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Ranking Visualizations of Correlation Using Weber's Law

机译:使用韦伯定律对相关性进行排名可视化

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摘要

Despite years of research yielding systems and guidelines to aid visualization design, practitioners still face the challenge of identifying the best visualization for a given dataset and task. One promising approach to circumvent this problem is to leverage perceptual laws to quantitatively evaluate the effectiveness of a visualization design. Following previously established methodologies, we conduct a large scale (n = 1687) crowdsourced experiment to investigate whether the perception of correlation in nine commonly used visualizations can be modeled using Weber's law. The results of this experiment contribute to our understanding of information visualization by establishing that: 1) for all tested visualizations, the precision of correlation judgment could be modeled by Weber's law, 2) correlation judgment precision showed striking variation between negatively and positively correlated data, and 3) Weber models provide a concise means to quantify, compare, and rank the perceptual precision afforded by a visualization.
机译:尽管经过多年的研究得出了有助于可视化设计的系统和指南,但是从业人员仍然面临着为给定的数据集和任务识别最佳可视化的挑战。解决该问题的一种有前途的方法是利用感知定律定量评估可视化设计的有效性。根据先前建立的方法,我们进行了大规模(n = 1687)众包实验,以研究是否可以使用韦伯定律对九种常用可视化中的相关性感知进行建模。该实验的结果通过建立以下条件有助于我们对信息可视化的理解:1)对于所有测试的可视化,可以通过韦伯定律对相关判断的精度进行建模,2)相关判断精度显示出负相关数据和正相关数据之间的显着差异, 3)Weber模型提供了一种简洁的方法来量化,比较和排列可视化效果所提供的感知精度。

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