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National Science Review • Vol 9 • No 8
Physics-informed deep-learning parameterization of ocean vertical mixing improves climate simulations
March 2022 • Yuchao Zhu, Rong‐Hua Zhang, James N. Moum, Fan Wang, Xiaofeng Li, Delei Li
Abstract Uncertainties in ocean-mixing parameterizations are primary sources for ocean and climate modeling biases. Due to lack of process understanding, traditional physics-driven parameterizations perform unsatisfactorily in the tropics. Recent advances in the deep-learning method and the new availability of long-term turbulence measurements provide an opportunity to explore data-driven approaches to parameterizing oceanic vertical-mixing processes. Here, we describe a novel parameterization based on an artifici…
Generalization
Climate Model
Deep Sea
Meteorology
Computer Science
Turbulence
Environmental Science
Oceanography
Artificial Intelligence
Physics
Mathematics
Quantum Mechanics
Mathematical Analysis