Lagrangian turbulence lies at the core of numerous applied and fundamental problems related to the physics of dispersion and mixing in engineering, biofluids, the atmosphere, oceans and astrophysics. Despite exceptional theoretical, numerical and experimental efforts conducted over the past 30 years, no existing models are capable of faithfully reproducing statistical and topological properties exhibited by particle trajectories in turbulence. We propose a machine learning approach, based on a state-of-the-art diffusion model, to generate single-particle trajectories in three-dimensional turbulence at high Reynolds numbers, thereby bypassing the need for direct numerical simulations or experiments to obtain reliable Lagrangian data. Our model demonstrates the ability to reproduce most statistical benchmarks across time scales, including the fat-tail distribution for velocity increments, the anomalous power law and the increased intermittency around the dissipative scale. Slight deviations are observed below the dissipative scale, particularly in the acceleration and flatness statistics. Surprisingly, the model exhibits strong generalizability for extreme events, producing events of higher intensity and rarity that still match the realistic statistics. This paves the way for producing synthetic high-quality datasets for pretraining various downstream applications of Lagrangian turbulence.

Li, T., Biferale, L., Bonaccorso, F., Scarpolini, M.a., Buzzicotti, M. (2024). Synthetic Lagrangian turbulence by generative diffusion models. NATURE MACHINE INTELLIGENCE, 6(4), 393-403 [10.1038/s42256-024-00810-0].

Synthetic Lagrangian turbulence by generative diffusion models

Li, T.
;
Biferale, L.;Bonaccorso, F.;Scarpolini, M. A.;Buzzicotti, M.
2024-04-17

Abstract

Lagrangian turbulence lies at the core of numerous applied and fundamental problems related to the physics of dispersion and mixing in engineering, biofluids, the atmosphere, oceans and astrophysics. Despite exceptional theoretical, numerical and experimental efforts conducted over the past 30 years, no existing models are capable of faithfully reproducing statistical and topological properties exhibited by particle trajectories in turbulence. We propose a machine learning approach, based on a state-of-the-art diffusion model, to generate single-particle trajectories in three-dimensional turbulence at high Reynolds numbers, thereby bypassing the need for direct numerical simulations or experiments to obtain reliable Lagrangian data. Our model demonstrates the ability to reproduce most statistical benchmarks across time scales, including the fat-tail distribution for velocity increments, the anomalous power law and the increased intermittency around the dissipative scale. Slight deviations are observed below the dissipative scale, particularly in the acceleration and flatness statistics. Surprisingly, the model exhibits strong generalizability for extreme events, producing events of higher intensity and rarity that still match the realistic statistics. This paves the way for producing synthetic high-quality datasets for pretraining various downstream applications of Lagrangian turbulence.
17-apr-2024
Pubblicato
Rilevanza internazionale
Articolo
Esperti anonimi
Settore FIS/02
Settore PHYS-02/A - Fisica teorica delle interazioni fondamentali, modelli, metodi matematici e applicazioni
English
Con Impact Factor ISI
Li, T., Biferale, L., Bonaccorso, F., Scarpolini, M.a., Buzzicotti, M. (2024). Synthetic Lagrangian turbulence by generative diffusion models. NATURE MACHINE INTELLIGENCE, 6(4), 393-403 [10.1038/s42256-024-00810-0].
Li, T; Biferale, L; Bonaccorso, F; Scarpolini, Ma; Buzzicotti, M
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2108/391988
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