A distributed Gauss-Newton method for power system state estimation

Ariana S. Minot, Yue M. Lu, Na Li
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引用次数: 13

Abstract

We propose a fully distributed Gauss-Newton algorithm for state estimation of electric power systems. At each Gauss-Newton iteration, matrix-splitting techniques are utilized to carry out the matrix inversion needed for calculating the Gauss-Newton step in a distributed fashion. In order to reduce the communication burden as well as increase robustness of state estimation, the proposed distributed scheme relies only on local information and a limited amount of information from neighboring areas. The matrix-splitting scheme is designed to calculate the Gauss Newton step with exponential convergence speed. The effectiveness of the method is demonstrated in various numerical experiments.
电力系统状态估计的分布式高斯-牛顿方法
提出了一种用于电力系统状态估计的全分布高斯-牛顿算法。在每次高斯-牛顿迭代中,利用矩阵分裂技术以分布式方式进行计算高斯-牛顿步所需的矩阵反演。为了减少通信负担和提高状态估计的鲁棒性,本文提出的分布式方案仅依赖于局部信息和来自相邻区域的有限信息。设计了矩阵分裂方案,以指数收敛速度计算高斯牛顿阶跃。各种数值实验证明了该方法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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