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首页> 外文期刊>Journal of biopharmaceutical statistics >Evaluation of inferential methods for the net benefit and win ratio statistics
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Evaluation of inferential methods for the net benefit and win ratio statistics

机译:评估净利润和赢得比率统计的推论方法

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摘要

General Pairwise Comparison (GPC) statistics, such as the net benefit and the win ratio, have been applied in clinical trial data analysis and design. In the literature, inferential methods based on re-sampling, asymptotic or exact methods have been proposed for these GPC statistics, but they have not been compared to each other. In this paper, the small sample bias of the variance estimation, Type I error control and 95% confidence interval coverage of the GPC inferential methods are evaluated using simulations. The exact permutation and bootstrap tests perform best in all evaluated aspects for the net benefit, while the exact bootstrap test performs best for the win ratio.
机译:一般成对比较(GPC)统计数据,如净利率和胜利比,已应用于临床试验数据分析和设计。 在文献中,已经提出了基于重新采样,渐近或精确方法的推理方法为这些GPC统计数据,但它们尚未与彼此进行比较。 在本文中,使用模拟评估了差异估计的小样本偏置,I型错误控制和GPC推理方法的95%置信区间覆盖。 确切的置换和引导测试在所有评估的方面都执行最佳的净利度,而精确的引导测试最适合赢得比率。

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