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Current-Based 4D Shape Analysis for the Mechanical Personalization of Heart Models

机译:基于电流的4D形状分析用于心脏模型的机械个性化

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Patient-specific models of the heart may lead to better understanding of cardiovascular diseases and better planning of therapy. A machine-learning approach to the personalization of an electro-mechanical model of the heart, from the kinematics of the endo- and epicardium, is presented in this paper. We use 4D mathematical currents to encapsulate information about the shape and deformation of the heart. The method is largely insensitive to initialization and does not require on-line simulation of the cardiac function. In this work, we demonstrate the performance of our approach for the joint estimation of three parameters on one heart geometry. We manage to retrieve parameters such that the model matches the 4D observations with an accuracy below the voxel size, in less than three minutes of computation.
机译:特定于患者的心脏模型可能会导致对心血管疾病的更好了解和更好的治疗计划。本文提出了一种机器学习方法,可以根据心内膜和心外膜的运动学来个性化心脏的机电模型。我们使用4D数学流来封装有关心脏形状和变形的信息。该方法在很大程度上对初始化不敏感,不需要对心功能进行在线仿真。在这项工作中,我们展示了我们的方法在一个心脏几何形状上三个参数的联合估计中的性能。我们设法在不到三分钟的计算时间内检索参数,以使模型以低于体素大小的精度与4D观测值匹配。

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