Combining Physics with Machine Learning to Improve Climate Modeling
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Learn how to integrate physics principles with machine learning techniques to enhance climate modeling accuracy and efficiency in this conference talk that explores cutting-edge approaches to computational climate science, demonstrates practical applications of physics-informed machine learning algorithms in atmospheric and oceanic modeling, examines the challenges of incorporating physical constraints into neural networks, and discusses how hybrid physics-ML models can improve predictions of climate phenomena while maintaining computational tractability for large-scale climate simulations.
Syllabus
Paul O'Gorman: Combining physics with machine learning to improve climate modeling #ICBS2025
Taught by
BIMSA