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Curve Boxplot: Generalization of Boxplot for Ensembles of Curves

机译:曲线箱线图:曲线集合的箱线图的一般化

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In simulation science, computational scientists often study the behavior of their simulations by repeated solutions with variations in parameters and/or boundary values or initial conditions. Through such simulation ensembles, one can try to understand or quantify the variability or uncertainty in a solution as a function of the various inputs or model assumptions. In response to a growing interest in simulation ensembles, the visualization community has developed a suite of methods for allowing users to observe and understand the properties of these ensembles in an efficient and effective manner. An important aspect of visualizing simulations is the analysis of derived features, often represented as points, surfaces, or curves. In this paper, we present a novel, nonparametric method for summarizing ensembles of 2D and 3D curves. We propose an extension of a method from descriptive statistics, data depth, to curves. We also demonstrate a set of rendering and visualization strategies for showing rank statistics of an ensemble of curves, which is a generalization of traditional or to multidimensional curves. Results are presented for applications in neuroimaging, hurricane forecasting and fluid dynamics.
机译:在仿真科学中,计算科学家经常通过参数和/或边界值或初始条件变化的重复解决方案来研究其仿真行为。通过这种模拟集成,人们可以尝试根据各种输入或模型假设来理解或量化解决方案中的可变性或不确定性。为了响应对仿真集成的日益增长的兴趣,可视化社区开发了一套方法,以允许用户以有效的方式观察和理解这些集成的属性。可视化模拟的重要方面是对派生特征的分析,这些特征通常表示为点,表面或曲线。在本文中,我们提出了一种新颖的非参数方法,用于汇总2D和3D曲线的合奏。我们提议从描述性统计,数据深度到曲线的方法的扩展。我们还演示了一组渲染和可视化策略,用于显示曲线整体的秩统计,这是对传统曲线或多维曲线的概括。结果提供了在神经成像,飓风预测和流体动力学中的应用。

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