A Description Framework for Data Visualizations in Enterprise Information Systems

J. Gulden
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引用次数: 4

Abstract

Data visualizations play a prominent role in enterprise information systems in various flavors. Traditional bar, line, or pie charts, or timelines, heat maps, geographical maps, dashboard gauges, and complex relationship mappings are examples of visualizations that are frequently used in business application scenarios. Despite their extensive use, however, there is only few theoretic reflection on how characteristics of data visualizations can be described on an abstract level independent from concrete graphical rendering. This is an obstacle when it comes to consciously reflecting about the use of visualizations for communicating information, because in order to gain a justified understanding of what "good" and "appropriate" visualizations for specific use cases are, at least a common terminology for characteristics of different visualization types is required. This paper introduces a description mechanism for conceptual and perceptual characteristics of data visualizations, which abstracts from concrete visual characteristics, but incorporates a joint notion of the underlying conceptual information displayed by visualizations, together with perceptual qualities of the way visualizations are cognitively processed by the human mind. The suggested solution describes each visualization type as a multidimensional abstract space, with specific scale characteristics attached to each of its axes.
企业信息系统中数据可视化描述框架
数据可视化在各种类型的企业信息系统中扮演着重要的角色。传统的条形图、线形图或饼状图、时间线、热图、地理地图、仪表板仪表和复杂的关系映射都是业务应用程序场景中经常使用的可视化示例。然而,尽管它们被广泛使用,但对于如何在独立于具体图形渲染的抽象层面上描述数据可视化的特征,只有很少的理论反思。当我们有意识地思考如何使用可视化来传达信息时,这是一个障碍,因为为了获得对特定用例的“好”和“适当”可视化的合理理解,至少需要一个不同可视化类型特征的通用术语。本文介绍了一种数据可视化的概念特征和感知特征的描述机制,它从具体的视觉特征中抽象出来,但结合了可视化所显示的潜在概念信息的联合概念,以及人类大脑对可视化的认知处理方式的感知品质。建议的解决方案将每种可视化类型描述为一个多维抽象空间,并将特定的比例特征附加到每个轴上。
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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