Systems Engineering and Electronics
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Xiaohua Nie* and Fuming Zhang
Online:
Published:
Abstract:
Satisfactory results cannot be obtained when threedimensional (3D) targets with complex maneuvering characteristics are tracked by the commonly used two-dimensional coordinated turn (2DCT) model. To address the problem of 3D target tracking with strong maneuverability, on the basis of the modified three-dimensional variable turn (3DVT) model, an adaptive tracking algorithm is proposed by combining with the cubature Kalman filter (CKF) in this paper. Through ideology of real-time identification, the parameters of the model are changed to adjust the state transition matrix and the state noise covariance matrix. Therefore, states of the target are matched in real-time to achieve the purpose of adaptive tracking. Finally, four simulations are analyzed in different settings by the Monte Carlo method. All results show that the proposed algorithm can update parameters of the model and identify motion characteristics in real-time when targets tracking also has a better tracking accuracy.
Xiaohua Nie and Fuming Zhang. Adaptive tracking algorithm based on 3D variable turn model[J]. Systems Engineering and Electronics, doi: 10.21629/JSEE.2017.05.04.
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URL: https://www.jseepub.com/EN/10.21629/JSEE.2017.05.04
https://www.jseepub.com/EN/Y2017/V28/I5/851