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Optimal Linear Estimators for Systems With Random Sensor Delays, Multiple Packet Dropouts and Uncertain Observations

机译:具有随机传感器延迟,多个数据包丢失和不确定观测值的系统的最佳线性估计器

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This paper is concerned with the optimal linear estimation problem for linear discrete-time stochastic systems with random sensor delays, packet dropouts and uncertain observations. We develop a unified model to describe the mixed uncertainties of random delays, packet dropouts and uncertain observations by three Bernoulli distributed random variables with known distributions. Based on the proposed model, the optimal linear estimators that only depend on probabilities are developed via an innovation analysis approach. Their solutions are given in terms of a Riccati equation and a Lyapunov equation. They can deal with the optimal linear filtering, prediction and smoothing for systems with random sensor delays, packet dropouts and uncertain observations in a unified framework. Simulation results show the effectiveness of the proposed optimal linear estimators.
机译:本文涉及具有随机传感器延迟,数据包丢失和不确定观测值的线性离散时间随机系统的最优线性估计问题。我们开发了一个统一的模型,以三个已知分布的伯努利分布随机变量描述随机延迟,数据包丢失和不确定性观测值的混合不确定性。基于提出的模型,通过创新分析方法开发了仅依赖于概率的最优线性估计量。根据Riccati方程和Lyapunov方程给出了它们的解。它们可以在统一框架中处理具有随机传感器延迟,数据包丢失和不确定观测值的系统的最佳线性滤波,预测和平滑处理。仿真结果表明了所提出的最优线性估计量的有效性。

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