DocumentCode :
33291
Title :
Clustering Gaussian mixture reduction algorithm based on fuzzy adaptive resonance theory for extended target tracking
Author :
Yongquan Zhang ; Hongbing Ji
Author_Institution :
Sch. of Electron. Eng., Xidian Univ., Xi´an, China
Volume :
8
Issue :
5
fYear :
2014
fDate :
Jun-14
Firstpage :
536
Lastpage :
546
Abstract :
This study presents a global Gaussian mixture reduction (GMR) algorithm via clustering, which is based on a fuzzy adaptive resonance theory (FART) neural network architecture. Therefore the authors call the proposed algorithm as GMR based on the fuzzy ART (GMR-FART) in this study. The architecture of GMR-FART is similar to that of the FART, however, its choice function, match function and learning update equations are characterised by features of Gaussian mixture (GM). The proposed algorithm automatically forms categories (i.e. the reduced GM components) via a feedback mechanism. The performance of GMR-FART is evaluated by the normalised integrated squared distance measure which describes the deviation between the original and the reduced GM. The proposed algorithm is tested on both one-dimensional (1D) and 4D simulation examples, and the results show that the proposed algorithm can accurately approximate the original mixture and requires less computational burden, and is useful in extended target tracking.
Keywords :
ART neural nets; Gaussian processes; distance measurement; fuzzy set theory; learning (artificial intelligence); pattern clustering; recurrent neural nets; target tracking; 1D simulation; 4D simulation; FART; GMR; clustering Gaussian mixture reduction algorithm; extended target tracking; feedback mechanism; fuzzy adaptive resonance theory; learning update equation; match function; neural network architecture; normalised integrated squared distance measurement; one-dimensional simulation;
fLanguage :
English
Journal_Title :
Radar, Sonar & Navigation, IET
Publisher :
iet
ISSN :
1751-8784
Type :
jour
DOI :
10.1049/iet-rsn.2013.0254
Filename :
6824674
Link To Document :
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