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左心室功能在整个心动周期中的不确定性量化和敏感性分析。

Uncertainty quantification and sensitivity analysis of left ventricular function during the full cardiac cycle.

机构信息

Centro Federal de Educação Tecnológica de Minas Gerais, Leopoldina, Brazil.

Graduate Program in Computational Modeling, Universidade Federal de Juiz de Fora, Juiz de Fora, Brazil.

出版信息

Philos Trans A Math Phys Eng Sci. 2020 Jun 12;378(2173):20190381. doi: 10.1098/rsta.2019.0381. Epub 2020 May 25.

Abstract

Patient-specific computer simulations can be a powerful tool in clinical applications, helping in diagnostics and the development of new treatments. However, its practical use depends on the reliability of the models. The construction of cardiac simulations involves several steps with inherent uncertainties, including model parameters, the generation of personalized geometry and fibre orientation assignment, which are semi-manual processes subject to errors. Thus, it is important to quantify how these uncertainties impact model predictions. The present work performs uncertainty quantification and sensitivity analyses to assess the variability in important quantities of interest (QoI). Clinical quantities are analysed in terms of overall variability and to identify which parameters are the major contributors. The analyses are performed for simulations of the left ventricle function during the entire cardiac cycle. Uncertainties are incorporated in several model parameters, including regional wall thickness, fibre orientation, passive material parameters, active stress and the circulatory model. The results show that the QoI are very sensitive to active stress, wall thickness and fibre direction, where ejection fraction and ventricular torsion are the most impacted outputs. Thus, to improve the precision of models of cardiac mechanics, new methods should be considered to decrease uncertainties associated with geometrical reconstruction, estimation of active stress and of fibre orientation. This article is part of the theme issue 'Uncertainty quantification in cardiac and cardiovascular modelling and simulation'.

摘要

患者特异性计算机模拟在临床应用中可以是一个强大的工具,有助于诊断和新治疗方法的开发。然而,其实际应用取决于模型的可靠性。心脏模拟的构建涉及几个步骤,这些步骤存在固有的不确定性,包括模型参数、个性化几何形状的生成和纤维方向分配,这些都是半手动过程,容易出现错误。因此,量化这些不确定性如何影响模型预测是很重要的。本工作进行不确定性量化和敏感性分析,以评估重要感兴趣量(QoI)的可变性。以整体变异性和确定哪些参数是主要贡献者的方式来分析临床数量。分析是针对整个心动周期左心室功能的模拟进行的。在几个模型参数中纳入了不确定性,包括局部壁厚度、纤维方向、被动材料参数、主动应力和循环模型。结果表明,QoI 对主动应力、壁厚度和纤维方向非常敏感,射血分数和心室扭转是受影响最大的输出。因此,为了提高心脏力学模型的精度,应该考虑新的方法来降低与几何重建、主动应力估计和纤维方向估计相关的不确定性。本文是“心脏和心血管建模与模拟中的不确定性量化”主题问题的一部分。

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引用本文的文献

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2
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