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Reservoir operation using a robust evolutionary optimization algorithm

机译:使用稳健的进化优化算法进行水库调度

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In this research, a significant improvement in reservoir operation was achieved using a state-of-the-art evolutionary algorithm named Borg MOEA. A real-world multipurpose dam was used to test the algorithm's performance, and the target of the reservoir operation policy was to fulfil downstream water demands in drought condition while maintaining a sustainable quantity of water in the reservoir for the next year. The reservoir's performance was improved by increasing the maximum reservoir storage by 14.83 million m~3. Furthermore, sustainable water storage in the reservoir was achieved for the next year,for the simulated low flow condition considered, while the total annual imbalance between the monthly reservoir releases and water demands was reduced by 64.7%. The algorithm converged quickly and reliably, and consistently good results were obtained. The methodology and results will be useful to decision makers and water managers for setting the policy to manage the reservoir efficiently and sustainably.
机译:在这项研究中,使用称为Borg MOEA的最新进化算法实现了油藏运行的显着改善。使用现实世界中的多功能水坝来测试算法的性能,水库运行策略的目标是在干旱条件下满足下游的用水需求,同时保持明年水库的可持续用水量。最大储水库增加了1483万立方米3,提高了储层的性能。此外,考虑到模拟的低流量条件,在下一年实现了水库的可持续储水,而每月水库释放量与需水量之间的年度总失衡减少了64.7%。该算法快速,可靠地收敛,并且始终获得良好的结果。该方法和结果对于决策者和水管理者制定有效和可持续地管理水库的政策将是有用的。

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