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Estimation for frailty measurement error Cox models based on profile likelihood and Bayes methods

机译:基于轮廓似然和贝叶斯方法的体积测量误差COX模型的估计

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摘要

We study a class of frailty Cox models with measurement error in covariates for right censored clustered data. Based on the corrected profile likelihood and Bayes estimation, we construct estimators of the regression coefficients, baseline hazard and frailties in the models, which can reduce the dimension of estimated parameters and make the computation feasible. Numerical results show that frailty measurement error Cox model (FMCM) is more competitive and of good adaptivity than frailty Cox model (FCM) and measurement error Cox model (MCM) in terms of bias and mean square error.
机译:我们研究了一类带有测量误差的体现错误,在协变量中进行了调查群集数据。 基于纠正的轮廓似然和贝叶斯估计,我们在模型中构建回归系数,基线危险和脆弱的估计,这可以减少估计参数的维度,并使计算可行。 数值结果表明,在偏差和均方误差方面,脆弱的测量误差Cox模型(FMCM)比Frailty Cox模型(FCM)和测量误差Cox模型(MCM)更具竞争力和良好的适应性。

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