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Distributed dynamic state estimation over a lossy communication network with an application to smart grids

机译:有损通信网络上的分布式动态状态估计及其在智能电网中的应用

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In contrast to the traditional centralised power system state estimation methods, this paper investigates the interconnected optimal filtering problem for distributed dynamic state estimation considering packet losses. Specifically, the power system incorporating microgrids is modelled as a state-space linear equation where sensors are deployed to obtain measurements. Basically, the sensing information is transmitted to the energy management system through a lossy communication network where measurements are lost. As the system states are unavailable, so the estimation is essential to know the overall operating conditions of the electricity network. The proposed estimator is based on the mean squared error between the actual state and its estimate. To obtain the distributed estimation, the optimal local and neighbouring gains are computed to reach a consensus estimation after exchanging their information with the neighbouring estimators. Then the convergence of the developed algorithm is theoretically proved. Afterwards, a distributed controller is designed based on the semidefinite programming approach. Simulation results demonstrate the accuracy of the developed approaches under the condition of missing measurements.
机译:与传统的集中式电力系统状态估计方法相反,本文研究了考虑分组丢失的分布式动态状态估计的互连最优滤波问题。具体而言,将包含微电网的电力系统建模为状态空间线性方程式,其中部署传感器以获取测量值。基本上,感测信息通过有损测量网络的有损通信网络传输到能源管理系统。由于系统状态不可用,因此估算对于了解电网的总体运行状况至关重要。所提出的估计器基于实际状态与其估计值之间的均方误差。为了获得分布式估计,在与相邻估计器交换它们的信息之后,计算最优局部和相邻增益以达到共识估计。然后从理论上证明了所开发算法的收敛性。然后,基于半定程序设计方法设计了一种分布式控制器。仿真结果表明,在缺少测量值的情况下,所开发方法的准确性。

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