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分析医生随机质量改进干预措施的统计方法评估

An evaluation of statistical approaches for analyzing physician-randomized quality improvement interventions.

作者信息

Stedman Margaret R, Gagnon David R, Lew Robert A, Solomon Daniel H, Brookhart M Alan

机构信息

Boston University School of Public Health, Department of Biostatistics, Boston, MA, USA.

出版信息

Contemp Clin Trials. 2008 Sep;29(5):687-95. doi: 10.1016/j.cct.2008.04.003. Epub 2008 Apr 23.

Abstract

Health care quality improvement interventions are often evaluated in randomized trials in which individual physicians serve as the unit of randomization. These cluster randomized trials present a unique data structure that consists of many clusters of highly variable size. The appropriate method of analysis for these trials is unknown. We conducted a simulation study to compare several methods for analyzing data which were generated to replicate the structure of our motivating example. We varied the treatment effect size and the distributional assumptions about the random effect. Simulation was used to estimate power, coverage, bias, and mean squared error of full maximum likelihood estimation (MLE), approximate MLE using penalized quasi-likelihood (PQL), generalized estimating equations (GEE), group-bootstrapped logistic regression, and a clustered permutation test. Across all conditions tested, GEE and full MLE performed comparably. Bootstrapped methods were less powerful and had higher mean squared error under conditions of variable cluster size. PQL yielded biased results. The permutation test preserved Type I error rates, but had less power than the other methods considered.

摘要

医疗质量改进干预措施通常在随机试验中进行评估,其中个体医生作为随机化单位。这些整群随机试验呈现出一种独特的数据结构,由许多大小高度可变的群组组成。这些试验的合适分析方法尚不清楚。我们进行了一项模拟研究,以比较几种分析数据的方法,这些数据是为复制我们的激励示例的结构而生成的。我们改变了治疗效果大小和关于随机效应的分布假设。模拟用于估计完全最大似然估计(MLE)、使用惩罚拟似然(PQL)的近似MLE、广义估计方程(GEE)、组自抽样逻辑回归以及聚类置换检验的功效、覆盖率、偏差和均方误差。在所有测试条件下,GEE和完全MLE的表现相当。在群组大小可变的条件下,自抽样方法的功效较低且均方误差较高。PQL产生有偏差的结果。置换检验保持了I型错误率,但比其他考虑的方法功效更低。

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