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Methods of ranking for aggregated fuzzy numbers from interval-valued data

机译:从区间值数据对模糊数进行排序的方法

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This paper primarily presents two methods of ranking aggregated fuzzy numbers from intervals using the Interval Agreement Approach (IAA). The two proposed ranking methods within this study contain the combination and application of previously proposed similarity measures, along with attributes novel to that of aggregated fuzzy numbers from interval-valued data. The shortcomings of previous measures, along with the improvements of the proposed methods, are illustrated using both a synthetic and real-world application. The real-world application regards the Technique for Order of Preference by Similarity to Ideal Solution (TOPSIS) algorithm, modified to include both the previous and newly proposed methods.
机译:本文主要介绍两种使用区间协议方法(IAA)从区间对聚合模糊数进行排名的方法。本研究中提出的两种排名方法包含先前提出的相似性度量的组合和应用,以及来自区间值数据的聚合模糊数的新颖属性。使用综合应用程序和实际应用程序可以说明先前措施的缺点,以及所提出方法的改进。现实世界中的应用程序将“类似于理想解决方案的优先顺序技术”(TOPSIS)算法考虑在内,并对其进行了修改,使其既包含先前的方法,也包括新提出的方法。

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