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Implementing unequal randomization in clinical trials with heterogeneous treatment costs

机译:具有异质治疗成本的临床试验中的不等随机化

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Equal randomization has been a popular choice in clinical trial practice. However, in trials with heterogeneous variances and/or variable treatment costs, as well as in settings where maximization of every trial participant's benefit is an important design consideration, optimal allocation proportions may be unequal across study treatment arms. In this paper, we investigate optimal allocation designs minimizing study cost under statistical efficiency constraints for parallel group clinical trials comparing several investigational treatments against the control. We show theoretically that equal allocation designs may be suboptimal, and unequal allocation designs can provide higher statistical power for the same budget or result in a smaller cost for the same level of power. We also show how optimal allocation can be implemented in practice by means of restricted randomization procedures and how to perform statistical inference following these procedures, using invoked population‐based or randomization‐based approaches. Our results provide further support to some previous findings in the literature that unequal randomization designs can be cost efficient and can be successfully implemented in practice. We conclude that the choice of the target allocation, the randomization procedure, and the statistical methodology for data analysis is an essential component in ensuring valid, powerful, and robust clinical trial results.
机译:平等随机化是临床试验实践中的一个受欢迎的选择。然而,在具有异质差异和/或可变治疗成本的试验中,以及在每次试验参与者的利益最大化的环境中,在重要的设计考虑中,跨学习治疗臂的最佳分配比例可能不等。在本文中,我们调查了最佳分配设计,最大限度地减少了统计效率约束下的统计效率限制,并将几种调查对照进行了若干调查疗效。我们在理论上显示了平等的分配设计可能是次优,并且不等的分配设计可以为相同的预算提供更高的统计功率,或者导致相同水平的功率成本较小。我们还展示了如何通过限制的随机化程序和如何在这些过程中执行统计推理的练习中如何实现最佳分配。我们的结果对文献中的一些先前调查结果提供了进一步的支持,即不平等随机化设计可能是成本效益,并且可以在实践中成功实施。我们得出结论,对数据分析的目标分配,随机化程序和统计方法的选择是确保有效,强大,临床试验结果的重要组成部分。

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