基于Sage窗的自适应Kalman滤波用于钟差预报研究
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P127.1

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The research of clock difference prediction about adaptive kalman filter based on Sage window
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    摘要:

    钟差预报是时间保持工作中的一项关键技术,Kalman算法作为一种最优预报算法,具有实时性的特点,在时间工作得到广泛的应用,但是由于经典Kalman算法需要准确知道模型随机误差和测量误差,否则状态估计会带入一定的误差,在原子时算法中表现为原子钟噪声和钟差测量噪声,原子钟的噪声参数值通常是通过Allan方差估计出来的,估计不够准确,Kalman预报将会出现误差,文中通过研究基于Sage窗的自适应Kalman预报算法,实时修正状态模型误差,利用自适应因子调整状态预测协方差阵有效降低了模型误差,提高了预报精度,最后通过两台氢原子钟和两台铯原子钟的实测数据验证了算法的有效性。

    Abstract:

    Clock difference prediction is a key technology of time keeping work. Kalman algorithm as a kind of optimal prediction algorithm, has the characteristics of real-time, widely used in time keeping work. The classical Kalman algorithm needs to accurately know the random error of the model and measurement error, otherwise, the state estimate will bring error, which is characterized by atomic clocks noise and clock difference measure noise in the atomic time algorithm. Noise parameters of atomic clock is usually estimated through Allan variance, if estimate is not accurate, Kalman filter prediction error will appear. In this paper, the adaptive Kalman filtering prediction algorithm based on window of Sage was researched, the state model error was corrected real-time. The model error was reduced by adjusting the state prediction covariance matrix using adaptive factor, which improved the prediction accuracy. Finally, the effectiveness of the algorithm was verified by the measured data of two hydrogen atomic clocks and two cesium atomic clocks.

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引用本文

宋会杰.基于Sage窗的自适应Kalman滤波用于钟差预报研究[J].仪器仪表学报,2017,38(7):1810-1816

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  • 收稿日期:2017-01-11
  • 最后修改日期:2017-06-02
  • 录用日期:2017-07-21
  • 在线发布日期: 2024-01-16
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