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Self-tuning fusion Wiener filter for multisensor multi-channel AR signals with common disturbance noise

机译:用于多传感器多通道AR信号的自调谐融合维纳滤波器,具有共同的干扰噪声

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For the multisensor multi-channel autoregressive (AR) signals with common disturbance noise, when model parameters and noise variances are unknown, the estimates of model parameters and noise variances can be obtained based on the multi-dimension recursive extended least squares (RELS) algorithm and the correlation method. Further, a self-tuning fusion Wiener filter is presented based on the modern time series analysis method by substituting the estimates for the true values. A simulation example shows the consistence of the estimates of the model parameters and noise variances, and the tracking characteristics of the self-tuning fusion Wiener filter.
机译:对于具有共同干扰噪声的多传感器多通道自回归(AR)信号,当模型参数和噪声方差未知时,可以基于多维递归延长最小二乘(rels)算法来获得模型参数和噪声方差的估计和相关方法。此外,通过代替真正值的估计来呈现自调谐融合维纳滤波器。仿真示例显示了模型参数和噪声方差的估计的一致性,以及自调谐融合维纳滤波器的跟踪特性。

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