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Dealing with noncompliance and missing outcomes in a randomized trial using Bayesian technology: Prevention of perinatal sepsis clinical trial, Soweto, South Africa

机译:使用贝叶斯技术处理随机试验中的不依从和遗漏结果:预防围产期败血症临床试验,南非索韦托

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摘要

The success of interventions designed to address important issues in social and medical science is best addressed by randomized experiments. With human beings there are often complications, however, such as noncompliance and missing data. Such complications are often addressed by statistically invalid methods of analysis, in particular, intention-to-treat and per-protocol analyses. Here we address these two complications using a statistically valid approach based on principal stratification with a fully Bayesian analysis. This analysis is applied to a randomized trial of a potentially important intervention designed to reduce the transmission of bacterial colonization between mothers and their infants through vaginal delivery in South Africa: the Prevention of Perinatal Sepsis (PoPs).
机译:旨在解决社会和医学重要问题的干预措施能否成功,最好通过随机实验来解决。然而,对于人类而言,常常会出现并发症,例如不遵守规定和数据丢失。此类并发症通常通过统计上无效的分析方法来解决,尤其是意向性治疗和按方案分析。在这里,我们使用基于主要分层和完全贝叶斯分析的统计有效方法来解决这两种并发症。这项分析适用于一项潜在的重要干预措施的随机试验,旨在减少在南非通过阴道分娩在母亲及其婴儿之间细菌定植的传播:预防围产期败血症(PoPs)。

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