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Monte Carlo sensitivity analysis of an Eulerian large-scale air pollution model

机译:欧拉大规模大气污染模型的蒙特卡罗敏感性分析

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Variance-based approaches for global sensitivity analysis have been applied and analyzed to study the sensitivity of air pollutant concentrations according to variations of rates of chemical reactions. The Unified Danish Eulerian Model has been used as a mathematical model simulating a remote transport of air pollutants. Various Monte Carlo algorithms for numerical integration have been applied to compute Sobol's global sensitivity indices. A newly developed Monte Carlo algorithm based on Sobol's quasi-random points MCA-MSS has been applied for numerical integration. It has been compared with some existing approaches, namely Sobol's ΛΠ_T sequences, an adaptive Monte Carlo algorithm, the plain Monte Carlo algorithm, as well as, eFAST and Sobol's sensitivity approaches both implemented in SIMLAB software. The analysis and numerical results show advantages of MCA-MSS for relatively small sensitivity indices in terms of accuracy and efficiency. Practical guidelines on the estimation of Sobol's global sensitivity indices in the presence of computational difficulties have been provided.
机译:已应用基于方差的全局灵敏度分析方法,并根据化学反应速率的变化来研究空气污染物浓度的灵敏度。丹麦统一的欧拉模型已被用作模拟远程污染物排放的数学模型。各种用于数值积分的蒙特卡洛算法已应用于计算Sobol的全局灵敏度指数。基于Sobol准随机点MCA-MSS的新开发的蒙特卡洛算法已应用于数值积分。它已与一些现有方法进行了比较,例如Sobol的ΛΠ_T序列,自适应Monte Carlo算法,纯Monte Carlo算法,以及均在SIMLAB软件中实现的eFAST和Sobol灵敏度方法。分析和数值结果表明,在精度和效率方面,MCA-MSS对于灵敏度指标相对较小的优势。提供了在存在计算困难的情况下估算Sobol全局敏感性指数的实用指南。

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