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Moving least squares based sensitivity analysis for models with dependent variables

机译:基于最小二乘法的因变量模型的灵敏度分析

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摘要

For models with dependent input variables, sensitivity analysis is often a troublesome work and only a few methods are available. Mara and Tarantola in their paper {"Variance-based sensitivity indices for models with dependent inputs") defined a set of variance-based sensitivity indices for models with dependent inputs. We in this paper propose a method based on moving least squares approximation to calculate these sensitivity indices. The new proposed method is adaptable to both linear and nonlinear models since the moving least squares approximation can capture severe change in scattered data. Both linear and nonlinear numerical examples are employed in this paper to demonstrate the ability of the proposed method. Then the new sensitivity analysis method is applied to a cantilever beam structure and from the results the most efficient method that can decrease the variance of model output can be determined, and the efficiency is demonstrated by exploring the dependence of output variance on the variation coefficients of input variables. At last, we apply the new method to a headless rivet model and the sensitivity indices of all inputs are calculated, and some significant conclusions are obtained from the results.
机译:对于具有相关输入变量的模型,灵敏度分析通常是一项麻烦的工作,只有几种方法可用。玛拉和塔兰托拉(Mara and Tarantola)在他们的论文中(“具有相关输入的模型的基于方差的灵敏度指数”)定义了一组具有相关输入的模型的基于方差的灵敏度指标。我们在本文中提出了一种基于移动最小二乘近似的方法来计算这些灵敏度指标。由于移动最小二乘近似可以捕获分散数据中的严重变化,因此新提出的方法适用于线性和非线性模型。本文使用线性和非线性数值示例来证明该方法的能力。然后将新的灵敏度分析方法应用于悬臂梁结构,从结果可以确定出最有效的减少模型输出方差的方法,并通过研究输出方差对梁的变化系数的依赖性来证明效率。输入变量。最后,将新方法应用于无头铆钉模型,计算了所有输入的灵敏度指标,并从结果中得出了一些重要结论。

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