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Delay-State Dynamics to Filtering Gaussian Systems with Markovian Delayed Measurements

机译:马尔可夫延迟测量对高斯系统滤波的时滞动力学

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In this paper we propose a solution to the problems of detecting a stochastic output delay sequence characterized by a Markov chain and estimating the state of a linear system driven by Gaussian noise through an augmented delay-state dynamics. This is the model for uncertain observations resulting from losses in the propagation channel due to fading phenomena or packet dropouts that is common in wireless sensor networks, networked control systems, or remote sensing applications. The solution we propose consists of two parallel stages: a nonlinear detector, which identifies at each time instant the delay and a filtering stage. Numerical simulations show the performance of the proposed method.
机译:在本文中,我们提出了一种解决方案,用于检测以马尔可夫链为特征的随机输出延迟序列,并通过增强的延迟状态动力学来估计由高斯噪声驱动的线性系统的状态。这是用于由于无线传感器网络,网络控制系统或遥感应用中常见的衰落现象或数据包丢失而导致的传播通道损失而导致不确定观测结果的模型。我们提出的解决方案包括两个并行阶段:一个非线性检测器,它在每个瞬时识别延迟;以及一个滤波阶段。数值仿真表明了该方法的性能。

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