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Handling Intra-Cluster Correlation when Analyzing the Effects of Decision Support on Health Care Process Measures

机译:在分析决策支持对医疗保健过程措施的影响时处理群体内相关性

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The clinical worksite constitutes a naturally clustered environment, posing challenges in the statistical analysis of quality improvement interventions such as computerized decision support. Ignoring clustering in the analysis may lead to biased effect estimates, underestimating the variance and hence type I errors. This paper presents a secondary analysis on data from a previously published, cluster randomized trial in cardiac rehabilitation. We compared six different statistical analysis methods (weighted and unweighted t-test; adjusted x~2 test; normal and multilevel logistic regression analysis; and generalized estimation equations). There were considerable differences in both point estimates and p-values derived by the methods, and differences were larger with increasing intracluster correlation.
机译:临床工地构成了一个天然集群的环境,在统计分析中构成了质量改进干预措施,如计算机化决策支持。在分析中忽略聚类可能导致偏置效果估计,低估方差,因此类型I错误。本文介绍了先前公布的群集随机试验中的数据的次要分析。我们比较了六种不同的统计分析方法(加权和未加权的T检验;调整X〜2测试;正常和多级逻辑回归分析;和广义估计方程)。随着方法导出的两点估计和P值,随着血小板相关性的增加,差异差异较大。

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