PFEM-GP-dPHS : a finite element framework for combining Gaussian processes and infinite-dimensional port-Hamiltonian systems

Fuente: arXiv
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Main Authors: Courteville, Florian, Henderson, Iain, Matignon, Denis, Dubreuil, Sylvain
Format: Preprint
Published: 2025
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author Courteville, Florian
Henderson, Iain
Matignon, Denis
Dubreuil, Sylvain
author_facet Courteville, Florian
Henderson, Iain
Matignon, Denis
Dubreuil, Sylvain
contents In order to learn distributed port-Hamiltonian systems (dPHS) using Gaussian processes (GPs), the partitioned finite element method (PFEM) is combined with the Gp-dPHS method. By following a late lumping approach, the discretization of the functional hyperparameters of the GP prior over the Hamiltonian functional is chosen independently from the discretization of the dPHS, thus reducing the numerical complexity of our method. We next model the mean of the GP prior of the Hamiltonian as a quadratic form, enabling the GP kernel to focus on the nonlinear part of a given dPHS. We illustrate our method on a nonlinear one dimensional wave equation with unknown physical parameters (tension and linear mass).
format Preprint
id arxiv_https___arxiv_org_abs_2512_13163
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle PFEM-GP-dPHS : a finite element framework for combining Gaussian processes and infinite-dimensional port-Hamiltonian systems
Courteville, Florian
Henderson, Iain
Matignon, Denis
Dubreuil, Sylvain
Analysis of PDEs
In order to learn distributed port-Hamiltonian systems (dPHS) using Gaussian processes (GPs), the partitioned finite element method (PFEM) is combined with the Gp-dPHS method. By following a late lumping approach, the discretization of the functional hyperparameters of the GP prior over the Hamiltonian functional is chosen independently from the discretization of the dPHS, thus reducing the numerical complexity of our method. We next model the mean of the GP prior of the Hamiltonian as a quadratic form, enabling the GP kernel to focus on the nonlinear part of a given dPHS. We illustrate our method on a nonlinear one dimensional wave equation with unknown physical parameters (tension and linear mass).
title PFEM-GP-dPHS : a finite element framework for combining Gaussian processes and infinite-dimensional port-Hamiltonian systems
topic Analysis of PDEs
url https://arxiv.org/abs/2512.13163