JOURNAL OF RADARS
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JOURNAL OF RADARS  2013, Vol. 2 Issue (2): 257-264    DOI: 10.3724/SP.J.1300.2013.13003
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One Maneuvering Frequency and the Variance Adaptive Filtering Algorithm for Maneuvering Target Tracking
Qian  Guang-hua, Li  Ying, Luo  Rong-jian
(Chongqing Communication Institute of PLA, Chongqing 400035, China)
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Abstract The approach of tracking maneuvering targets based on the “Current” Statistical (CS) model is widely used. The method needs to preset maneuvering frequency and maximum acceleration based on experience. In practice, the preset values are often not consistent with the actual moving state of targets and result in larger tracking errors. In order to tackle the problem, this paper initially deduces a self-adapting maneuvering frequency algorithm from the discrete state equation of the CS model. Then, an improved self-adapting acceleration covariance algorithm is presented. Simulation results show that, by using the self-adapting maneuvering frequency algorithm and the improved self-adapting acceleration covariance algorithm to track targets simultaneously, the ability to self-adapt to the fluctuation of the moving state will be improved. The tracking accuracy is also improved, and the convergence speed of the algorithm is quicker.
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Qian Guang-hua
Li Ying
Luo Rong-jian
Key wordsManeuvering target tracking   “Current&rdquo   Statistical (CS) model   Maneuvering frequency adaptive   Acceleration variance adaptive     
Received: 2013-01-06; Published: 2013-04-12
Cite this article:   
Qian Guang-hua,Li Ying,Luo Rong-jian. One Maneuvering Frequency and the Variance Adaptive Filtering Algorithm for Maneuvering Target Tracking[J]. JOURNAL OF RADARS, 2013, 2(2): 257-264.
 
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[1] Ouyang-Cheng , Chen Xiao-xu, Hua Yun. Improved Best-fitting Gaussian Approximation PHD Filter[J]. JOURNAL OF RADARS, 2013, 2(2): 239-246.
[2] Xing Bo, Gan Lu. Multiple Maneuvering Targets Tracking Using MM-CBMeMBer Filter[J]. JOURNAL OF RADARS, 2012, 1(3): 238-245.
 

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