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首页> 外文期刊>Contemporary Clinical Trials Communications >Bayesian survival analysis for early detection of treatment effects in phase 3 clinical trials
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Bayesian survival analysis for early detection of treatment effects in phase 3 clinical trials

机译:贝叶斯存活分析治疗阶段临床试验中治疗效果的早期检测

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Despite appealing characteristics for the clinical trials setting, Bayesian inference methods remain scarcely used, especially in randomized controlled clinical trials (RCT). This is particularly true when dealing with a survival endpoint, likely due to the additional complexities to model specifications. We propose to use Bayesian inference to estimate the treatment effect in this setting, using a proportional hazards (PH) model for right-censored data. Implementation of such an estimation process is illustrated on two working examples from cancer RCTs, the ALLOZITHRO and the CLL7-SA trials, both originally analyzed using a frequentist approach. In these two different settings, we show that Bayesian sequential analyses can provide early insight on treatment effect in RCTs. Relying on posterior distributions and predictive posterior probabilities, we find that Bayesian sequential analyses of the ALLOZITHRO trial, which was terminated early due to an unanticipated deleterious effect of the intervention on survival, allow quantifying early that the treatment effect was opposite to what was expected. Then, incorporating historical data in the sequential analyses of the CLL7-SA trial would have allowed the treatment effect to be closer to the protocol hypothesis. Thesepost-hocresults give grounds to advocate for a wider use of Bayesian approaches in RCTs, including those with right-censored endpoints, as informative decision tools.
机译:尽管临床试验的吸引人特征,但贝叶斯推理方法仍然几乎不使用,特别是在随机对照临床试验(RCT)中。当处理生存端点时,这尤其如此,可能由于模拟规范的额外复杂性。我们建议使用贝叶斯推理在此设置中估计治疗效果,使用比较审查数据的比例危险(pH)模型。在癌症RCTS,丙比罗和CLL7-SA试验中的两个工作实例上说明了这种估计过程的实施,两者都使用频繁的方法分析。在这两种不同的环境中,我们表明贝叶斯顺序分析可以提前见解RCT中的治疗效果。依靠后分布和预测的后验概率,我们发现贝叶斯序列分析的底层试验,早期终止,由于对生存期的干预的意外有害效果,允许在治疗效果与预期的相反的情况下进行量化。然后,在CLL7-SA试验的顺序分析中纳入历史数据将允许治疗效果更接近协议假设。 TheSepost-hocresults为倡导RCT中更广泛地使用贝叶斯人的方法,包括具有右票终点的人,作为信息性决策工具。

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