook the interactions among multi-view data and higher-order cooperative relationships during projection, negatively impacting the quality of hash representation in low-dimensional spaces, clustering performance, and sensitivity to noise. To address this issue, we propose a novel approach named Tensor-Interacted Projection and Cooperative Hashing for Multi-View Clustering(TPCH). TPCH stacks multiple projection matrices into a tensor, taking into account the synergies and communications during the projection process. By capturing higher-order multi-view information through dual projection and Hamming space, TPCH employs an enhanced tensor nuclear norm to learn more compact and distinguishable hash representations, promoting communication within and between views. Experimental results demonstrate that this refined method significantly outperforms state-of-the-art methods in clustering on five large-scale multi-view datasets. Moreover, in terms of CPU time, TPCH achieves substantial acceleration compared to the most advanced current methods. The code is available at \textcolor{red}{\url{https://github.com/jankin-wang/TPCH}}.
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