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Prioritized Information Fusion Method for Triangular Fuzzy Information and Its Application to Multiple Attribute Decision Making

机译:三角模糊信息的优先信息融合方法及其在多属性决策中的应用

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摘要

This study investigates the multiple attribute decision making under triangular fuzzy environment in which the attributes and experts are in different priority level. By combining the idea of quasi arithmetic mean and prioritized weighted average (PWA) operator, we first propose two new prioritized aggregation operators called quasi fuzzy prioritized weighted average (QFPWA) operator and the quasi fuzzy prioritized weighted ordered weighted average (QFPWOWA) operator for aggregating triangular fuzzy information. The properties of the new aggregation operators are studied in detail and their special cases are examined. Furthermore, based on the QFPWA operator and QFPWOWA operator, an approach to deal with multiple attribute decision-making problems under triangular fuzzy environments is developed. Finally, a practical example is provided to illustrate the multiple attribute decision making process.
机译:本研究研究了在属性和专家处于不同优先级的三角模糊环境下的多属性决策。通过结合准算术平均值和优先加权平均(PWA)运算符的思想,我们首先提出了两个新的优先聚合运算符,分别称为准模糊优先加权平均(QFPWA)运算符和准模糊优先加权有序加权平均(QFPWOWA)运算符三角模糊信息。详细研究了新聚合运算符的性质,并研究了它们的特殊情况。此外,基于QFPWA算子和QFPWOWA算子,提出了一种在三角模糊环境下处理多属性决策问题的方法。最后,提供了一个实际示例来说明多属性决策过程。

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