RadarViewer : Visualizing the dynamics of multivariate data

PEARC '20: Practice and Experience in Advanced Research Computing Portland OR USA July, 2020(2020)

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摘要
This showcase presents a visual approach based on clustering and superimposing to construct a high-level overview of sequential event data while balancing the amount of information and the cardinality in it. We also implement an interactive prototype, called RadarViewer , that allows domain analysts to simultaneously analyze sequence clustering, extract useful distribution patterns, drill multiple levels-of-detail to accelerate the analysis. The RadarViewer  is demonstrated through case studies with real-world temporal datasets of different sizes.
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