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聚类而不慌乱:相关结果对随机临床试验推断的影响。

Cluster without fluster: The effect of correlated outcomes on inference in randomized clinical trials.

作者信息

Proschan Michael, Follmann Dean

机构信息

Biostatistics Research Branch, National Institute of Allergy and Infectious Diseases, Bethesda, MD, USA.

出版信息

Stat Med. 2008 Mar 15;27(6):795-809. doi: 10.1002/sim.2977.

Abstract

Inference for randomized clinical trials is generally based on the assumption that outcomes are independently and identically distributed under the null hypothesis. In some trials, particularly in infectious disease, outcomes may be correlated. This may be known in advance (e.g. allowing randomization of family members) or completely unplanned (e.g. sexual sharing among randomized participants). There is particular concern when the form of the correlation is essentially unknown, in which case we cannot take advantage of the correlation to construct a more efficient test. Instead, we can only investigate the impact of potential correlation on the independent-samples test statistic. Randomization tends to balance out treatment and control assignments within clusters, so it is logical that performance of tests averaged over all possible randomization assignments would be essentially unaffected by arbitrary correlation. We confirm this intuition by showing that a permutation test controls the type 1 error rate in a certain average sense whenever the clustering is independent of treatment assignment. It is nonetheless possible to obtain a 'bad' randomization such that members of a cluster tend to be assigned to the same treatment. Conditioned on such a bad randomization, the type 1 error rate is increased.

摘要

随机临床试验的推断通常基于这样的假设

在原假设下,结果是独立同分布的。在一些试验中,特别是在传染病试验中,结果可能是相关的。这可能是事先已知的(例如允许家庭成员随机分组),或者是完全无计划的(例如随机参与者之间的性传播)。当相关形式基本未知时,会特别令人担忧,在这种情况下,我们无法利用相关性来构建更有效的检验。相反,我们只能研究潜在相关性对独立样本检验统计量的影响。随机化倾向于平衡聚类内的治疗和对照分配,所以从逻辑上讲,对所有可能的随机化分配求平均的检验性能基本上不会受到任意相关性的影响。我们通过表明每当聚类与治疗分配独立时,置换检验在某种平均意义上控制第一类错误率,来证实这种直觉。然而,仍然有可能获得一个“糟糕”的随机化,使得聚类中的成员倾向于被分配到相同的治疗组。基于这样一个糟糕的随机化,第一类错误率会增加。

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