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Bayesian task embedding for few-shot Bayesian optimization
TL;DR: This work describes a method for Bayesian optimization by which one may incorporate data from multiple systems whose quantitative interrelationships are unknown a priori into a single metamodel that simultaneously learns the response surfaces of all of the systems.
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Abstract: We describe a method for Bayesian optimization by which one may incorporate data from multiple systems whose quantitative interrelationships are unknown a priori. All general (nonreal-valued) features of the systems are associated with continuous latent variables that enter as inputs into a single metamodel that simultaneously learns the response surfaces of all of the systems. Bayesian inference is used to determine appropriate beliefs regarding the latent variables. We explain how the resulting probabilistic metamodel may be used for Bayesian optimization tasks and demonstrate its implementation on a variety of synthetic and real-world examples, comparing its performance under zero-, one-, and few-shot settings against traditional Bayesian optimization, which usually requires substantially more data from the system of interest.
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TL;DR: In this article, a variational inference framework for training the Gaussian process latent variable model and thus performing Bayesian nonlinear dimensionality reduction is introduced, which can automatically select the dimensionality of the nonlinear latent space.
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Eli Bingham,Jonathan P. Chen,Martin Jankowiak,Fritz Obermeyer,Neeraj Pradhan,Theofanis Karaletsos,Rohit Singh,Paul Szerlip,Paul Horsfall,Noah D. Goodman +9 more
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