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Bayesian Signal Processing Classical, Modern, and Particle Filtering Methods (Adaptive and Cognitive Dynamic Systems Signal Processing, Learning, Communications and Control) 2nd Edition - James V. Candy 2016 PDF Wiley-IEEE Press BOOKS SCIENCE AND STUDY
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Bayesian Signal Processing Classical, Modern, and Particle Filtering Methods (Adaptive and Cognitive Dynamic Systems Signal Processing, Learning, Communications and Control) 2nd Edition
Author: James V. Candy
Year: 2016
Number of pages: 631
Format: PDF
File size: 14.9 MB
Language: ENG

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 (Baye’s 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 “Sequential Bayesian Detection,” a new section on “Ensemble Kalman Filters” 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 “fill-in-the gaps” of the first edition. Here metrics for particle filter (PF) designs with emphasis on classical “sanity testing” 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.

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