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Contingency analysis with warm starter using probabilistic graphical model

delete2024-09-01
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PRE
AI
S
Shimiao Li *
A
Amritanshu Pandey
L
Larry Pileggi
DOI:10.1016/j.epsr.2024.110737delete
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摘要

摘要

En 中文
Cyberthreats are an increasingly common risk to the power grid and can thwart secure grid operations. We propose to extend contingency analysis to include cyberthreat evaluations. However, unlike the traditional N-1 or N-2 contingencies, cyberthreats (e.g., MadIoT) require simulating hard-to-solve N -k (with k >> 2) contingencies in a practical amount of time. Purely physics-based power flow solvers, while being accurate, are slow and may not solve N -k contingencies in a timely manner, whereas the emerging data -driven alternatives are fast but not sufficiently generalizable, interpretable, and scalable. To address these challenges, we propose a novel conditional Gaussian Random Field-based data -driven method that performs fast and accurate evaluation of cyberthreats. It achieves speedup of contingency analysis by warm -starting simulations, i.e., improving starting points, for the physical solvers. To improve the physical interpretability and generalizability, the proposed method incorporates domain knowledge by considering the graphical nature of the grid topology. To improve scalability, the method applies physics-informed regularization that reduces model complexity. Experiments validate that simulating MadIoT-induced attacks with our warm starter becomes approximately 5x faster on a realistic 2000 -bus system.
Keyword:
Contingency analysis
Cyber attack
Gaussian random field
Power flow
Warm start

期刊

Electric Power Systems Research 封面图
Electric Power Systems Research
IF:
4.2
论文数:
1.2W
被引数:
2.2W

机构

C
Carnegie Mellon University
学者数:
1.4W
论文数: 1.4W
被引数: 2.7W
U
university of vermont
学者数:
1.1W
论文数: 9.8K
被引数: 17
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