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首页> 外文期刊>Optik: Zeitschrift fur Licht- und Elektronenoptik: = Journal for Light-and Electronoptic >Allan variance method for gyro noise analysis using weighted least square algorithm
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Allan variance method for gyro noise analysis using weighted least square algorithm

机译:加权最小二乘算法的陀螺噪声艾伦方差分析

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摘要

The Allan variance method is an effective way of analyzing gyro's stochastic noises. In the traditional implementation, the ordinary least square algorithm is utilized to estimate the coefficients of gyro noises. However, the different accuracy of Allan variance values violates the prerequisite of the ordinary least square algorithm. In this study, a weighted least square algorithm is proposed to address this issue. The new algorithm normalizes the accuracy of the Allan variance values by weighting them according to their relative quantitative relationship. As a result, the problem associated with the traditional implementation can be solved. In order to demonstrate the effectiveness of the proposed algorithm, gyro simulations are carried out based on the various stochastic characteristics of SRS2000, VG951 and CRG20, which are three different-grade gyros. Different least square algorithms (traditional and this proposed method) are applied to estimate the coefficients of gyro noises. The estimation results demonstrate that the proposed algorithm outperforms the traditional algorithm, in terms of the accuracy and stability. (C) 2015 Elsevier GmbH. All rights reserved.
机译:艾伦方差法是一种分析陀螺仪随机噪声的有效方法。在传统实现中,利用普通最小二乘算法来估计陀螺噪声的系数。但是,Allan方差值的不同精度违反了普通最小二乘法的先决条件。在这项研究中,提出了加权最小二乘算法来解决这个问题。新算法通过根据Allan方差值的相对定量关系对它们进行加权来标准化其准确性。结果,可以解决与传统实现相关的问题。为了证明所提算法的有效性,基于三种不同等级的陀螺仪SRS2000,VG951和CRG20的各种随机特性进行了陀螺仿真。应用了不同的最小二乘算法(传统方法和该方法)来估计陀螺噪声的系数。估计结果表明,该算法在准确性和稳定性方面均优于传统算法。 (C)2015 Elsevier GmbH。版权所有。

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