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Pseudo-Likelihood for Combined Selection and Pattern-Mixture Models for Incomplete Data

机译:不完全数据的组合选择和模式混合模型的伪似然

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摘要

In this paper we develop pseudo-likelihood methods for the estimation of parameters in a model that is specified in terms of both selection modelling and pattern-mixture modelling quantities. Two cases are considered: (1) the model is specified directly from a joint model for the measurement and dropout processes; (2) conditional models for the measurement process given dropout and vice versa are specified directly. In the latter case, compatibility constraints to ensure the existence of a joint density are derived. The method is applied to data from a psychiatric study, where a bivariate therapeutic outcome is supplemented with covariate information.
机译:在本文中,我们开发了一种伪似然方法,用于根据选择建模和模式混合建模数量指定的模型中的参数估计。考虑两种情况:(1)直接从联合模型中指定模型以用于测量和退出过程; (2)直接指定给定辍学(反之亦然)的测量过程的条件模型。在后一种情况下,得出了用于确保接头密度存在的相容性约束。该方法适用于来自精神病学研究的数据,其中双变量治疗结果辅以协变量信息。

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