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First-order marginalised transition random effects models with probit link function

机译:具有位链接功能的一阶边缘化转移随机效应模型

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摘要

Marginalised models, also known as marginally specified models, have recently become a popular tool for analysis of discrete longitudinal data. Despite being a novel statistical methodology, these models introduce complex constraint equations and model fitting algorithms. On the other hand, there is a lack of publicly available software to fit these models. In this paper, we propose a three-level marginalised model for analysis of multivariate longitudinal binary outcome. The implicit function theorem is introduced to approximately solve the marginal constraint equations explicitly. probit link enables direct solutions to the convolution equations. Parameters are estimated by maximum likelihood via a Fisher-Scoring algorithm. A simulation study is conducted to examine the finite-sample properties of the estimator. We illustrate the model with an application to the data set from the Iowa Youth and Families Project. The R package pnmtrem is prepared to fit the model.
机译:边际化模型(也称为边际指定模型)最近已成为分析离散纵向数据的流行工具。尽管是一种新颖的统计方法,但是这些模型引入了复杂的约束方程式和模型拟合算法。另一方面,缺乏适合这些模型的公开软件。在本文中,我们提出了一个三级边缘化模型来分析多元纵向二进制结果。引入隐函数定理,以近似地近似求解边界约束方程。概率链接可以直接解卷积方程。通过Fisher-Scoring算法以最大似然估计参数。进行了仿真研究,以检验估计器的有限样本属性。我们通过应用爱荷华州青少年和家庭项目的数据集来说明该模型。 R软件包pnmtrem已准备好适合该模型。

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