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AI-GOMS: Large AI-Driven Global Ocean Modeling System

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arxiv 2308.03152 v2 pith:LFZWVWKY submitted 2023-08-06 physics.ao-ph cs.AIcs.LG

classification physics.ao-phcs.AIcs.LG
keywords oceanmodelingai-gomsglobalnumericalsystempredictionai-driven
verification ladder T0 review T1 audit T2 compute T3 formal
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Ocean modeling is a powerful tool for simulating the physical, chemical, and biological processes of the ocean, which is the foundation for marine science research and operational oceanography. Modern numerical ocean modeling mainly consists of governing equations and numerical algorithms. Nonlinear instability, computational expense, low reusability efficiency and high coupling costs have gradually become the main bottlenecks for the further development of numerical ocean modeling. Recently, artificial intelligence-based modeling in scientific computing has shown revolutionary potential for digital twins and scientific simulations, but the bottlenecks of numerical ocean modeling have not been further solved. Here, we present AI-GOMS, a large AI-driven global ocean modeling system, for accurate and efficient global ocean daily prediction. AI-GOMS consists of a backbone model with the Fourier-based Masked Autoencoder structure for basic ocean variable prediction and lightweight fine-tuning models incorporating regional downscaling, wave decoding, and biochemistry coupling modules. AI-GOMS has achieved the best performance in 30 days of prediction for the global ocean basic variables with 15 depth layers at 1/4{\deg} spatial resolution. Beyond the good performance in statistical metrics, AI-GOMS realizes the simulation of mesoscale eddies in the Kuroshio region at 1/12{\deg} spatial resolution and ocean stratification in the tropical Pacific Ocean. AI-GOMS provides a new backbone-downstream paradigm for Earth system modeling, which makes the system transferable, scalable and reusable.

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Cited by 2 Pith papers

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    Ocean-E2E, a hybrid physics-and-AI model with neural data assimilation, forecasts global marine heatwaves up to 40 days ahead with reported skill above ECMWF's S2S system.

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