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Application of Intelligent Water Drops Algorithm in Reservoir Operation

机译:智能水滴算法在水库调度中的应用

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摘要

Optimum reservoir operation is a challenging problem in water resources systems. In this paper, Intelligent Water Drops (IWD) algorithm is applied in a reservoir operation problem. IWD is a population based algorithm and is initially proposed for solving combinatorial problems. The algorithm mimics the dynamics of river system and the behavior of water drops in the rivers. For this purpose data from Dez reservoir, located in southwestern Iran, has been used to examine the performance of the model. Moreover, due to similarities between IWD and the Ant Colony Optimization (ACO) algorithms, the results are compared with those of the ACO algorithm. Comparison of the results shows that while the IWD algorithm finds relatively better solutions, it is able to overcome the computational time consumption deficiencies inherited in the ACO methods. This is very important in large models with too many decision variables where run time becomes a limiting factor for optimization model applications.
机译:在水资源系统中,最佳水库调度是一个充满挑战的问题。本文将智能水滴算法应用于水库调度问题。 IWD是一种基于种群的算法,最初是为解决组合问题而提出的。该算法模拟河流系统的动力学和河流中的水滴行为。为此,来自伊朗西南部Dez水库的数据已用于检验模型的性能。此外,由于IWD与蚁群优化(ACO)算法之间的相似性,将结果与ACO算法的结果进行了比较。结果比较表明,尽管IWD算法找到了相对更好的解决方案,但它能够克服ACO方法中继承的计算时间消耗不足。在决策变量过多的大型模型中,这非常重要,因为运行时间成为优化模型应用程序的限制因素。

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