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Risk analysis using a hybrid Bayesian-approximate reasoning methodology

机译:使用混合贝叶斯近似推理方法进行风险分析

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Analysts are sometimes asked to make frequency estimates for specific accidents in which the accident frequency is determined primarily by safety controls. Under these conditions, frequency estimates use considerable expert belief in determining how the controls affect the accident frequency. To evaluate and document beliefs about control effectiveness, they have modified a traditional Bayesian approach by using approximate reasoning (AR) to develop prior distributions. Their method produces accident frequency estimates that separately express the probabilistic results produced in Bayesian analysis and possibilistic results that reflect uncertainty about the prior estimates. Based on their experience using traditional methods, they feel that the AR approach better documents beliefs about the effectiveness of controls than if the beliefs are buried in Bayesian prior distributions. They have performed numerous expert elicitations in which probabilistic information was sought from subject matter experts not trained in probability. They find it much easier to elicit the linguistic variables and fuzzy set membership values used in AR than to obtain the probability distributions used in prior distributions directly from these experts because it better captures their beliefs and better expresses their uncertainties.
机译:有时要求分析人员对特定事故的频率进行估算,其中事故频率主要由安全控制来确定。在这种情况下,频率估计会在确定控件如何影响事故频率时运用相当多的专家信念。为了评估和记录有关控制有效性的信念,他们通过使用近似推理(AR)来开发先验分布来修改了传统的贝叶斯方法。他们的方法产生的事故频率估计分别表示贝叶斯分析中产生的概率结果和反映先前估计不确定性的可能结果。根据他们使用传统方法的经验,他们认为,与将信念埋藏在贝叶斯先验分布中相比,AR方法可以更好地记录有关控制有效性的信念。他们进行了许多专家启发,从没有经过概率训练的主题专家那里寻找概率信息。他们发现,直接从这些专家那里获得AR中使用的语言变量和模糊集隶属度要比直接从这些专家那里获得用于先前分布的概率分布要容易得多,因为它们可以更好地抓住他们的信念并更好地表达他们的不确定性。

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