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Improving dual importance analysis based on a Shapley value associated with a fuzzy measure when interactions of criteria are significant

机译:当标准的交互作用很重要时,基于与模糊度量相关的Shapley值改进双重重要性分析

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摘要

Kano's model is very useful to classify customer needs into different categories by completely using self-stated evaluations. However, the derived evaluation approach uses a less direct way of uncovering the evaluations that are most reliable to reflect the respondents' view from the survey. In addition, interaction effects among items, particularly non-linear interactions, are often incurred in practice. This study proposes a framework of using the dual importance graph with self-stated performance and derived importance computed by a Shapley value associated with a fuzzy measure method to classify the service items into different types of Kano's category by considering both linear and nonlinear effects among items. A case of evaluating the service quality of a particular hospital is illustrated to show how this proposed framework works. The result shows that using the Shapley value-based dual importance graph is more practical to deal with interactions of items.
机译:卡诺模型非常有用,可以通过完全使用自我评估来将客户需求分为不同的类别。但是,派生的评估方法使用一种不太直接的方法来发现最可靠的评估,以反映受访者从调查中得出的观点。另外,在实践中经常会引起项目之间的交互作用,特别是非线性交互作用。本研究提出了一个框架,该框架使用具有自我陈述性能的双重重要性图和通过模糊度量方法关联的Shapley值计算得出的重要性,通过考虑项目之间的线性和非线性影响将服务项目分类为不同类型的卡诺类别。 。举例说明了评估特定医院的服务质量的案例,以说明此提议的框架是如何工作的。结果表明,使用基于Shapley值的双重重要性图在处理项目交互方面更为实用。

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