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首页> 外文期刊>Test: An Official Journal of the Spanish Society of Statistics and Operations Research >Mixture of multivariate t nonlinear mixed models for multiple longitudinal data with heterogeneity and missing values
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Mixture of multivariate t nonlinear mixed models for multiple longitudinal data with heterogeneity and missing values

机译:多变量T非线性混合模型的混合物,具有异质性和缺失值的多个纵向数据

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摘要

The multivariate t nonlinear mixed-effects model (MtNLMM) has been shown to be effective for analyzing multi-outcome longitudinal data following nonlinear growth patterns with fat-tailed noises or potential outliers. This paper considers the problem of clustering heterogeneous longitudinal profiles in a mixture framework of MtNLMM. A finite mixture of multivariate t nonlinear mixed model is proposed, and this new model allows accommodating more complex features of longitudinal data. Intermittent missing values frequently occur in the data collection process of multiple repeated measures. Under a missing at random mechanism, a pseudo-data version of the alternating expectation-conditional maximization algorithm is developed to carry out maximum likelihood estimation and impute missing values simultaneously. The techniques for clustering of incomplete multiple trajectories, recovery of missing responses, and allocation of future subjects are also investigated. The practical utility is demonstrated through a real data example coming from a study of 124 normal and 37 abnormal pregnant women. Simulation studies are provided to validate the proposed approach.
机译:已经显示多变量T非线性混合效应模型(MTN1MM)对于用脂肪尾噪声或潜在异常值分析非线性生长模式后的多结果纵向数据有效。本文认为在MTN1MM的混合框架中聚类异质纵向谱的问题。提出了多元T非线性混合模型的有限混合物,并且这种新模型允许适应更复杂的纵向数据的特征。间歇丢失值经常发生在多重重复措施的数据收集过程中。在随机机制的缺失下,开发了伪数据版交替期望条件最大化算法以同时执行最大似然估计和赋予缺失值。还调查了对不完整的多轨迹,缺失的响应恢复以及未来科目的分配的技术进行了调查。通过来自124个正常和37个异常孕妇的研究的真实数据示例来证明实用的实用。提供仿真研究以验证提出的方法。

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