Paper
2 November 2022 A novel approach to maneuvering target tracking based on random motion model using random Kalman filtering
Jinshan Zhong, Yingting Luo, Ying Zhang, Shimeng Yao, Yunmin Zhu
Author Affiliations +
Proceedings Volume 12455, International Conference on Signal Processing and Communication Security (ICSPCS 2022); 1245504 (2022) https://doi.org/10.1117/12.2655289
Event: International Conference on Signal Processing and Communication Security (ICSPCS 2022), 2022, Dalian, China
Abstract
Traditional maneuvering target tracking algorithms assume that the target motion model is one fixed or a limited number of them. For high-speed and strong maneuvering targets, when the model set cannot cover the maneuvering mode or the deviation is large, the performance of the tracker will drop rapidly. Therefore, this paper proposes a new maneuvering target tracking method – a random motion model based on Random Kalman Filtering (RKF). This algorithm uses a random model to describe the target maneuver, which is more widely used than traditional algorithms and is more stable when the target maneuver is not covered by the model set. Compared with the traditional single model, the classic related algorithm is Kalman Filtering (KF), the new method significantly improves the tracking effect when the target is maneuvering. At the same time, when the model set of the Interacting Multiple Model algorithm (IMM) does not match the real maneuvering state, the tracking error of the new method is smaller than IMM and there is no divergence trend.
© (2022) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE). Downloading of the abstract is permitted for personal use only.
Jinshan Zhong, Yingting Luo, Ying Zhang, Shimeng Yao, and Yunmin Zhu "A novel approach to maneuvering target tracking based on random motion model using random Kalman filtering", Proc. SPIE 12455, International Conference on Signal Processing and Communication Security (ICSPCS 2022), 1245504 (2 November 2022); https://doi.org/10.1117/12.2655289
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KEYWORDS
Motion models

Detection and tracking algorithms

Filtering (signal processing)

Electronic filtering

Performance modeling

Statistical modeling

Matrices

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