LAPSE:2023.34468
Published Article
LAPSE:2023.34468
Sensitivity-Informed Bayesian Inference for Home PLC Network Models with Unknown Parameters
April 27, 2023
Abstract
Bayesian inference is used to calibrate a bottom-up home PLC network model with unknown loads and wires at frequencies up to 30 MHz. A network topology with over 50 parameters is calibrated using global sensitivity analysis and transitional Markov Chain Monte Carlo (TMCMC). The sensitivity-informed Bayesian inference computes Sobol indices for each network parameter and applies TMCMC to calibrate the most sensitive parameters for a given network topology. A greedy random search with TMCMC is used to refine the discrete random variables of the network. This results in a model that can accurately compute the transfer function despite noisy training data and a high dimensional parameter space. The model is able to infer some parameters of the network used to produce the training data, and accurately computes the transfer function under extrapolative scenarios.
Keywords
Bayesian inference, channel calibration, home network, power line communications (PLC), Transitional Markov Chain Monte Carlo
Suggested Citation
Ching DS, Safta C, Reichardt TA. Sensitivity-Informed Bayesian Inference for Home PLC Network Models with Unknown Parameters. (2023). LAPSE:2023.34468
Author Affiliations
Ching DS: Sandia National Laboratories, 7011 East Ave., Livermore, CA 94550, USA [ORCID]
Safta C: Sandia National Laboratories, 7011 East Ave., Livermore, CA 94550, USA [ORCID]
Reichardt TA: Sandia National Laboratories, 7011 East Ave., Livermore, CA 94550, USA [ORCID]
Journal Name
Energies
Volume
14
Issue
9
First Page
2402
Year
2021
Publication Date
2021-04-23
ISSN
1996-1073
Version Comments
Original Submission
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PII: en14092402, Publication Type: Journal Article
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LAPSE:2023.34468
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https://doi.org/10.3390/en14092402
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Apr 27, 2023
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