Bayesian Inverse Problems: Fundamentals and Engineering Applications

Author:   Juan Chiachio-Ruano (University of Nottingham, UK) ,  Manuel Chiachio-Ruano (University of Nottingham, UK) ,  Shankar Sankararaman (NASA Ames Research Center, Moffett Field, CA, USA)
Publisher:   Taylor & Francis Ltd
ISBN:  

9781138035850


Pages:   232
Publication Date:   11 November 2021
Format:   Hardback
Availability:   In Print   Availability explained
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Bayesian Inverse Problems: Fundamentals and Engineering Applications


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Overview

This book is devoted to a special class of engineering problems called Bayesian inverse problems. These problems comprise not only the probabilistic Bayesian formulation of engineering problems, but also the associated stochastic simulation methods needed to solve them. Through this book, the reader will learn how this class of methods can be useful to rigorously address a range of engineering problems where empirical data and fundamental knowledge come into play. The book is written for a non-expert audience and it is contributed to by many of the most renowned academic experts in this field.

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Author:   Juan Chiachio-Ruano (University of Nottingham, UK) ,  Manuel Chiachio-Ruano (University of Nottingham, UK) ,  Shankar Sankararaman (NASA Ames Research Center, Moffett Field, CA, USA)
Publisher:   Taylor & Francis Ltd
Imprint:   CRC Press
Weight:   0.680kg
ISBN:  

9781138035850


ISBN 10:   1138035858
Pages:   232
Publication Date:   11 November 2021
Audience:   Professional and scholarly ,  College/higher education ,  Professional & Vocational ,  Tertiary & Higher Education
Format:   Hardback
Publisher's Status:   Active
Availability:   In Print   Availability explained
This item will be ordered in for you from one of our suppliers. Upon receipt, we will promptly dispatch it out to you. For in store availability, please contact us.

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Juan Chiachío-Ruano is an Associate Professor of Structural Engineering at University of Granada (Spain), and a researcher at the Andalusian Research Institute in Data Science and Computational Intelligence (DaSCI). He has devoted his research career to the study and development of Bayesian methods in application to a wide range of Mechanical and Structural Engineering problems. Prior to joining University of Granada, he has developed a significant international research career working at top academic institutions in the UK and the USA. Manuel Chiachío-Ruano holds a PhD in Structural Engineering (2014) by the University of Granada (Spain). Currently, he is Associate Professor and Head of the Intelligent Prognostics and Cyber-physical Structural Systems Laboratory (iPHMLab) at the University of Granada. He has developed a significant part of his research in collaboration with the California Institute of Technology (USA), the University of Nottingham (UK) and NASA Ames Research Center (USA), during his stays at these institutions. Shankar Sankararaman received his PhD in Civil Engineering from Vanderbilt University, Nashville, TN, USA, in 2012. Soon after, he joined NASA Ames Research Center, where he developed Machine Learning algorithms and Bayesian methods for system health monitoring, prognostics, decision-making, and uncertainty management. Dr Sankararaman has co-authored a book on prognostics and published over 100 technical articles in international journals and conferences. Presently, Shankar is a scientist at Intuit AI, where he focuses on implementing cutting edge research in products and solutions for Intuit’s customers.

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