Physics-guided architecture (pga) of neural networks for quantifying uncertainty in lake temperature modeling

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Abstract

To simultaneously address the rising need of expressing uncertainties in deep learning models along with producing model outputs which are consistent with the known scientific knowledge, we propose a novel physics-guided architecture (PGA) of neural networks in the context of lake temperature modeling where the physical constraints are hard coded in the neural network architecture. This allows us to integrate such models with state of the art uncertainty estimation approaches such as Monte Carlo (MC) Dropout without sacrificing the physical consistency of our results. We demonstrate the effectiveness of our approach in ensuring better generalizability as well as physical consistency in MC estimates over data collected from Lake Mendota in Wisconsin and Falling Creek Reservoir in Virginia, even with limited training data. We further show that our MC estimates correctly match the distribution of ground-truth observations, thus making the PGA paradigm amenable to physically grounded uncertainty quantification.

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Daw, A., Thomas, R. Q., Carey, C. C., Read, J. S., Appling, A. P., & Karpatne, A. (2020). Physics-guided architecture (pga) of neural networks for quantifying uncertainty in lake temperature modeling. In Proceedings of the 2020 SIAM International Conference on Data Mining, SDM 2020 (pp. 532–540). Society for Industrial and Applied Mathematics Publications. https://doi.org/10.1137/1.9781611976236.60

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