首页> 外文期刊>Statistics in medicine >Flexible parametric proportional-hazards and proportional-odds models for censored survival data, with application to prognostic modelling and estimation of treatment effects.
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Flexible parametric proportional-hazards and proportional-odds models for censored survival data, with application to prognostic modelling and estimation of treatment effects.

机译:用于审查生存数据的灵活参数比例风险和比例奇数模型,可用于预测模型和治疗效果评估。

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Modelling of censored survival data is almost always done by Cox proportional-hazards regression. However, use of parametric models for such data may have some advantages. For example, non-proportional hazards, a potential difficulty with Cox models, may sometimes be handled in a simple way, and visualization of the hazard function is much easier. Extensions of the Weibull and log-logistic models are proposed in which natural cubic splines are used to smooth the baseline log cumulative hazard and log cumulative odds of failure functions. Further extensions to allow non-proportional effects of some or all of the covariates are introduced. A hypothesis test of the appropriateness of the scale chosen for covariate effects (such as of treatment) is proposed. The new models are applied to two data sets in cancer. The results throw interesting light on the behaviour of both the hazard function and the hazard ratio over time. The tools described here may be a step towards providing greater insight into the natural history of the disease and into possible underlying causes of clinical events. We illustrate these aspects by using the two examples in cancer.
机译:审查生存数据的建模几乎总是通过Cox比例风险回归进行的。但是,将参数模型用于此类数据可能会有一些优势。例如,有时可能会以简单的方式处理非比例风险(使用Cox模型可能会遇到的困难),并且危害函数的可视化要容易得多。提出了Weibull和log-logistic模型的扩展,其中使用自然三次样条来平滑基线对数累积危害和对数累积失效几率。引入了进一步扩展,以允许部分或全部协变量产生非比例效应。提出了针对协变量效应(例如治疗)选择的量表是否适当的假设检验。新模型被应用于癌症的两个数据集。该结果对危害函数和危害比率随时间的行为提供了有趣的启示。此处描述的工具可能是迈向进一步了解疾病的自然病史和临床事件的潜在潜在原因的一步。我们通过在癌症中使用两个例子来说明这些方面。

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