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The genetic algorithm approach for identifying the optimal operation of a multi-reservoirs on-demand irrigation system

机译:确定多水库按需灌溉系统最优运行的遗传算法

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摘要

A stochastic methodology, based on real-coded genetic algorithms for optimising the operation of reservoirs in an on-demand irrigation system, is presented. The methodology analyzes the adequacy of the difference between supply and demand taking into account the storage capacity of the reservoirs. It determines adequate inflow hydrographs to ensure the optimal regulation of reservoirs during the peak demand period. To take into account the variability of farmers' requirements, demand hydrographs were randomly generated within a pre-determined confidence interval. A weighted objective function, including violations of the admissible reservoir water levels (maximum, minimum and target water levels), is proposed. To solve the optimisation problem, a computer program was developed. The model was applied and tested on the Sinistra Ofanto irrigation scheme (Foggia, Italy), comprising five reservoirs fed with water from an upstream dam, each of them serving different irrigation districts. Results show that the model is efficient and robust.
机译:提出了一种基于实数编码遗传算法的随机方法,用于优化按需灌溉系统中水库的运行。该方法考虑了水库的存储能力,分析了供需之间差异的充分性。它确定了充足的入水水位图,以确保在需求高峰期水库得到最佳调节。考虑到农民需求的可变性,需求水位图是在预定的置信区间内随机生成的。提出了一个加权目标函数,包括违反允许的水库水位(最大,最小和目标水位)的情况。为了解决优化问题,开发了计算机程序。该模型已在Sinistra Ofanto灌溉计划(意大利福贾)上进行了应用和测试,该计划包括五个水库,由上游大坝提供水,每个水库分别服务于不同的灌溉区。结果表明,该模型是有效且鲁棒的。

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