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Quantum Reinforcement Learning-Based Two-Stage Unit Commitment Framework for Enhanced Power Systems Robustness

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arxiv 2410.21240 v3 pith:XQXEHTGP submitted 2024-10-28 eess.SY cs.SY

classification eess.SYcs.SY
keywords real-timedecision-makingflexibilityforesight-seeinglearningquantumreinforcementalgorithmic
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Unit commitment (UC) optimizes the start-up and shutdown schedules of generating units to meet load demand while minimizing costs. However, the increasing integration of renewable energy introduces uncertainties for real-time scheduling. Existing solutions face limitations both in modeling and algorithmic design. At the modeling level, they fail to incorporate widely adopted virtual power plants (VPPs) as flexibility resources, missing the opportunity to proactively mitigate potential real-time imbalances or ramping constraints through foresight-seeing decision-making. At the algorithmic level, existing probabilistic optimization, multi-stage approaches, and machine learning, face challenges in computational complexity and adaptability. To address these challenges, this study proposes a novel two-stage UC framework that incorporates foresight-seeing sequential decision-making in both day-ahead and real-time scheduling, leveraging VPPs as flexibility resources to proactively reserve capacity and ramping flexibility for upcoming renewable energy uncertainties over several hours. In particular, we develop quantum reinforcement learning (QRL) algorithms that integrate the foresight-seeing sequential decision-making and scalable computation advantages of deep reinforcement learning (DRL) with the parallel and high-efficiency search capabilities of quantum computing. Experimental results demonstrate that the proposed QRL-based approach outperforms in computational efficiency, real-time responsiveness, and solution quality.

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Cited by 1 Pith paper

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  1. A Survey on Applications of Quantum Computing for Unit Commitment

    quant-ph 2026-01 conditional novelty 2.0 of 10

    A taxonomy of quantum-computing approaches to unit commitment, grouping research into annealing, variational/hybrid, quantum machine learning, and quantum-inspired methods.

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