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Sample sizes required to detect interactions between two binary fixed-effects in a mixed-effects linear regression model

机译:在混合效应线性回归模型中检测两个二进制固定效应之间相互作用所需的样本量

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摘要

Mixed-effects linear regression models have become more widely used for analysis of repeatedly measured outcomes in clinical trials over the past decade. There are formulae and tables for estimating sample sizes required to detect the main effects of treatment and the treatment by time interactions for those models. A formula is proposed to estimate the sample size required to detect an interaction between two binary variables in a factorial design with repeated measures of a continuous outcome. The formula is based, in part,on the fact that the variance of an interaction is four fold that of the main effect. A simulation study examines the statistical power associated with the resulting sample sizes in a mixed-effects linear regression model with a random intercept. The simulation varies the magnitude (Delta) of the standardized main effects and interactions, the intraclass correlation coefficient (rho), and the number (k) of repeated measures within-subject. The results of the simulation study verify that the sample size required to detect a 2 x 2 interaction in a mixed-effects linear regression model is four fold that to detect a main effect of the same magnitude.
机译:在过去十年中,混合效应线性回归模型已被广泛用于临床试验中反复测量的结果的分析。有一些公式和表格可用于估算样本的大小,这些样本和样本可用于检测治疗的主要效果以及这些模型之间通过时间相互作用进行的治疗。提出了一个公式,用于估计通过连续测量的重复测量来分析因子设计中两个二进制变量之间的相互作用所需的样本量。该公式部分基于以下事实:相互作用的方差是主要效果的四倍。模拟研究在具有随机截距的混合效应线性回归模型中检查了与所得样本大小相关的统计功效。模拟会改变标准化主要效果和相互作用的幅度(Delta),类内相关系数(rho)以及对象内重复测量的数量(k)。仿真研究的结果证实,在混合效应线性回归模型中检测2 x 2交互作用所需的样本大小是检测相同大小的主要效应的四倍。

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