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Graph structure learning layer and its graph convolution clustering application

delete2023-08-01
delete6
PRE
AI
X
Xiaxia He
王博岳 (Boyue Wang) *
R
Ruikun Li
J
Junbin Gao
Y
Yongli Hu
G
Guangyu Huo
B
Baocai Yin
DOI:10.1016/j.neunet.2023.06.024delete
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摘要

摘要

En 中文
To learn the embedding representation of graph structure data corrupted by noise and outliers, existing graph structure learning networks usually follow the two-step paradigm, i.e., constructing a goodgraph structure and achieving the message passing for signals supported on the learned graph. However, the data corrupted by noise may make the learned graph structure unreliable. In this paper, we propose an adaptive graph convolutional clustering network that alternatively adjusts the graph structure and node representation layer-by-layer with back-propagation. Specifically, we design a Graph Structure Learning layer before each Graph Convolutional layer to learn the sparse graph structure from the node representations, where the graph structure is implicitly determined by the solution to the optimal self-expression problem. This is one of the first works that uses an optimization process as a Graph Network layer, which is obviously different from the function operation in traditional deep learning layers. An efficient iterative optimization algorithm is given to solve the optimal self-expression problem in the Graph Structure Learning layer. Experimental results show that the proposed method can effectively defend the negative effects of inaccurate graph structures. The code is available at https://github.com/HeXiax/SSGNN. & COPY; 2023 Elsevier Ltd. All rights reserved.
Keyword:
Graph convolutional network
Subspace clustering
Graph structure learning

期刊

Neural Networks 封面图
Neural Networks
IF:
6.3
论文数:
7.8K
被引数:
3.0W

机构

B
Beijing University of Technology
学者数:
2.8W
论文数: 2.1W
被引数: 2.7W
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