Optimal Component Fusion Steady-State Smoothing for Discrete Multichannel ARMA Signals

Shuli Sun
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Abstract

Based on white noise estimators and the optimal fusion algorithm in the LMV (linear minimum variance) sense, distributed optimal fusion steady-state smoothers with scalar weights are given for all components of discrete multichannel ARMA (autoregressive moving average) signals with correlated noises. The precision of the fusion smoothers is higher than that of local smoothers, but is lower than that of the fusion smoother with matrix weights. However, the computational burden can be reduced since only scalar weights are required. Applying it to a double-channel ARMA signal system with three sensors shows the effectiveness
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离散多通道ARMA信号的最优分量融合稳态平滑
基于白噪声估计量和线性最小方差(LMV)意义上的最优融合算法,给出了带有相关噪声的离散多通道自回归移动平均信号各分量的标量权分布最优融合稳态平滑器。融合平滑器的精度高于局部平滑器,但低于具有矩阵权重的融合平滑器。然而,由于只需要标量权重,因此可以减少计算负担。将该方法应用于具有三个传感器的双通道ARMA信号系统中,结果表明了该方法的有效性
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