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FACTORS AFFECTING RISK PREDICTIONS: CAN SOME RISK METRICS BE MORE ACCURATELY PREDICTED THAN OTHERS?

机译:影响风险预测的因素:可以准确预测某些风险度量标准吗?

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A numerical experiment was performed in order to examine the ability of multiple Monte Carlo realizations of a numerical model to reproduce the risk from a hypo-thetically known waste disposal situation. In the analysis, the risk was summarized by several risk metrics that could be chosen by a regulatory agency to set a risk standard. In the numerical experiment, the parameters in the numerical model are systematically varied to adjust bias (conservative or nonconservative) and to increase uncertainty relative to the hypothetically known future. The influence of parameter bias and uncertainty on the accuracy of each risk metric in predicting the nominal risk was evaluated and presented graphically. These analyses concluded that the peak-of-the-mean metric providesrnthe least stable and least accurate risk predictions, whereas the cumulative release metric and mean of the peaks are more stable and accurate. The peak-of-the-mean and peak-of-the-median metrics exhibit risk dilution (i.e., a decrease in the predicted risk with increased uncertainty) and tend to underpredict risk. Additionally, these results illustrated how risk predictions that are made using what may be considered "conservative" assumptions can be moved in a direction that may or may not be expected or intended. Simulation relative to a hypothetical future (i.e., the nominal case) provides insight into the numerical behavior and potential accuracy of our risk assessment tools and potential issues with setting regulatory standards.
机译:进行了数值实验,以检验数值模型的多个蒙特卡洛实现方式从假设假设已知的废物处置情况再现风险的能力。在分析中,通过几个风险度量标准汇总了风险,监管机构可以选择这些风险度量标准来设置风险标准。在数值实验中,数值模型中的参数会系统地更改以调整偏差(保守或非保守)并相对于假设已知的未来增加不确定性。评估并以图形方式显示了参数偏差和不确定性对每种风险度量在预测名义风险中的准确性的影响。这些分析得出的结论是,“均值峰值”度量标准提供了最不稳定和最不准确的风险预测,而“累积释放”度量标准和峰值均值则更加稳定和准确。平均峰值和中间峰值指标显示出风险摊薄(即,随着不确定性的增加而降低了预测风险)并且倾向于低估风险。另外,这些结果说明了如何使用可能被视为“保守”的假设做出的风险预测可以朝着可能会或可能不会发生的方向移动。相对于假设的未来(即名义情况)进行的仿真可以深入了解我们的风险评估工具的数字行为和潜在准确性,以及设定监管标准的潜在问题。

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