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Which Parameters Are Important? Differential Importance Under Uncertainty

机译:哪些参数很重要?不确定性下的差异重要性

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摘要

In probabilistic risk assessment, attention is often focused on the expected value of a risk metric. The sensitivity of this expectation to changes in the parameters of the distribution characterizing uncertainty in the inputs becomes of interest. Approaches based on differentiation encounter limitations when (i) distributional parameters are expressed in different units or (ii) the analyst wishes to transfer sensitivity insights from individual parameters to parameter groups, when alternating between different levels of a probabilistic safety assessment model. Moreover, the analyst may also wish to examine the effect of assuming independence among inputs. This work proposes an approach based on the differential importance measure, which solves these issues. Estimation aspects are discussed in detail, in particular the problem of obtaining all sensitivity measures from a single Monte Carlo sample, thus avoiding potentially costly model runs. The approach is illustrated through an analytical example, highlighting how it can be used to assess the impact of removing the independence assumption. An application to the probabilistic risk assessment model of the Advanced Test Reactor large loss of coolant accident sequence concludes the work.
机译:在概率风险评估中,注意力通常集中在风险指标的预期值上。这种期望对表征输入中不确定性的分布参数变化的敏感性变得令人关注。当(i)分布参数以不同单位表示或(ii)分析人员希望在概率安全评估模型的不同级别之间交替时,将敏感度从单个参数传递到参数组时,基于差异的方法会遇到限制。此外,分析人员还可能希望研究假设输入之间具有独立性的影响。这项工作提出了一种基于差异重要性度量的方法,可以解决这些问题。详细讨论了估计方面,特别是从单个蒙特卡洛样本中获取所有敏感度度量的问题,从而避免了潜在的昂贵模型运行。通过一个分析示例说明了该方法,重点介绍了如何将其用于评估删除独立性假设的影响。在高级试验反应堆概率损失较大的冷却剂事故序列概率风险评估模型中的应用结束了这项工作。

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