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Comparison of genetic algorithms with other methods for the ambient groundwater monitoring network planning

机译:遗传算法与其他方法对环境地下水监测网络规划的比较

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This work concentrates on the ambient groundwater monitoring network design. This kind of planning largely concerns itself with constructing a flexible and efficient monitoring network. This study presents a novel procedure that combines genetic algorithms (GAs) with geostatistical theory. The proposed method is compared to other methods that also integrate geostatistical theory with other optimization schemes, including the sequential design method (SDM), branch and bound method (BBM) and non-linear programming method (NPM). These methods are implemented and applied to a simplified field case. The findings indicate that the SDM technique provides a computationally efficient solution for a preliminary study. On the other hand, the multiple choices given by the GAs provide decision-makers with flexibility to consider factors that geostatistics can not.
机译:这项工作专注于环境地下水监测网络设计。这种规划在很大程度上涉及构建灵活高效的监控网络。本研究提出了一种与地质统计理论结合遗传算法(气体)的新方法。将该方法与其他方法与其他优化方案相结合,包括顺序设计方法(SDM),分支和绑定方法(BBM)和非线性编程方法(NPM)。这些方法被实现并应用于简化的现场情况。结果表明,SDM技术为初步研究提供了计算有效的解决方案。另一方面,天然气给出的多种选择为决策者提供了灵活性,以考虑地统计数据不能的因素。

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