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Interval estimation of the overall treatment effect in a meta-analysis of a few small studies with zero events

机译:对一些零事件的小型研究进行荟萃分析的总体治疗效果的区间估计

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摘要

When a meta-analysis consists of a few small trials that report zero events, accounting for heterogeneity in the (interval) estimation of the overall effect is challenging. Typically, we predefine meta-analytical methods to be employed. In practice, data poses restrictions that lead to deviations from the pre-planned analysis, such as the presence of zero events in at least one study arm. We aim to explore heterogeneity estimators behaviour in estimating the overall effect across different levels of sparsity of events. We performed a simulation study that consists of two evaluations. We considered an overall comparison of estimators unconditional on the number of observed zero cells and an additional one by conditioning on the number of observed zero cells. Estimators that performed modestly robust when (interval) estimating the overall treatment effect across a range of heterogeneity assumptions were the Sidik-Jonkman, Hartung-Makambi and improved Paul-Mandel. The relative performance of estimators did not materially differ between making a predefined or data-driven choice. Our investigations confirmed that heterogeneity in such settings cannot be estimated reliably. Estimators whose performance depends strongly on the presence of heterogeneity should be avoided. The choice of estimator does not need to depend on whether or not zero cells are observed.
机译:当荟萃分析由报告零事件的一些小型试验组成时,在总体效果的(间隔)估计中考虑异质性是一项挑战。通常,我们预先定义要使用的荟萃分析方法。在实践中,数据构成了限制,导致偏离预先计划的分析,例如至少一个研究部门中存在零事件。我们旨在探讨异质性估计器的行为,以估计事件稀疏性不同级别上的总体影响。我们进行了包含两个评估的模拟研究。我们认为对估计量的整体比较无条件地取决于观察到的零单元格的数量,而另外一个条件是通过对观察到的零单元格的数量进行条件化。 Sidik-Jonkman,Hartung-Makambi和改进的Paul-Mandel在(区间)估计各种异质性假设的总体治疗效果时,表现适度健壮。在进行预定义或数据驱动的选择之间,估算器的相对性能没有实质性差异。我们的研究证实,无法可靠地估计这种情况下的异质性。应该避免其性能严重依赖于异质性存在的估计器。估计量的选择不必取决于是否观察到零像元。

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