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Data on optimization of the Karun-4 hydropower reservoir operation using evolutionary algorithms

机译:利用进化算法优化Karun-4水库水库调度的数据

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摘要

This article describes the time series data for optimizing the hydropower operation of the Karun-4 reservoir located in Iran for a period of 106 months (from October 2010 to July 2019). The utilized time-series data included reservoir inflow, reservoir storage, evaporation from the reservoir, precipitation on the reservoir, and release of water through the power plant. In this data article, a model based on Moth Swarm Algorithm (MSA) was developed for the optimization of water resources. The analysis showed that the best solutions achieved by the MSA, Genetic Algorithm (GA), and Particle Swarm Optimization (PSO) were 0.147, 0.3026, and 0.1584, respectively. The analysis of these datasets revealed that the MSA algorithm was superior to GA and PSO algorithms in the optimal operation of the hydropower reservoir problem.
机译:本文介绍了时间序列数据,这些数据用于优化位于伊朗的Karun-4水库为期106个月(从2010年10月到2019年7月)的水电运行。利用的时间序列数据包括水库流入量,水库储存量,水库蒸发量,水库中的降水量以及通过发电厂的水释放量。在此数据文章中,开发了基于蛾群算法(MSA)的模型来优化水资源。分析表明,MSA,遗传算法(GA)和粒子群优化(PSO)所实现的最佳解决方案分别为0.147、0.3026和0.1584。对这些数据集的分析表明,在水库问题的最佳运行中,MSA算法优于GA和PSO算法。

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