基于矩阵的动态复合有向图可视化研究

Michael Burch, Benjamin Schmidt, D. Weiskopf
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引用次数: 36

摘要

我们介绍了一种基于矩阵的可视化技术来探索时变有向图和加权图。给出了两种概览表示:一种是带有附加定量加权属性的时间聚合关系,另一种是自动动态模式识别算法的结果,即带有分类属性的关系。除了动态边缘模式分类之外,我们的工具还可以计算特定于图形的属性——比如最短路径或派系的存在——并突出显示它们随时间的演变。可视化方法是由交互技术补充的,交互技术允许用户导航、探索和浏览数据,基于视觉信息搜索咒语——首先概述,缩放和过滤,然后按需详细信息。如果顶点的额外分层组织可用,则通过垂直和水平分层冰柱图将其附加到矩阵上,允许人们在不同层次粒度上探索数据。通过将该工具应用于分层结构世界中的时变迁移数据,证明了该工具的实用性。
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A Matrix-Based Visualization for Exploring Dynamic Compound Digraphs
We introduce a matrix-based visualization technique for exploring time-varying directed and weighted graphs. Two overview representations are shown: one for the time-aggregated relations with attached quantitative weighted attributes and one for the results of an automatic dynamic pattern identification algorithm, i.e., relations accompanied by categorical attributes. Apart from a dynamic edge pattern categorization, our tool can also compute graph-specific properties---such as shortest paths or the existence of cliques---and highlight their evolution over time. The visualization method is complemented by interaction techniques that allow the user to navigate, explore, and browse the data, based on the Visual Information Seeking Mantra---overview first, zoom and filter, then details-on-demand. If an additional hierarchical organization of the vertices is available, this is attached to the matrix by vertical and horizontal layered icicle plots allowing one to explore the data on different levels of hierarchical granularity. The usefulness of the tool is demonstrated by applying it to time-varying migration data in the hierarchically structured world.
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