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Marine Ecosystem Model Calibration through Enhanced Surrogate-Based Optimization

机译:通过增强基于代理的优化的海洋生态系统模型校准

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Mathematical optimization of models based on simulations usually requires a substantial number of computationally expensive model evaluations and it is therefore often impractical. An improved surrogate-based optimization methodology, which addresses these issues, is developed for the optimization of a representative of the class of one-dimensional marine ecosystem models. Our technique is based upon a multiplicative response correction technique to create a computationally cheap but yet reasonably accurate surrogate from a temporarily coarser discretized physics-based coarse model. The original version of this methodology was capable of yielding about 84% computational cost savings when compared to the fine ecosystem model optimization. Here, we demonstrate that by employing relatively simple modifications, the surrogate model accuracy and the efficiency of the optimization process can be further improved. More specifically, for the considered test case, the optimization cost is reduced three times, i.e., from about 15% to only 5% of the cost of the direct fine model optimization.
机译:基于仿真的模型的数学优化通常需要大量的计算昂贵的模型评估,因此通常是不切实际的。为解决了这些问题的改进了基于代理的优化方法,用于优化一维海洋生态系统模型的代表。我们的技术基于乘法响应校正技术,从临时较促进的基于物理学的粗略模型创建计算上便宜但具有合理准确的代理。与细微生态系统模型优化相比,该方法的原始版本能够产生约84%的计算成本节省。这里,我们证明,通过采用相对简单的修改,可以进一步提高代理模型精度和优化过程的效率。更具体地,对于考虑的测试用例,优化成本减少了三次,即,从直接微型型优化成本的约15%到仅5%。

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