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Physics-Informed Graphical Learning and Bayesian Averaging for Robust Distribution State Estimation

delete2024-03-01
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PRE
AI
D
Di Cao
Junbo Zhao 封面图
Junbo Zhao (Junbo Zhao)
胡维昊 封面图
胡维昊 (Weihao Hu) *
N
Nanpeng Yu
J
Jiaxiang Hu
陈真 封面图
陈真 (Zhe Chen)
DOI:10.1109/TPWRS.2023.3282413delete
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摘要

摘要

En 中文
This article proposes a robust topology change-aware distribution system state estimation (DSSE) method based on a physics-informed graph neural network and Bayesian Probability Weighted Averaging (BPWA). A general state estimator is first built utilizing a graph attention network to learn the nonlinear mapping functions under different distribution network topologies. During this stage, the topology information is embedded in the neural network and the attention mechanism is employed to capture collaborative signals and discriminate the importance of neighboring buses. Then, the BPWA method allows assigning proper weights for the state estimation results under different topologies, which finally yields a single consensus solution via the sparse training samples under the new topology. The physics-informed mechanism enables the proposed method to embed the topology knowledge in the neural network while fully exploiting the value of historical data. Robustness to anomalous measurements is achieved through the embedding of physics knowledge. The application of the BPWA method further allows the proposed method to achieve faster adaptation to topology change and quantification of the estimation uncertainties by measurement errors. MATLAB and Python are used to carry out the comparative tests to evaluate the performance of the proposed method.
Keyword:
Anomalous measurements
distribution system state estimation
physics-informed learning
topology change

期刊

IEEE Transactions on Power Systems 封面图
IEEE Transactions on Power Systems
IF:
7.2
论文数:
1.1W
被引数:
5.0W

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university of california riverside
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University of California System
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University of Connecticut
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被引数: 2.5W
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