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A Parallel and Distributed Surrogate Model Implementation for Computational Steering

机译:计算转向的平行和分布式代理模型实现

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Understanding the influence of multiple parameters in a complex simulation setting is a difficult task. In the ideal case, the scientist can freely steer such a simulation and is immediately presented with the results for a certain configuration of the input parameters. Such an exploration process is however not possible if the simulation is computationally too expensive. For these cases we present in this paper a scalable computational steering approach utilizing a fast surrogate model as substitute for the time-consuming simulation. The surrogate model we propose is based on the sparse grid technique, and we identify the main computational tasks associated with its evaluation and its extension. We further show how distributed data management combined with the specific use of accelerators allows us to approximate and deliver simulation results to a high-resolution visualization system in real-time. This significantly enhances the steering workflow and facilitates the interactive exploration of large datasets.
机译:了解多个参数在复杂模拟设置中的影响是一项艰巨的任务。在理想的情况下,科学家可以自由转向这种模拟,并立即呈现结果,以确定输入参数的某个配置。然而,如果模拟计算得太昂贵,则不可能实现这种探索过程。对于这些情况,我们在本文中呈现了一种可扩展的计算转向方法,利用快速替代模型作为替代耗时的模拟。我们提出的代理模型基于稀疏电网技术,并确定与其评估及其扩展相关的主要计算任务。我们进一步展示了分布式数据管理如何与加速器的特定使用相结合,使我们能够实时地近似和将仿真结果提供给高分辨率可视化系统。这显着增强了转向工作流程,并促进了大型数据集的交互式探索。

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