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A Novel Approach to Multi-Attribute Group Decision-Making based on Interval-Valued Intuitionistic Fuzzy Power Muirhead Mean

机译:基于区间直觉模糊功率Muirhead均值的多属性群决策新方法

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摘要

This paper focuses on multi-attribute group decision-making (MAGDM) course in which attributes are evaluated in terms of interval-valued intuitionistic fuzzy (IVIF) information. More explicitly, this paper introduces new aggregation operators for IVIF information and further proposes a new IVIF MAGDM method. The power average (PA) operator and the Muirhead mean (MM) are two powerful and effective information aggregation technologies. The most attractive advantage of the PA operator is its power to combat the adverse effects of ultra-evaluation values on the information aggregation results. The prominent characteristic of the MM operator is that it is flexible to capture the interrelationship among any numbers of arguments, making it more powerful than Bonferroni mean (BM), Heronian mean (HM), and Maclaurin symmetric mean (MSM). To absorb the virtues of both PA and MM, it is necessary to combine them to aggregate IVIF information and propose IVIF power Muirhead mean (IVIFPMM) operator and the IVIF weighted power Muirhead mean (IVIFWPMM) operator. We investigate their properties to show the strongness and flexibility. Furthermore, a novel approach to MAGDM problems with IVIF decision-making information is introduced. Finally, a numerical example is provided to show the performance of the proposed method.
机译:本文着重于多属性小组决策(MAGDM)课程,该课程根据间隔值直觉模糊(IVIF)信息评估属性。更明确地说,本文介绍了用于IVIF信息的新聚合运算符,并进一步提出了一种新的IVIF MAGDM方法。功率平均(PA)运算符和Muirhead均值(MM)是两种强大而有效的信息聚合技术。 PA运营商最吸引人的优势在于它有能力抵抗超评估值对信息聚合结果的不利影响。 MM算子的突出特点是可以灵活捕获任意数量参数之间的相互关系,从而使其比Bonferroni均值(BM),Heronian均值(HM)和Maclaurin对称均值(MSM)更强大。为了吸收PA和MM的优点,有必要将它们组合起来以汇总IVIF信息,并提出IVIF功率Muirhead均值(IVIFPMM)运算符和IVIF加权功率Muirhead均值(IVIFWPMM)运算符。我们研究它们的性能以显示其强度和灵活性。此外,介绍了一种通过IVIF决策信息解决MAGDM问题的新方法。最后,通过数值例子说明了该方法的性能。

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