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research article

Deep neural networks for plasma tomography with applications to JET and COMPASS

Carvalho, D. D.
•
Ferreira, D. R.
•
Carvalho, P. J.
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September 1, 2019
Journal Of Instrumentation

Convolutional neural networks (CNNs) have found applications in many image processing tasks, such as feature extraction, image classification, and object recognition. It has also been shown that the inverse of CNNs, so-called deconvolutional neural networks, can be used for inverse problems such as plasma tomography. In essence, plasma tomography consists in reconstructing the 2D plasma profile on a poloidal cross-section of a fusion device, based on line-integrated measurements from multiple radiation detectors. Since the reconstruction process is computationally intensive, a deconvolutional neural network trained to produce the same results will yield a significant computational speedup, at the expense of a small error which can be assessed using different metrics. In this work, we discuss the design principles behind such networks, including the use of multiple layers, how they can be stacked, and how their dimensions can be tuned according to the number of detectors and the desired tomographic resolution for a given fusion device. We describe the application of such networks at JET and COMPASS, where at JET we use the bolometer system, and at COMPASS we use the soft X-ray diagnostic based on photodiode arrays.

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Type
research article
DOI
10.1088/1748-0221/14/09/C09011
Web of Science ID

WOS:000486989800011

Author(s)
Carvalho, D. D.
Ferreira, D. R.
Carvalho, P. J.
Imrisek, M.
Mlynar, J.
Fernandes, H.
Abduallev, S.
Abhangi, M.
Abreu, P.
Afanasev, V
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Date Issued

2019-09-01

Published in
Journal Of Instrumentation
Volume

14

Article Number

C09011

Subjects

Instruments & Instrumentation

•

computerized tomography (ct) and computed radiography (cr)

•

plasma diagnostics - interferometry, spectroscopy and imaging

Note

3rd European Conference on Plasma Diagnostics (ECPD), May 06-10, 2019, Lisbon, PORTUGAL

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
SPC  
Available on Infoscience
November 6, 2019
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/162740
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