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Surface-Based Structure Analysis and Visualization for Multifield Time-Varying Datasets

机译:多场时变数据集的基于表面的结构分析和可视化

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This paper introduces a new feature analysis and visualization method for multifield datasets. Our approach applies a surface-centric model to characterize salient features and form an effective, schematic representation of the data. We propose a simple, geometrically motivated, multifield feature definition. This definition relies on an iterative algorithm that applies existing theory of skeleton derivation to fuse the structures from the constitutive fields into a coherent data description, while addressing noise and spurious details. This paper also presents a new method for non-rigid surface registration between the surfaces of consecutive time steps. This matching is used in conjunction with clustering to discover the interaction patterns between the different fields and their evolution over time. We document the unified visual analysis achieved by our method in the context of several multifield problems from large-scale time-varying simulations.
机译:本文介绍了一种用于多字段数据集的新特征分析和可视化方法。我们的方法应用以表面为中心的模型来表征突出特征并形成有效的数据示意图。我们提出了一个简单的,基于几何动机的多场特征定义。该定义依赖于一种迭代算法,该算法应用现有的骨架派生理论将本构字段中的结构融合为一致的数据描述,同时解决噪声和虚假细节。本文还提出了一种在连续时间步长的曲面之间进行非刚性曲面配准的新方法。此匹配与聚类一起使用,以发现不同字段之间的交互模式及其随时间的演变。我们记录了在大规模时变仿真的几个多场问题的背景下,通过我们的方法实现的统一视觉分析。

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