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首页> 外文期刊>International Journal of Information Technology & Decision Making >Minimum Weighted Minkowski Distance Power Models for Intuitionistic Fuzzy Madm with Incomplete Weight Information
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Minimum Weighted Minkowski Distance Power Models for Intuitionistic Fuzzy Madm with Incomplete Weight Information

机译:具有不完全重量信息的直观模糊MADM的最小加权Minkowski距离电源模型

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摘要

Owing to more vague concepts frequently represented in decision data, intuitionistic fuzzy sets (IFSs) are more fliexibly used to model real-life decision situations. At the same time, with ever increasing complexity in many decision situations in reality, there are often some challenges for a decision maker to provide complete attribute preference information, i.e., the weights may be completely unknown or partially known. The aim of this paper is to develop an effiective method for solving intuitionistic fuzzy multi-attribute decision making (MADM) problems with incomplete weight information. In this method, ratings of alternatives on attributes are expressed with IFSs. The multi-objective programming models are established to calculate unknown weights by using weight information partially known a priori. The derived minimum weighted Minkowski distance power models are used to determine the unknown weights and to generate the ranking order of the alternatives simultaneously. The proposed models are easily extended to intuitionistic fuzzy MADM problems with different weight information structures. An example of the supplier selection problem is examined to demonstrate applicability and flexibility of the proposed models and method.
机译:由于在决策数据中经常代表的更模糊的概念,直觉模糊集(IFSS)通常更易于模拟现实生活决策情况。与此同时,随着许多决策情况的同时,决策者通常存在一些挑战,以提供完整的属性偏好信息,即,权重可以是完全未知的或部分已知的。本文的目的是开发一种用于解决无法完全权重信息的直观模糊多属性决策(MADM)问题的介入方法。在这种方法中,属性的替代品的评分用IFSS表示。建立多目标编程模型来通过使用部分已知先验的权重信息来计算未知权重。导出的最小加权Minkowski距离功率模型用于确定未知权重,并同时生成替代品的排名顺序。所提出的模型很容易扩展到直观的模糊MADM问题,具有不同的权重信息结构。检查了供应商选择问题的一个例子,以证明所提出的模型和方法的适用性和灵活性。

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