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A novel dynamic multi-attribute decision-making method based on the improved weights function and score function, and its application

机译:一种基于改进权重函数和得分函数的新型动态多属性决策方法及其应用

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摘要

In recent decades, many multi-attribute decision-making methods have not been effectively applied to solve practical problems because of various shortcomings. The purpose of this paper is to develop a novel dynamic multi-attribute decision-making (DMADM) method based on the improved weights function and score function. In this paper, a novel method based on the improved entropy of interval-valued intuitionistic fuzzy sets is applied to calculate attribute weight. A time weight method is developed via the multi-target nonlinear programming model based on the ideal solution and information entropy. The influence of decision-makers' subjective preference and objective attribute information are integrated into the time weight. A novel ranking method based on the improved score function is used to select the best alternative in the DMADM process. Moreover, the interaction among attributes is considered by the interval-valued intuitionistic fuzzy geometric weighted Heronian means operator in the proposed method. Finally, an example of partner selection with collaborative innovation is given to verify the developed approach. This study contributes to the development of DMADM theory by using improved attribute weight, time weight, and score functions, and offers us a very useful way to deal with DMADM problems in real life.
机译:近几十年来,由于各种缺点,许多多属性决策方法尚未有效地应用于解决实际问题。本文的目的是基于改进的权重函数和得分函数来开发一种新的动态多属性决策(DMADM)方法。本文采用基于改进的间隔直觉模糊集的新方法来计算属性权重。通过基于理想解决方案和信息熵的多目标非线性编程模型开发了一种时间重量方法。决策者主观偏好和客观属性信息的影响纳入了时间重量。基于改进的得分函数的新型排名方法用于选择DMADM过程中的最佳替代方案。此外,在所提出的方法中,间隔值的直觉模糊几何加权Heronian装置操作员考虑属性之间的相互作用。最后,给出了具有协作创新的合作伙伴选择的例子来验证开发的方法。本研究有助于通过使用改进的属性权重,时间重量和得分函数来实现DMADM理论,为我们提供了一种在现实生活中处理DMADM问题的非常有用的方法。

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