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Selection of alternatives using fuzzy networks with rule base aggregation

机译:使用带有规则库的模糊网络选择备选方案

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This paper introduces a novel extension of the Technique for Ordering of Preference by Similarity to Ideal Solution (TOPSIS) method. The method is based on aggregation of rules with different linguistic of the output of fuzzy networks to solve multi-criteria decision-making problems whereby both benefit and cost criteria are presented as subsystems. Thus the decision maker evaluates the performance of each alternative for decision process and further observes the performance for both benefit and cost criteria. The aggregation sub-stage in a fuzzy system maps the fuzzy membership functions for all rules to an aggregated fuzzy membership function representing the overall output for the rules. This approach improves significantly the transparency of the TOPSIS methods, while ensuring high effectiveness in comparison to established approaches. To ensure practicality and effectiveness, the proposed method is further tested on portfolio selection problems. The ranking produced by the method is comparatively validated using Spearman rho rank correlation. The results show that the proposed method outperforms the existing TOPSIS approaches in term of ranking performance. (C) Elsevier B.V. All rights reserved.
机译:本文介绍了一种通过与理想解决方案相似的方式对偏好进行排序的技术的新扩展。该方法基于具有模糊网络输出的不同语言的规则的聚合,以解决多准则决策问题,从而将收益和成本准则都作为子系统提出。因此,决策者评估决策过程中每个替代方案的性能,并进一步观察收益和成本标准的性能。模糊系统中的聚合子阶段将所有规则的模糊隶属度函数映射到代表规则总输出的聚合模糊隶属度函数。与已建立的方法相比,此方法可显着提高TOPSIS方法的透明度,同时确保高效性。为了确保实用性和有效性,对组合选择问题进行了进一步测试。使用Spearman rho等级相关性比较验证了该方法产生的等级。结果表明,所提出的方法在排序性能方面优于现有的TOPSIS方法。 (C)Elsevier B.V.保留所有权利。

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