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Should multiple imputation be the method of choice for handling missing data in randomized trials?

机译:在随机试验中应采用多重插补作为处理缺失数据的首选方法吗?

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摘要

The use of multiple imputation has increased markedly in recent years, and journal reviewers may expect to see multiple imputation used to handle missing data. However in randomized trials, where treatment group is always observed and independent of baseline covariates, other approaches may be preferable. Using data simulation we evaluated multiple imputation, performed both overall and separately by randomized group, across a range of commonly encountered scenarios. We considered both missing outcome and missing baseline data, with missing outcome data induced under missing at random mechanisms. Provided the analysis model was correctly specified, multiple imputation produced unbiased treatment effect estimates, but alternative unbiased approaches were often more efficient. When the analysis model overlooked an interaction effect involving randomized group, multiple imputation produced biased estimates of the average treatment effect when applied to missing outcome data, unless imputation was performed separately by randomized group. Based on these results, we conclude that multiple imputation should not be seen as the only acceptable way to handle missing data in randomized trials. In settings where multiple imputation is adopted, we recommend that imputation is carried out separately by randomized group.
机译:近年来,多重插补的使用已显着增加,期刊审阅者可能希望看到用于处理缺失数据的多重插补。但是,在始终观察治疗组且与基线协变量无关的随机试验中,其他方法可能更可取。使用数据模拟,我们评估了在一系列常见情况下,整体和单独由随机分组分别执行的多重插补。我们考虑了缺失的结果和缺失的基线数据,在随机机制缺失的情况下诱发了缺失的结果数据。如果正确指定了分析模型,则多次插补将产生无偏的治疗效果估计值,但替代的无偏方法通常更为有效。当分析模型忽略了涉及随机分组的相互作用效应时,除非将插补法由随机分组单独进行,否则多次插补在应用于缺失结果数据时会产生平均治疗效果的偏差估计。根据这些结果,我们得出结论,不应将多重插补视为在随机试验中处理缺失数据的唯一可接受的方法。在采用多重插补的情况下,我们建议按随机分组分别进行插补。

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