Learning Physics-Informed Neural Networks Without Stacked Back-Propagation
Abstract
Physics-Informed Neural Network (PINN) has become a commonly used machine learning approach to solve partial differential equations (PDE). But, facing high-dimensional secondorder PDE problems, PINN will suffer from severe scalability issues since its loss includes second-order derivatives, the computational cost of which will grow along with the dimension during stacked back-propagation. In this work, we develop a novel approach that can significantly accelerate the training of Physics-Informed Neural Networks. In particular, we parameterize the PDE solution by the Gaussian smoothed model and show that, derived from Stein’s Identity, the second-order derivatives can be efficiently calculated without back-propagation. We further discuss the model capacity and provide variance reduction methods to address key limitations in the derivative estimation. Experimental results show that our proposed method can achieve competitive error compared to standard PINN training but is significantly faster.
Cite
Text
He et al. "Learning Physics-Informed Neural Networks Without Stacked Back-Propagation." Artificial Intelligence and Statistics, 2023.Markdown
[He et al. "Learning Physics-Informed Neural Networks Without Stacked Back-Propagation." Artificial Intelligence and Statistics, 2023.](https://mlanthology.org/aistats/2023/he2023aistats-learning/)BibTeX
@inproceedings{he2023aistats-learning,
title = {{Learning Physics-Informed Neural Networks Without Stacked Back-Propagation}},
author = {He, Di and Li, Shanda and Shi, Wenlei and Gao, Xiaotian and Zhang, Jia and Bian, Jiang and Wang, Liwei and Liu, Tie-Yan},
booktitle = {Artificial Intelligence and Statistics},
year = {2023},
pages = {3034-3047},
volume = {206},
url = {https://mlanthology.org/aistats/2023/he2023aistats-learning/}
}