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Interval type-2 fuzzy sets to model linguistic label perception in online services satisfaction

机译:区间2型模糊集建模在线服务满意度中的语言标签感知

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摘要

In this paper, we propose a novel two-phase methodology based on interval type-2 fuzzy sets (T2FSs) to model the human perceptions of the linguistic terms used to describe the online services satisfaction. In the first phase, a type-1 fuzzy set (T1FS) model of an individual's perception of the terms used in rating user satisfaction is derived through a decomposition-based procedure. The analysis is carried out by using well-established metrics and results from the Social Sciences context. In the second phase, interval T2FS models of online user satisfaction are calculated using a similarity-based data mining procedure. The procedure selects an essential and informative subset of the initial T1FSs that is used to discard the outliers automatically. Resulting interval T2FSs, which are synthesized based on the selected subset of T1FSs only, exhibit reasonable shapes and interpretability.
机译:在本文中,我们提出了一种基于区间2型模糊集(T2FS)的新颖的两阶段方法,以模拟人类对用来描述在线服务满意度的语言术语的感知。在第一阶段,通过基于分解的过程,得出了个人对用户满意度进行评分时所使用的术语的1型模糊集(T1FS)模型。通过使用完善的指标和社会科学背景下的结果进行分析。在第二阶段,使用基于相似性的数据挖掘程序来计算在线用户满意度的时间间隔T2FS模型。该过程选择初始T1FS的重要且信息丰富的子集,该子集用于自动丢弃异常值。仅根据所选的T1FS子集合成的结果间隔T2FS表现出合理的形状和可解释性。

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