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Multicriteria decision-making combining fuzzy set theory, ideal and anti-ideal points for location site selection

机译:结合模糊集理论,理想点和反理想点的多准则决策,用于选址

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Decision-making problems often involve a complex decision-making process in which multiple requirements and uncertain conditions have to be taken into consideration simultaneously. We are often required to deal with uncertainty, subjectiveness and imprecise data, which are represented by fuzzy data. In this paper, we consider the ideal solution and the anti-ideal solution and assess each alternative in terms of distance as well as similarity to the ideal solution and the anti-ideal solution. To minimize the error, the normalization of fuzzy data is carefully avoided. To get greater accuracy in ranking fuzzy rating, we use the latest and advanced similarity measure. Distance and similarity measures for fuzzy numbers are used and aggregation is guided by the decision rules in order to construct decision function. Further, OWA operators with maximal entropy are used to aggregate across all criteria and the overall score of each alternative is determined The proposed method is more flexible in modeling the decision maker's preferences and more appropriate and effective to handle multicriteria problems of considerable complexity.
机译:决策问题通常涉及复杂的决策过程,其中必须同时考虑多种需求和不确定的条件。我们经常需要处理由模糊数据表示的不确定性,主观性和不精确性数据。在本文中,我们考虑了理想解决方案和反理想解决方案,并根据距离以及与理想解决方案和反理想解决方案的相似性评估了每个替代方案。为了使错误最小化,请小心避免对模糊数据进行标准化。为了获得更高的模糊等级评级准确性,我们使用了最新的高级相似性度量。使用模糊数的距离和相似性度量,并以决策规则为指导进行汇总,以构造决策函数。此外,使用具有最大熵的OWA运算符来汇总所有标准,并确定每个备选方案的总分。所提出的方法在建模决策者的偏好时更加灵活,并且更适合和有效地处理相当复杂的多准则问题。

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