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Identification of Outages in Power Systems With Uncertain States and Optimal Sensor Locations

机译:不确定状态和最佳传感器位置的电力系统中的中断识别

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Joint outage identification and state estimation in power systems is studied. A Bayesian framework is employed, and a Gaussian prior distribution of the states is assumed. The joint posterior of the outage hypotheses and the network states is developed in closed form, which can be applied to obtain the optimal joint detector and estimator under any given performance criterion. Employing the minimum probability of error as the performance criterion in identifying outages with uncertain states, the optimal detector is obtained. Efficiently computable performance metrics that capture the probability of error of the optimal detector are developed. Under simplified model assumptions, closed-form expressions for these metrics are derived, and these lead to a mixed integer convex programming problem for optimizing sensor locations. Using convex relaxations, a branch and bound algorithm that finds the globally optimal sensor locations is developed. Significant performance gains from using the optimal detector with the optimal sensor locations are observed from simulations. Furthermore, performance with greedily selected sensor locations is shown to be very close to that with globally optimal sensor locations.
机译:研究了电力系统的联合中断识别和状态估计。采用贝叶斯框架,并假设状态的高斯先验分布。停机假设和网络状态的联合后验以封闭形式展开,可以在任何给定的性能标准下应用于获得最佳联合检测器和估计器。利用最小错误概率作为确定不确定状态中断的性能标准,获得了最优检测器。开发了捕获最佳检测器错误概率的有效可计算性能指标。在简化的模型假设下,导出了这些度量的闭式表达式,这些表达式导致混合整数凸规划问题,用于优化传感器位置。通过使用凸松弛,开发了找到全局最佳传感器位置的分支定界算法。通过仿真观察到,通过将最佳检测器与最佳传感器位置配合使用可显着提高性能。此外,贪婪选择的传感器位置的性能显示出与全局最佳传感器位置的性能非常接近。

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