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Multi-objective Planning For Conjunctive Use Of Surface And Subsurface Water Using Genetic Algorithm And Dynamics Programming

机译:基于遗传算法和动力学规划的地表水与地下水联合利用多目标规划

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摘要

The consideration of fixed cost and time-varying operating cost associated with the simultaneous conjunctive use of surface and subsurface water should be treated as a multi-objective problem due to the conflicting characteristics of these two objectives. In order to solve this multi-objective problem, a novel approach is developed herein by integrating the multi-objective genetic algorithm (MOGA), constrained differential dynamic programming (CDDP) and the groundwater simulation model ISOQUAD. A MOGA is used to generate the various fixed costs of reservoirs' scale, generate a pattern of pumping/recharge, and estimate the non-inferior solutions set. A groundwater simulation model ISOQUAD is directly embedded to handle the complex dynamic relationship between the groundwater level and the generated pumping/recharge pattern. The CDDP optimization model is then adopted to distribute the optimal releases among reservoirs provided that reservoir capacities are known. Finally, the effectiveness of our proposed integrated model is verified by solving a water resources planning problem for the conjunctive use of surface and subsurface water in southern Taiwan.
机译:由于这两个目标的相互矛盾,与同时使用地表水和地下水有关的固定成本和随时间变化的运营成本的考虑应被视为多目标问题。为了解决这个多目标问题,本文通过集成多目标遗传算法(MOGA),约束差分动态规划(CDDP)和地下水模拟模型ISOQUAD,开发了一种新颖的方法。 MOGA用于生成水库规模的各种固定成本,生成抽水/补给模式以及估算非劣质解决方案集。直接嵌入地下水模拟模型ISOQUAD来处理地下水水位与生成的抽水/补给模式之间的复杂动态关系。如果已知油藏容量,则采用CDDP优化模型在油藏之间分配最佳释放量。最后,通过解决台湾南部地表水和地下水联合使用的水资源规划问题,验证了我们提出的集成模型的有效性。

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