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Personalized blood flow computations: A hierarchical parameter estimation framework for tuning boundary conditions

机译:个性化的血流计算:用于调整边界条件的分层参数估计框架

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摘要

We propose a hierarchical parameter estimation framework for performing patient-specific hemodynamic computations in arterial models, which use structured tree boundary conditions. A calibration problem is formulated at each stage of the hierarchical framework, which seeks the fixed point solution of a nonlinear system of equations. Common hemodynamic properties, like resistance and compliance, are estimated at the first stage in order to match the objectives given by clinical measurements of pressure and/or flow rate. The second stage estimates the parameters of the structured trees so as to match the values of the hemodynamic properties determined at the first stage. A key feature of the proposed method is that to ensure a large range of variation, two different structured tree parameters are personalized for each hemodynamic property. First, the second stage of the parameter estimation framework is evaluated based on the properties of the outlet boundary conditions in a full body arterial model: the calibration method converges for all structured trees in less than 10 iterations. Next, the proposed framework is successfully evaluated on a patient-specific aortic model with coarctation: only six iterations are required for the computational model to be in close agreement with the clinical measurements used as objectives, and overall, there is a good agreement between the measured and computed quantities. Copyright (c) 2016 John Wiley & Sons, Ltd.
机译:我们提出了一种分层参数估计框架,用于在动脉模型中执行特定于患者的血液动力学计算,该模型使用结构化树边界条件。在分层框架的每个阶段都会提出一个校准问题,该问题寻求非线性方程组的不动点解。在第一阶段估算常见的血液动力学特性,例如抗药性和顺应性,以匹配临床上对压力和/或流速的测量得出的目标。第二阶段估计结构树的参数,以匹配在第一阶段确定的血液动力学特性的值。所提出的方法的关键特征是,为了确保较大的变化范围,针对每种血液动力学特性对两个不同的结构树参数进行了个性化设置。首先,基于全身动脉模型中出口边界条件的属性来评估参数估计框架的第二阶段:校准方法在不到10次迭代中收敛于所有结构树。接下来,所提出的框架在具有缩窄的特定于患者的主动脉模型上成功进行了评估:计算模型仅需进行六次迭代,即可与用作目标的临床测量值非常一致,并且总体而言,测量和计算的数量。版权所有(c)2016 John Wiley&Sons,Ltd.

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