9781580536318-158053631X-Beyond the Kalman Filter: Particle Filters for Tracking Applications (Artech House Radar Library (Hardcover))

Beyond the Kalman Filter: Particle Filters for Tracking Applications (Artech House Radar Library (Hardcover))

ISBN-13: 9781580536318
ISBN-10: 158053631X
Edition: Illustrated
Author: Neil Gordon, Branko Ristic, Sanjeev Arulampalam
Publication date: 2004
Publisher: Artech House Publishers
Format: Hardcover 299 pages
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Book details

ISBN-13: 9781580536318
ISBN-10: 158053631X
Edition: Illustrated
Author: Neil Gordon, Branko Ristic, Sanjeev Arulampalam
Publication date: 2004
Publisher: Artech House Publishers
Format: Hardcover 299 pages

Summary

Beyond the Kalman Filter: Particle Filters for Tracking Applications (Artech House Radar Library (Hardcover)) (ISBN-13: 9781580536318 and ISBN-10: 158053631X), written by authors Neil Gordon, Branko Ristic, Sanjeev Arulampalam, was published by Artech House Publishers in 2004. With an overall rating of 3.9 stars, it's a notable title among other Electrical & Electronics (Engineering) books. You can easily purchase or rent Beyond the Kalman Filter: Particle Filters for Tracking Applications (Artech House Radar Library (Hardcover)) (Hardcover) from BooksRun, along with many other new and used Electrical & Electronics books and textbooks. And, if you're looking to sell your copy, our current buyback offer is $43.35.

Description

For most tracking applications the Kalman filter is reliable and efficient, but it is limited to a relatively restricted class of linear Gaussian problems. To solve problems beyond this restricted class, particle filters are proving to be dependable methods for stochastic dynamic estimation. Packed with 867 equations, this cutting-edge book introduces the latest advances in particle filter theory, discusses their relevance to defense surveillance systems, and examines defense-related applications of particle filters to nonlinear and non-Gaussian problems.

With this hands-on guide, you can develop more accurate and reliable nonlinear filter designs and more precisely predict the performance of these designs. You can also apply particle filters to tracking a ballistic object, detection and tracking of stealthy targets, tracking through the blind Doppler zone, bi-static radar tracking, passive ranging (bearings-only tracking) of maneuvering targets, range-only tracking, terrain-aided tracking of ground vehicles, and group and extended object tracking.

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