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Interactive hierarchical displays: a general framework for visualization and exploration of large multivariate data sets

机译:交互式分层显示:用于可视化和探索大型多元数据集的通用框架

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Numerous multivariate visualization techniques and systems have been developed in the past three decades to visually analyze and explore multivariate data being produced daily in application areas ranging from stock markets to the earth and space sciences. However, traditional multivariate visualization techniques typically do not scale well to large multivariate data sets, with the latter becoming more and more common nowadays. This paper proposes a general framework for interactive hierarchical displays (IHDs) to tackle the clutter problem faced by traditional multivariate visualization techniques when analyzing large data sets. The underlying principle of this framework is to develop a multi-resolution view of the data via hierarchical clustering, and to use hierarchical variations of traditional multivariate visualization techniques to convey aggregation information about the resulting clusters. Users can then explore their desired focus region at different levels of detail, using our suite of navigation and filtering tools. We describe this IHD framework and its full implementation on four traditional multivariate visualization techniques, namely, parallel coordinates (Inselberg and Dimsdale, Proceedings of Visualization (1990) 361; Wegman, J. Amer. Statist. Assoc. 411(85) (1990) 664), star glyphs (Siegel et al., Surgery 72 (1972) 126), scatterplot matrices (Cleveland and McGill, Dynamics Graphics for Statistics (1988)), and dimensional stacking (LeBlanc et al., Proceedings of Visualization 90 (1995) 271), as implemented in the XmdvTool system (Ward, Proceedings of Visualization 94 (1994) 326; Martin and Ward, Proceedings of Visualization 95 (1995) 271; Fua et al., Proceedings of Visualization 99 (1999) 43; Proceedings of Information Visualization 99 (1999) 58). We also describe an empirical evaluation that verified the effectiveness of the interactive hierarchical displays.
机译:在过去的三十年中,已经开发了许多多元可视化技术和系统,以可视化方式分析和探索每天在从股票市场到地球和太空科学的应用领域中产生的多元数据。但是,传统的多变量可视化技术通常无法很好地扩展到大型多变量数据集,而如今后者变得越来越普遍。本文提出了一种交互式分层显示(IHD)的通用框架,以解决传统的多变量可视化技术在分析大型数据集时面临的混乱问题。该框架的基本原理是通过分层聚类开发数据的多分辨率视图,并使用传统的多变量可视化技术的分层变体来传达有关所得聚类的聚合信息。然后,用户可以使用我们的导航和过滤工具套件在不同的细节级别上浏览所需的焦点区域。我们描述了这种IHD框架及其在四种传统的多元可视化技术上的完整实现,即平行坐标(Inselberg和Dimsdale,可视化过程(1990)361; Wegman,J。Amer。Statist。Assoc。411(85)(1990))。 664),星形字形(Siegel等,Surgery 72(1972)126),散点图矩阵(Cleveland和McGill,Dynamics Graphics for Statistics(1988))和尺寸堆叠(LeBlanc等,Proceedings of Visualization 90(1995) 271),如在XmdvTool系统中实现的那样(Ward,Visualization的过程94(1994)326; Martin和Ward,Visualization的过程95(1995)271; Fua等人,Visualization的过程99(1999)43; Proceedings信息可视化99(1999)58)。我们还描述了一个实证评估,它验证了交互式分层显示的有效性。

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