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Accounting for dropout reason in longitudinal studies with nonignorable dropout

机译:纵向研究中的滞后原因的核算

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Dropout is a common problem in longitudinal cohort studies and clinical trials, often raising concerns of nonignorable dropout. Selection, frailty, and mixture models have been proposed to account for potentially nonignorable missingness by relating the longitudinal outcome to time of dropout. In addition, many longitudinal studies encounter multiple types of missing data or reasons for dropout, such as loss to follow-up, disease progression, treatment modifications and death. When clinically distinct dropout reasons are present, it may be preferable to control for both dropout reason and time to gain additional clinical insights. This may be especially interesting when the dropout reason and dropout times differ by the primary exposure variable. We extend a semi-parametric varying-coefficient method for nonignorable dropout to accommodate dropout reason. We apply our method to untreated HIV-infected subjects recruited to the Acute Infection and Early Disease Research Program HIV cohort and compare longitudinal CD4(+) T cell count in injection drug users to nonusers with two dropout reasons: anti-retroviral treatment initiation and loss to follow-up.
机译:辍学是纵向队列研究和临床试验中的一个常见问题,往往提高了不可能辍学的担忧。已经提出了选择,脆弱和混合模型,以解释潜在的不可能丢失,通过将纵向结果与辍学时间相关联。此外,许多纵向研究遇到多种类型的缺失数据或辍学原因,例如随访,疾病进展,治疗修改和死亡。当存在临床不同的辍学的原因时,可能优选控制辍学原因和时间来获得额外的临床洞察。当丢弃原因和辍学时间因主要曝光变量而异时可能特别有趣。我们扩展了一个用于非无知辍学的半参数变化系数方法以适应辍学原因。我们将方法应用于未经处理的艾滋病毒感染受试者募集到急性感染和早期疾病研究计划HIV队列,并将注射药物用户的纵向CD4(+)T细胞计数与两种辍学原因的非自燃者进行比较:抗逆转录病毒治疗开始和损失去跟随。

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