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Transformation of Mean Opinion Scores to Avoid Misleading of Ranked Based Statistical Techniques

机译:转换平均意见得分以避免对基于排名的统计技术产生误导

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The rank correlation coefficients and the ranked-based statistical tests (as a subset of non-parametric techniques) might be misleading when they are applied to subjectively collected opinion scores. Those techniques assume that the data is measured at least at an ordinal level and define a sequence of scores to represent a tied rank when they have precisely an equal numeric value. In this paper, we show that the definition of tied rank, as mentioned above, is not suitable for Mean Opinion Scores (MOS) and might be misleading conclusions of rank-based statistical techniques. Furthermore, we introduce a method to overcome this issue by transforming the MOS values considering their 95% Confidence Intervals. The rank correlation coefficients and ranked-based statistical tests can then be safely applied to the transformed values. We also provide open-source software packages in different programming languages to utilize the application of our transformation method in the quality of experience domain.
机译:当将等级相关系数和基于等级的统计检验(作为非参数技术的子集)应用于主观收集的意见得分时,可能会产生误导。这些技术假定至少在顺序级别上对数据进行了测量,并定义了分数序列以表示当它们具有精确相等的数值时的并列等级。在本文中,我们表明,如上所述,并列等级的定义不适合平均意见评分(MOS),并且可能会误导基于等级的统计技术的结论。此外,我们介绍了一种通过考虑MOS值的95%置信区间对MOS值进行转换来解决此问题的方法。然后可以将等级相关系数和基于等级的统计检验安全地应用于转换后的值。我们还提供不同编程语言的开源软件包,以将我们的转换方法应用于体验质量领域。

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