Hierarchical Anchor Graph Learning for Multi-View Clustering
Xingchen Hu, Miao Jia, Jiyuan Liu, Siwei Wang, KE LIANG, Wenjing Yang
摘要
Multi-view clustering (MVC) is a fundamental task in heterogeneous data analysis, where anchor-based graph methods are widely adopted for their computational efficiency. However, existing approaches typically utilize static, single-layer anchors, failing to capture the multi-granularity nature of complex data. Drawing inspiration from hierarchical human cognition, we propose a hierarchical anchor graph learning method, termed HAG-MVC, a novel framework that organizes multi-view data as a multi-level pyramid. Unlike conventional one-shot anchor generation methods, HAG-MVC introduces a multi-level co-evolution mechanism, where anchors and graph structures are iteratively refined together to capture semantics from fine-to-coarse granularities. Moreover, HAG-MVC offers a transparent abstraction architecture as an alternative to black-box deep clustering: by maintaining all anchors within the original feature space, it enables explicit inspection of the abstraction process, ensuring inherent interpretability. Extensive experiments on benchmark datasets demonstrate that HAG-MVC consistently outperforms state-of-the-art methods. Beyond MVC, this work provides a scalable and trustworthy paradigm for hierarchical knowledge representation in broad machine learning tasks.
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它引用的顶会 Paper18
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- Scalable Multi-view Subspace Clustering with Unified AnchorsMengjing Sun, Pei Zhang, Siwei Wang, Sihang Zhou 等ACM MM 2021 · 被引用 300 次
- Align then Fusion: Generalized Large-scale Multi-view Clustering with Anchor Matching CorrespondencesSiwei Wang, Xinwang Liu, Suyuan Liu, Jiaqi Jin 等NeurIPS 2022 · 被引用 144 次
- Efficient Orthogonal Multi-view Subspace ClusteringMan-Sheng Chen, Chang-Dong Wang, Dong Huang, Jian-Huang Lai 等KDD 2022 · 被引用 102 次
- Fast Multi-view Discrete Clustering with Anchor GraphsQianyao Qiang, Bin Zhang, Fei Wang, Feiping NieAAAI 2021 · 被引用 86 次
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