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Decision-making under uncertainty – the integrated approach of the AHP and Bayesian analysis

机译:不确定性下的决策– AHP和贝叶斯分析的综合方法

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In situations where it is necessary to perform a large number of experiments in order to collect adequate statistical data which require expert analysis and assessment, there is a need to define a model that will include and coordinate statistical data and experts’ opinions. This article points out the new integrated application of the Analytic Hierarchy Process (AHP) and Bayesian analysis, in the sense that the Bayes’ formula can improve the accuracy of input data for the Analytical Hierarchy Process, and vice versa, AHP can provide objectified inputs for the Bayesian formula in situations where the statistical estimates of probability are not possible. In this sense, the AHP can be considered as the Bayesian process that allows decision-makers to objectify their decisions and formalise the decision process through pairwise comparison of elements.
机译:在需要执行大量实验以收集需要专家分析和评估的足够统计数据的情况下,需要定义一个模型,该模型将包括并协调统计数据和专家意见。本文指出了分析层次过程(AHP)和贝叶斯分析的新集成应用,因为贝叶斯公式可以提高分析层次过程的输入数据的准确性,反之亦然,层次分析法可以提供客观的输入对于无法进行概率统计估计的情况下的贝叶斯公式。从这个意义上讲,层次分析法可以被视为贝叶斯过程,它使决策者可以通过成对比较要素来客观化他们的决策并正式化决策过程。

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