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Visualizing Statistical Mix Effects and Simpson's Paradox

机译:可视化统计混合效果和辛普森悖论

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We discuss how “mix effects” can surprise users of visualizations and potentially lead them to incorrect conclusions. This statistical issue (also known as “omitted variable bias” or, in extreme cases, as “Simpson's paradox”) is widespread and can affect any visualization in which the quantity of interest is an aggregated value such as a weighted sum or average. Our first contribution is to document how mix effects can be a serious issue for visualizations, and we analyze how mix effects can cause problems in a variety of popular visualization techniques, from bar charts to treemaps. Our second contribution is a new technique, the “comet chart,” that is meant to ameliorate some of these issues.
机译:我们讨论“混合效果”如何使可视化的用户感到惊讶,并可能导致他们得出错误的结论。这种统计问题(也称为“遗漏变量偏差”,在极端情况下,也称为“辛普森悖论”)很普遍,并且可能影响任何可视化,其中关注数量是诸如加权总和或平均值之类的合计值。我们的第一个贡献是记录混合效果如何成为可视化的一个严重问题,并且我们分析混合效果如何导致各种流行的可视化技术(从条形图到树状图)出现问题。我们的第二个贡献是一种新技术,即“彗星图”,它旨在缓解其中的一些问题。

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