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Bayesian Signal Processing: Classical, Modern, and Particle Filtering Methods (Adaptive and Cognitive Dynamic Systems: Signal Processing, Learning, Communications and Control) - Candy, James V.
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Candy, James V.:

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2009, ISBN: 9780470180945

Wiley?Blackwell, Hardcover, 472 Seiten, Publiziert: 2009-04-23T00:00:01Z, Produktgruppe: Book, 0.8 kg, Books Global Store, Special Features, Books, Networking & Security, Computing & Inte… Más…

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2009, ISBN: 9780470180945

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

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

2009, ISBN: 0470180943

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

ISBN: 9780470180945

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Bayesian Signal Processing: Classical, Modern and Particle Filtering Methods

New Bayesian approach helps you solve tough problems in signal processing with ease Signal processing is based on this fundamental concept--the extraction of critical information from noisy, uncertain data. Most techniques rely on underlying Gaussian assumptions for a solution, but what happens when these assumptions are erroneous? Bayesian techniques circumvent this limitation by offering a completely different approach that can easily incorporate non-Gaussian and nonlinear processes along with all of the usual methods currently available. This text enables readers to fully exploit the many advantages of the "Bayesian approach" to model-based signal processing. It clearly demonstrates the features of this powerful approach compared to the pure statistical methods found in other texts. Readers will discover how easily and effectively the Bayesian approach, coupled with the hierarchy of physics-based models developed throughout, can be applied to signal processing problems that previously seemed unsolvable. Bayesian Signal Processing features the latest generation of processors (particle filters) that have been enabled by the advent of high-speed/high-throughput computers. The Bayesian approach is uniformly developed in this book's algorithms, examples, applications, and case studies. Throughout this book, the emphasis is on nonlinear/non-Gaussian problems; however, some classical techniques (e.g. Kalman filters, unscented Kalman filters, Gaussian sums, grid-based filters, et al) are included to enable readers familiar with those methods to draw parallels between the two approaches. Special features include: * Unified Bayesian treatment starting from the basics (Bayes's rule) to the more advanced (Monte Carlo sampling), evolving to the next-generation techniques (sequential Monte Carlo sampling) * Incorporates "classical" Kalman filtering for linear, linearized, and nonlinear systems; "modern" unscented Kalman filters; and the "next-generation" Bayesian particle filters * Examples illustrate how theory can be applied directly to a variety of processing problems * Case studies demonstrate how the Bayesian approach solves real-world problems in practice * MATLAB(r) notes at the end of each chapter help readers solve complex problems using readily available software commands and point out software packages available * Problem sets test readers' knowledge and help them put their new skills into practice The basic Bayesian approach is emphasized throughout this text in order to enable the processor to rethink the approach to formulating and solving signal processing problems from the Bayesian perspective. This text brings readers from the classical methods of model-based signal processing to the next generation of processors that will clearly dominate the future of signal processing for years to come. With its many illustrations demonstrating the applicability of the Bayesian approach to real-world problems in signal processing, this text is essential for all students, scientists, and engineers who investigate and apply signal processing to their everyday problems.

Detalles del libro - Bayesian Signal Processing: Classical, Modern and Particle Filtering Methods


EAN (ISBN-13): 9780470180945
ISBN (ISBN-10): 0470180943
Tapa dura
Año de publicación: 2009
Editorial: Wiley-IEEE Press
445 Páginas
Peso: 0,735 kg
Idioma: eng/Englisch

Libro en la base de datos desde 2009-01-27T23:42:12+01:00 (Madrid)
Página de detalles modificada por última vez el 2023-07-05T20:30:55+02:00 (Madrid)
ISBN/EAN: 9780470180945

ISBN - escritura alterna:
0-470-18094-3, 978-0-470-18094-5
Mode alterno de escritura y términos de búsqueda relacionados:
Título del libro: bayesian, signa, signal band


Datos del la editorial

Autor: James V. Candy
Título: Adaptive and Learning Systems for Signal Processing, Communications, and Control Series; Bayesian Signal Processing - Classical, Modern and Particle Filtering Methods
Editorial: John Wiley & Sons
472 Páginas
Año de publicación: 2009-04-23
Peso: 0,818 kg
Idioma: Inglés
149,00 € (DE)
Not available (reason unspecified)
171mm x 242mm x 31mm

BB; GB; Hardcover, Softcover / Technik/Elektronik, Elektrotechnik, Nachrichtentechnik; Elektronik, Nachrichtentechnik; Electrical & Electronics Engineering; Elektrotechnik u. Elektronik; Engineering Statistics; Numerical Methods & Algorithms; Numerische Methoden u. Algorithmen; Signal Processing; Signalverarbeitung; Statistics; Statistik; Statistik in den Ingenieurwissenschaften; Technische Statistik; Numerische Methoden u. Algorithmen; Signalverarbeitung; Statistik in den Ingenieurwissenschaften; Digitale Signalverarbeitung (DSP)

New Bayesian approach helps you solve tough problems in signal processing with ease Signal processing is based on this fundamental concept-the extraction of critical information from noisy, uncertain data. Most techniques rely on underlying Gaussian assumptions for a solution, but what happens when these assumptions are erroneous? Bayesian techniques circumvent this limitation by offering a completely different approach that can easily incorporate non-Gaussian and nonlinear processes along with all of the usual methods currently available. This text enables readers to fully exploit the many advantages of the "Bayesian approach" to model-based signal processing. It clearly demonstrates the features of this powerful approach compared to the pure statistical methods found in other texts. Readers will discover how easily and effectively the Bayesian approach, coupled with the hierarchy of physics-based models developed throughout, can be applied to signal processing problems that previously seemed unsolvable. Bayesian Signal Processing features the latest generation of processors (particle filters) that have been enabled by the advent of high-speed/high-throughput computers. The Bayesian approach is uniformly developed in this book's algorithms, examples, applications, and case studies. Throughout this book, the emphasis is on nonlinear/non-Gaussian problems; however, some classical techniques (e.g. Kalman filters, unscented Kalman filters, Gaussian sums, grid-based filters, et al) are included to enable readers familiar with those methods to draw parallels between the two approaches. Special features include: * Unified Bayesian treatment starting from the basics (Bayes's rule) to the more advanced (Monte Carlo sampling), evolving to the next-generation techniques (sequential Monte Carlo sampling) * Incorporates "classical" Kalman filtering for linear, linearized, and nonlinear systems; "modern" unscented Kalman filters; and the "next-generation" Bayesian particle filters * Examples illustrate how theory can be applied directly to a variety of processing problems * Case studies demonstrate how the Bayesian approach solves real-world problems in practice * MATLAB(r) notes at the end of each chapter help readers solve complex problems using readily available software commands and point out software packages available * Problem sets test readers' knowledge and help them put their new skills into practice The basic Bayesian approach is emphasized throughout this text in order to enable the processor to rethink the approach to formulating and solving signal processing problems from the Bayesian perspective. This text brings readers from the classical methods of model-based signal processing to the next generation of processors that will clearly dominate the future of signal processing for years to come. With its many illustrations demonstrating the applicability of the Bayesian approach to real-world problems in signal processing, this text is essential for all students, scientists, and engineers who investigate and apply signal processing to their everyday problems.

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