An Introduction to Data Analysis and Uncertainty Quantification for Inverse Problems
Language: English
Published by SIAM-Society for Industrial & Applied Mathematics, 2017
- Softcover
- Used

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- Title
- An Introduction to Data Analysis and Uncertainty Quantification for Inverse Problems
- Author
- Luis Tenorio
- Publisher
- SIAM-Society for Industrial & Applied Mathematics
- Publication year
- 2017
- Condition
- good
- Binding
- Soft cover
- Language
- English
- ISBN 10
- 1611974917
- ISBN 13
- 9781611974911
This book bridges applied mathematics and statistics by providing a basic introduction to probability and statistics for uncertainty quantification in the context of inverse problems, as well as an introduction to statistical regularization of inverse problems. The author covers basic statistical inference, introduces the framework of ill-posed inverse problems, and explains statistical questions that arise in their applications.
An Introduction to Data Analysis and Uncertainty Quantification for Inverse Problems includes:many examples that explain techniques which are useful to address general problems arising in uncertainty quantification; Bayesian and non-Bayesian statistical methods and discussions of their complementary roles; and analysis of a real data set to illustrate the methodology covered throughout the book.
Audience: This book is intended for senior undergraduates and beginning graduate students in mathematics, engineering and physical sciences. The material spans from undergraduate statistics and probability to data analysis for inverse problems and probability distributions on infinite-dimensional spaces. It is also intended for researchers working on inverse problems and uncertainty quantification in geophysics, astrophysics, physics, and engineering. Because the statistical and probability methods covered have applications beyond inverse problems, the book may also be of interest to those people working in data science or in other applications of uncertainty quantification.
Contents: Chapter 1: An introduction to inverse problems; Chapter 2: A primer on statistical methods; Chapter 3: Applications to inverse problems I; Chapter 4: Applications to inverse problems II; Chapter 5: A nonlinear parameter estimation problem; Appendix A: Some results from analysis; Appendix B: Conditional probability and expectation.
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