SURER: Structure-Adaptive Unified Graph Neural Network for Multi-View Clustering
Jing Wang,
Songhe Feng,
Gengyu Lyu
et al.
Abstract:Deep Multi-view Graph Clustering (DMGC) aims to partition instances into different groups using the graph information extracted from multi-view data. The mainstream framework of DMGC methods applies graph neural networks to embed structure information into the view-specific representations and fuse them for the consensus representation. However, on one hand, we find that the graph learned in advance is not ideal for clustering as it is constructed by original multi-view data and localized connecting. On the ot… Show more
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