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Bayesian active learning with model selection for spectral experiments
by
Nagata, Kenji
, Mizumaki, Masaichiro
, Okada, Masato
, Katakami, Shun
, Nabika, Tomohiro
in
639/705/1046
/ 639/766
/ Accuracy
/ Active learning
/ Bayesian analysis
/ Candidates
/ Experiments
/ Humanities and Social Sciences
/ Learning
/ Mathematical models
/ multidisciplinary
/ Parameter estimation
/ Photoelectron spectroscopy
/ Probability
/ Science
/ Science (multidisciplinary)
/ Spectrum analysis
2024
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Bayesian active learning with model selection for spectral experiments
by
Nagata, Kenji
, Mizumaki, Masaichiro
, Okada, Masato
, Katakami, Shun
, Nabika, Tomohiro
in
639/705/1046
/ 639/766
/ Accuracy
/ Active learning
/ Bayesian analysis
/ Candidates
/ Experiments
/ Humanities and Social Sciences
/ Learning
/ Mathematical models
/ multidisciplinary
/ Parameter estimation
/ Photoelectron spectroscopy
/ Probability
/ Science
/ Science (multidisciplinary)
/ Spectrum analysis
2024
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Do you wish to request the book?
Bayesian active learning with model selection for spectral experiments
by
Nagata, Kenji
, Mizumaki, Masaichiro
, Okada, Masato
, Katakami, Shun
, Nabika, Tomohiro
in
639/705/1046
/ 639/766
/ Accuracy
/ Active learning
/ Bayesian analysis
/ Candidates
/ Experiments
/ Humanities and Social Sciences
/ Learning
/ Mathematical models
/ multidisciplinary
/ Parameter estimation
/ Photoelectron spectroscopy
/ Probability
/ Science
/ Science (multidisciplinary)
/ Spectrum analysis
2024
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Bayesian active learning with model selection for spectral experiments
Journal Article
Bayesian active learning with model selection for spectral experiments
2024
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Overview
Active learning is a common approach to improve the efficiency of spectral experiments. Model selection from the candidates and parameter estimation are often required in the analysis of spectral experiments. Therefore, we proposed an active learning with model selection method using multiple parametric models as learning models. Important points for model selection and its parameter estimation were actively measured using Bayesian posterior distribution. The present study demonstrated the effectiveness of our proposed method for spectral deconvolution and Hamiltonian selection in X-ray photoelectron spectroscopy.
Publisher
Nature Publishing Group UK,Nature Publishing Group,Nature Portfolio
Subject
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