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Longitudinal Analysis Using Personalised 3D Cardiac Models with Population-Based Priors: Application to Paediatric Cardiomyopathies

机译:使用基于人口的先验的个性化3D心脏模型进行纵向分析:在小儿心肌病中的应用

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Personalised 3D modelling of the heart is of increasing interest in order to better characterise pathologies and predict evolution. The personalisation consists in estimating the parameter values of an electromechanical model in order to reproduce the observed cardiac motion. However, the number of parameters in these models can be high and their estimation may not be unique. This variability can be an obstacle to further analyse the estimated parameters and for their clinical interpretation. In this paper we present a method to perform consistent estimations of electromechanical parameters with prior probabilities on the estimated values, which we apply on a large database of 84 different heartbeats. We show that the use of priors reduces considerably the variance in the estimated parameters, enabling better conditioning of the parameters for further analysis of the cardiac function. This is demonstrated by the application to longitudinal data of paediatric cardiomy-opathies, where the estimated parameters provide additional information on the pathology and its evolution.
机译:心脏的个性化3D建模越来越引起人们的兴趣,以便更好地刻画病理特征并预测进化。个性化在于估算机电模型的参数值,以便重现观察到的心脏运动。但是,这些模型中的参数数量可能很多,并且它们的估计可能不是唯一的。这种可变性可能会成为进一步分析估计参数及其临床解释的障碍。在本文中,我们提出了一种对机电参数进行一致估计的方法,该方法对估计值具有先验概率,并将其应用于包含84种不同心跳的大型数据库。我们显示,使用先验可显着减少估计参数的方差,从而能够更好地调节参数,以进一步分析心脏功能。这一点在儿科心肌病纵向数据中的应用得到了证明,其中估计的参数提供了有关病理及其演变的其他信息。

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