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    • 摘要: 本文提出了一种光纤陀螺全温启动温度漂移补偿方法。首先,采用三个惯性传感器内置的温度计信息组成的多维温度变量构建寻北仪内部的温度场,然后使用支持向量回归(SVR)来构建多维温度变量与光纤陀螺温度漂移误差的补偿模型,最后应用麻雀搜索算法(SSA)来调优SVR模型核参数来提高温度误差补偿模型的精度和泛化能力。寻北实验验证了所提方法的有效性:将寻北仪启动阶段的精度从 0.0209°提高到 0.0101°,使其启动阶段的性能与稳定阶段的性能接近,并提升了其在不同初始温度下的快速响应能力。

       

      Abstract: This paper proposes a novel method of compensating for the fiber optic gyroscope (FOG) temperature drift at full temperatures: the temperature field inside the NFS is constructed by multiple temperature variables, which are composed of the thermometer information built in the three inertial sensors, and then the support vector regression (SVR) is used to describe the relationship between the multiple temperature variables and the temperature drift error of the FOG, and finally the sparrow search algorithm (SSA) is applied to tune the model parameters to improve the accuracy and generalization capability. The experimental results validate the effectiveness of the proposed method, and we improve the accuracy of the NFS start-up stage from 0.0209° to 0.0101°. The performance is closely comparable to that of the stable stage, and improves the fast response capability of NFS at different initial temperatures.