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Adaptive Quickest Estimation Algorithm for Smart Grid Network Topology Error

机译:智能电网网络拓扑误差的自适应最快估计算法

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摘要

Smart grid technologies have significantly enhanced robustness and efficiency of the traditional power grid networks by exploiting technical advances in sensing, measurement, and two-way communications between the suppliers and customers. The state estimation plays a major function in building such real-time models of power grid networks. For the smart grid state estimation, one of the essential objectives is to help detect and identify the topological error efficiently. In this paper, we propose the quickest estimation scheme to determine the network topology as quickly as possible with the given accuracy constraints from the dispersive environment. A Markov chain-based analytical model is also constructed to systematically analyze the proposed scheme for the online estimation. With the analytical model, we are able to configure the system parameters for the guaranteed performance in terms of the false-alarm rate (FAR) and missed detection ratio under a detection delay constraint. The accuracy of the analytical model and detection with performance guarantee are also discussed. The performance is evaluated through both analytical and numerical simulations with the MATPOWER 4.0 package. It is shown that the proposed scheme achieves the minimum average stopping time but retains the comparable estimation accuracy and FAR.
机译:智能电网技术通过利用供应商和客户之间的感应,测量和双向通信方面的技术进步,大大提高了传统电网的鲁棒性和效率。状态估计在建立这样的电网网络实时模型中起主要作用。对于智能电网状态估计,基本目标之一是帮助有效地检测和识别拓扑错误。在本文中,我们提出了最快的估计方案,以在分散环境中给定的精度约束下,尽快确定网络拓扑。还建立了一个基于马尔可夫链的分析模型,以系统地分析所提出的在线估计方案。通过分析模型,我们能够根据检测延迟约束下的误报率(FAR)和漏检率配置系统参数,以确保性能。还讨论了分析模型的准确性和具有性能保证的检测。通过使用MATPOWER 4.0软件包进行分析和数值模拟,可以评估性能。结果表明,提出的方案达到了最小的平均停止时间,但保留了可比的估计精度和FAR。

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