Metaphorical Visualization: Mapping Data to Familiar Concepts

Gleb Tkachev, René Cutura, M. Sedlmair, S. Frey, T. Ertl
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引用次数: 2

Abstract

We present a new approach to visualizing data that is well-suited for personal and casual applications. The idea is to map the data to another dataset that is already familiar to the user, and then rely on their existing knowledge to illustrate relationships in the data. We construct the map by preserving pairwise distances or by maintaining relative values of specific data attributes. This metaphorical mapping is very flexible and allows us to adapt the visualization to its application and target audience. We present several examples where we map data to different domains and representations. This includes mapping data to cat images, encoding research interests with neural style transfer and representing movies as stars in the night sky. Overall, we find that although metaphors are not as accurate as the traditional techniques, they can help design engaging and personalized visualizations.
隐喻可视化:将数据映射到熟悉的概念
我们提出了一种新的数据可视化方法,非常适合个人和休闲应用。其思想是将数据映射到用户已经熟悉的另一个数据集,然后依靠他们现有的知识来说明数据中的关系。我们通过保持成对距离或保持特定数据属性的相对值来构建映射。这种隐喻映射非常灵活,允许我们根据其应用程序和目标受众调整可视化。我们提供了几个将数据映射到不同域和表示的示例。这包括将数据映射到猫的图像,用神经风格转移编码研究兴趣,以及将电影表示为夜空中的星星。总的来说,我们发现尽管隐喻不像传统技术那样准确,但它们可以帮助设计引人入胜和个性化的可视化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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