模糊方法在社会科学研究中的应用。酒店业的例子

Olimpia I. Ban, L. Droj, Delia A. Tușe, G. Droj, N. Bugnar
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引用次数: 1

摘要

李克特量表是社会科学中常用的一种方法。此外,李克特量表是社会科学和教育研究中最常用的心理测量工具之一。尽管李克特量表被频繁使用,但它也引发了许多问题。我们可以说,使用经典形式的李克特量表过于死板,失去了有价值的信息。Li (2013, p. 1613)引用了先前的研究,“由于模糊集的连续性,模糊尺度比传统尺度更准确”。本研究的目的是通过提出一种更合适的方法来处理以这种方式收集的数据,以减少使用李克特量表造成的不准确性。如本文所示,模糊方法是一种很好的替代方法。本文的研究方法是将输入数据作为语言变量,然后用三角模糊数识别模糊数。得到的尺度相对于输入数据更有弹性,因此能更好地捕捉现实。并将该方法应用于酒店行业竞争对手的具体案例中。运用了竞争对手重要性-绩效分析。该方法的一个弱点是由于在应用中使用李克特量表收集数据。结果得出的结论是,在该方法的清晰版本中,考虑到每个属性的竞争对手的情况,但数据的识别和处理更符合人类思维的主观性和不确定性方面。新颖之处还在于从重要性绩效分析提出的与竞争相关的象限中获得每个类别属性的层次结构。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Data Processing by Fuzzy Methods in Social Sciences Researches. Example in Hospitality Industry
Likert-type scales are a common technique used in social science. Plus, the Likert scale is among the most frequently used psychometric tools in social sciences and educational research. Despite its frequently used, the Likert scale raises up many questions mark. We can say that the use of the Likert scale in its classical form is too rigid and loses valuable information. Li (2013, p. 1613) calls on previous studies that "have claimed that fuzzy scales are more accurate than traditional scales due to the continuous nature of fuzzy sets". The aim of this research is to reduce the inaccuracy caused by the use of the Likert scale, by proposing a method of more appropriate processing of data collected in this way. As shown in this paper, fuzzy methods can be a good alternative. The research methodology consists of using the usual technique on the set of fuzzy numbers by considering the input data as linguistic variables, subsequently identified by triangular fuzzy numbers. The obtained scale is more elastic with respect to the input data, therefore it better captures the reality. The newly proposed method is applied in the concrete example of the competitors in the hotel field. The Importance-Performance Competitor Analysis is utilized. A weakness of the method is due to the use in its application of data collection with the Likert scale. The results conclude on the situation of the competitors regarding each attribute considered as in the crisp version of the method, but the identification and processing of data correspond better to the aspects of subjectivity and uncertainty specific to human thinking. A novelty is also the obtaining of a hierarchy within each category of attributes from the quadrants proposed by the Important-Performance Analysis in relation to the competition.
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