2022
DOI: 10.48550/arxiv.2204.02167
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Inverse uncertainty quantification of a mechanical model of arterial tissue with surrogate modeling

Abstract: 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 computer 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 apply inverse uncertainty quantification to a microscale agent-based arterial tissue model, a component of the 3D multiscale model of in-s… Show more

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