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Multi-Attribute Group Decision Making Based on Intuitionistic Uncertain Linguistic Hamy Mean Operators With Linguistic Scale Functions and Its Application to Health-Care Waste Treatment Technology Selection

机译:具有语言尺度函数的直觉不确定语言Hamy Mean算子的多属性群决策及其在医疗废物处理技术选择中的应用

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摘要

How to select an appropriate and effective health-care waste treatment technology (HCW-TT) is an especially important task in the management of health-care waste (HCW), which can be regarded as a typical multi-attribute group decision making (MAGDM) problem. In the selection of HCW-TT, the expression of evaluation information given by decision makers (DMs) under uncertain decision-making environment and the reflection of interrelationships among multi-attributes are two critical issues. In response, a new MAGDM technique is presented for the selection of HCW-TT based on the intuitionistic uncertain linguistic Hamy mean with linguistic scale functions (LSFs). First, considering the lack of closeness and flexibility of existing operations, some new operations of intuitionistic uncertain linguistic variables (IULVs) are redefined by combining with LSFs. New expected value and accuracy function are also presented to compare IULVs. Then, based on the new operations of IULVs, the intuitionistic uncertain linguistic Hamy mean and its weighted version (IULWHAM) are proposed to aggregate IULVs. The proposed operators can simultaneously model the interrelationship among multi-inputs and handle the semantic translation requirements of different DMs. Meanwhile, several attractive properties and special cases of these two operators are studied and analyzed. Subsequently, a MAGDM method (IUL-MAGDM) is presented based on the proposed IULWHAM. Finally, a numerical example is given to demonstrate the proposed IUL-MAGDM method, and results indicate that the proposed IUL-MAGDM can effectively and flexibly handle the selection of HCW management by comparing with other IUL-MAGDM methods.
机译:如何选择合适且有效的医疗废物处理技术(HCW-TT)是医疗废物(HCW)管理中的一项特别重要的任务,可以将其视为典型的多属性小组决策(MAGDM) )问题。在选择HCW-TT时,决策者(DM)在不确定的决策环境下给出的评估信息的表达以及多属性之间相互关系的反映是两个关键问题。作为回应,提出了一种新的MAGDM技术,用于基于具有语言尺度函数(LSF)的直觉不确定语言Hamy均值。首先,考虑到现有操作缺乏紧密性和灵活性,结合LSF重新定义了直觉不确定语言变量(IULV)的一些新操作。还提出了新的期望值和精度函数以比较IULV。然后,基于IULV的新操作,提出了直觉不确定语言Hamy均值及其加权形式(IULWHAM)来聚合IULV。提出的运算符可以同时对多输入之间的相互关系建模,并处理不同DM的语义转换要求。同时,研究和分析了这两个算子的几个吸引人的性质和特殊情况。随后,基于提出的IULWHAM提出了MAGDM方法(IUL-MAGDM)。最后,通过算例验证了所提出的IUL-MAGDM方法,与其他IUL-MAGDM方法相比,所提出的IUL-MAGDM方法可以有效,灵活地处理HCW管理的选择。

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