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Gaussian process tomography for soft x-ray spectroscopy at WEST without equilibrium information.

作者信息

Wang T, Mazon D, Svensson J, Li D, Jardin A, Verdoolaege G

机构信息

Southwestern Institute for Physics, CNNC, C-610200 Chengdu, China.

Institute for Magnetic Fusion Research, CEA, F-13115 Saint-Paul-lez-Durance, France.

出版信息

Rev Sci Instrum. 2018 Jun;89(6):063505. doi: 10.1063/1.5023162.

Abstract

Gaussian process tomography (GPT) is a recently developed tomography method based on the Bayesian probability theory [J. Svensson, JET Internal Report EFDA-JET-PR(11)24, 2011 and Li et al., Rev. Sci. Instrum. 84, 083506 (2013)]. By modeling the soft X-ray (SXR) emissivity field in a poloidal cross section as a Gaussian process, the Bayesian SXR tomography can be carried out in a robust and extremely fast way. Owing to the short execution time of the algorithm, GPT is an important candidate for providing real-time reconstructions with a view to impurity transport and fast magnetohydrodynamic control. In addition, the Bayesian formalism allows quantifying uncertainty on the inferred parameters. In this paper, the GPT technique is validated using a synthetic data set expected from the WEST tokamak, and the results are shown of its application to the reconstruction of SXR emissivity profiles measured on Tore Supra. The method is compared with the standard algorithm based on minimization of the Fisher information.

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