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Distributed fusion filter for multi-sensor systems with multiple random measurement delays and packet dropouts

机译:用于具有多个随机测量延迟和丢包的多传感器系统的分布式融合滤波器

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This paper studies the distributed optimal fusion estimation problem for multi-sensors systems with multiple measurement delays and packet dropouts. Firstly, we define a new augmented state vector with a lower dimension. Based on the defined state, the local filter (LF) is given. Then, by applying the weighted fusion algorithms in the linear minimum variance sense, three distributed fusion filters weighted by matrix (FFWM), by diagonal matrix (FFWDM) and by scalars (FFWS) are obtained, respectively. The cross-covariance matrices between any two local filtering errors are derived to compute the fusion weights. Finally, simulation research verifies the effectiveness of the proposed distributed fusion filters.
机译:本文研究了具有多个测量延迟和丢包的多传感器系统的分布式最优融合估计问题。首先,我们定义一个新的具有较小维数的增强状态向量。基于定义的状态,将给出本地滤波器(LF)。然后,通过在线性最小方差意义上应用加权融合算法,分别获得三个分别由矩阵(FFWM),对角矩阵(FFWDM)和标量(FFWS)加权的分布式融合滤波器。推导任意两个局部滤波误差之间的互协方差矩阵,以计算融合权重。最后,仿真研究验证了所提出的分布式融合滤波器的有效性。

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