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Application of a Bayesian Framework for Plasticity Model SelectionInterpretable Machine Learning (IML) has performed well when tasked with deriving constitutive material models. However, IML has been shown to prefer models that overfit noise in data, which tends to lead to bloat and a decrease in interpretability. Due to these issues, the ability of IML to reliably derive models that fit the data and are both interpretable and generalizable is limited. A method developed recently has shown promise to improve upon traditional IML by using a Bayesian fitness definition for the evolution of free-form models with non-deterministic parameters. This framework was developed for genetic-programming-based symbolic regression(GPSR) and involves model parameter estimation using Sequential Monte Carlo sampling (SMC).The method has demonstrated a reduction in bloat when dealing with noisy data in comparison to conventional GPSR. The results of this framework applied to stress-strain data for copper show models that more effectively predict the experimental data better than was previously shown with GPSR.
Document ID
20220012666
Acquisition Source
Langley Research Center
Document Type
Poster
Authors
Nolan Strauss
(University of Utah Salt Lake City, Utah, United States)
Karl Garbrecht
(University of Utah Salt Lake City, Utah, United States)
Geoffrey Bomarito
(Langley Research Center Hampton, Virginia, United States)
Patrick Leser
(Langley Research Center Hampton, Virginia, United States)
Jacob Hochhalter
(University of Utah Salt Lake City, Utah, United States)
Date Acquired
August 15, 2022
Subject Category
Metals And Metallic Materials
Meeting Information
Meeting: USACM Thematic Conference (TTA on Uncertainty Quantification and Probabilistic Modeling)
Location: Arlington, Virginia
Country: US
Start Date: August 18, 2022
End Date: August 19, 2022
Sponsors: United States Association for Computational Mechanics
Funding Number(s)
WBS: 981698.01.02.23.04
CONTRACT_GRANT: 80LARC17C0003
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
Technical Review
NASA Technical Management
Keywords
plasticity
symbolic regression
bayesian
model selection
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