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Nodes on Ropes: A Comprehensive Data and Control Flow for Steering Ensemble Simulations

机译:绳索上的节点:转向系统仿真的综合数据和控制流

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Flood disasters are the most common natural risk and tremendous efforts are spent to improve their simulation and management. However, simulation-based investigation of actions that can be taken in case of flood emergencies is rarely done. This is in part due to the lack of a comprehensive framework which integrates and facilitates these efforts. In this paper, we tackle several problems which are related to steering a flood simulation. One issue is related to uncertainty. We need to account for uncertain knowledge about the environment, such as levee-breach locations. Furthermore, the steering process has to reveal how these uncertainties in the boundary conditions affect the confidence in the simulation outcome. Another important problem is that the simulation setup is often hidden in a black-box. We expose system internals and show that simulation steering can be comprehensible at the same time. This is important because the domain expert needs to be able to modify the simulation setup in order to include local knowledge and experience. In the proposed solution, users steer parameter studies through the World Lines interface to account for input uncertainties. The transport of steering information to the underlying data-flow components is handled by a novel meta-flow. The meta-flow is an extension to a standard data-flow network, comprising additional nodes and ropes to abstract parameter control. The meta-flow has a visual representation to inform the user about which control operations happen. Finally, we present the idea to use the data-flow diagram itself for visualizing steering information and simulation results. We discuss a case-study in collaboration with a domain expert who proposes different actions to protect a virtual city from imminent flooding. The key to choosing the best response strategy is the ability to compare different regions of the parameter space while retaining an understanding of what is happening inside the data-flow system.
机译:洪水灾害是最常见的自然风险,因此付出了巨大的努力来改善其模拟和管理。但是,很少进行基于模拟的洪水紧急情况下可以采取的措施调查。部分原因是缺乏一个综合框架并促进这些努力的全面框架。在本文中,我们解决了与控制洪水模拟有关的几个问题。一个问题与不确定性有关。我们需要考虑有关环境的不确定知识,例如堤防违章位置。此外,转向过程必须揭示边界条件中的这些不确定性如何影响模拟结果的置信度。另一个重要的问题是,仿真设置通常隐藏在黑盒中。我们公开了系统内部结构,并表明模拟转向可以同时理解。这很重要,因为领域专家需要能够修改模拟设置,以包括本地知识和经验。在提出的解决方案中,用户可以通过World Lines界面引导参数研究,以解决输入不确定性问题。引导信息到基础数据流组件的传输由一种新颖的元流处理。元流是对标准数据流网络的扩展,包括其他节点和用于抽象参数控制的绳索。元流具有视觉表示,以通知用户发生了哪些控制操作。最后,我们提出了使用数据流程图本身来可视化转向信息和模拟结果的想法。我们与领域专家合作讨论了一项案例研究,该专家提出了不同的措施来保护虚拟城市免遭即将来临的洪水袭击。选择最佳响应策略的关键是能够比较参数空间的不同区域,同时又能了解数据流系统内部正在发生的事情。

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