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Distributed average filtering for sensor networks with sensor saturation

机译:传感器饱和的传感器网络的分布式平均滤波

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摘要

This study addresses the distributed average set-membership filtering of spatially varying processes using sensor networks. The system under consideration contains sensor saturation in the presence of unknown-but-bounded process and measurement noise in the sensor network. The so-called distributed average set-membership filtering is defined to quantify bounded consensus regarding the estimation error. A sufficient condition for distributed average set-membership filtering parameter design is established in terms of a set of time-varying linear matrix inequalities. A recursive algorithm is developed for computing the estimator, controller gains and the ellipsoid that guarantees to contain the true state. Simulation results are provided to demonstrate the effectiveness of the proposed method.
机译:这项研究解决了使用传感器网络对空间变化过程进行分布式平均集成员过滤的问题。所考虑的系统包含传感器网络中存在未知但有界的过程和测量噪声时的传感器饱和。定义了所谓的分布式平均集成员资格过滤,以量化关于估计误差的有界共识。根据一组时变线性矩阵不等式,为分布式平均集成员资格过滤参数设计建立了充分条件。开发了一种递归算法,用于计算估计器,控制器增益和保证包含真实状态的椭圆体。仿真结果证明了该方法的有效性。

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