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GCFAgg: Global and Cross-view Feature Aggregation for Multi-view Clustering (2305.06799v1)

Published 11 May 2023 in cs.CV

Abstract: Multi-view clustering can partition data samples into their categories by learning a consensus representation in unsupervised way and has received more and more attention in recent years. However, most existing deep clustering methods learn consensus representation or view-specific representations from multiple views via view-wise aggregation way, where they ignore structure relationship of all samples. In this paper, we propose a novel multi-view clustering network to address these problems, called Global and Cross-view Feature Aggregation for Multi-View Clustering (GCFAggMVC). Specifically, the consensus data presentation from multiple views is obtained via cross-sample and cross-view feature aggregation, which fully explores the complementary ofsimilar samples. Moreover, we align the consensus representation and the view-specific representation by the structure-guided contrastive learning module, which makes the view-specific representations from different samples with high structure relationship similar. The proposed module is a flexible multi-view data representation module, which can be also embedded to the incomplete multi-view data clustering task via plugging our module into other frameworks. Extensive experiments show that the proposed method achieves excellent performance in both complete multi-view data clustering tasks and incomplete multi-view data clustering tasks.

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Authors (7)
  1. Weiqing Yan (2 papers)
  2. Yuanyang Zhang (3 papers)
  3. Chenlei Lv (9 papers)
  4. Chang Tang (23 papers)
  5. Guanghui Yue (9 papers)
  6. Liang Liao (36 papers)
  7. Weisi Lin (118 papers)
Citations (28)

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