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首页> 外文期刊>Mathematical Problems in Engineering: Theory, Methods and Applications >Optimal Fusion Filtering in Multisensor Stochastic Systems with Missing Measurements and Correlated Noises
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Optimal Fusion Filtering in Multisensor Stochastic Systems with Missing Measurements and Correlated Noises

机译:缺失测量和相关噪声的多传感器随机系统中的最优融合滤波

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The optimal least-squares linear estimation problem is addressed for a class of discrete-time multisensor linear stochastic systems with missing measurements and autocorrelated and cross-correlated noises. The stochastic uncertainties in the measurements coming from each sensor (missing measurements) are described by scalar random variables with arbitrary discrete probability distribution over the interval[0,1]; hence, at each single sensor the information might be partially missed and the different sensors may have different missing probabilities. The noisecorrelation assumptions considered are (i) the process noise and all the sensor noises are one-step autocorrelated; (ii) different sensor noises are one-step cross-correlated; and (iii) the process noiseand each sensor noise are two-step cross-correlated. Under these assumptions and by an innovation approach, recursive algorithms for the optimal linear filter are derived by using the two basic estimation fusion structures; more specifically, both centralized and distributed fusion estimation algorithms are proposed. The accuracy of these estimators is measured by their error covariance matrices, which allow us to compare their performance in a numerical simulation example that illustrates the feasibility of the proposed filtering algorithms and shows a comparison with other existing filters.
机译:针对一类离散时间多传感器线性随机系统的最优最小二乘线性估计问题,该系统具有丢失的测量值以及自相关和互相关的噪声。来自每个传感器的测量中的随机不确定性(丢失测量)由标量随机变量描述,该随机变量在区间[0,1]上具有任意离散的概率分布;因此,在每个单个传感器上,信息可能会部分丢失,并且不同的传感器可能具有不同的丢失概率。所考虑的噪声相关假设是:(i)过程噪声和所有传感器噪声均为一步自相关; (ii)不同的传感器噪声是一步相关的; (iii)过程噪声和每个传感器噪声是两步互相关的。在这些假设和创新方法下,通过使用两个基本的估计融合结构,推导了最佳线性滤波器的递归算法。更具体地说,提出了集中式和分布式融合估计算法。这些估计器的精度由它们的误差协方差矩阵来衡量,这使我们可以在数值模拟示例中比较它们的性能,该示例说明了所提出的滤波算法的可行性并显示了与其他现有滤波器的比较。

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