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以Cox比例风险模型为例说明的模型不一致性。

Model inconsistency, illustrated by the Cox proportional hazards model.

作者信息

Ford I, Norrie J, Ahmadi S

机构信息

Robertson Centre for Biostatistics, Glasgow University, U.K.

出版信息

Stat Med. 1995 Apr 30;14(8):735-46. doi: 10.1002/sim.4780140804.

Abstract

We consider problems involving the comparison of two or more treatments where we have the opportunity to adjust for relevant covariates either conditionally in a regression model or implicitly in repeated measures data, for example, in crossover trials. It is seen that for data arising from non-Normal distributions there is the possibility that models adjusting for covariates and those not adjusting for covariates will be inconsistent, that is, at most one of the models can be valid. Alternatively, even if conditional and unconditional models are valid, parameters in each model may have different interpretations. We note that this presents difficulties for the specification and interpretation of the analysis. It is also clear that model validation is critical. Specific attention is paid to survival data analysed by the Cox proportional hazards model.

摘要

我们考虑涉及两种或更多治疗方法比较的问题,在这种情况下,我们有机会在回归模型中进行条件调整,或者在重复测量数据中进行隐式调整,例如在交叉试验中。可以看出,对于来自非正态分布的数据,有可能调整协变量的模型和未调整协变量的模型会不一致,也就是说,最多只有一个模型是有效的。或者,即使条件模型和无条件模型都是有效的,每个模型中的参数可能也有不同的解释。我们注意到,这给分析的设定和解释带来了困难。同样明显的是,模型验证至关重要。特别关注通过Cox比例风险模型分析的生存数据。

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