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Methods for generating multiplicatively normalized interval and fuzzy weights

机译:产生乘法归一化间隔和模糊权重的方法

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In the interval and fuzzy multiple attribute decision making it is very important to estimate the corresponding set of normalized weights from the interval and fuzzy pairwise comparison matrix. Most existing works computing normalized weights which are under the condition of the conventional additive weights (sum is one). This paper, from another perspective, introduces the concept of multiplicative interval and fuzzy weights and proposes the corresponding normalization methods for multiplicative interval and fuzzy weights. Based on these definitions and theorems, a new eigenvalue method, where weights satisfy multiplicative preference relations rather than additive, is developed for obtaining multiplicatively normalized interval weights and subsequently the global weights from interval pairwise comparison matrices. Finally, numerical examples are examined to demonstrate proposed methods.
机译:在区间和模糊多属性决策中,从区间和模糊成对比较矩阵估计相应的标准化权重集非常重要。现有的大多数工作都是在常规加性权重(总和为1)的条件下计算标准化权重。本文从另一个角度介绍了乘法区间和模糊权重的概念,并提出了相应的乘法区间和模糊权重的归一化方法。基于这些定义和定理,开发了一种新的特征值方法,其中权重满足乘法偏好关系而不是加法,以获取乘法归一化的区间权重,然后从区间成对比较矩阵中获得全局权重。最后,通过算例验证了所提出的方法。

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