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Graph Neural Network-Inspired Kernels for Gaussian Processes in Semi-Supervised Learning

By Zehao Niu and others at
LogoUniversity of Chicago
and
LogoArgonne National Laboratory
Gaussian processes (GPs) are an attractive class of machine learning models because of their simplicity and flexibility as building blocks of more complex Bayesian models. Meanwhile, graph neural networks (GNNs) emerged recently as a promising class of models for graph-structured data in semi-supervised learning and beyond. Their competitive performance is... Show more
February 12, 2023
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Graph Neural Network-Inspired Kernels for Gaussian Processes in Semi-Supervised Learning
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