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A design-by-treatment interaction model for network meta-analysis with random inconsistency effects

机译:具有随机不一致效应的网络荟萃分析的按处理设计交互模型

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摘要

Network meta-analysis is becoming more popular as a way to analyse multiple treatments simultaneously and, in the right circumstances, rank treatments. A difficulty in practice is the possibility of ‘inconsistency’ or ‘incoherence’, where direct evidence and indirect evidence are not in agreement. Here, we develop a random-effects implementation of the recently proposed design-by-treatment interaction model, using these random effects to model inconsistency and estimate the parameters of primary interest. Our proposal is a generalisation of the model proposed by Lumley and allows trials with three or more arms to be included in the analysis. Our methods also facilitate the ranking of treatments under inconsistency. We derive R and I2 statistics to quantify the impact of the between-study heterogeneity and the inconsistency. We apply our model to two examples. © 2014 The Authors. Statistics in Medicine published by John Wiley & Sons, Ltd.
机译:网络荟萃分析作为一种同时分析多种治疗并在适当情况下对治疗进行排名的方法,正变得越来越流行。实践中的困难是可能存在“不一致”或“不一致”的情况,其中直接证据和间接证据不一致。在这里,我们使用这些随机效应对不一致进行建模并估计主要关注参数,从而开发了最近提出的按设计进行交互的模型的随机效应实现。我们的建议是对Lumley提出的模型的概括,并允许将具有三个或更多臂的试验纳入分析。我们的方法还有助于对不一致情况下的治疗进行排名。我们得出R和I 2 统计量,以量化研究之间异质性和不一致的影响。我们将模型应用于两个示例。 ©2014作者。 John Wiley&Sons,Ltd.出版的《医学统计学》。

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