A Hybrid DHFEA/AHP Method for Ranking Units with Hesitant Fuzzy Data

IF 0.4 Q4 MATHEMATICS
T. R. Taziani, M. Ahmadi, M. Shahryari
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引用次数: 0

Abstract

One of the attractive subjects in decision analysis is the investigating of the uncertain data which is inevitable in many real-world applications. A variety of tools can be used by researchers to study the problems in the presence of uncertain data. For example, fuzzy sets theory has been introduced to investigate the uncertain data which formulates the uncertainty by using the membership functions. However, in many real world applications, it is difficult to determine the exact amount of the membership value and so the skepticism can be raised during the decision-making process. The new perspective manages the uncertainty caused by the skepticism and in this case, the most important issues are to collect the hesitant fuzzy information and to select the optimal alternative. This study develops the deviation-oriented hesitant fuzzy envelopment analysis (DHFEA) based on the slack based measure (SBM) in terms of deviation values; and on basis of different production possibility set (PPS) can be formulated. For this purpose, a two-stage method is proposed for ranking the Decision Making Units (DMUs) by using the DHFEA and the Analytic Hierarchy Process (AHP). Given that in many cases the importance of input or output indices plays an important role in decision-making, therefore, the first stage of the proposed method evaluates and compares the DMUs and the second stage constructs the pair-wise comparisons matrix by using the obtained results of DHFEA model and then proposes a complete ranking of DMUs by applying AHP method. The potential application of the proposed method is illustrated with a numerical example with the hesitant fuzzy data and the obtained results are compared with the results of the existing ranking methods.
模糊数据模糊单元排序的DHFEA/AHP混合方法
决策分析中一个有吸引力的课题是对不确定性数据的研究,这在许多实际应用中是不可避免的。研究人员可以使用各种工具来研究存在不确定数据的问题。例如,引入模糊集理论来研究不确定数据,利用隶属函数来表达不确定性。然而,在许多现实世界的应用程序中,很难确定成员值的确切数量,因此在决策过程中可能会提出怀疑。在这种情况下,最重要的问题是收集犹豫不决的模糊信息并选择最优方案。本研究在偏差值的基础上,发展了基于松弛测度的面向偏差的犹豫模糊包络分析(DHFEA);并可根据不同的生产可能性设定(PPS)。为此,提出了一种利用DHFEA和层次分析法(AHP)对决策单元进行排序的两阶段方法。考虑到在很多情况下,输入或输出指标的重要性在决策中起着重要作用,因此,本文提出的方法首先对决策单元进行评价和比较,第二阶段利用DHFEA模型得到的结果构建两两比较矩阵,然后运用层次分析法对决策单元进行完整排序。最后,通过一个犹豫不决模糊数据的算例说明了该方法的潜在应用,并将所得结果与现有排序方法的结果进行了比较。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
自引率
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68
审稿时长
24 weeks
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