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Allowing for informative missingness in aggregate data meta-analysis with continuous or binary outcomes: Extensions to metamiss

机译:在具有连续或二进制结果的汇总数据元分析中考虑信息性缺失:对元缺失的扩展

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摘要

Missing outcome data can invalidate the results of randomized trials and their meta-analysis. However, addressing missing data is often a challenging issue because it requires untestable assumptions. The impact of missing outcome data on the meta-analysis summary effect can be explored by assuming a relationship between the outcome in the observed and the missing participants via an informative missingness parameter. The informative missingness parameters cannot be estimated from the observed data, but they can be specified, with associated uncertainty, using evidence external to the meta-analysis, such as expert opinion. The use of informative missingness parameters in pairwise meta-analysis of aggregate data with binary outcomes has been previously implemented in Stata by the metamiss command. In this article, we present the new command metamiss2, which is an extension of metamiss for binary or continuous data in pairwise or network meta-analysis. The command can be used to explore the robustness of results to different assumptions about the missing data via sensitivity analysis.
机译:缺少结果数据可能会使随机试验及其荟萃分析的结果无效。但是,解决丢失的数据通常是一个具有挑战性的问题,因为它需要无法检验的假设。可以通过信息性的缺失参数,假设观察到的结果与缺失参与者之间的关系,来探索缺失结果数据对荟萃分析摘要效果的影响。无法从观察到的数据中估算出信息缺失的参数,但是可以使用荟萃分析外部的证据(例如专家意见)和相关的不确定性来指定它们。以前已经通过metamiss命令在Stata中实现了信息缺失参数在具有二元结果的聚合数据的成对元分析中的使用。在本文中,我们介绍了新的命令metamiss2,它是成对或网络元分析中二进制或连续数据的metamiss的扩展。该命令可用于通过敏感性分析探索结果对不同假设的鲁棒性。

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