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Evaluation of contemporary evolutionary algorithms for optimization in reservoir operation and water supply

机译:现代进化算法对水库调度和供水优化的评估

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This study evaluates three contemporary evolutionary algorithms, namely, shark, genetic, and particle swarm algorithms, for optimization in reservoir operation and water supply. The Klang gate dam in Malaysia is selected as the case study to optimize reservoir operation. The key objective of this study is the minimization of water deficits based on demands and released water. The global solution of the problem is computed based on software Lingo and the average solution of the shark algorithm is able to attain 99% of global solution. As well, the shark algorithm can furnish demand values at a faster convergence rate than both genetic and particle swarm algorithms. The reliability index and resiliency index, as useful indices in water resource management, are used and the values of these indices have the highest percent for the shark algorithm, indicating its superiority over other evolutionary algorithms.
机译:这项研究评估了三种当代进化算法,即鲨鱼,遗传和粒子群算法,以优化水库运行和供水。选择马来西亚的巴生门水坝作为案例研究,以优化水库的运行。这项研究的主要目标是根据需求和释放的水量使缺水量最小化。该问题的整体解是基于Lingo软件计算的,而shark算法的平均解可以达到整体解的99%。同样,与遗传算法和粒子群算法相比,鲨鱼算法可以更快的收敛速度提供需求值。使用了可靠性指标和恢复力指标作为水资源管理中的有用指标,并且这些指标的值对于shark算法而言具有最高的百分比,表明它比其他进化算法优越。

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