Finite Element Model Updating Using Computational Intelligence Techniques

Finite Element Model Updating Using Computational Intelligence Techniques

EnglishHardbackPrint on demand
Marwala, Tshilidzi
Springer London Ltd
EAN: 9781849963220
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Detailed information

FEM updating allows FEMs to be tuned better to reflect measured data. It can be conducted using two different statistical frameworks: the maximum likelihood approach and Bayesian approaches. This book applies both strategies to the field of structural mechanics, using vibration data. Computational intelligence techniques including: multi-layer perceptron neural networks; particle swarm and GA-based optimization methods; simulated annealing; response surface methods; and expectation maximization algorithms, are proposed to facilitate the updating process. Based on these methods, the most appropriate updated FEM is selected, a problem that traditional FEM updating has not addressed. This is found to incorporate engineering judgment into finite elements through the formulations of prior distributions. Case studies, demonstrating the principles test the viability of the approaches, and. by critically analysing the state of the art in FEM updating, this book identifies new research directions.
EAN 9781849963220
ISBN 1849963223
Binding Hardback
Publisher Springer London Ltd
Publication date June 10, 2010
Pages 250
Language English
Dimensions 235 x 155
Country United Kingdom
Readership Professional & Scholarly
Authors Marwala, Tshilidzi
Illustrations XV, 250 p.
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