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Representing Multivariate Data by Optimal Colors to Uncover Events of Interest in Time Series Data

机译:用最佳颜色表示多元数据以发现时间序列数据中的关注事件

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In this paper, we present a visualization system for users to study multivariate time series data. They first identify trends or anomalies from a global view and then examine details in a local view. Specifically, we train a neural network to project high-dimensional data to a two dimensional (2D) planar space while retaining global data distances. By aligning the 2D points with a predefined color map, high-dimensional data can be represented by colors. Because perceptual color differentiation may fail to reflect data distance, we optimize perceptual color differentiation on each map region by deformation. The region with large perceptual color differentiation will expand, whereas the region with small differentiation will shrink. Since colors do not occupy any space in visualization, we convey the overview of multivariate time series data by a calendar view. Cells in the view are color-coded to represent multivariate data at different time spans. Users can observe color changes over time to identify events of interest. Afterward, they study details of an event by examining parallel coordinate plots. Cells in the calendar view and the parallel coordinate plots are dynamically linked for users to obtain insights that are barely noticeable in large datasets. The experiment results, comparisons, conducted case studies, and the user study indicate that our visualization system is feasible and effective.
机译:在本文中,我们为用户提供了一个可视化系统,以研究多元时间序列数据。他们首先从全局视图中识别趋势或异常,然后在局部视图中检查详细信息。具体来说,我们训练神经网络将高维数据投影到二维(2D)平面空间,同时保留全局数据距离。通过将2D点与预定义的颜色图对齐,可以用颜色表示高维数据。由于可感知的颜色差异可能无法反映数据距离,因此我们通过变形来优化每个地图区域上的可感知的颜色差异。感知色差大的区域将扩大,而区别小的区域将缩小。由于颜色在可视化中不占任何空间,因此我们通过日历视图传达了多元时间序列数据的概况。视图中的单元格采用颜色编码,以表示不同时间跨度的多元数据。用户可以观察随时间变化的颜色,以识别感兴趣的事件。之后,他们通过检查平行坐标图来研究事件的详细信息。日历视图中的单元格和平行坐标图被动态链接,以使用户获得在大型数据集中鲜为人知的洞察力。实验结果,比较,进行的案例研究和用户研究表明,我们的可视化系统是可行和有效的。

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