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Optimal Composite Markers for Time-Dependent Receiver Operating Characteristic Curves with Censored Survival Data

机译:带有生存时间数据的时变接收机工作特性曲线的最佳复合标记

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To increase the predictive abilities of several plasma biomarkers on the coronary artery disease (CAD)-related vital statuses over time, our research interest mainly focuses on seeking combinations of these biomarkers with the highest time-dependent receiver operating characteristic curves. An extended generalized linear model (EGLM) with time-varying coefficients and an unknown bivariate link function is used to characterize the conditional distribution of time to CAD-related death. Based on censored survival data, two non-parametric procedures are proposed to estimate the optimal composite markers, linear predictors in the EGLM model. Estimation methods for the classification accuracies of the optimal composite markers are also proposed. In the article we establish theoretical results of the estimators and examine the corresponding finite-sample properties through a series of simulations with different sample sizes, censoring rates and censoring mechanisms. Our optimization procedures and estimators are further shown to be useful through an application to a prospective cohort study of patients undergoing angiography.
机译:为了随时间增加几种血浆生物标志物对冠状动脉疾病(CAD)相关生命状态的预测能力,我们的研究兴趣主要集中在寻求具有最高时间依赖性受体工作特征曲线的这些生物标志物的组合上。具有时变系数和未知双变量链接函数的扩展广义线性模型(EGLM)用于表征与CAD相关的死亡的时间条件分布。基于审查的生存数据,提出了两种非参数程序来估计最佳复合标记物,即EGLM模型中的线性预测子。还提出了最优复合标记分类精度的估计方法。在本文中,我们建立了估计量的理论结果,并通过一系列具有不同样本量,删失率和删失机制的模拟来检验相应的有限样本属性。通过将其应用到接受血管造影术的患者的前瞻性队列研究中,进一步证明了我们的优化程序和估计器是有用的。

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