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Adaptive Dual Wavelet Threshold Denoising Function Combined with Allan Variance for Tuning FOG-SINS Filter 被引量:1
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作者 BESSAAD Nassim BAO Qilian +3 位作者 SUN Shuodong DU Yuding LIU Lin HASSAN Mahmood Ul 《Journal of Shanghai Jiaotong university(Science)》 EI 2020年第4期434-440,共7页
Allan variance(AV)stochastic process identification method for inertial sensors has successfully combined the wavelet transform denoising scheme.However,the latter usually employs a traditional hard threshold or soft ... Allan variance(AV)stochastic process identification method for inertial sensors has successfully combined the wavelet transform denoising scheme.However,the latter usually employs a traditional hard threshold or soft threshold that presents some mathematical problems.An adaptive dual threshold for discrete wavelet transform(DWT)denoising function overcomes the disadvantages of traditional approaches.Assume that two thresholds for noise and signal and special fuzzy evaluation function for the signal with range between the two thresholds assure continuity and overcome previous difficulties.On the basis of AV,an application for strap-down inertial navigation system(SINS)stochastic model extraction assures more efficient tuning of the augmented 21-state improved exact modeling Kalman filter(IEMKF)states.The experimental results show that the proposed algorithm is superior in denoising performance.Furthermore,the improved filter estimation of navigation solution is better than that of conventional Kalman filter(CKF). 展开更多
关键词 Allan variance(av) discrete wavelet transform(DWT) adaptive dual threshold fiber optic gyroscope(FOG) strap-down inertial navigation system(SINS) exact modeling filter
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基于LMS与MAF的MEMS陀螺降噪算法 被引量:5
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作者 胡佳 蔡成林 《传感器与微系统》 CSCD 北大核心 2021年第9期132-134,共3页
为了减小微机电系统(MEMS)陀螺输出信号中的噪声分量,提出一种改进最小均方(LMS)算法结合移动平均滤波(MAF)的降噪方法。首先通过改进LMS算法对陀螺数据进行预处理,然后量化分析MAF不同滑动窗口长度以及滤波器收敛因子对陀螺仪噪声抑制... 为了减小微机电系统(MEMS)陀螺输出信号中的噪声分量,提出一种改进最小均方(LMS)算法结合移动平均滤波(MAF)的降噪方法。首先通过改进LMS算法对陀螺数据进行预处理,然后量化分析MAF不同滑动窗口长度以及滤波器收敛因子对陀螺仪噪声抑制的效果;最后,采用MEMS陀螺仪惯性测量单元搭建测试环境,将所提出算法应用于实际降噪研究中,并分别与小波降噪以及传统LMS进行对比。采用Allan方差(AV)对MEMS陀螺仪随机误差参数进行辨识,结果表明:经过LMS-MAF算法滤波处理后的陀螺各项误差系数明显减小,角随机游走、量化噪声、零偏不稳定性、速度斜坡、速度随机游走均降低90%以上,大大降低了陀螺仪噪声,有效提高了陀螺仪精度。 展开更多
关键词 微机电系统陀螺 最小均方算法 移动平均滤波 信号降噪 ALLAN方差
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