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Efficient estimation of a varying-coefficient partially linear proportional hazards model with current status data

机译:具有当前状态数据的变系数部分线性比例风险模型的有效估计

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We consider a varying-coefficient partially linear proportional hazards model with current status data. The proposed model enables one to examine the extent to which some covariates interact nonlinearly with an exposure variable, while other covariates present linear effects. B-splines are applied to model both the unknown cumulative baseline hazard function and the varying-coefficient functions with and without monotone constraints, depending on the nature of the nonparametric functions. The sieve maximum likelihood estimation method is used to get an integrated estimate for the linear coefficients, the varying-coefficient functions and the cumulative baseline hazard function. The proposed parameter estimators are proved to be semiparametrically efficient and asymptotically normal, and the estimators for the nonparametric functions achieve the optimal rate of convergence. Simulation studies and a real data analysis are used for assessment and illustration.
机译:我们考虑具有当前状态数据的变系数部分线性比例风险模型。提出的模型使人们能够检查某些协变量与曝光变量非线性交互的程度,而其他协变量则呈现线性效应。根据非参数函数的性质,可以应用B样条对未知累积基准危害函数和有无单调约束的变系数函数建模。筛分最大似然估计方法用于获得线性系数,变化系数函数和累积基线危害函数的综合估计。所提出的参数估计器被证明是半参数有效的并且是渐近正态的,并且非参数函数的估计器达到了最优的收敛速度。仿真研究和真实数据分析用于评估和说明。

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