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一类具有零治愈比例和非零治愈比例的贝叶斯生存模型。

A general class of Bayesian survival models with zero and nonzero cure fractions.

作者信息

Yin Guosheng, Ibrahim Joseph G

机构信息

Department of Biostatistics and Applied Mathematics, M. D. Anderson Cancer Center, The University of Texas, Houston, Texas 77030, USA.

出版信息

Biometrics. 2005 Jun;61(2):403-12. doi: 10.1111/j.1541-0420.2005.00329.x.

Abstract

We propose a new class of survival models which naturally links a family of proper and improper population survival functions. The models resulting in improper survival functions are often referred to as cure rate models. This class of regression models is formulated through the Box-Cox transformation on the population hazard function and a proper density function. By adding an extra transformation parameter into the cure rate model, we are able to generate models with a zero cure rate, thus leading to a proper population survival function. A graphical illustration of the behavior and the influence of the transformation parameter on the regression model is provided. We consider a Bayesian approach which is motivated by the complexity of the model. Prior specification needs to accommodate parameter constraints due to the non-negativity of the survival function. Moreover, the likelihood function involves a complicated integral on the survival function, which may not have an analytical closed form, and thus makes the implementation of Gibbs sampling more difficult. We propose an efficient Markov chain Monte Carlo computational scheme based on Gaussian quadrature. The proposed method is illustrated with an example involving a melanoma clinical trial.

摘要

我们提出了一类新的生存模型,该模型自然地将一族恰当和不恰当的总体生存函数联系起来。产生不恰当生存函数的模型通常被称为治愈率模型。这类回归模型是通过对总体风险函数和一个恰当的密度函数进行Box-Cox变换来构建的。通过在治愈率模型中添加一个额外的变换参数,我们能够生成治愈率为零的模型,从而得到一个恰当的总体生存函数。文中提供了变换参数对回归模型的行为和影响的图形说明。考虑到模型的复杂性,我们采用贝叶斯方法。由于生存函数的非负性,先验设定需要考虑参数约束。此外,似然函数涉及生存函数上的一个复杂积分,可能没有解析的封闭形式,这使得吉布斯抽样的实施更加困难。我们基于高斯求积法提出了一种有效的马尔可夫链蒙特卡罗计算方案。通过一个涉及黑色素瘤临床试验的例子对所提出的方法进行了说明。

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