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Beyond the Kalman Filter: Particle Filters for Tracking Applications

AUTHOR Ristic, Branko
PUBLISHER Artech House Publishers (01/31/2004)
PRODUCT TYPE Hardcover (Hardcover)

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. This cutting-edge book introduces the latest advances in particle filter theory, discusses their relevance to defence surveillance systems, and examines defence-related applications of particle filters to nonlinear and non-Gaussian problems. 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 manoeuvering targets, range-only tracking, terrain-aided tracking of ground vehicles, and group and extended object tracking.
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Product Format
Product Details
ISBN-13: 9781580536318
ISBN-10: 158053631X
Binding: Hardback or Cased Book (Sewn)
Content Language: English
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Page Count: 299
Carton Quantity: 26
Product Dimensions: 6.36 x 0.90 x 9.26 inches
Weight: 1.20 pound(s)
Feature Codes: Index, Table of Contents, Illustrated
Country of Origin: US
Subject Information
BISAC Categories
Technology & Engineering | Radar
Technology & Engineering | Electrical
Dewey Decimal: 621.384
Library of Congress Control Number: 2004041070
Descriptions, Reviews, Etc.
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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. This cutting-edge book introduces the latest advances in particle filter theory, discusses their relevance to defence surveillance systems, and examines defence-related applications of particle filters to nonlinear and non-Gaussian problems. 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 manoeuvering targets, range-only tracking, terrain-aided tracking of ground vehicles, and group and extended object tracking.
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Author: Ristic, Branko
Branko Ristic is a senior research scientist at the ISR Division (formerly known as the Surveillance Systems Division) of The Defence Science and Technology Organization, Sydney, Australia.
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List Price $159.00
Your Price  $157.41
Hardcover