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Semiparametric partially linear varying coefficient models with panel count data

机译:具有面板计数数据的半参数部分线性变化系数模型

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This paper studies semiparametric regression analysis of panel count data, which arise naturally when recurrent events are considered. Such data frequently occur in medical follow-up studies and reliability experiments, for example. To explore the nonlinear interactions between covariates, we propose a class of partially linear models with possibly varying coefficients for the mean function of the counting processes with panel count data. The functional coefficients are estimated by B-spline function approximations. The estimation procedures are based on maximum pseudo-likelihood and likelihood approaches and they are easy to implement. The asymptotic properties of the resulting estimators are established, and their finite-sample performance is assessed by Monte Carlo simulation studies. We also demonstrate the value of the proposed method by the analysis of a cancer data set, where the new modeling approach provides more comprehensive information than the usual proportional mean model.
机译:本文研究了面板计数数据的半参数回归分析,当考虑到复发事件时自然会出现这种情况。例如,此类数据经常出现在医学随访研究和可靠性实验中。为了探究协变量之间的非线性相互作用,我们提出了一类部分线性模型,该模型可能具有不同的系数,以用于面板计数数据的计数过程的平均函数。通过B样条函数近似来估计功能系数。估计程序基于最大伪似然法和似然法,并且易于实现。建立了所得估计量的渐近性质,并通过蒙特卡洛模拟研究评估了它们的有限样本性能。我们还通过分析癌症数据集证明了该方法的价值,其中新的建模方法比通常的比例均值模型提供了更全面的信息。

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