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首页> 外文期刊>Optik: Zeitschrift fur Licht- und Elektronenoptik: = Journal for Light-and Electronoptic >An innovation based random weighting estimation mechanism for denoising fiber optic gyro drift signal
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An innovation based random weighting estimation mechanism for denoising fiber optic gyro drift signal

机译:基于创新的随机加权估计去噪光纤陀螺漂移的机制信号

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摘要

In Interferometric Fiber Optic Gyroscope (IFOG),the diminution of random noise and drift error is a critical task. These errors degrade the performance of IFOG. In this paper, a modified adaptive Kalman gain correction (AKFG) algorithm is proposed to denoise IFOG signal. The covariance matrix of innovation sequence is estimated using weighted average window method in which the weights are randomly generated in the range [0,1]. Innovation based random weighted estimation (IRWE)-AKFG is applied to denoise the IFOG drift signal. The Kalman gain is adaptively updated using the covariance matrix of innovation sequence. The proposed algorithm is applied for denoising IFOG signal under static and dynamic environment. Allan variance method is used to analyze and quantify the stochastic errors in IFOG sensor. The performance of the proposed algorithm is compared with Conventional Kalman filter (CKF) and the simulation results reveal that the proposed algorithm is an efficient algorithm for denoising the IFOG signal.
机译:干涉型光纤陀螺仪(IFOG),减少随机噪声和漂移错误是一个关键的任务。IFOG的性能。修改后的自适应卡尔曼增益校正(AKFG)算法降噪IFOG的信号。创新序列的协方差矩阵使用加权平均估计窗口的方法权重是随机生成的区间[0,1]。估计(IRWE) -AKFG应用于降噪IFOG漂移信号。更新使用创新的协方差矩阵序列。去噪IFOG信号在静态和动态环境。分析和量化的随机错误IFOG传感器。算法与传统的卡尔曼滤波过滤器(位置)和仿真结果该算法是一种有效的去噪算法IFOG的信号。

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