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Lecture notes on Physics Informed Neural Networks, Neural Operators, and their applications

Published 17 Sept 2026arXiv:2609.17638

data quality89

Updated 24 h ago · first seen 17 Sept 2026

paper_01M2Q5C6EKZK6J1810ATWT7FP6

Abstract

This is the set of lecture notes for the PhD course \href{https://www.unibz.it/en/faculties/engineering/phd-computer-science/study-course-offering/2025/36967}{\textit{Physics Informed Neural Network}, held at the University of Bozen/Bolzano} in the academic year 2025/2026. The goal of the course was to introduce the concept of Physics Informed Deep Neural Networks (PINN) and Neural Operators (NOs), discuss their implementation from scratch in PyTorch and using advanced ad-hoc developed open-source libraries such as NVIDia PhysicsNeMo to address real-world problems in various fields (engineering, physics, petroleum reservoir). We discuss recent topics such as Mixture-of-Models, Fourier Neural Operators, Physics-Informed Kolmogorov-Arnold Networks (PIKANs) and Fourier Neural Operators.

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Alessandro Bombini

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arXiv (Atom API + RSS)rss.arxiv.org/rss/cs.AI feedT1· Official13 h ago7
arXiv (Atom API + RSS)rss.arxiv.org/rss/cs.LG feedT1· Official13 h ago6

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