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The Development Of A Confidence Interval-based Importance-performance Analysis By Considering Variability In Analyzing Service Quality

机译:考虑差异性的服务质量分析中基于置信区间的重要性-绩效分析的发展

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摘要

The traditional importance-performance analysis (1PA) uses the mean ratings of importance and performance to construct a two-dimensional grid by identifying improvement opportunities and guiding strategic planning efforts. The point estimates of importance and performance vary from sample to sample such that the numerical analyses are different based upon different samples. Thus, using point estimates for items might lead the management to make false decisions. This study integrates confidence intervals and IPA to reduce the variability which enables the decision maker much easier to identify the strengths and weaknesses based upon the sample of size used. Moreover, the assumptions of equal and unequal population variances for constructing confidence intervals are discussed.
机译:传统的重要性-绩效分析(1PA)使用重要性和绩效的平均等级来确定改进机会并指导战略规划工作,从而构建二维网格。重要性和性能的点估计值因样本而异,因此,基于不同的样本,数值分析也会有所不同。因此,对项目使用点估计可能会导致管理层做出错误的决定。这项研究结合了置信区间和IPA来减少可变性,这使得决策者可以更轻松地根据所使用的样本来确定优缺点。此外,讨论了用于构建置信区间的总体方差相等和不相等的假设。

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