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  2. 電機資訊學院
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Please use this identifier to cite or link to this item: http://scholars.ntou.edu.tw/handle/123456789/4866
Title: Navigation Integration Using the Fuzzy Strong Tracking Unscented Kalman Filter
Authors: Dah-Jing Jwo 
Lai, S. Y.
Keywords: Integrated navigation;Unscented Kalman filter;Strong tracking filter;Fuzzy logic
Issue Date: Apr-2009
Publisher: Cambridge University Press
Journal Volume: 62
Journal Issue: 2
Source: The Journal of Navigation
Abstract: 
A navigation integration processing scheme, called the strong tracking unscented Kalman filter (STUKF), is based on the combination of an unscented Kalman filter (UKF) and a strong tracking filter (STF). The UKF employs a set of sigma points by deterministic sampling, such that the linearization process is not necessary, and therefore the error caused by linearization as in the traditional extended Kalman filter (EKF) can be avoided. As a type of adaptive filter, the STF is essentially a nonlinear smoother algorithm that employs suboptimal multiple fading factors, in which the softening factors are involved. In order to resolve the shortcoming in traditional approach for selecting the softening factor through personal experience or computer simulation, a novel scheme called the fuzzy strong tracking unscented Kalman filter (FSTUKF) is presented where the Fuzzy Logic Adaptive System (FLAS) is incorporated for determining the softening factor. The proposed FSTUKF algorithm shows promising results in estimation accuracy when applied to the integrated navigation system design, as compared to the EKF, UKF and STUKF approaches.
URI: http://scholars.ntou.edu.tw/handle/123456789/4866
ISSN: 0373-4633
DOI: ://WOS:000265036500008
://WOS:000265036500008
10.1017/s037346330800516x
://WOS:000265036500008
://WOS:000265036500008
Appears in Collections:通訊與導航工程學系

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