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David Ginsbourger

3 accepted papers

2025

Integration-free Kernels for Equivariant Gaussian Process Modelling

ICML 2025poster

We study the incorporation of equivariances into vector-valued GPs and more general classes of random field models. While kernels guaranteeing equivariances have been investigated previously, their evaluation is often computationally prohibitive due to required integrations over the involved groups…

Cited by 0SourcePDFScholar
2020

Kernels over Sets of Finite Sets using RKHS Embeddings, with Application to Bayesian (Combinatorial) Optimization

AISTATS 2020poster

We focus on kernel methods for set-valued inputs and their application to Bayesian set optimization, notably combinatorial optimization. We investigate two classes of set kernels that both rely on Reproducing Kernel Hilbert Space embeddings, namely the "Double Sum" (DS) kernels recently considered i…

Cited by 27SourcePDFScholar