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首页> 外文期刊>Cardiology and Cardiovascular Research >Shape Optimization of a NURBS Modelled Coronary Stent Using Kriging and Genetic Algorithm
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Shape Optimization of a NURBS Modelled Coronary Stent Using Kriging and Genetic Algorithm

机译:基于Kriging和遗传算法的NURBS冠状动脉支架的形状优化。

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In this paper, structural shape of stent has been optimized using NURBS for parameterization of stent structure and target those objectives which are critical for vascular injury. NURBS modeling is done using python coding in RHINO 3D software. For later part of the design, Solidworks is used. The objectives considered in our study are dogboning, foreshortening and arterial wall stresses, all of which are strongly linked to vascular injury leading to restenosis. We use control point weights, strut thickness and strut width as design variables for Latin Hypercube sampling (LHS) in order to generate dataset for Stent deployment simulations. In our study, we generate 80 design data points using LHS in Matlab R2014a. Finite element analysis of stent deployment process is then carried out using ANSYS for all 80 designs of stent generated using LHS. Thereafter, we use Kriging for surrogate modeling and non-dominated sorting genetic algorithm (NSGA-II) in MATLAB for multi-objective design optimization so as to minimize dogboning, foreshortening and arterial wall stresses. As a result, we obtain a range of pareto optimal design parameter values which can be used in clinical design guides so as to accommodate variations observed across different patients.
机译:在本文中,已使用NURBS优化了支架的结构形状以对支架结构进行参数化,并针对那些对血管损伤至关重要的目标。 NURBS建模是使用RHINO 3D软件中的python编码完成的。在设计的后续部分,将使用Solidworks。在我们的研究中考虑的目标是强壮,缩短和动脉壁应力,所有这些都与导致再狭窄的血管损伤密切相关。为了生成用于Stent部署模拟的数据集,我们将控制点权重,支撑杆厚度和支撑杆宽度用作拉丁超立方体采样(LHS)的设计变量。在我们的研究中,我们在Matlab R2014a中使用LHS生成了80个设计数据点。然后使用ANSYS对使用LHS生成的所有80种支架设计进行支架部署过程的有限元分析。此后,我们使用Kriging进行代理建模,并使用MATLAB中的非主导排序遗传算法(NSGA-II)进行多目标设计优化,以最大程度地减少粘滞,缩短和动脉壁应力。结果,我们获得了可在临床设计指南中使用的一系列最佳设计参数值,以适应不同患者之间观察到的差异。

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