Bulletin of the American Physical Society
66th Annual Meeting of the APS Division of Plasma Physics
Monday–Friday, October 7–11, 2024; Atlanta, Georgia
Session TO08: Beam and Relativistic Plasma Diagnostics
9:30 AM–12:18 PM,
Thursday, October 10, 2024
Hyatt Regency
Room: The Learning Center (Fixed)
Chair: Hongmei Tang, University of Michigan
Abstract: TO08.00004 : Use of Neural Networks to Unfold High Energy X-Ray Spectra
10:06 AM–10:18 AM
Presenter:
Mariana Alvarado Alvarez
(Los Alamos National Laboratory)
Authors:
Mariana Alvarado Alvarez
(Los Alamos National Laboratory)
Chun-Shang Wong
(Los Alamos National Laboratory)
Bradley T Wolfe
(Los Alamos National Laboratory)
Scott V Luedtke
(Los Alamos National Laboratory)
Joseph Strehlow
(Los Alamos National Laboratory)
Alemayahu Bogale
(Los Alamos National Laboratory)
David P Broughton
(Los Alamos National Laboratory)
Chengkun Huang
(Los Alamos Natl Lab)
Robert E Reinovsky
(Los Alamos Natl Lab)
Zhehui Wang
(LANL)
Steven Howard Batha
(Los Alamos Natl Lab)
In previous work we demonstrated how a Neural Network (NN) can unfold spectra for synthetic data at low energies (<1MeV) [1]. The NN predictions were highly accurate for spectra of two different distributions (exponential and gaussian) for five simple FSS designs. Here we expand the model to more complex FSS, previously fielded experimentally, and spectra distributions extending up to 40 MeV. Extending the energy range greatly increases the challenge for unfolding, as photons in the MeV range all have similar attenuation coefficients in high-Z materials. To determine the efficacy of the NN approach, we compare its reconstruction error on synthetic data to a previously developed algorithm that unfolds spectra without a priori assumptions of spectral shape [2].
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