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A generative machine learning surrogate model of plasma turbulence

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arxiv 2405.13232 v2 pith:F45ZFNH5 submitted 2024-05-21 physics.plasm-ph physics.comp-ph

classification physics.plasm-phphysics.comp-ph
keywords modelturbulencegaitgenerativeplasmaartificialdecompositionintelligence
verification ladder T0 review T1 audit T2 compute T3 formal
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Generative artificial intelligence methods are employed for the first time to construct a surrogate model for plasma turbulence that enables long time transport simulations. The proposed GAIT (Generative Artificial Intelligence Turbulence) model is based on the coupling of a convolutional variational auto-encoder, that encodes precomputed turbulence data into a reduced latent space, and a recurrent neural network and decoder that generates new turbulence states 400 times faster than the direct numerical integration. The model is applied to the Hasegawa-Wakatani (HW) plasma turbulence model, that is closely related to the quasigeostrophic model used in geophysical fluid dynamics. Very good agreement is found between the GAIT and the HW models in the spatio-temporal Fourier and Proper Orthogonal Decomposition spectra, and the flow topology characterized by the Okubo-Weiss decomposition. The GAIT model also reproduces Lagrangian transport including the probability distribution function of particle displacements and the effective turbulent diffusivity.

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