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High-Order Deterministic Sensitivity Analysis and Uncertainty Quantification: Review and New Developments

Dan Gabriel Cacuci

2021Englishsensitivity analysisuncertainty quantificationnonlinear systemsadjoint methodsnuclear engineeringneutron transport

Abstract

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This work reviews the state-of-the-art methodologies for the deterministic sensitivity analysis of nonlinear systems and deterministic quantification of uncertainties induced in model responses by uncertainties in the model parameters. The need for computing high-order sensitivities is underscored by presenting an analytically solvable model of neutron scattering in a hydrogenous medium, for which all of the response’s relative sensitivities have the same absolute value of unity. It is shown that the wider the distribution of model parameters, the higher the order of sensitivities needed to achieve a desired level of accuracy in representing the response and in computing the response’s expectation, variance, skewness and kurtosis. This work also presents new mathematical expressions that extend to the sixth-order of the current state-of-the-art fourth-order formulas for computing fourth-order correlations among computed model response and model parameters. Another novelty presented in this work is the mathematical framework of the 3rd-Order Comprehensive Adjoint Sensitivity Analysis Methodology for Nonlinear Systems (3rd-CASAM-N), which enables the most efficient computation of the exact expressions of the 1st-, 2nd- and 3rd-order functional derivatives (“sensitivities”) of a model’s response to the underlying model parameters.

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Cite This Work

@article{86441aaf-57c7-49a0-8fef-dbd36bbb513a,
  title={High-Order Deterministic Sensitivity Analysis and Uncertainty Quantification: Review and New Developments},
  author={Dan Gabriel Cacuci},
  year={2021},
  language={English}
}
TY  - JOUR
TI  - High-Order Deterministic Sensitivity Analysis and Uncertainty Quantification: Review and New Developments
AU  - Dan Gabriel Cacuci
PY  - 2021
LA  - English
ER  -

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