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Learning Distributions of Shape Trajectories from Longitudinal Datasets: A Hierarchical Model on a Manifold of Diffeomorphisms

机译:从纵向数据集学习形状轨迹的分布:扩散晶体歧管上的分层模型

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We propose a method to learn a distribution of shape trajectories from longitudinal data, i.e. the collection of individual objects repeatedly observed at multiple time-points. The method allows to compute an average spatiotemporal trajectory of shape changes at the group level, and the individual variations of this trajectory both in terms of geometry and time dynamics. First, we formulate a non-linear mixed-effects statistical model as the combination of a generic statistical model for manifold-valued longitudinal data, a deformation model defining shape trajectories via the action of a finite-dimensional set of diffeomorphisms with a manifold structure, and an efficient numerical scheme to compute parallel transport on this manifold. Second, we introduce a MCMC-SAEM algorithm with a specific approach to shape sampling, an adaptive scheme for proposal variances, and a log-likelihood tempering strategy to estimate our model. Third, we validate our algorithm on 2D simulated data, and then estimate a scenario of alteration of the shape of the hippocampus 3D brain structure during the course of Alzheimer's disease. The method shows for instance that hippocampal atrophy progresses more quickly in female subjects, and occurs earlier in APOE4 mutation carriers. We finally illustrate the potential of our method for classifying pathological trajectories versus normal ageing.
机译:我们提出了一种方法来从纵向数据中学习形状轨迹的分布,即在多个时间点反复观察到的各个对象的集合。该方法允许计算组级别的形状变化的平均时空轨迹,以及在几何和时间动态方面的这种轨迹的各个变化。首先,我们制定非线性混合效应统计模型作为歧管纵向数据的通用统计模型的组合,通过具有歧管结构的有限尺寸的漫射散射的动作来定义形状轨迹的变形模型,和一个有效的数字方案,用于计算该歧管上的平行传输。其次,我们引入了一种具有特定方法的MCMC-SAEM算法来形状采样,建议差异的自适应方案,以及估计我们模型的日志似然回火策略。第三,我们在2D模拟数据上验证了我们的算法,然后估计在阿尔茨海默病过程中海马3D脑结构形状改变的场景。该方法例如表明,海马萎缩在女性受试者中进展了更快,并且在APOE4突变载体中早期发生。我们终于说明了我们对术语分类方法与正常老化的方法的潜力。

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