Bayesian State Estimation for Unobservable Distribution Systems via Deep Learning

被引:156
作者
Mestav, Kursat Rasim [1 ]
Luengo-Rozas, Jaime [1 ]
Tong, Lang [1 ]
机构
[1] Cornell Univ, Sch Elect & Comp Engn, Ithaca, NY 14850 USA
基金
美国国家科学基金会;
关键词
Distribution system state estimation; bad-data detection; Bayesian inference; deep learning; neural networks; smart distribution systems; NEURAL-NETWORKS; BAD-DATA; PSEUDO-MEASUREMENTS; IDENTIFICATION; LOAD; MODEL;
D O I
10.1109/TPWRS.2019.2919157
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
080906 [电磁信息功能材料与结构]; 082806 [农业信息与电气工程];
摘要
The problem of state estimation for unobservable distribution systems is considered. A deep learning approach to Bayesian state estimation is proposed for real-time applications. The proposed technique consists of distribution learning of stochastic power injection, a Monte Carlo technique for the training of a deep neural network for state estimation, and a Bayesian bad-data detection and filtering algorithm. Structural characteristics of the deep neural networks are investigated. Simulations illustrate the accuracy of Bayesian state estimation for unobservable systems and demonstrate the benefit of employing a deep neural network. Numerical results show the robustness of Bayesian state estimation against modeling and estimation errors and the presence of bad and missing data. Comparing with pseudo-measurement techniques, direct Bayesian state estimation via deep learning neural network outperforms existing benchmarks.
引用
收藏
页码:4910 / 4920
页数:11
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