分子动力学定性可视化分析的松散容量约束代表

S. Frey, T. Schlömer, Sebastian Grottel, C. Dachsbacher, O. Deussen, T. Ertl
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引用次数: 13

摘要

分子动力学是一种广泛应用于研究材料性质和结构在外力作用下变化的模拟技术。更强大的集群和算法的可用性继续增加模拟领域的空间和时间范围。这对潜在过程的可视化提出了特别的挑战,这些过程可能由数百万个粒子和数千个时间步组成。一些应用领域已经开发了特殊的视觉隐喻来表示这些数据集的相关信息,但这些方法通常需要详细的领域知识,而这些知识可能并不总是可用或适用的。我们提出了一种通用的技术,用一组较小的代表代替大量的模拟粒子,这些代表用于可视化。这些代表捕获了潜在粒子密度的特征,并随着时间的推移表现出一致性。我们引入了松散的容量约束Voronoi图,通过gpu友好的并行算法来生成这些代表。通过这种方式,我们实现了非常忠实地反映原始数据的粒子分布和几何结构的可视化。我们使用来自材料科学、热力学和动力系统理论应用领域的真实世界数据集来评估我们的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Loose capacity-constrained representatives for the qualitative visual analysis in molecular dynamics
Molecular dynamics is a widely used simulation technique to investigate material properties and structural changes under external forces. The availability of more powerful clusters and algorithms continues to increase the spatial and temporal extents of the simulation domain. This poses a particular challenge for the visualization of the underlying processes which might consist of millions of particles and thousands of time steps. Some application domains have developed special visual metaphors to only represent the relevant information of such data sets but these approaches typically require detailed domain knowledge that might not always be available or applicable. We propose a general technique that replaces the huge amount of simulated particles by a smaller set of representatives that are used for the visualization instead. The representatives capture the characteristics of the underlying particle density and exhibit coherency over time. We introduce loose capacity-constrained Voronoi diagrams for the generation of these representatives by means of a GPU-friendly, parallel algorithm. This way we achieve visualizations that reflect the particle distribution and geometric structure of the original data very faithfully. We evaluate our approach using real-world data sets from the application domains of material science, thermodynamics and dynamical systems theory.
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