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A competing risk joint model for dealing with different types of missing data in an intervention trial in prodromal Alzheimer’s disease

机译:用于在Prodwaral Alzheimer疾病中处理不同类型缺失数据的竞争风险联合模型

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Missing data can complicate the interpretability of a clinical trial, especially if the proportion is substantial and if there are different, potentially outcome-dependent causes. We aimed to obtain unbiased estimates, in the presence of a high level of missing data, for the intervention effects in a prodromal Alzheimer’s disease trial: the LipiDiDiet study. We used a competing risk joint model that can simultaneously model each patient’s longitudinal outcome trajectory in combination with the timing and type of missingness. Using the competing risk joint model, we were able to provide unbiased estimates of the intervention effects in the presence of the different types of missingness. For the LipiDiDiet study, the intervention effects remained statistically significant after this correction for the timing and type of missingness. Missing data is a common problem in (Alzheimer) clinical trials. It is important to realize that statistical techniques make specific assumptions about the missing data mechanisms. When there are different missing data sources, a competing risk joint model is a powerful method because it can explicitly model the association between the longitudinal data and each type of missingness.
机译:缺失的数据可以使临床试验的可解释性复杂化,特别是如果比例很大,并且如果存在不同,潜在的结果依赖性原因。我们旨在在高水平缺失数据存在下获得无偏估计,用于前甲醛疾病试验中的干预作用:脂质研究。我们使用了一个竞争风险联合模型,可以同时模拟每个患者的纵向结果轨迹与失踪的时序和类型。使用竞争风险联合模式,我们能够在不同类型的缺失存在下提供无偏见的干预效果估计。对于脂质研究,在这种纠正的时间和缺失类型的校正后,干预效果保持统计学意义。缺少数据是(Alzheimer)临床试验中的常见问题。重要的是要认识到统计技术对缺少数据机制做出具体假设。当存在不同的数据源时,竞争风险联合模型是一种强大的方法,因为它可以明确地模拟纵向数据和每种类型的缺失之间的关联。

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