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Computational benefits using artificial intelligent methodologies for the solution of an environmental design problem: Saltwater intrusion

机译:使用人工智能方法解决环境设计问题的计算优势:盐水入侵

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Artificial Neural Networks (ANNs) comprise a powerful tool to approximate the complicated behavior and response of physical systems allowing considerable reduction in computation time during time-consuming optimization runs. In this work, a Radial Basis Function Artificial Neural Network (RBFN) is combined with a Differential Evolution (DE) algorithm to solve a water resources management problem, using an optimization procedure. The objective of the optimization scheme is to cover the daily water demand on the coastal aquifer east of the city of Heraklion, Crete, without reducing the subsurface water quality due to seawater intrusion. The RBFN is utilized as an on-line surrogate model to approximate the behavior of the aquifer and to replace some of the costly evaluations of an accurate numerical simulation model which solves the subsurface water flow differential equations. The RBFN is used as a local approximation model in such a way as to maintain the robustness of the DE algorithm. The results of this procedure are compared to the corresponding results obtained by using the Simplex method and by using the DE procedure without the surrogate model. As it is demonstrated, the use of the surrogate model accelerates the convergence of the DE optimization procedure and additionally provides a better solution at the same number of exact evaluations, compared to the original DE algorithm.
机译:人工神经网络(ANN)是一种功能强大的工具,可以逼近物理系统的复杂行为和响应,从而在耗时的优化运行过程中大大减少了计算时间。在这项工作中,将径向基函数人工神经网络(RBFN)与差分进化(DE)算法结合起来,使用优化程序来解决水资源管理问题。优化方案的目标是满足克里特岛伊拉克利翁市以东的沿海含水层的每日需水量,而不降低由于海水入侵而引起的地下水质。 RBFN用作在线替代模型,用于近似含水层的行为,并代替对解决地下水流微分方程的精确数值模拟模型进行的一些昂贵评估。 RBFN用作局部逼近模型,以保持DE算法的鲁棒性。将该过程的结果与使用Simplex方法和使用不具有替代模型的DE过程获得的相应结果进行比较。如图所示,与原始DE算法相比,替代模型的使用加速了DE优化过程的收敛,并在相同数量的精确评估下提供了更好的解决方案。

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