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The Aligned Rank Transform for Nonparametric Factorial Analyses Using Only Anova Procedures

机译:仅使用方差分析过程的非参数因式分析的对齐秩变换

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Nonparametric data from multi-factor experiments arise often in human-computer interaction (HCI). Examples may include error counts, Likert responses, and preference tallies. But because multiple factors are involved, common nonparametric tests (e.g., Friedman) are inadequate, as they are unable to examine interaction effects. While some statistical techniques exist to handle such data, these techniques are not widely available and are complex. To address these concerns, we present the Aligned Rank Transform (Art) for nonparametric factorial data analysis in HCI. The Art relies on a preprocessing step that "aligns" data before applying averaged ranks, after which point common Anova procedures can be used, making the Art accessible to anyone familiar with the F-test. Unlike most articles on the ART, which only address two factors, we generalize the Art to N factors. We also provide ARTool and ARTweb, desktop and Web-based programs for aligning and ranking data. Our re-examination of some published HCI results exhibits advantages of the ART.
机译:来自多因素实验的非参数数据通常出现在人机交互(HCI)中。示例可能包括错误计数,李克特响应和偏好计数。但是,由于涉及多个因素,因此普通的非参数检验(例如Friedman)是不充分的,因为它们无法检查相互作用的影响。尽管存在一些处理这些数据的统计技术,但是这些技术尚未广泛使用并且很复杂。为了解决这些问题,我们提出了用于HCI中非参数阶乘数据分析的比对秩变换(Art)。 Art依赖于在应用平均等级之前“对齐”数据的预处理步骤,此后可以使用通用的Anova程序,使熟悉F检验的任何人都可以使用Art。与关于ART的大多数文章仅涉及两个因素不同,我们将Art归纳为N个因素。我们还提供ARTool和ARTweb,基于桌面和基于Web的程序,用于对齐和排序数据。我们对一些已发表的HCI结果的重新检查显示了ART的优势。

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