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Inverse modelling of an aneurysm’s stiffness using surrogate-based optimization and fluid-structure interaction simulations

机译:使用基于替代的优化和流固耦合模拟对动脉瘤的硬度进行逆向建模

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Characterization of the mechanical properties of arterial tissues is highly relevant. In this work, we apply an inverse modelling approach to a model accounting for an aneurysm and the distal part of the circulation which can be modified using two independent stiffness parameters. For given values of these parameters, the position of the arterial wall as a function of time is calculated using a forward simulation which takes the fluid-structure interaction (FSI) into account. Using this forward simulation, the correct values of the stiffness parameters are obtained by minimizing a cost function, which is defined as the difference between the forward simulation and a measurement. The minimization is performed by means of surrogate-based optimization using a Kriging model combined with the expected improvement infill criterion. The results show that the stiffness parameters converge to the correct values, both for a zero-dimensional and for a three-dimensional model of the aneurysm.
机译:动脉组织机械性能的表征高度相关。在这项工作中,我们将逆向建模方法应用于解释动脉瘤和循环远端的模型,可以使用两个独立的刚度参数进行修改。对于这些参数的给定值,使用正向模拟计算动脉壁的位置随时间的变化,该模拟考虑了流体-结构相互作用(FSI)。使用此正向模拟,可以通过最小化成本函数(获得的函数为正向模拟与测量值之差)来获得刚度​​参数的正确值。最小化是通过使用Kriging模型与预期的改进填充标准相结合的基于替代的优化来执行的。结果表明,对于动脉瘤的零维模型和三维模型,刚度参数都收敛到正确的值。

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