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首页> 外文期刊>Journal of Hydrology >Multireservoir system operation optimization by hybrid quantum-behaved particle swarm optimization and heuristic constraint handling technique
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Multireservoir system operation optimization by hybrid quantum-behaved particle swarm optimization and heuristic constraint handling technique

机译:基于混合量子行为粒子群优化和启发式约束处理技术的多储层系统运行优化

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摘要

Generally, the multireservoir system operation optimization (MSOO) is classified as a large-scale and multi-stage optimization problem with a set of complex constraints. Here, the goal of MSOO is chosen to determine the optimal operation policy of all the reservoirs to minimize the energy deficit of electrical system. In order to effectively resolve this problem, a hybrid quantum-behaved particle swarm optimization (HQPSO) is developed in this study. In HQPSO, the external archive set conserving the elite particles is used to provide multiple search directions for various agents; the modified evolution strategy and mutation operator are used to enhance the convergence rate of the swarm; while a practical heuristic constraint handling method is employed to address the complex physical constraints imposed on all the hydropower reservoirs. The simulations of 12 benchmark functions indicate that HQPSO can produce better results than several existing evolutionary methods. Then, two multireservoir systems are chosen to verify the performance of the proposed method. The results show that compared with the conventional methods, the HQPSO method can obtain scheduling results with better performances in reducing the energy deficits of power system. Hence, this paper provides an effective tool for the complex multireservoir system operation problem.
机译:通常,多储层系统运行优化(MSOO)被归类为具有一组复杂约束的大规模多阶段优化问题。在这里,选择MSOO的目标是确定所有水库的最优运行策略,以最大限度地减少电力系统的能量不足。为了有效解决这一问题,该文开发了一种混合量子行为粒子群优化(HQPSO)。在HQPSO中,采用保存精英粒子的外部存档集,为各种智能体提供多个搜索方向;采用改进的进化策略和突变算子来提高群体的收敛率;同时采用实用的启发式约束处理方法解决所有水电油藏面临的复杂物理约束。对12个基准函数的模拟表明,HQPSO可以产生比现有几种进化方法更好的结果。然后,选取两个多储层系统对所提方法的性能进行了验证。结果表明,与传统方法相比,HQPSO方法在降低电力系统能量不足方面具有更好的调度效果。因此,本文为复杂的多储层系统运行问题提供了有效的工具。

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