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Computational Methods for Inverse Problems

, Volume 10
Copertina anteriore
3 Recensioni
SIAM, 2002 - 183 pagine
Inverse problems arise in a number of important practical applications, ranging from biomedical imaging to seismic prospecting. This book provides the reader with a basic understanding of both the underlying mathematics and the computational methods used to solve inverse problems. It also addresses specialized topics like image reconstruction, parameter identification, total variation methods, nonnegativity constraints, and regularization parameter selection methods. Because inverse problems typically involve the estimation of certain quantities based on indirect measurements, the estimation process is often ill-posed. Regularization methods, which have been developed to deal with this ill-posedness, are carefully explained in the early chapters of Computational Methods for Inverse Problems. The book also integrates mathematical and statistical theory with applications and practical computational methods, including topics like maximum likelihood estimation and Bayesian estimation.
  

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Review: Computational Methods For Inverse Problems

Recensione dell'utente  - Johnathan - Goodreads

My mathematical bible. Leggi recensione completa

Review: Computational Methods for Inverse Problems

Recensione dell'utente  - Joecolelife - Goodreads

It is really a good book on inverse problems. And it is cool that they give you a disk with matlab functions, and the date for the examples. But I think that book is focus on the wrong things: some of the chapters could be removed, and some new chapters could be added. Leggi recensione completa

Libri correlati

Indice

Analytical Tools
13
Numerical Optimization Tools
29
Statistical Estimation Theory
41
Image Deblurring
59
Parameter Identification
85
Regularization Parameter Selection Methods
97
Contents xi
107
Total Variation Regularization
129
Nonnegativity Constraints
151
Bibliography
173
Copyright

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