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St. John
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Towards Improved Learning in Gaussian Processes: The Best of Two Worlds
2022 · arXiv (Cornell University)
Gaussian process training decomposes into inference of the (approximate) posterior and learning of the hyperparameters. For non-Gaussian (non-conjugate) likelihoods, two common choices for approximate inference are Expectation Propagation (EP) and Variational Inference (VI), which have …