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Unsupervised Structure-Adaptive Graph Contrastive Learning

delete2024-10-01
delete7
PRE
AI
H
Han Zhao
X
Xu Yang
邓程 (Cheng Deng) *
D
Dacheng Tao
DOI:10.1109/TNNLS.2023.3271140delete
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摘要

摘要

En 中文
Graph contrastive learning, which to date has always been guided by node features and fixed-intrinsic structures, has become a prominent technique for unsupervised graph representation learning through contrasting positive-negative counterparts. However, the fixed-intrinsic structure cannot represent the potential relationships beneficial for models, leading to suboptimal results. To this end, we propose a structure-adaptive graph contrastive learning framework to capture potential discriminative relationships. More specifically, a structure learning layer is first proposed for generating the adaptive structure with contrastive loss. Next, a denoising supervision mechanism is designed to perform supervised learning on the structure to promote structure learning, which introduces the pseudostructure through the clustering results and denoises the pseudostructure to provide more reliable supervised information. In this way, under the dual constraints of denoising supervision and contrastive learning, the optimal adaptive structure can be obtained to promote graph representation learning. Extensive experiments on several graph datasets demonstrate that our proposed method outperforms state-of-the-art approaches on various tasks.
Keyword:
Denoising structure supervision
graph contrastive learning
graph representation learning
structure learning

期刊

IEEE Transactions on Neural Networks and Learning Systems 封面图
IEEE Transactions on Neural Networks and Learning Systems
IF:
8.9
论文数:
7.5K
被引数:
7.2W

机构

U
University of Sydney
学者数:
6.5W
论文数: 6.2W
被引数: 90
X
Xidian University
学者数:
2.4W
论文数: 1.9W
被引数: 9.7K
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