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Power law noise identification using the LAG 1 autocorrelation by overlapping samples

机译:通过重叠样本使用LAG 1自相关的权力法噪声识别

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There are various random errors in the fiber optical gyroscope (FOG) output signal. At the aim of improving its accuracy, it is need to identify the kinds of errors. The most common method for power law noise identification is simply to observe the slope of a log-log plot of the Allan or modified Allan deviation versus averaging time, either manually or by fitting a line to it. The lag 1 autocorrelation method is a new method for power law noise identification that can determine the dominant noise type for all common noise processes, from phase or frequency data, for all averaging factors, in a consistent and analytic manner. This paper describes an improvement of it by overlapping samples, which improves the confidence of the resulting stability estimate at the expense of greater computational time.
机译:光纤陀螺仪(雾)输出信号中存在各种随机误差。旨在提高其准确性,需要识别错误的类型。电力法噪声识别最常见的方法只是观察Allan或修改的Allan偏差与平均时间的日志曲线图的斜率,或者通过拟合一条线。 LAG 1自相关方法是一种新的功率法噪声识别方法,其可以以一致和分析方式确定来自相位或频率数据的所有常见噪声处理的主导噪声类型。本文通过重叠样本描述了它的改进,其提高了所得稳定性估计的置信度以更大的计算时间。

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