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Including long- and short-term data in blinded sample size recalculation for binary endpoints

机译:在二进制盲点样本盲目重新计算中包括长期和短期数据

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摘要

In order to calculate the sample size for a clinical trial with a binary outcome needed to achieve a certain power at a given significance level, one needs to specify the clinically relevant effect as well as the event rate pooled over the treatment groups. However, before conducting the trial the event rates are unknown and the pooled event rate needs to be estimated. A misspecification of this parameter might lead to a study that is either under- or overpowered. In the internal pilot study design the pooled event rate is reestimated during the trial. For this reestimation the current methods only use data of those patients that have concluded the whole study. Instead, a method is proposed that also takes into account data at an earlier point of the trial, a point which, within the internal pilot study, has been passed by a greater number of patients than the trial's endpoint. Characteristics of the proposed estimator and the related recalculated sample size are investigated. Analytical computations of the actual type I-error rate are given for small sizes of the internal pilot study. These calculations are completed by simulation studies for larger sample sizes of the internal pilot study. The results show that the inflation of the type I-error rate is often negligible and generally not higher than observed for the fixed sample size design and for the classical recalculation procedure. However, as compared to the conventional approach the proposed procedure may show a considerably lower variability of the resulting sample size and thus an improved ability to achieve the target power.
机译:为了计算在给定的显着性水平上达到一定功效需要二元结果的临床试验的样本量,需要指定临床相关作用以及在治疗组中合并的事件发生率。但是,在进行试验之前,事件发生率未知,并且需要估计汇总的事件发生率。此参数的规格错误可能导致研究不足或过大。在内部试验研究设计中,在试验过程中会重新估计合并事件发生率。对于此重新估计,当前方法仅使用已完成整个研究的那些患者的数据。取而代之的是,提出了一种方法,该方法也考虑了试验的较早阶段的数据,在内部先导研究中,这一点已经比试验终点的患者多了。研究了提出的估计量的特征以及相关的重新计算的样本量。对于小规模的内部试验研究,给出了实际I型错误率的分析计算。这些计算是通过对内部试点研究的更大样本量的模拟研究完成的。结果表明,I型错误率的膨胀通常可以忽略不计,通常不高于固定样本大小设计和经典重新计算程序所观察到的。然而,与常规方法相比,所提出的过程可以显示出所产生的样本大小的明显更低的可变性,并因此提高了达到目标功率的能力。

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