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Group sequential monitoring based on the weighted log-rank test statistic with the Fleming-Harrington class of weights in cancer vaccine studies

机译:在癌症疫苗研究中基于Fleming-Harrington类权重的加权对数秩检验统计量进行分组顺序监测

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摘要

In recent years, immunological science has evolved, and cancer vaccines are now approved and available for treating existing cancers. Because cancer vaccines require time to elicit an immune response, a delayed treatment effect is expected and is actually observed in drug approval studies. Accordingly, we propose the evaluation of survival endpoints by weighted log-rank tests with the Fleming-Harrington class of weights. We consider group sequential monitoring, which allows early efficacy stopping, and determine a semiparametric information fraction for the Fleming-Harrington family of weights, which is necessary for the error spending function. Moreover, we give a flexible survival model in cancer vaccine studies that considers not only the delayed treatment effect but also the long-term survivors. In a Monte Carlo simulation study, we illustrate that when the primary analysis is a weighted log-rank test emphasizing the late differences, the proposed information fraction can be a useful alternative to the surrogate information fraction, which is proportional to the number of events. Copyright (c) 2016 John Wiley & Sons, Ltd.
机译:近年来,免疫学科学不断发展,癌症疫苗现已获得批准,可用于治疗现有的癌症。由于癌症疫苗需要时间来引发免疫反应,因此预期会出现延迟治疗效果,并且实际上在药物批准研究中已观察到。因此,我们建议使用Fleming-Harrington类权重通过加权对数秩检验来评估生存终点。我们考虑进行组序贯监测,这可以尽早停止疗效,并确定Fleming-Harrington权重族的半参数信息分数,这对于错误支出功能是必需的。此外,我们在癌症疫苗研究中提供了灵活的生存模型,该模型不仅考虑了延迟治疗效果,还考虑了长期生存者。在蒙特卡洛模拟研究中,我们说明,当主要分析是强调后期差异的加权对数秩检验时,建议的信息分数可以替代代理信息分数,后者与事件数量成正比。版权所有(c)2016 John Wiley&Sons,Ltd.

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