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Safe Bayesian Optimization for Uncertain Correlation Matrices in Linear Models of Co-Regionalization

Jannis Lübsen, Annika Eichler

发表年份
2026
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摘要

This paper extends safety guarantees for multi-task Bayesian optimization with uncertain co-regionalization matrices from intrinsic co-regionalization models to linear models of co-regionalization. The latter allows for more flexible modeling of the inter-task correlations by composing multiple features. We derive uniform error bounds for vector-valued functions sampled from a Gaussian process with a linear model of co-regionalization kernel. Furthermore, we show the potential performance gains of linear models of co-regionalization in a numerical comparison on a safe multi-task Bayesian optimization benchmark.

关键词

cs.LGeess.SY

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