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Affect-Aware Word Clouds

机译:影响感知词云

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摘要

Word clouds are widely used for non-analytic purposes, such as introducing a topic to students, or creating a gift with personally meaningful text. Surveys show that users prefer tools that yield word clouds with a stronger emotional impact. Fonts and color palettes are powerful typographical signals that may determine this impact. Typically, these signals are assigned randomly, or expected to be chosen by the users. We present an affect-aware font and color palette selection methodology that aims to facilitate more informed choices. We infer associations of fonts with a set of eight affects, and evaluate the resulting data in a series of user studies both on individual words as well as in word clouds. Relying on a recent study to procure affective color palettes, we carry out a similar user study to understand the impact of color choices on word clouds. Our findings suggest that both fonts and color palettes are powerful tools contributing to the affects evoked by a word cloud. The experiments further confirm that the novel datasets we propose are successful in enabling this. We also find that, for the majority of the affects, both signals need to be congruent to create a stronger impact. Based on this data, we implement a prototype that allows users to specify a desired affect and recommends congruent fonts and color palettes for the word.
机译:Word云广泛用于非分析目的,例如向学生介绍一个主题,或者用个人有意义的文本创建礼物。调查表明,用户更喜欢产生具有更强烈情绪影响的词云的工具。字体和颜色调色板是强大的印刷信号,可以确定这种影响。通常,这些信号随机分配,或者预期由用户选择。我们提出了一种感知感知的字体和调色板选择方法,旨在促进更明智的选择。我们将字体与一组影响的关联推断出来,并在各个单词以及词云中评估一系列用户研究中的结果数据。依靠最近的一项研究来采购情感调色板,我们执行类似的用户学习,以了解颜色选择对云词的影响。我们的研究结果表明,字体和彩色调色板都是强大的工具,有助于云云引起的影响。实验进一步证实,我们提出的新型数据集是成功的实现这一目标。我们还发现,对于大多数影响,这两个信号都需要一致地创造更强大的影响。基于此数据,我们实现了一种原型,允许用户指定所需的影响并为单词推荐一致的字体和颜色调色板。

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