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Optimal estimator for a class of non-uniform sampling systems with missing measurements

机译:缺失测量的一类非均匀采样系统的最优估计

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The estimation problem for a class of non-uniform sampling linear stochastic systems with missing measurements is considered, where the state is updated uniformly and the sensor non-uniformly samples the measurement once at most in a state update period. By using innovation analysis approach, the optimal state estimators are designed at the state update points and measurement sampling points based on the received measurements. A simulation example is given to show the effectiveness of the algorithms.
机译:考虑一类具有丢失测量值的非均匀采样线性随机系统的估计问题,其中状态被均匀更新,并且传感器在状态更新周期中最多对一个测量值进行非均匀采样一次。通过使用创新分析方法,基于接收到的测量值,在状态更新点和测量采样点处设计最佳状态估计器。仿真例子说明了算法的有效性。

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