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Sample Size Estimation for Comparing Rates of Change in K-group Repeated Count Outcomes

机译:比较K组重复计数结果变化率的样本量估计

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摘要

Sample size estimation for comparing the rates of change in two-arm repeated measurements has been investigated by many investigators. In contrast, the literature has paid relatively less attention to sample size estimation for studies with multiarm repeated measurements where the design and data analysis can be more complex than two-arm trials. For continuous outcomes, and have presented sample size formulas to compare the rates of change and time-averaged responses in multi-arm trials, using the generalized estimating equation (GEE) approach. To our knowledge, there has been no corresponding development for multi-arm trials with count outcomes. We present a sample size formula for comparing the rates of change in multi-arm repeated count outcomes using the GEE approach that accommodates various correlation structures, missing data patterns, and unbalanced designs. We conduct simulation studies to assess the performance of the proposed sample size formula under a wide range of designing configurations. Simulation results suggest that empirical type I error and power are maintained close to their nominal levels. The proposed method is illustrated using an epileptic clinical trial example.
机译:许多研究人员已经研究了用于比较两臂重复测量的变化率的样本量估计。相反,在多臂重复测量的研究中,文献对样本量估计的关注相对较少,在这种情况下,设计和数据分析可能比两臂试验更为复杂。为了获得连续的结果,并提出了样本量公式,以使用广义估计方程(GEE)方法比较多组试验中的变化率和时间平均响应。据我们所知,计数结果的多臂试验尚无相应发展。我们提供了一个样本大小公式,用于使用GEE方法比较多臂重复计数结果的变化率,该方法可容纳各种相关结构,缺失的数据模式和不平衡的设计。我们进行仿真研究,以评估在各种设计配置下拟议的样本量公式的性能。仿真结果表明,经验I型误差和功率均保持在其标称水平附近。使用癫痫临床试验实例说明了所提出的方法。

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