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Saddlepoint p-values and confidence intervals for the class of linear rank tests for censored data under generalized randomized block design

机译:广义随机块设计下被删失数据线性秩检验一类的鞍点p值和置信区间

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摘要

One of the commonly used classes of tests for testing treatment effects for censored data is the linear rank class. The underlying distribution of this class is determined by the randomization design used to collect the data. Many randomization designs are used in clinical trials. The randomized block design is an important design that reduces selection bias and accidental bias. In this paper, a double saddlepoint approximation for the exact underlying randomization distribution for the linear rank class under generalized randomized block design is presented. Extensive simulation studies are used to assess the performance of the saddlepoint approximation. This approximation shows a great improvement in accuracy over the asymptotic normal approximation. This accuracy enables us to calculate almost exact confidence intervals for the treatment effect.
机译:线性秩等级是用于检验被检查数据的治疗效果的常用检验类别之一。此类的基本分布由用于收集数据的随机设计确定。临床试验中使用了许多随机设计。随机区组设计是一种重要的设计,可以减少选择偏差和意外偏差。本文提出了广义随机块设计下线性秩类的精确基础随机分布的双鞍点近似。广泛的仿真研究用于评估鞍点近似的性能。与渐近法线逼近相比,这种逼近显示出精度上的极大改进。这种准确性使我们能够计算出治疗效果的几乎准确的置信区间。

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