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A model-based fuzzy analysis of questionnaires

机译:基于模型的问卷调查模糊分析

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In dealing with veracity of data analytics, fuzzy methods are more and more relying on probabilistic and statistical techniques to underpin their applicability. Conversely, standard statistical models usually disregard to take into account the inherent fuzziness of choices and this issue is particularly worthy of note in customers' satisfaction surveys, since there are different shades of evaluations that classical statistical tools fail to catch. Given these motivations, the paper introduces a model-based fuzzy analysis of questionnaire with sound statistical foundation, driven by the design of a hybrid method that sets in between fuzzy evaluation systems and statistical modelling. The proposal is advanced on the basis of cubmixture models to account for uncertainty in ordinal data analysis and moves within the general framework of Intuitionistic Fuzzy Set theory to allow membership, non-membership, vagueness and accuracy assessments. Particular emphasis is given to defuzzification procedures that enable uncertainty measures also at an aggregated level. An application to a survey run at the University of Naples Federico II about the evaluation of Orientation Services supports the efficacy of the proposal.
机译:在处理数据分析的准确性时,模糊方法越来越依赖概率和统计技术来支撑其适用性。相反,标准统计模型通常不考虑选择的内在模糊性,并且在客户满意度调查中,这个问题尤其值得一提,因为经典统计工具无法捕捉到各种不同的评估。鉴于这些动机,本文介绍了一种基于模型的,具有可靠统计基础的问卷调查模糊分析,并通过在模糊评估系统和统计建模之间建立混合方法的设计来驱动。该提议是在混合模型的基础上提出的,以解决序数数据分析中的不确定性,并在直觉模糊集理论的一般框架内移动以允许进行成员资格,非成员资格,模糊性和准确性评估。特别强调去模糊化程序,这些程序也可以在总体上实现不确定性度量。那不勒斯费德里科二世大学关于定向服务评估的一项调查应用程序支持了该提案的有效性。

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