Goal: To develop a cardiovascular virtual population using statistical modeling and computational biomechanics. Methods: A clinical data augmentation algorithm is implemented to efficiently generate virtual clinical data using a real clinical dataset. An atherosclerotic plaque growth model is employed to 3D reconstructed coronary arterial segments to generate virtual coronary arterial geometries (geometrical data). Last, the combination of the virtual clinical and geometrical data is achieved using a methodology that allows for the generation of a realistic virtual population which can be used in in silico clinical trials. Results: The results show good agreement between real and virtual clinical data presenting a mean gof 0.1 ± 0.08. 400 virtual coronary arteries were generated, while the final virtual population includes 10,000 patients. Conclusions: The virtual arterial geometries are efficiently matched to the generated clinical data, both increasing and complementing the variability of the virtual population.
A Novel Approach to Generate a Virtual Population of Human Coronary Arteries for In Silico Clinical Trials of Stent Design.
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作者:Pleouras Dimitrios, Sakellarios Antonis, Rigas George, Karanasiou Georgia S, Tsompou Panagiota, Karanasiou Gianna, Kigka Vassiliki, Kyriakidis Savvas, Pezoulas Vasileios, Gois George, Tachos Nikolaos, Ramos Aidonis, Pelosi Gualtiero, Rocchiccioli Silvia, Michalis Lampros, Fotiadis Dimitrios I
| 期刊: | IEEE Open Journal of Engineering in Medicine and Biology | 影响因子: | 2.900 |
| 时间: | 2021 | 起止号: | 2021 May 20; 2:201-209 |
| doi: | 10.1109/OJEMB.2021.3082328 | ||
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