Visual summaries for graph collections

D. Koop, J. Freire, Cláudio T. Silva
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引用次数: 29

Abstract

Graphs can be used to represent a variety of information, from molecular structures to biological pathways to computational workflows. With a growing volume of data represented as graphs, the problem of understanding and analyzing the variations in a collection of graphs is of increasing importance. We present an algorithm to compute a single summary graph that efficiently encodes an entire collection of graphs by finding and merging similar nodes and edges. Instead of only merging nodes and edges that are exactly the same, we use domain-specific comparison functions to collapse similar nodes and edges which allows us to generate more compact representations of the collection. In addition, we have developed methods that allow users to interactively control the display of these summary graphs. These interactions include the ability to highlight individual graphs in the summary, control the succinctness of the summary, and explicitly define when specific nodes should or should not be merged. We show that our approach to generating and interacting with graph summaries leads to a better understanding of a graph collection by allowing users to more easily identify common substructures and key differences between graphs.
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图形集合的可视化摘要
图可以用来表示各种各样的信息,从分子结构到生物途径再到计算工作流程。随着以图表示的数据量的增长,理解和分析图集合中的变化问题变得越来越重要。我们提出了一种算法来计算单个汇总图,该算法通过查找和合并相似的节点和边来有效地编码整个图集合。我们不是只合并完全相同的节点和边,而是使用特定于领域的比较函数来折叠相似的节点和边,这使我们能够生成更紧凑的集合表示。此外,我们还开发了一些方法,允许用户以交互方式控制这些汇总图的显示。这些交互包括在摘要中突出显示单个图的能力,控制摘要的简洁性,以及显式地定义何时应该合并或不应该合并特定的节点。我们表明,通过允许用户更容易地识别图之间的公共子结构和关键差异,我们的生成和与图摘要交互的方法可以更好地理解图集合。
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