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Effects of correlation and missing data on sample size estimation in longitudinal clinical trials.

机译:相关性和缺失数据对纵向临床试验中样本量估计的影响。

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摘要

In longitudinal clinical trials, a common objective is to compare the rates of changes in an outcome variable between two treatment groups. Generalized estimating equation (GEE) has been widely used to examine if the rates of changes are significantly different between treatment groups due to its robustness to misspecification of the true correlation structure and randomly missing data. The sample size formula for repeated outcomes is based on the assumption of missing completely at random and a large sample approximation. A simulation study is conducted to investigate the performance of GEE sample size formula with small sample sizes, damped exponential family of correlation structure and non-ignorable missing data.
机译:在纵向临床试验中,一个共同的目标是比较两个治疗组之间结果变量的变化率。广义估计方程(GEE)已被广泛用于检查治疗组之间的变化率是否存在显着差异,这是因为其对真实相关结构的错误指定和数据的随机丢失具有较强的鲁棒性。重复结果的样本量公式基于以下假设:随机完全缺失且近似值较大。进行仿真研究以研究GEE样本量公式在小样本量,阻尼指数族相关结构和不可忽略的缺失数据下的性能。

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