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Daniel Giles

4 accepted papers

2025

Calibrated Physics-Informed Uncertainty Quantification

ICML 2025poster

Simulating complex physical systems is crucial for understanding and predicting phenomena across diverse fields, such as fluid dynamics and heat transfer, as well as plasma physics and structural mechanics. Traditional approaches rely on solving partial differential equations (PDEs) using numerical…

Cited by 0SourcePDFScholar
2025

Tensor-Var: Efficient Four-Dimensional Variational Data Assimilation

ICML 2025poster

Variational data assimilation estimates the dynamical system states by minimizing a cost function that fits the numerical models with the observational data. Although four-dimensional variational assimilation (4D-Var) is widely used, it faces high computational costs in complex nonlinear systems and…

Cited by 0SourcePDFScholar
2023

Multilevel Bayesian Quadrature

AISTATS 2023poster

Multilevel Monte Carlo is a key tool for approximating integrals involving expensive scientific models. The idea is to use approximations of the integrand to construct an estimator with improved accuracy over classical Monte Carlo. We propose to further enhance multilevel Monte Carlo through Bayesia…