一种在层次分析法中检测和消除无意识判断偏差(UJB)的估计程序

G. C. Mcmeekin
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摘要

本文提出了一种用于多准则决策的层次分析法(AHP)方法中检测和消除无意识判断偏差(UJB)的估计方法。UJB反映了一种“循环的层次结构”,因为存在着对标准的结构性依赖。这违背了AHP方法中体现的层次构成原则。比较不同风险源的判断数据容易受到“框架效应”的影响。参考AHP和超矩阵方法可用于检测原始AHP数据中是否存在UJB。UJB的估计和去除可以通过使用Stein估计器的L2范数估计过程来实现。这涉及到广义逆理论和方法的使用。反馈数据矩阵为原始AHP层次结构提供了“双重”公式。超矩阵方法基于一个平稳马尔可夫系统,该系统包括反馈矩阵和原始AHP矩阵在层次结构的每一级的局部优先级。一旦修改了原始AHP判断数据以消除UJB的影响,它就可以用于提供正确的AHP敏感性分析。
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An estimation procedure to detect and remove unintentional judgemental bias (UJB) in the analytic hierarchy process methodology
This paper provides an estimation procedure to detect and to remove unintentional judgmental bias (UJB) in the analytical hierarchy process (AHP) methodology for multicriteria decision making (MCDM). UJB reflects a "cyclical hierarchy" because of the existence of a structural dependence of alternatives on criteria. This violates the principle of hierarchic composition embodied in the AHP method. The judgment data for comparing the different sources of risk are susceptible to the "framing effect" bias. The reference AHP and the supermatrix approach can be used to detect for the presence of UJB in the original AHP data. The estimation and removal of UJB can be achieved by an L2 norm estimation procedure using the Stein estimator. This involves use of the generalized inverse theory and methodology. The feedback data matrices provide a "dual" formulation for the original AHP hierarchy. The supermatrix approach is based on a stationary Markov system involving the feedback matrix and the original AHP matrix local priorities at each level of the hierarchy. Once the original AHP judgment data has been revised to remove the UJB influence, it can then be used to provide the correct AHP sensitivity analysis.<>
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