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The Improved Binary-Real Coded Shuffled Frog Leaping Algorithm for Solving Short-Term Hydropower Generation Scheduling Problem in Large Hydropower Station

机译:大型水电站短期水电调度问题的改进的二进制-实数编码混搭蛙跳算法

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The short-term hydro generation scheduling (STHGS) decomposed into unit commitment (UC) and economic load dispatch (ELD) subproblems is complicated problem with integer optimization, which has characteristics of high dimension, nonlinear and complex hydraulic and electrical constraints. In this study, the improved binary-real coded shuffled frog leaping algorithm (IBR-SFLA) is proposed to effectively solve UC and ELD subproblems, respectively. For IB-SFLA, the new grouping strategy is applied to overcome the grouping shortage of SFLA, and modified search strategies for each type of frog subpopulation based on normal cloud model (NCM) and chaotic theory are introduced to enhance search performance. The initialization strategy with chaos theory and adaptive frog activation mechanism are presented to strengthen performance of IR-SFLA on ELD subproblem. Furthermore, to solve ELD subproblem, the optimal economic operation table is formed using I R-SF LA and invoked from database. Moreover, reserve capacity supplement and repair, and minimum on and off time repairing strategies are applied to handle complex constraints in STHGS. Finally, the coupled external and internal model corresponding to UC and ELD subproblems is established and applied to solve STHGS problem in Three Gorges hydropower station. Simulation results obtained from IBR-SFLA are better than other compared algorithms with less water consumption. In conclusion, to solve STHGS optimization problem, the proposed IBR-SFLA presents outstanding performance on solution precision and convergence speed compared to traditional SFLA effectively and outperforms the rivals to get higher precision solution with improving the utilization rate of waterpower resources.
机译:短期水力发电调度(STHGS)分解为机组承诺(UC)和经济负荷调度(ELD)子问题是整数优化的复杂问题,具有高维,非线性和复杂的水力和电力约束的特点。在这项研究中,提出了一种改进的二进制实数编码的改组蛙跳算法(IBR-SFLA),分别有效地解决了UC和ELD子问题。对于IB-SFLA,应用了新的分组策略来克服SFLA的分组不足,并引入了基于正常云模型(NCM)和混沌理论的针对每种青蛙亚群的改进搜索策略,以提高搜索性能。提出了基于混沌理论的初始化策略和自适应青蛙激活机制,以增强IR-SFLA在ELD子问题上的性能。此外,为了解决ELD子问题,使用I R-SF LA形成最佳经济运行表并从数据库中调用。此外,备用容量的补充和修复以及最少的开/关时间修复策略可用于处理STHGS中的复杂约束。最后,建立了与UC和ELD子问题相对应的内外耦合模型,并将其应用于解决三峡水电站STHGS问题。从IBR-SFLA获得的仿真结果优于其他比较算法,且耗水量更少。综上,为解决STHGS优化问题,与传统的SFLA相比,所提出的IBR-SFLA在求解精度和收敛速度上均表现出出色的性能,并且在提高水力资源利用率的同时,也优于竞争对手获得了更高的精度。

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