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Book

Adaptive Filtering Primer With Matlab®

Book

Adaptive Filtering Primer With Matlab®

DOI link for Adaptive Filtering Primer With Matlab®

Adaptive Filtering Primer With Matlab® book

Adaptive Filtering Primer With Matlab®

DOI link for Adaptive Filtering Primer With Matlab®

Adaptive Filtering Primer With Matlab® book

ByAlexander D. Poularikas, Zayed M. Ramadan
Edition 1st Edition
First Published 2006
eBook Published 31 January 2017
Pub. Location Boca Raton
Imprint CRC Press
DOI https://doi.org/10.1201/9781315221946
Pages 240
eBook ISBN 9781315221946
Subjects Engineering & Technology
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Ramadan, Z.M., & Poularikas, A.D. (2006). Adaptive Filtering Primer with MATLAB (1st ed.). CRC Press. https://doi.org/10.1201/9781315221946

ABSTRACT

Because of the wide use of adaptive filtering in digital signal processing and, because most of the modern electronic devices include some type of an adaptive filter, a text that brings forth the fundamentals of this field was necessary. The material and the principles presented in this book are easily accessible to engineers, scientists, and students who would like to learn the fundamentals of this field and have a background at the bachelor level.

Adaptive Filtering Primer with MATLAB® clearly explains the fundamentals of adaptive filtering supported by numerous examples and computer simulations. The authors introduce discrete-time signal processing, random variables and stochastic processes, the Wiener filter, properties of the error surface, the steepest descent method, and the least mean square (LMS) algorithm. They also supply many MATLAB® functions and m-files along with computer experiments to illustrate how to apply the concepts to real-world problems. The book includes problems along with hints, suggestions, and solutions for solving them. An appendix on matrix computations completes the self-contained coverage.

With applications across a wide range of areas, including radar, communications, control, medical instrumentation, and seismology, Adaptive Filtering Primer with MATLAB® is an ideal companion for quick reference and a perfect, concise introduction to the field.

TABLE OF CONTENTS

chapter 1|45 pages

Introduction

chapter 2|45 pages

Discrete-time signal processing

chapter 3|45 pages

Random variables, sequences, and stochastic processes

chapter 4|-53 pages

Wiener filters

chapter 5|8 pages

Eigenvalues of Rx — properties of the error surface

chapter 6|16 pages

Newton and steepest-descent method

chapter 7|36 pages

The least mean-square (LMS) algorithm

chapter 8|34 pages

Variations of LMS algorithms

chapter 9|32 pages

Least squares and recursive least-squares signal processing

chapter |2 pages

Abbreviations

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