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Physics-Preserving AI-Accelerated Simulations of Plasma Turbulence

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arxiv 2309.16400 v1 pith:6FTUFTWT submitted 2023-09-28 physics.comp-ph cs.AIphysics.plasm-ph

classification physics.comp-phcs.AIphysics.plasm-ph
keywords turbulencedynamicslargeplasmawhileai-acceleratedallowsapplying
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Turbulence in fluids, gases, and plasmas remains an open problem of both practical and fundamental importance. Its irreducible complexity usually cannot be tackled computationally in a brute-force style. Here, we combine Large Eddy Simulation (LES) techniques with Machine Learning (ML) to retain only the largest dynamics explicitly, while small-scale dynamics are described by an ML-based sub-grid-scale model. Applying this novel approach to self-driven plasma turbulence allows us to remove large parts of the inertial range, reducing the computational effort by about three orders of magnitude, while retaining the statistical physical properties of the turbulent system.

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Cited by 1 Pith paper

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  1. Hierarchical-embedding autoencoder with a predictor (HEAP) as efficient architecture for learning long-term evolution of complex multi-scale physical systems

    cs.AI 2025-05 conditional novelty 6.0 of 10

    HEAP, a hierarchical autoencoder with a predictor that advances multiple scale layers in sync, achieves several-fold lower long-term rollout error than flat ResNet baselines on Hasegawa-Wakatani turbulence.

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