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BdryGP: a new Gaussian process model for incorporating boundary information
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Gaussian processes (GPs) are widely used as surrogate models for emulating computer code, which simulate complex physical phenomena. In many problems, additional boundary information (i.e., the behavior of the phenomena along input boundaries) is known beforehand, either from governing physics or scientific knowledge. While there has been recent work on incorporating boundary information within GPs, such models do not provide theoretical insights on improved convergence rates. To this end, we propose a new GP model, called BdryGP, for incorporating boundary information. We show that BdryGP not only has improved convergence rates over existing GP models (which do not incorporate boundaries), but is also more resistant to the "curse-of-dimensionality" in nonparametric regression. Our proofs make use of a novel connection between GP interpolation and finite-element modeling.
Forward citations
Cited by 2 Pith papers
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Multi-output Orthogonal Gaussian Processes for Noisy Simulator Outputs
MOOGP extends orthogonal Gaussian processes to multi-output simulators, improving trend coefficient identifiability while retaining predictive accuracy.
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The BdryMat\'ern GP: Reliable incorporation of boundary information on irregular domains for Gaussian process modeling
A new Gaussian process kernel, derived from a stochastic PDE with boundary conditions, enforces Dirichlet, Neumann, or Robin boundaries on irregular domains with smoothness control and provable approximation error.
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