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Inverse uncertainty quantification of a mechanical model of arterial tissue with surrogate modelling

机译:动脉组织力学模型的逆不确定性量化与替代建模

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? 2023 The Author(s)Disorders of coronary arteries lead to severe health problems such as atherosclerosis, angina, heart attack and even death. Considering the clinical significance of coronary arteries, an efficient computational model is a vital step towards tissue engineering, enhancing the research of coronary diseases and developing medical treatment and interventional tools. In this work, we applied inverse uncertainty quantification to a microscale agent-based arterial tissue model, a component of a three-dimensional multiscale in-stent restenosis model. Inverse uncertainty quantification was performed to calibrate the arterial tissue model to achieve a mechanical response in line with tissue experimental data. Bayesian calibration with a bias term correction was applied to reduce the uncertainty of unknown polynomial coefficients of the attractive force function and achieve agreement with the mechanical behaviour of arterial tissue based on the uniaxial strain tests. Due to the high computational costs of the model, a surrogate model based on the Gaussian process was developed to ensure the feasibility of the computations.
机译:?2023 作者冠状动脉疾病会导致严重的健康问题,如动脉粥样硬化、心绞痛、心脏病发作甚至死亡。考虑到冠状动脉的临床意义,高效的计算模型是迈向组织工程、加强冠状动脉疾病研究以及开发医疗和介入工具的重要一步。在这项工作中,我们将逆不确定性量化应用于基于微尺度代理的动脉组织模型,该模型是三维多尺度支架内再狭窄模型的一个组成部分。进行逆不确定性量化以校准动脉组织模型,以达到符合组织实验数据的机械响应。采用偏置项校正的贝叶斯校准方法,降低了吸引力函数未知多项式系数的不确定性,并实现了与基于单轴应变试验的动脉组织力学行为的一致性。由于该模型的计算成本较高,为了保证计算的可行性,开发了基于高斯过程的代理模型。

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