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APS -70th Annual Meeting of the APS Division of Fluid Dynamics- Event - Performance of uncertainty quantification methodologies and linear solvers in cardiovascular simulations

机译:APS-流体动力学APS部门第70届年会-事件-心血管模拟中不确定性定量方法和线性求解器的性能

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Cardiovascular simulations are increasingly used in clinical decision making, surgical planning, and disease diagnostics. Patient-specific modeling and simulation typically proceeds through a pipeline from anatomic model construction using medical image data to blood flow simulation and analysis. To provide confidence intervals on simulation predictions, we use an uncertainty quantification (UQ) framework to analyze the effects of numerous uncertainties that stem from clinical data acquisition, modeling, material properties, and boundary condition selection. However, UQ poses a computational challenge requiring multiple evaluations of the Navier-Stokes equations in complex 3-D models. To achieve efficiency in UQ problems with many function evaluations, we implement and compare a range of iterative linear solver and preconditioning techniques in our flow solver. We then discuss applications to patient-specific cardiovascular simulation and how the problem/boundary condition formulation in the solver affects the selection of the most efficient linear solver. Finally, we discuss performance improvements in the context of uncertainty propagation.
机译:心血管模拟越来越多地用于临床决策,手术计划和疾病诊断。特定于患者的建模和仿真通常通过从使用医学图像数据的解剖模型构建到血流仿真和分析的管道进行。为了提供模拟预测的置信区间,我们使用不确定性量化(UQ)框架来分析源自临床数据获取,建模,材料特性和边界条件选择的众多不确定性的影响。但是,UQ带来了计算难题,需要对复杂的3-D模型中的Navier-Stokes方程进行多次评估。为了通过许多功能评估来实现UQ问题的效率,我们在流量求解器中实现并比较了一系列迭代线性求解器和预处理技术。然后,我们讨论了针对特定患者的心血管模拟的应用,以及求解器中的问题/边界条件公式如何影响最有效的线性求解器的选择。最后,我们讨论不确定性传播情况下的性能改进。

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