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Comparing Single-Objective Optimization Protocols for Calibrating the Birds Nest Aquifer Model-A Problem Having Multiple Local Optima

机译:比较单目标优化协议来校准鸟巢含水层模型 - 具有多个本地Optima的问题

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摘要

To best represent reality, simulation models of environmental and health-related systems might be very nonlinear. Model calibration ideally identifies globally optimal sets of parameters to use for subsequent prediction. For a nonlinear system having multiple local optima, calibration can be tedious. For such a system, we contrast calibration results from PEST, a commonly used automated parameter estimation program versus several meta-heuristic global optimizers available as external packages for the Python computer language-the GrayWolf Optimization (GWO) algorithm; the DYCORS optimizer framework with a Radial Basis Function surrogate simulator (DRB); and particle swarm optimization (PSO). We ran each optimizer 15 times, with nearly 10,000 MODFLOW simulations per run for the global optimizers, to calibrate a steady-state, groundwater flow simulation model of the complex Birds Nest aquifer, a three-layer system having 8 horizontal hydraulic conductivity zones and 25 head observation locations. In calibrating the eight hydraulic conductivity values, GWO averaged the best root mean squared error (RMSE) between observed and simulated heads-20 percent better (lower) than the next lowest optimizer, DRB. The best PEST run matched the best GWO RMSE, but both the average PEST RMSE and the range of PEST RMSE results were an order of magnitude larger than any of the global optimizers.
机译:为了最好代表现实,环境和健康相关系统的模拟模型可能非常非线性。模型校准理想地识别用于随后预测的全局最佳参数集。对于具有多个本地Optima的非线性系统,校准可能是乏味的。对于这样的系统,我们对验证的校准结果对比校准,常用的自动参数估计程序与几个元启发式全局优化器,作为Python计算机语言的外部封装 - 灰狼优化(GWO)算法; Dycors优化器框架与径向基函数代理模拟器(DRB);和粒子群优化(PSO)。我们运行每个优化器15次,为全球优化器运行近10,000种Modflow模拟,以校准复杂鸟类巢含水层的稳态,地下水仿真模型,这是一个具有8个水平液压导电区的三层系统和25头观察位置。在校准八个液压导电值时,GWO平均观察和模拟头部之间的最佳根均匀误差(RMSE)比下一个最低优化器DRB更好(更低)。最好的害虫运行匹配最佳的GWO RMSE,但平均害虫RMSE和害虫RMSE结果的范围都比任何一个全球优化器都大的数量级。

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