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Application of an evolutionary algorithm for parameter optimization in a gully erosion model

机译:进化算法在沟蚀模型参数优化中的应用

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Herein we demonstrate how to use model optimization to determine a set of best-fit parameters for a landform model simulating gully incision and headcut retreat. To achieve this result we employed the Covariance Matrix Adaptation Evolution Strategy (CMA-ES), an iterative process in which samples are created based on a distribution of parameter values that evolve over time to better fit an objective function. CMA-ES efficiently finds optimal parameters, even with high-dimensional objective functions that are non-convex, multimodal, and non-separable. We ran model instances in parallel on a high-performance cluster, and from hundreds of model runs we obtained the best parameter choices. This method is far superior to brute-force search algorithms, and has great potential for many applications in earth science modeling. We found that parameters representing boundary conditions tended to converge toward an optimal single value, whereas parameters controlling geomorphic processes are defined by a range of optimal values. Published by Elsevier Ltd.
机译:本文中,我们演示了如何使用模型优化来确定模拟沟壑切入和后撤的地形模型的一组最佳拟合参数。为了获得此结果,我们采用了协方差矩阵适应进化策略(CMA-ES),这是一个迭代过程,其中,根据随时间演变的参数值的分布来创建样本,以更好地拟合目标函数。 CMA-ES甚至可以使用非凸,多峰且不可分离的高维目标函数来高效地找到最佳参数。我们在高性能集群上并行运行模型实例,并且从数百次模型运行中获得了最佳的参数选择。该方法远远优于蛮力搜索算法,并且在地球科学建模中的许多应用中具有巨大的潜力。我们发现代表边界条件的参数趋向于朝一个最佳单一值收敛,而控制地貌过程的参数由一系列最佳值定义。由Elsevier Ltd.发布

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