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A Generalized TOPSIS Method for Intuitionistic Fuzzy Multiple Attribute Group Decision Making Considering Different Scenarios of Attributes Weight Information

机译:考虑不同属性权重信息场景的直觉模糊多属性群决策的通用TOPSIS方法

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In this paper, the technique for order preference by similarity to an ideal solution (TOPSIS) method is extended to solve multiple attribute group decision making (MAGDM) problems under intuitionistic fuzzy environment. The input data involve assessment information about the alternatives, the weights of the decision makers (DMs) provided by the experts, and weights of the multiple attributes. Here, we generalize the TOPSIS method under the realm of both the intuitionistic fuzzy set (IFS) and interval valued intuitionistic fuzzy set (IVIFS), taking into consideration different variations of weights of the attributes provided by the DMs depending upon their psychology, subjectivity and cognitive thinking. The assessment information and attributes weights are aggregated over each decision maker's weight using weighted arithmetic and weighted geometric operators. The score functions, namely, the advantage and disadvantage scores are implemented to capture the preferences of the DMs in the context of reliability of information. These score functions are based on the positive contribution of the parameters of IFS, i.e. membership, non-membership and hesitation degrees, evaluating the performance of each alternative with the rest on the given attributes. The performance degree of each alternative is then determined to select the preferable alternative using strength and weakness scores as a function of the obtained attribute weight vector. Numerical illustrations in the form of an investment decision making problem are demonstrated in the context of both the IFS and IVIFS, taking different forms of attribute weight information so as to better reflect the working of the proposed methodology. Further, the methodology is compared with some existing works and major highlights of the proposed work are presented.
机译:在本文中,通过一种类似于理想解决方案(TOPSIS)的顺序偏好技术得到扩展,以解决直觉模糊环境下的多属性组决策(MAGDM)问题。输入数据包括有关替代方案的评估信息,专家提供的决策者(DM)的权重以及多个属性的权重。在这里,我们在直觉模糊集(IFS)和区间值直觉模糊集(IVIFS)的范围内归纳了TOPSIS方法,并考虑了DM所提供的属性权重的不同变化,具体取决于它们的心理,主观性和认知思维。使用加权算术和加权几何运算符,将评估信息和属性权重汇总到每个决策者的权重上。实施分数功能,即优势和劣势分数,以在信息的可靠性范围内捕获DM的偏好。这些得分函数基于IFS参数的正贡献,即成员资格,非成员资格和犹豫程度,评估每个替代方案的性能,其余的均基于给定的属性。然后确定每个替代方案的执行程度,以根据获得的属性权重向量的优势和劣势得分选择最佳替代方案。在IFS和IVIFS的上下文中都以投资决策问题的形式展示了数字插图,并采用了不同形式的属性权重信息,以便更好地反映所提出方法的工作。此外,将该方法与一些现有工作进行了比较,并提出了拟议工作的主要亮点。

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