Introduction to Optimal Estimation

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Author:Kamen, Edward W.
Date of Publication: 1999
Book classification:Engineering,English Books
No. of pages:400 Pages
Format:Paperback

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About this Product

Developed from a set of lecture notes by Professor Kamen and since developed and refined by both authors, this introductory yet comprehensive study is a prime example in its field. There are examples in the book that use MATLAB<sup>(R)</sup> and many of the problems discussed require the use of MATLAB<sup>â</sup>. The primary objective is to provide students with an extensive coverage of Wiener and Kalman filtering along with the development of least squares estimation, maximum likelihood estimation and maximum a</em> posteriori</em> estimation, based on discrete-time measurements. In the study of these estimation techniques there is a strong emphasis on how they interrelate and fit together to form a systematic development of optimal estimation. Also included in the text is a chapter on nonlinear filtering focusing on the extended Kalman filter and a recently-developed nonlinear estimator based on a block-form version of the Levenberg-Marquardt algorithm.</p>
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SKU9781852331337
Manufacturer Number9781852331337
year published1999
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