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Magnostics: Image-Based Search of Interesting Matrix Views for Guided Network Exploration

机译:Magnostics:基于图像的有趣矩阵视图搜索,用于指导网络探索

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In this work we address the problem of retrieving potentially interesting matrix views to support the exploration of networks. We introduce Matrix Diagnostics (or Magnostics), following in spirit related approaches for rating and ranking other visualization techniques, such as Scagnostics for scatter plots. Our approach ranks matrix views according to the appearance of specific visual patterns, such as blocks and lines, indicating the existence of topological motifs in the data, such as clusters, bi-graphs, or central nodes. Magnostics can be used to analyze, query, or search for visually similar matrices in large collections, or to assess the quality of matrix reordering algorithms. While many feature descriptors for image analyzes exist, there is no evidence how they perform for detecting patterns in matrices. In order to make an informed choice of feature descriptors for matrix diagnostics, we evaluate 30 feature descriptors—27 existing ones and three new descriptors that we designed specifically for MAGNOSTICS-with respect to four criteria: pattern response, pattern variability, pattern sensibility, and pattern discrimination. We conclude with an informed set of six descriptors as most appropriate for Magnostics and demonstrate their application in two scenarios; exploring a large collection of matrices and analyzing temporal networks.
机译:在这项工作中,我们解决了检索潜在有趣的矩阵视图以支持网络探索的问题。我们引入矩阵诊断(或Magnostics),遵循与精神相关的方法对其他可视化技术(例如散点图的Scagnostics)进行评级和排名。我们的方法根据特定视觉图案(例如块和线)的出现对矩阵视图进行排序,从而指示数据中存在拓扑图案(例如簇,双图或中心节点)。 Magnostics可用于分析,查询或搜索大集合中视觉上相似的矩阵,或评估矩阵重排序算法的质量。尽管存在许多用于图像分析的特征描述符,但没有证据表明它们在检测矩阵中的模式方面表现如何。为了在矩阵诊断中明智地选择特征描述符,我们针对以下四个标准评估了30个特征描述符-27个现有特征描述符和我们专门为MAGNOSTICS设计的三个新描述符-模式响应,模式可变性,模式敏感性和模式识别。我们以六个最适合Magnostics的描述子作为参考,并在两种情况下演示了它们的应用。探索大量的矩阵并分析时间网络。

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