Bayesian Optimization with Application to Computer Experiments / SpringerBriefs in Statistics (PDF)
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Compact and accessible, the volume is broken down into four chapters. Chapter 1 introduces the reader to the topic of computer experiments; it includes a variety of examples across many industries. Chapter 2 focuses on the task of surrogate model building and contains a mix of several different surrogate models that are used in the computer modeling and machine learning communities. Chapter 3 introduces the core concepts of Bayesian optimization and discusses unconstrained optimization. Chapter 4 moves on to constrained optimization, and showcases some of the most novel methods found in the field.
This will be a useful companion to researchers and practitioners working with computer experiments and computer modeling. Additionally, readers with a background in machine learning but minimal background in computer experiments will find this book an interesting case study of the applicability of Bayesian optimization outside the realm of machine learning.
Herbert Lee is Professor of Statistics in the Baskin School of Engineering at the University of California, Santa Cruz. He currently also serves as Vice Provost for Academic Affairs. He received his Ph.D. from the Department of Statistics at Carnegie Mellon University and completed a postdoc at Duke University. His research interests include Bayesian statistics, computer simulation experiments, inverse problems, and spatial statistics.
- Autoren: Tony Pourmohamad , Herbert K. H. Lee
- 2021, 1st ed. 2021, 104 Seiten, Englisch
- Verlag: Springer International Publishing
- ISBN-10: 3030824586
- ISBN-13: 9783030824587
- Erscheinungsdatum: 04.10.2021
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- Dateiformat: PDF
- Grösse: 8.15 MB
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