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A new uncertainty importance measure

机译:一种新的不确定性重要性度量

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Uncertainty in parameters is present in many risk assessment problems and leads to uncertainty in model predictions. In this work, we introduce a global sensitivity indicator which looks at the influence of input uncertainty on the entire output distribution without reference to a specific moment of the output (moment independence) and which can be defined also in the presence of correlations among the parameters. We discuss its mathematical properties and highlight the differences between the present indicator, variance-based uncertainty importance measures and a moment independent sensitivity indicator previously introduced in the literature. Numerical results are discussed with application to the probabilistic risk assessment model on which Iman [A matrix-based approach to uncertainty and sensitivity analysis for fault trees. Risk Anal 1987;7(1):22-33] first introduced uncertainty importance measures.
机译:参数的不确定性存在于许多风险评估问题中,并导致模型预测的不确定性。在这项工作中,我们引入了一个全局灵敏度指标,该指标在不参考输出的特定时刻(矩独立性)的情况下,观察了输入不确定性对整个输出分布的影响,并且可以在参数之间存在相关性时对其进行定义。 。我们讨论了它的数学特性,并强调了当前指标,基于方差的不确定性重要性度量和先前在文献中引入的与时刻无关的灵敏度指标之间的差异。讨论了数值结果,并将其应用于概率风险评估模型,在该模型上,Iman [基于矩阵的故障树不确定性和敏感性分析方法。 Risk Anal 1987; 7(1):22-33]首先引入了不确定性重要性度量。

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