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Compensation method for temperature error of fiber optical gyroscope based on relevance vector machine

机译:基于相关矢量机的光纤陀螺温度误差补偿方法

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摘要

Aiming to improve the bias stability of the fiber optical gyroscope (FOG) in an ambient temperature-change environment, a temperature-compensation method based on the relevance vector machine (RVM) under Bayesian framework is proposed and applied. Compared with other temperature models such as quadratic polynomial regression, neural network, and the support vector machine, the proposed RVM method possesses higher accuracy to explain the temperature dependence of the FOG gyro bias. Experimental results indicate that, with the proposed RVM method, the bias stability of an FOG can be apparently reduced in the whole temperature ranging from -40 degrees C to 60 degrees C. Therefore, the proposed method can effectively improve the adaptability of the FOG in a changing temperature environment. (C) 2016 Optical Society of America
机译:为了提高光纤陀螺仪在环境温度变化环境下的偏置稳定性,提出并应用了基于贝叶斯框架的相关矢量机(RVM)的温度补偿方法。与二次多项式回归,神经网络和支持向量机等其他温度模型相比,提出的RVM方法具有更高的精度,可以解释FOG陀螺偏置的温度依赖性。实验结果表明,所提出的RVM方法可以在-40℃至60℃的整个温度范围内明显降低FOG的偏置稳定性。不断变化的温度环境。 (C)2016美国眼镜学会

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