Εμφάνιση απλής εγγραφής

dc.creatorAngelikopoulos, P.en
dc.creatorPapadimitriou, C.en
dc.creatorKoumoutsakos, P.en
dc.date.accessioned2015-11-23T10:22:26Z
dc.date.available2015-11-23T10:22:26Z
dc.date.issued2015
dc.identifier10.1016/j.cma.2015.01.015
dc.identifier.issn0045-7825
dc.identifier.urihttp://hdl.handle.net/11615/25633
dc.description.abstractThe Bayesian inference of models associated with large-scale simulations is prohibitively expensive even for massively parallel architectures. We demonstrate that we can drastically reduce this cost by combining adaptive kriging with the population-based Transitional Markov Chain Monte Carlo (TMCMC) techniques. For uni-modal posterior probability distribution functions (PDF), the proposed hybrid method can reduce the computational cost by an order of magnitude with the same computational resources. For complex posterior PDF landscapes we show that it is necessary to further extend the TMCMC by Langevin adjusted proposals. The proposed hybrid method exhibits high parallel efficiency. We demonstrate the capabilities of our method on test bed problems and on high fidelity simulations in structural dynamics. (C) 2015 Elsevier B.V. All rights reserved.en
dc.sourceComputer Methods in Applied Mechanics and Engineeringen
dc.source.uri<Go to ISI>://WOS:000352082400019
dc.subjectBayesian inferenceen
dc.subjectTransitional MCMCen
dc.subjectLangevin diffusionsen
dc.subjectSurrogatesen
dc.subjectKrigingen
dc.subjectStructural dynamicsen
dc.subjectMONTE-CARLO-SIMULATIONen
dc.subjectSTRUCTURAL RELIABILITY-ANALYSISen
dc.subjectNEURAL-NETWORKSen
dc.subjectMETROPOLIS ALGORITHMen
dc.subjectSUBSET SIMULATIONen
dc.subjectSAMPLINGen
dc.subjectMETHODSen
dc.subjectOPTIMIZATIONen
dc.subjectAPPROXIMATIONSen
dc.subjectSELECTIONen
dc.subjectUNCERTAINTYen
dc.subjectEngineering, Multidisciplinaryen
dc.subjectMathematics, Interdisciplinaryen
dc.subjectApplicationsen
dc.subjectMechanicsen
dc.titleX-TMCMC: Adaptive kriging for Bayesian inverse modelingen
dc.typejournalArticleen


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