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RISK ASSESSMENT IN PHARMACEUTICAL SUPPLY CHAINS UNDER UNKNOWN INPUT-MODEL PARAMETERS

机译:输入模型参数未知的药品供应链风险评估

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We consider a pharmaceutical supply chain where the manufacturer sources a customized product with unique attributes from a set of unreliable suppliers. We model the likelihood of a supplier to successfully deliver the product via Bayesian logistic regression and use simulation to obtain the posterior distribution of the unknown parameters of this model. We study the role of so-called input-model uncertainty in estimating the likelihood of the supply failure, which is the probability that none of the suppliers in a given supplier portfolio can successfully deliver the product. We investigate how the input-model uncertainty changes with respect to the characteristics of the historical data on the past realizations of the supplier performances and the product attributes.
机译:我们考虑制药供应链,其中制造商从一组不可靠的供应商那里采购具有独特属性的定制产品。我们对供应商通过贝叶斯逻辑回归成功交付产品的可能性进行建模,并使用仿真来获得该模型未知参数的后验分布。我们研究了所谓的输入模型不确定性在估计供应失败可能性中的作用,这是给定供应商组合中没有任何供应商能够成功交付产品的概率。我们调查输入模型的不确定性如何根据历史数据的特征变化,这些历史数据取决于供应商绩效和产品属性的过去实现。

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