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首页> 外文期刊>Signal Processing, IEEE Transactions on >Adaptive Kalman Filtering in Networked Systems With Random Sensor Delays, Multiple Packet Dropouts and Missing Measurements
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Adaptive Kalman Filtering in Networked Systems With Random Sensor Delays, Multiple Packet Dropouts and Missing Measurements

机译:随机传感器延迟,多个数据包丢失和丢失测量的网络系统中的自适应卡尔曼滤波

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摘要

In this paper, adaptive filtering schemes are proposed for state estimation in sensor networks and/or networked control systems with mixed uncertainties of random measurement delays, packet dropouts and missing measurements. That is, all three uncertainties in the measurement have certain probability of occurrence in the network. The filter gains can be derived by solving a set of recursive discrete-time Riccati equations. Examples are presented to demonstrate the applicability and performances of the proposed schemes.
机译:在本文中,提出了用于在传感器网络和/或网络控制系统中进行状态估计的自适应滤波方案,该方案具有随机测量延迟,数据包丢失和丢失测量的混合不确定性。也就是说,测量中的所有三个不确定性在网络中都有一定的发生概率。可以通过求解一组递归离散时间Riccati方程来得出滤波器增益。举例说明了所提出方案的适用性和性能。

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