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Simulation based planning of surgical interventions in pediatric cardiology

机译:基于仿真的小儿心脏病学外科手术计划

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摘要

Hemodynamics plays an essential role in the progression and treatment of cardiovascular disease. However, while medical imaging provides increasingly detailed anatomical information, clinicians often have limited access to hemodynamic data that may be crucial to patient risk assessment and treatment planning. Computational simulations can now provide detailed hemodynamic data to augment clinical knowledge in both adult and pediatric applications. There is a particular need for simulation tools in pediatric cardiology, due to the wide variation in anatomy and physiology in congenital heart disease patients, necessitating individualized treatment plans. Despite great strides in medical imaging, enabling extraction of flow information from magnetic resonance and ultrasound imaging, simulations offer predictive capabilities that imaging alone cannot provide. Patient specific simulations can be used for in silico testing of new surgical designs, treatment planning, device testing, and patient risk stratification. Furthermore, simulations can be performed at no direct risk to the patient. In this paper, we outline the current state of the art in methods for cardiovascular blood flow simulation and virtual surgery. We then step through pressing challenges in the field, including multiscale modeling, boundary condition selection, optimization, and uncertainty quantification. Finally, we summarize simulation results of two representative examples from pediatric cardiology: single ventricle physiology, and coronary aneurysms caused by Kawasaki disease. These examples illustrate the potential impact of computational modeling tools in the clinical setting.
机译:血液动力学在心血管疾病的进展和治疗中起着至关重要的作用。然而,尽管医学成像提供了越来越详细的解剖学信息,但是临床医生通常对血液动力学数据的访问有限,这对患者风险评估和治疗计划至关重要。计算仿真现在可以提供详细的血液动力学数据,以增强成人和儿童应用中的临床知识。由于先天性心脏病患者的解剖学和生理学差异很大,因此特别需要小儿心脏病学的仿真工具,因此需要个性化的治疗计划。尽管在医学成像方面取得了长足进步,可以从磁共振和超声成像中提取血流信息,但是模拟提供了仅成像无法提供的预测能力。患者特定的模拟可用于新手术设计的计算机模拟测试,治疗计划,设备测试以及患者风险分层。此外,可以在不对患者造成直接风险的情况下执行模拟。在本文中,我们概述了心血管血流模拟和虚拟手术方法的最新技术水平。然后,我们逐步解决该领域的紧迫挑战,包括多尺度建模,边界条件选择,优化和不确定性量化。最后,我们总结了来自小儿心脏病学的两个代表性实例的仿真结果:单心室生理学和由川崎病引起的冠状动脉瘤。这些示例说明了计算建模工具在临床环境中的潜在影响。

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