Rethinking Visualization: A High-Level Taxonomy

Melanie Tory, Torsten Möller
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引用次数: 283

Abstract

We present the novel high-level visualization taxonomy. Our taxonomy classifies visualization algorithms rather than data. Algorithms are categorized based on the assumptions they make about the data being visualized; we call this set of assumptions the design model. Because our taxonomy is based on design models, it is more flexible than existing taxonomies and considers the user's conceptual model, emphasizing the human aspect of visualization. Design models are classified according to whether they are discrete or continuous and by how much the algorithm designer chooses display attributes such as spatialization, timing, colour, and transparency. This novel approach provides an alternative view of the visualization field that helps explain how traditional divisions (e.g., information and scientific visualization) relates and overlap, and that may inspire research ideas in hybrid visualization areas
重新思考可视化:一个高级分类法
我们提出了一种新的高级可视化分类法。我们的分类法对可视化算法而不是数据进行分类。算法是根据它们对可视化数据所做的假设进行分类的;我们称这组假设为设计模型。因为我们的分类法是基于设计模型的,所以它比现有的分类法更灵活,并且考虑用户的概念模型,强调可视化的人性化方面。设计模型是根据它们是离散的还是连续的以及算法设计者选择的显示属性(如空间化、定时、颜色和透明度)的多少来分类的。这种新颖的方法提供了可视化领域的另一种观点,有助于解释传统的部门(例如,信息和科学可视化)是如何联系和重叠的,这可能会激发混合可视化领域的研究思想
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