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ANALYTICAL VARIANCE-BASED GLOBAL SENSITIVITY ANALYSIS IN SIMLUATION-BASED DESIGN UNDER UNCERTAINTY

机译:不确定性下基于仿真设计的基于分析方差的全局灵敏度分析

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摘要

The importance of sensitivity analysis in engineering design cannot be over-emphasized. In design under uncertainty, sensitivity analysis is performed with respect to the probabilistic characteristics. Global sensitivity analysis (GSA), in particular, is used to study the impact of variations in input variables on the variation of a model output. One of the most challenging issues for GSA is the intensive computational demand for assessing the impact of probabilistic variations. Existing variance-based GSA methods are developed for general functional relationships but require a large number of samples. In this work, we develop an efficient and accurate approach to GSA that employs analytic formulations derived from metamodels of engineering simulation models. We examine the types of GSA needed for design under uncertainty and derive generalized analytical formulations of GSA based on a variety of metamodels commonly used in engineering applications. The benefits of our proposed techniques are demonstrated and verified through both illustrative mathematical examples and the robust design for improving vehicle handling performance.
机译:敏感性分析在工程设计中的重要性不可过分强调。在不确定性下的设计中,针对概率特征进行敏感性分析。全局敏感性分析(GSA)特别是用于研究输入变量的变化对模型输出的变化的影响。对于GSA来说,最具挑战性的问题之一是对评估概率变异影响的大量计算需求。现有的基于方差的GSA方法是为一般功能关系开发的,但需要大量样本。在这项工作中,我们开发了一种有效且准确的GSA方法,该方法采用了从工程仿真模型的元模型得出的分析公式。我们检查了不确定性下设计所需的GSA类型,并基于工程应用中常用的多种元模型得出了GSA的广义分析公式。通过说明性的数学示例和用于改善车辆操纵性能的坚固设计,论证并验证了我们提出的技术的优势。

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