Lecture Notes in Computer Science, 2000, Volume 1910/2000, 86-95, DOI: 10.1007/3-540-45372-5_9

Application of Reinforcement Learning to Electrical Power System Closed-Loop Emergency Control

C. Druet, D. Ernst and L. Wehenkel

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Abstract

This paper investigates the use of reinforcement learning in electric power system emergency control. The approach consists of using numerical simulations together with on-policy Monte Carlo control to determine a discrete switching control law to trip generators so as to avoid loss of synchronism. The proposed approach is tested on a model of a real large scale power system and results are compared with a quasi-optimal control law designed by a brute force approach for this system.

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