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A novel adaptive filtering algorithm for maneuvering target tracking

机译:一种新颖的机动目标跟踪自适应滤波算法

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For maneuvering target tracking, and based on the traditional “current” statistical model, the value of maneuvering frequency and maximum acceleration are set up in advance not in adaptive manner which is irrational for the reality. In the present work, a new adaptive filtering algorithm based on the “current” statistical model is proposed. In the proposed algorithm, the maneuvering frequency is adjusted based on fuzzy inference according to the value of the innovation and its change. At the same time, the maximum acceleration is adjusted according to the innovation and the estimated value. Compared to the traditional “current” statistical algorithm, the proposed algorithm improves not only the tracking accuracy and the robustness, but also the adaptation and the rapid response capabilities, for tracking non-maneuvering or weak maneuvering targets. The performance of the proposed algorithm is verified through the Monte Carlo simulations which validate the superiority of the proposed algorithm over the traditional “current” statistical algorithm from the point of view of rationality and validity.
机译:对于机动目标的跟踪,并基于传统的“当前”统计模型,事先以非自适应的方式预先设置机动频率和最大加速度的值,这对现实是不合理的。在目前的工作中,提出了一种新的基于“当前”统计模型的自适应滤波算法。在所提出的算法中,根据创新的价值及其变化,基于模糊推理来调整机动频率。同时,根据创新和估算值调整最大加速度。与传统的“当前”统计算法相比,该算法不仅提高了跟踪精度,而且提高了用于跟踪非机动或弱机动目标的自适应性和快速响应能力。通过蒙特卡洛模拟验证了所提算法的性能,从理性和有效性的角度验证了所提算法相对于传统“当前”统计算法的优越性。

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