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A method based on shape-similarity for detecting similar opinions in group decision-making

机译:基于形状相似度的群体决策中相似观点检测方法

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摘要

In this paper, we propose a method to identify groups of similarly shaped membership functions representing criterion preferences provided by a large group of experts in the context of group decision-making. Our hypothesis hereby is that similarly shaped membership functions reflect similar expert opinions. The proposed method uses a symbolic notation to depict each membership function taking into account its shape characteristics (i.e., slopes and preference levels) and the relative length approximations on its X-axis segments (i.e., core segments, left and right spreads). The symbolic notation significantly reduces the complexity to handle a large group of expert opinions expressed by membership functions, and facilitates their comparison for grouping purposes through a shape-similarity measure. The main goal of the method is to detect all membership functions that are relevant to represent trends or suitable concepts among a large group of people considered as experts. An illustrative example, demonstrating the applicability of the method, is included in the paper.
机译:在本文中,我们提出了一种方法来识别形状相似的隶属函数组,该组成员函数表示在组决策环境中由大量专家提供的标准偏好。因此,我们的假设是形状相似的隶属函数反映了相似的专家意见。所提出的方法使用符号表示法来考虑每个隶属函数,并考虑其形状特征(即斜率和偏好级别)以及其X轴分段(即核心分段,左右扩展)的相对长度近似值。该符号表示法大大降低了处理隶属函数表示的大量专家意见的复杂性,并通过形状相似性度量促进了将它们进行比较以进行分组的目的。该方法的主要目标是在与大批被视为专家的人群中检测与代表趋势或合适概念有关的所有隶属函数。本文中包含一个说明性示例,证明了该方法的适用性。

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