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具有相依删失数据设计的非参数模型与方法:第一部分

Nonparametric models and methods for designs with dependent censored data: part I.

作者信息

O'Gorman J T, Akritas M G

机构信息

Department of Statistics, The Pennsylvania State University, State College 16802, USA.

出版信息

Biometrics. 2001 Mar;57(1):88-95. doi: 10.1111/j.0006-341x.2001.00088.x.

Abstract

We consider a nonparametric (NP) approach to the analysis of repeated measures designs with censored data. Using the NP model of Akritas and Arnold (1994, Journal of the American Statistical Association 89, 336-343) for marginal distributions, we present test procedures for the NP hypotheses of no main effects, no interaction, and no simple effects. This extends the existing NP methodology for such designs (Wei and Lachin, 1984, Journal of the American Statistical Association 79, 653-661). The procedures do not require any modeling assumptions and should be useful in cases where the assumptions of proportional hazards or location shift fail to be satisfied. The large-sample distribution of the test statistics is based on an i.i.d. representation for Kaplan-Meier integrals. The testing procedures apply also to ordinal data and to data with ties. Useful small-sample approximations are presented, and their performance is examined in a simulation study. Finally, the methodology is illustrated with two real life examples, one with censored and one with missing data. It is indicated that one of the data sets does not conform to any set of assumptions underlying the available methods and also that the present method provides a useful additional analysis even when data sets conform to modeling assumptions.

摘要

我们考虑一种用于分析带有删失数据的重复测量设计的非参数(NP)方法。利用Akritas和Arnold(1994年,《美国统计协会杂志》89卷,336 - 343页)针对边际分布的NP模型,我们给出了关于无主效应、无交互作用以及无简单效应的NP假设的检验程序。这扩展了针对此类设计的现有NP方法(Wei和Lachin,1984年,《美国统计协会杂志》79卷,653 - 661页)。这些程序不需要任何建模假设,并且在比例风险或位置偏移的假设不成立的情况下应该会很有用。检验统计量的大样本分布基于Kaplan - Meier积分的独立同分布表示。这些检验程序也适用于有序数据和有重复数据。给出了有用的小样本近似,并在模拟研究中检验了它们的性能。最后,用两个实际例子说明了该方法,一个有删失数据,一个有缺失数据。结果表明,其中一个数据集不符合现有方法所依据的任何一组假设,并且即使数据集符合建模假设,本方法也能提供有用的额外分析。

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