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Inverse Problem Theory and Methods for Model Parameter Estimation

Parámetros

  • 352 páginas
  • 13 horas de lectura

Más información sobre el libro

The use of actual observations to infer the properties of a model is an inverse problem, which are often difficult as they may not have a unique solution. This book proposes a general approach that is valid for linear as well as for nonlinear problems. The philosophy is essentially probabilistic and allows the reader to understand the basic difficulties appearing in the resolution of inverse problems. The book attempts to explain how a method of acquisition of information can be applied to actual real-world problems, including many heuristic arguments. Prompted by recent developments in inverse theory, this text is a completely rewritten version of a 1987 book by the same author, and includes many algorithmic details for Monte Carlo methods, least-squares discrete problems, and least-squares problems involving functions. In addition, some notions are clarified, the role of optimization techniques is underplayed, and Monte Carlo methods are taken much more seriously.

Compra de libros

Inverse Problem Theory and Methods for Model Parameter Estimation, Albert Tarantola

Idioma
Publicado en
2005
Encuadernación
(Tapa blanda),
Estado del libro
Bueno
Precio
83,99 €

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Título
Inverse Problem Theory and Methods for Model Parameter Estimation
Idioma
Inglés
Formato
Tapa blanda
Páginas
352
ISBN10
0898715725
ISBN13
9780898715729
Serie
Etiquetas
EE.UU.
Descripción
The use of actual observations to infer the properties of a model is an inverse problem, which are often difficult as they may not have a unique solution. This book proposes a general approach that is valid for linear as well as for nonlinear problems. The philosophy is essentially probabilistic and allows the reader to understand the basic difficulties appearing in the resolution of inverse problems. The book attempts to explain how a method of acquisition of information can be applied to actual real-world problems, including many heuristic arguments. Prompted by recent developments in inverse theory, this text is a completely rewritten version of a 1987 book by the same author, and includes many algorithmic details for Monte Carlo methods, least-squares discrete problems, and least-squares problems involving functions. In addition, some notions are clarified, the role of optimization techniques is underplayed, and Monte Carlo methods are taken much more seriously.