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Bayesian Semiparametric Functional Mixed Models for Serially Correlated Functional Data, With Application to Glaucoma Data

机译:关联相关功能数据的贝叶斯半参数功能混合模型及其在青光眼数据中的应用

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摘要

Glaucoma, a leading cause of blindness, is characterized by optic nerve damage related to intraocular pressure (IOP), but its full etiology is unknown. Researchers at UAB have devised a custom device to measure scleral strain continuously around the eye under fixed levels of IOP, which here is used to assess how strain varies around the posterior pole, with IOP, and across glaucoma risk factors such as age. The hypothesis is that scleral strain decreases with age, which could alter biomechanics of the optic nerve head and cause damage that could eventually lead to glaucoma. To evaluate this hypothesis, we adapted Bayesian Functional Mixed Models to model these complex data consisting of correlated functions on spherical scleral surface, with nonparametric age effects allowed to vary in magnitude and smoothness across the scleral surface, multi-level random effect functions to capture within-subject correlation, and functional growth curve terms to capture serial correlation across IOPs that can vary around the scleral surface. Our method yields fully Bayesian inference on the scleral surface or any aggregation or transformation thereof, and reveals interesting insights into the biomechanical etiology of glaucoma. The general modeling framework described is very flexible and applicable to many complex, high-dimensional functional data. Supplementary materials for this article are available online.
机译:青光眼是失明的主要原因,其特征是与眼内压(IOP)相关的视神经损害,但其完整病因尚不清楚。 UAB的研究人员设计了一种定制设备,可以在固定的IOP水平下连续测量眼睛周围的巩膜应变,此处该设备用于评估后视点周围,IOP和青光眼危险因素(例如年龄)如何变化。假说是巩膜应变会随着年龄的增长而减少,这可能会改变视神经头部的生物力学并引起损害,最终可能导致青光眼。为了评估该假设,我们采用贝叶斯功能混合模型对这些复杂数据进行建模,这些数据由球形巩膜表面上的相关函数组成,并且非参数性年龄效应在整个巩膜表面上的大小和平滑度均发生变化,多级随机效应函数可在其中捕获-受试者相关性和功能性增长曲线项,以捕获跨巩膜表面变化的IOP的序列相关性。我们的方法在巩膜表面或其任何聚集或转化中产生了完全的贝叶斯推断,并揭示了对青光眼的生物力学病因学的有趣见解。所描述的通用建模框架非常灵活,可应用于许多复杂的高维功能数据。可在线获得本文的补充材料。

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