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Examining Pareto optimality in analytic hierarchy process on real Data: An application in public transport service development

机译:在真实数据的层次分析过程中检查Pareto最优性:在公共交通服务开发中的应用

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Recent findings in operations research and decision theory show that the eigenvectors derived from pair wise comparison matrices are not Pareto optimal in all cases. Thus, looking at the traditional eigenvector method of Saaty, a better approximation may exist for characterizing the decision makers' opinion. The Pareto optimal modified vector may lead to better decisions for better expressing the real intention of the evaluator. This paper aims to examine Pareto-optimality on real data pairwise comparison matrices gained from a public transport Analytic Hierarchy Process (AHP) survey. Moreover, detecting the impact of weight score modification on the whole AHP structure and thus the significance of Pareto test is also in the scope of this study. Further, a detailed description of the general process of Pareto optimal AHP is also included. The application has been conducted in Mersin, Turkey with the purpose of determining public preference on the importance of developing supply quality elements in local bus transportation service. (C) 2018 Elsevier Ltd. All rights reserved.
机译:运筹学和决策理论的最新发现表明,从成对比较矩阵得出的特征向量并非在所有情况下都是Pareto最优的。因此,考虑到Saaty的传统特征向量方法,可能存在更好的近似来表征决策者的观点。帕累托最优修饰向量可以导致更好的决策,以便更好地表达评估者的真实意图。本文旨在研究从公共交通分析层次过程(AHP)调查获得的真实数据成对比较矩阵的Pareto最优性。此外,检测体重评分修改对整个AHP结构的影响以及Pareto检验的意义也在本研究的范围内。此外,还包括对帕累托最优AHP的一般过程的详细描述。该申请已在土耳其梅尔辛(Mersin)进行,目的是确定公众对开发本地公共汽车运输服务中的供应质量要素的重要性的偏爱。 (C)2018 Elsevier Ltd.保留所有权利。

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