Progressive multiples for communication-minded visualization

Doantam Phan, A. Paepcke, T. Winograd
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引用次数: 24

Abstract

This paper describes a communication-minded visualization called progressive multiples that supports both the forensic analysis and presentation of multidimensional event data. We combine ideas from progressive disclosure, which reveals data to the user on demand, and small multiples [21], which allows users to compare many images at once. Sets of events are visualized as timelines. Events are placed in temporal order on the x-axis, and a scalar dimension of the data is mapped to the y-axis. To support forensic analysis, users can pivot from an event in an existing timeline to create a new timeline of related events. The timelines serve as an exploration history, which has two benefits. First, this exploration history allows users to backtrack and explore multiple paths. Second, once a user has concluded an analysis, these timelines serve as the raw visual material for composing a story about the analysis. A narrative that conveys the analytical result can be created for a third party by copying and reordering timelines from the history. Our work is motivated by working with network security administrators and researchers in political communication. We describe a prototype that we are deploying with administrators and the results of a user study where we applied our technique to the visualization of a simulated epidemic.
渐进的倍数为沟通思想的可视化
本文描述了一种具有通信意识的可视化,称为渐进倍数,它支持多维事件数据的取证分析和表示。我们结合了渐进式披露(按需向用户显示数据)和小倍数(允许用户一次比较许多图像)的想法。事件集被可视化为时间轴。事件按时间顺序放置在x轴上,数据的标量维度映射到y轴。为了支持取证分析,用户可以从现有时间轴中的事件转向创建相关事件的新时间轴。时间表可以作为勘探历史,这有两个好处。首先,这个探索历史允许用户回溯和探索多条路径。其次,一旦用户完成了分析,这些时间线就会成为编写分析故事的原始视觉材料。通过从历史中复制和重新排序时间线,可以为第三方创建传达分析结果的叙述。我们的工作是通过与网络安全管理员和研究人员在政治传播工作的动机。我们描述了一个与管理员一起部署的原型,以及一个用户研究的结果,我们将我们的技术应用于模拟流行病的可视化。
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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