Fundamentals of stochastic filtering
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Author
Contributions
- Crisan, Dan. - Contributor
Publication
2009 - Springer, New York, New York (State)
Language
English
Word Count
97,500 words, Guess
Page Count
390 pages
Identifiers
- Internet Archivefundamentalsstoc00bain
- Internet Archivefundamentalsstoc00bain_627
- ISBN-100387768955
- ISBN-139780387768953
- LibraryThing8250808
and 5 more
- Goodreads2221118
- Library of Congress Control Number2008938477
- OCLC Control Number213479403
- Better World Books9780387768953
- Open LibraryOL23202311M
Classifications
- DDC519.22
- LCCQA274 .B33 2009
- LCCQA1-939
Description
"The objective of stochastic filtering is to determine the best estimate for the state of a stochastic dynamical system from partial observations. The solution of this problem in the linear case is the well known Kalman-Bucy filter which has found widespread practical application. The purpose of this book is to provide a rigorous mathematical treatment of the non-linear stochastic filtering problem using modern methods. Particular emphasis is placed on the theoretical analysis of numerical methods for the solution of the filtering problem via particle methods." "The book should provide sufficient background to enable study of the recent literature. While no prior knowledge of stochastic filtering is required, readers are assumed to be familiar with measure theory, probability theory and the basics of stochastic processes. Most of the technical results that are required are stated and proved in the appendices." "The book is intended as a reference for graduate students and researchers interested in the field. It is also suitable for use as a text for a graduate level course on stochastic filtering. Suitable exercises and solutions are included."--Jacket.
Subjects
Series Statement
- Stochastic modelling and applied probability -- 60
Other Editions
- Fundamentals of stochastic filtering
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