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Reordering Massive Sequence Views: Enabling temporal and structural analysis of dynamic networks

机译:重新排列大量序列视图:启用动态网络的时间和结构分析

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Networks are present in many fields such as finance, sociology, and transportation. Often these networks are dynamic: they have a structural as well as a temporal aspect. We present a technique that extends the Massive Sequence View (MSV) for the analysis of the temporal and structural aspects of dynamic networks. Using features in the data as well as in the visualization based on the Gestalt principles closure, proximity, and similarity, we developed node reordering strategies for the MSV to make these features stand out. This enables users to find temporal properties such as trends, counter trends, periodicity, temporal shifts, and anomalies in the network as well as structural properties such as communities and stars. We show the effectiveness of the reordering methods on both synthetic and real-world transaction data sets.
机译:网络存在于金融,社会学和交通运输等许多领域。这些网络通常是动态的:它们既具有结构性又具有时间性。我们提出了一种扩展质量序列视图(MSV)的技术来分析动态网络的时间和结构方面。基于格式塔原理的闭合,接近和相似性,使用数据中的特征以及可视化中的特征,我们为MSV开发了节点重排序策略,以使这些特征脱颖而出。这使用户能够找到网络中的时间属性,例如趋势,反趋势,周期性,时间偏移和异常,以及结构属性,例如社区和恒星。我们展示了在综合和真实交易数据集上重新排序方法的有效性。

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