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Conditional estimation using prior information in 2-stage group sequential designs assuming asymptotic normality when the trial terminated early

机译:在试验早期终止时,使用2阶段组顺序设计中使用先前信息的条件估计

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Two-stage designs are widely used to determine whether a clinical trial should be terminated early. In such trials, a maximum likelihood estimate is often adopted to describe the difference in efficacy between the experimental and reference treatments; however, this method is known to display conditional bias. To reduce such bias, a conditional mean-adjusted estimator (CMAE) has been proposed, although the remaining bias may be nonnegligible when a trial is stopped for efficacy at the interim analysis. We propose a new estimator for adjusting the conditional bias of the treatment effect by extending the idea of the CMAE. This estimator is calculated by weighting the maximum likelihood estimate obtained at the interim analysis and the effect size prespecified when calculating the sample size. We evaluate the performance of the proposed estimator through analytical and simulation studies in various settings in which a trial is stopped for efficacy or futility at the interim analysis. We find that the conditional bias of the proposed estimator is smaller than that of the CMAE when the information time at the interim analysis is small. In addition, the mean-squared error of the proposed estimator is also smaller than that of the CMAE. In conclusion, we recommend the use of the proposed estimator for trials that are terminated early for efficacy or futility.
机译:两级设计广泛用于确定临床试验是否应尽早终止。在这种试验中,通常采用最大的似然估计来描述实验和参考处理之间的疗效差异;但是,已知该方法显示条件偏置。为了减少这种偏差,已经提出了一种条件平均调整的估计器(CMAE),尽管当在临时分析中停止试验时,剩余的偏差可能是非不可中置的。我们提出了一种新的估计,通过延长CMAE的想法来调整治疗效果的条件偏差。通过加权在中期分析中获得的最大似然估计和计算样本大小时预先限定的效果大小来计算该估计器。我们通过在各种环境中通过分析和模拟研究评估所提出的估算器的性能,其中在临时分析中停止试验的疗效或无用。我们发现所提出的估计器的条件偏差小于在临时分析的信息时间时小于CMAE的偏差。另外,所提出的估计器的平均平方误差也小于CMAE的误差。总之,我们建议使用拟议的估计师进行终止效力或无用的试验。

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