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TGLF-WINN: data-efficient deep learning surrogate for turbulent transport modeling in fusion

The trapped Gyro-Landau Fluid (TGLF) model provides fast, accurate predictions of turbulent transport in tokamaks, but whole device simulations requiring thousands of evaluations remain computationally expensive. Neural network (NN) surrogates offer accelerated inference with fully differentiable ap...

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Bibliografiske detaljer
Principais autores: Yadi Cao, Futian Zhang, Wesley Liu, Tom Neiser, Orso Meneghini, Lawson Fuller, Sterling Smith, Raffi Nazikian, Brian Sammuli, Rose Yu
Format: Artigo
Sprog:Inglês
Udgivet: IOP Publishing 2026-01-01
Serier:Nuclear Fusion
Fag:
Online adgang:https://doi.org/10.1088/1741-4326/ae72a6
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