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Bayesian Signal Processing : Classical, Modern, and Particle Filtering Methods - James V. Candy

Bayesian Signal Processing

Classical, Modern, and Particle Filtering Methods

By: James V. Candy

Hardcover | 1 July 2016 | Edition Number 2

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Presents the Bayesian approach to statistical signal processing for a variety of useful model sets 

This book aims to give readers a unified Bayesian treatment starting from the basics (Bayeâs rule) to the more advanced (Monte Carlo sampling), evolving to the next-generation model-based techniques (sequential Monte Carlo sampling). This next edition incorporates a new chapter on âSequential Bayesian Detection,â a new section on âEnsemble Kalman Filtersâ as well as an expansion of Case Studies that detail Bayesian solutions for a variety of applications. These studies illustrate Bayesian approaches to real-world problems incorporating detailed particle filter designs, adaptive particle filters and sequential Bayesian detectors. In addition to these major developments a variety of sections are expanded to âfill-in-the gapsâ of the first edition. Here metrics for particle filter (PF) designs with emphasis on classical âsanity testingâ lead to ensemble techniques as a basic requirement for performance analysis. The expansion of information theory metrics and their application to PF designs is fully developed and applied. These expansions of the book have been updated to provide a more cohesive discussion of Bayesian processing with examples and applications enabling the comprehension of alternative approaches to solving estimation/detection problems.

The second edition of Bayesian Signal Processing features: 

  • âClassicalâ Kalman filtering for linear, linearized, and nonlinear systems; âmodernâ unscented and ensemble Kalman filters: and the ânext-generationâ Bayesian particle filters
  • Sequential Bayesian detection techniques incorporating model-based schemes for a variety of real-world problems
  • Practical Bayesian processor designs including comprehensive methods of performance analysis ranging from simple sanity testing and ensemble techniques to sophisticated information metrics
  • New case studies on adaptive particle filtering and sequential Bayesian detection are covered detailing more Bayesian approaches to applied problem solving
  • MATLAB® notes at the end of each chapter help readers solve complex problems using readily available software commands and point out other software packages available
  • Problem sets included to test readersâ knowledge and help them put their new skills into practice Bayesian 
Signal Processing, Second Edition is written for all students, scientists, and engineers who investigate and apply signal processing to their everyday problems.

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