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AN APPLICATION OF PRINCIPAL STRATIFICATION TO CONTROL FOR INSTITUTIONALIZATION AT FOLLOW-UP IN STUDIES OF SUBSTANCE ABUSE TREATMENT PROGRAMS

机译:主分层技术在物质滥用治疗计划研究中的跟进制度化控制中的应用

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摘要

Participants in longitudinal studies on the effects of drug treatment and criminal justice system interventions are at high risk for institutionalization (e.g., spending time in an environment where their freedom to use drugs, commit crimes, or engage in risky behavior may be circumscribed). Methods used for estimating treatment effects in the presence of institutionalization during follow-up can be highly sensitive to assumptions that are unlikely to be met in applications and thus likely to yield misleading inferences. In this paper, we consider the use of principal stratification to control for institutionalization at follow-up. Principal stratification has been suggested for similar problems where outcomes are unobservable for samples of study participants because of dropout, death, or other forms of censoring. The method identifies principal strata within which causal effects are well defined and potentially estimable. We extend the method of principal stratification to model institutionalization at follow-up and estimate the effect of residential substance abuse treatment versus outpatient services in a large scale study of adolescent substance abuse treatment programs. Additionally, we discuss practical issues in applying the principal stratification model to data. We show via simulation studies that the model can only recover true effects provided the data meet strenuous demands and that there must be caution taken when implementing principal stratification as a technique to control for post-treatment confounders such as institutionalization.
机译:有关药物治疗和刑事司法系统干预效果的纵向研究的参与者有很高的制度化风险(例如,在可能限制其使用毒品,犯罪或从事危险行为的环境中度过时间)。在随访过程中,如果存在机构化治疗,估计治疗效果的方法可能会对应用中不太可能满足的假设高度敏感,因此可能会产生误导性的推断。在本文中,我们考虑在后续行动中使用主体分层来控制制度化。对于由于退学,死亡或其他形式的审查而导致研究参与者的样本无法观察到结果的类似问题,已建议进行主要分层。该方法可确定主要层,在该层中可以很好地定义因果效应,并可以对其进行估计。我们将主要分层方法扩展为在随访中建立制度化模型,并在大规模研究青少年药物滥用治疗计划中估算住宅药物滥用治疗与门诊服务的效果。此外,我们讨论了将主要分层模型应用于数据时的实际问题。我们通过仿真研究表明,只要数据满足苛刻的要求,该模型就只能恢复真正的效果,并且在实施主要分层作为控制诸如机构化等后处理混杂因素的技术时,必须谨慎行事。

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