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Unbiased Minimum-Variance Filter for State and Fault Estimation of Linear Time-Varying Systems with Unknown Disturbances

机译:具有未知干扰的线性时变系统的状态和故障估计的无偏见最小方差滤波器

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摘要

This paper presents a new recursive filter to joint fault and state estimation of a linear time-varying discrete systems in the presence of unknown disturbances. The method is based on the assumption that no prior knowledge about the dynamical evolution of the fault and the disturbance is available. As the fault affects both the state and the output, but the disturbance affects only the state system. Initially, we study the particular case when the direct feedthrough matrix of the fault has full rank. In the second case, we propose an extension of the previous case by considering the direct feedthrough matrix of the fault with an arbitrary rank. The resulting filter is optimal in the sense of the unbiased minimum-variance (UMV) criteria. A numerical example is given in order to illustrate the proposed method.
机译:本文提出了一种新的递归过滤器,在存在未知干扰的情况下对线性时变离散系统的联合故障和状态估计。该方法基于假设没有关于故障动态演化的先验知识和干扰。由于故障影响状态和输出,但干扰仅影响状态系统。最初,我们研究故障直接馈通矩阵时的特定情况。在第二种情况下,我们通过考虑具有任意等级的故障直接馈通矩阵来提出前壳的延伸。所得到的滤波器在无偏的最小方差(UMV)标准的意义上是最佳的。给出了数值示例以说明所提出的方法。

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