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Wavelet-based visualization of time-varying data on graphs

机译:基于小波的时变数据可视化

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Visualizing time-varying data defined on the nodes of a graph is a challenging problem that has been faced with different approaches. Although techniques based on aggregation, topology, and topic modeling have proven their usefulness, the visual analysis of smooth and/or abrupt data variations as well as the evolution of such variations over time are aspects not properly tackled by existing methods. In this work we propose a novel visualization methodology that relies on graph wavelet theory and stacked graph metaphor to enable the visual analysis of time-varying data defined on the nodes of a graph. The proposed method is able to identify regions where data presents abrupt and mild spacial and/or temporal variation while still been able to show how such changes evolve over time, making the identification of events an easier task. The usefulness of our approach is shown through a set of results using synthetic as well as a real data set involving taxi trips in downtown Manhattan. The methodology was able to reveal interesting phenomena and events such as the identification of specific locations with abrupt variation in the number of taxi pickups.
机译:可视化在图的节点上定义的时变数据是一个挑战性的问题,已经面临着不同的方法。尽管基于聚合,拓扑和主题建模的技术已经证明了其有用性,但是平滑和/或突变数据变化的可视化分析以及此类变化随时间的演变是现有方法无法正确解决的方面。在这项工作中,我们提出了一种新颖的可视化方法,该方法依靠图小波理论和堆积图隐喻来对图节点上定义的时变数据进行可视化分析。所提出的方法能够识别数据呈现出突然的和温和的空间和/或时间变化的区域,同时仍然能够显示出这种变化如何随时间演变,从而使事件的识别更加容易。通过使用合成的一组结果以及涉及曼哈顿市区出租车行车的真实数据集,我们的方法的有效性得到了证明。该方法能够揭示有趣的现象和事件,例如识别特定位置,而出租车的皮卡数量会突然变化。

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