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cvcrand: A Package for Covariate-constrained Randomization and the Clustered Permutation Test for Cluster Randomized Trials

机译:CVCRAND:适用于协变量的随机化和集群随机试验的聚类排列试验包

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The cluster randomized trial (CRT) is a randomized controlled trial in which randomization is conducted at the cluster level (e.g., school or hospital) and outcomes are measured for each individual within a cluster. Often, the number of clusters available to randomize is small (≤ 20), which increases the chance of baseline covariate imbalance between comparison arms. Such imbalance is particularly problematic when the covariates are predictive of the outcome because it can threaten the internal validity of the CRT. Pair-matching and stratification are two restricted randomization approaches that are frequently used to ensure balance at the design stage. An alternative, less commonly-used restricted randomization approach is covariate-constrained randomization. Covariate-constrained randomization quantifies baseline imbalance of cluster-level covariates using a balance metric and randomly selects a randomization scheme from those with acceptable balance by the balance metric. It is able to accommodate multiple covariates, both categorical and continuous. To facilitate imple mentation of covariate-constrained randomization for the design of two-arm parallel CRTs, we have developed the cvcrand R package. In addition, cvcrand also implements the clustered permutation test for analyzing continuous and binary outcomes collected from a CRT designed with covariate constrained randomization. We used a real cluster randomized trial to illustrate the functions included in the package.
机译:集群随机试验(CRT)是随机对照试验,其中在群集水平(例如,学校或医院)进行随机化,并针对集群内的每个人测量结果。通常,随机化可用的簇的数量小(≤20),这增加了比较臂之间基线协变量不平衡的机会。当协调因子预测结果时,这种不平衡尤其成问题,因为它可以威胁到CRT的内部有效性。配对匹配和分层是两个受限的随机化方法,通常用于确保在设计阶段进行平衡。替代,较少常用的限制随机化方法是协变量的随机化。协变量约束随机化使用平衡度量来定量簇级协变量的基线不平衡,并随机选择来自平衡度量可接受的平衡的随机化方案。它能够容纳多个协变量,分类和连续。为了便于实现双臂平行CRT的设计的协变量约束随机化,我们开发了CVCRAND R包装。此外,CVCRAND还实现了聚类排列测试,用于分析从设计的CRT收集的连续和二进制结果,所述CRT设计为具有协变量的受调节随机化。我们使用真实的群集随机试验来说明包中包含的函数。

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