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Two unbiased converted measurement Kalman filtering algorithms with range rate

机译:两种带速率的无偏转换测量Kalman滤波算法

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摘要

The strong non-linear relationship between the range rate and the target state can be introduced using the range rate to track a target. A linear measurement equation can be constructed based on the geometrical relationship between the range rate and the velocity components. Then, the linear Kalman filtering (KF) algorithm can be used. To improve the performance of the converted measurement method, a novel multiplicative unbiased converted measurement KF algorithm with range rate (UCMKF-R) is developed. To eliminate the conversion bias, one-step prediction estimation is used to replace the position measurement to calculate the converted measurement error covariance in the UCMKF-R algorithm, which removes the correlation between the converted measurement error covariance and the measurement noise. Thus, a Decorrelated UCMKF-R (DUCMKF-R) is proposed. The experimental results show that the measurement conversion of the DUCMKF-R algorithm is unbiased, consistent and has an estimation bias that is close to zero. The proposed UCMKF-R and DUCMKF-R algorithms are compared with the state-of-the-art approaches, namely, the Sequential Extended KF algorithm, the Sequential Unscented KF algorithm, and the Converted Measurement KF with Range Rate algorithm. The experimental results show that the proposed algorithms have good performance.
机译:可以使用测距率来跟踪测距率,从而引入测距率与目标状态之间的强非线性关系。可以基于测距速率和速度分量之间的几何关系来构建线性测量方程。然后,可以使用线性卡尔曼滤波(KF)算法。为了提高转换测量方法的性能,开发了一种新型的带测距率的乘法无偏转换测量KF算法(UCMKF-R)。为了消除转换偏差,在UCMKF-R算法中,使用一步预测估计来代替位置测量值以计算转换后的测量误差协方差,从而消除了转换后的测量误差协方差与测量噪声之间的相关性。因此,提出了与装饰相关的UCMKF-R(DUCMKF-R)。实验结果表明,DUCMKF-R算法的测量转换是无偏的,一致的,并且估计偏差接近于零。将提出的UCMKF-R和DUCMKF-R算法与最新方法(即顺序扩展KF算法,顺序无味KF算法和带范围速率的转换测量KF)进行了比较。实验结果表明,该算法具有良好的性能。

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  • 来源
    《Radar, Sonar & Navigation, IET》 |2018年第11期|1217-1224|共8页
  • 作者单位

    Aeronautic and Astronautic College, Air Force Engineering University, People's Republic of China;

    Aeronautic and Astronautic College, Air Force Engineering University, People's Republic of China;

    Aeronautic and Astronautic College, Air Force Engineering University, People's Republic of China;

    Aeronautic and Astronautic College, Air Force Engineering University, People's Republic of China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    error analysis; Kalman filters; measurement errors; target tracking;

    机译:误差分析;卡尔曼滤波;测量误差;目标跟踪;

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