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A bayesian framework for optimal experimental design in structural dynamics

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Auteur
Argyris C., Papadimitriou C.
Date
2016
Language
en
DOI
10.1007/978-3-319-29754-5_26
Sujet
Bayesian networks
Design
Dynamics
Fiber optic sensors
Fisher information matrix
Function evaluation
Inference engines
Optimal systems
Statistics
Structural dynamics
Uncertainty analysis
Asymptotic technique
Bayesian inference
Bayesian optimal experimental designs
Information entropy
Modal identification
Optimal experimental designs
Relative entropy
Structural modeling
Design of experiments
Springer New York LLC
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Résumé
A Bayesian framework for optimal experimental design in structural dynamics is presented. The optimal design is based on an expected utility function that measures the value of the information arising from alternative experimental designs and takes into account the uncertainties in model parameters and model prediction error. The evaluation of the expected utility function requires a large number of structural model simulations. Asymptotic techniques are used to simplify the expected utility functions under small model prediction error uncertainties, providing insight into the optimal design and drastically reducing the computation effort involved in the evaluation of the multi-dimensional integrals that arise. The framework is demonstrated using the design of sensors for modal identification and is applied to the design of a small number of reference sensors for experiments involving multiple sensor configuration setups accomplished with reference and moving sensors. In contrast to previous formulations, the Bayesian optimal experimental design overcomes the problem of the ill-conditioned Fisher information matrix for small number of reference sensors by exploiting the information in the prior distribution. © The Society for Experimental Mechanics, Inc. 2016.
URI
http://hdl.handle.net/11615/70779
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  • Δημοσιεύσεις σε περιοδικά, συνέδρια, κεφάλαια βιβλίων κλπ. [19735]

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