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Allan variance segmented circular fitting method for laser gyroscopes random error analysis

机译:激光陀螺仪的艾伦方差分段圆拟合方法随机误差分析

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The curve fitting process is the key process of Allan variance algorithm which is an effective method for laser gyroscope random error analysis. The traditional piecewise regression method leads to the fitting curve shift up because the cross-impact among the five kinds of random errors in Allan variance hasn't been taken into consideration especially in the case of long correlation time, which will leads to the random error characteristic of Laser Gyroscope can't been evaluated accurately. This paper proposes an Allan variance segmented circular fitting method, which improves the accuracy of curve fitting and especially reduces the fitting error in long correlation time. The proposed method is applied to 7-hour experimental static data analysis of laser gyroscopes, and the random error coefficients estimated with modified Allan variance algorithm can converge with better stability.
机译:曲线拟合过程是Allan方差算法的关键过程,这是一种有效的激光陀螺仪随机误差分析方法。传统的分段回归方法导致拟合曲线上移,因为未考虑Allan方差中五种随机误差之间的交叉影响,特别是在相关时间较长的情况下,这将导致随机误差激光陀螺仪的特性无法准确评估。提出了一种Allan方差分段圆拟合方法,该方法提高了曲线拟合的精度,特别是减少了相关时间长的拟合误差。将该方法应用于激光陀螺仪7小时实验静态数据分析中,利用改进的Allan方差算法估计的随机误差系数可以收敛,并且具有较好的稳定性。

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