When physics meets machine learning: a survey of physics-informed machine learning

Когда физика встречает машинное обучение: обзор physics-informed machine learning
Chuizheng Meng, Yan Liu, Sam Griesemer, Defu Cao, Sungyong Seo
2025-05-07

physical plausibilityphysics knowledge integrationphysics-informed machine learningprior physics knowledge
Abstract Physics-informed machine learning (PIML), the combination of prior physics knowledge with data-driven machine learning models, has emerged as an effective means of mitigating a shortage of training data, increasing model generalizability, and ensuring physical plausibility of results. In this paper, we survey a wide variety of recent works in PIML and summarize them from three key aspects: 1) motivations of PIML, 2) physics knowledge in PIML, and 3) methods of physics knowledge integration in PIML. We additionally discuss current challenges and corresponding research opportunities in PIML.
1
PIML increases model generalizability and ensures physical plausibility of results compared to purely data-driven approaches.
2
Physics-informed machine learning (PIML) combines prior physics knowledge with data-driven models to mitigate training data shortages.
3
The paper identifies current challenges in PIML and outlines corresponding research opportunities for the field.
4
The survey categorizes recent PIML work by motivations, types of physics knowledge used, and methods for integrating physics into learning.

Physics-informed machine learning (PIML)

The motivations, types of prior physics knowledge, and methods for integrating physics knowledge into machine learning models, plus associated challenges and research opportunities in PIML

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Publication Date
2025-05-07
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Authors
Chuizheng Meng
Yan Liu
Sam Griesemer
Defu Cao
Sungyong Seo
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