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Bayesian Parameter Identification and Model Selection for Normalized Modulus Reduction Curves of Soils
Authors:Oluwatosin Victor Akeju  Yu Wang
Affiliation:Department of Architecture and Civil Engineering, City University of Hong Kong, Kowloon, Hong Kong
Abstract:This work develops a procedure that involves the use of Bayesian approach to quantify data scatterness, estimates the optimal values of model parameters, and selects the most appropriate model for the construction of normalized modulus reduction curves of soils. The proposed procedure is then demonstrated using real observation data based on a set of comprehensive resonant column tests on coarse-grained soils conducted in the study.
Keywords:Bayesian Approach  Parameter Identification  Model Selection  Normalized Modulus Reduction Curves  Resonant Column Test  Hyperbolic Model
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