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Interpretable Node Representation with Attribute Decoding

Published in arXiv (Cornell University) • Dec 3, 2022
NobleIDNI7P66W70R95S56
Authors:
Xiaohong Chen
,
Xi Chen
,
Liping Liu

Abstract

Variational Graph Autoencoders (VGAEs) are powerful models for unsupervised learning of node representations from graph data. In this work, we systematically analyze modeling node attributes in VGAEs and show that attribute decoding is important for node representation learning. We further propose a...

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