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首页> 外文期刊>Statistica Sinica >MAXIMUM PARTIAL-RANK CORRELATION ESTIMATION FOR LEFT-TRUNCATED AND RIGHT-CENSORED SURVIVAL DATA
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MAXIMUM PARTIAL-RANK CORRELATION ESTIMATION FOR LEFT-TRUNCATED AND RIGHT-CENSORED SURVIVAL DATA

机译:左截断和右审查生存数据的最大偏级相关估计

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摘要

This article presents a general single-index hazard regression model to assess the effects of covariates on a failure time. Based on left-truncated and right-censored survival data, a new partial-rank correlation function is proposed to estimate the index coefficients in the presence of covariate-dependent truncation and censoring. Furthermore, an efficient computational algorithm is proposed for the computation that maximizes the constructed target function. The developed approach can be extended to include right-truncation and left-censoring under a reverse-time hazard regression model. Based on the maximum rank correlation estimator in the literature, we establish the consistency and asymptotic normality of the maximum partial-rank correlation estimator. A series of simulations shows that the proposed estimator has satisfactory finite-sample performance compared with that of its competitors. Lastly, we demonstrate our methodology by applying it to data from the US Health and Retirement Study.
机译:本文提出了一般的单指标危险回归模型,以评估协变量对失败时间的影响。基于左截断和右缩短的生存数据,提出了一种新的偏秩相关函数来估计在存在协变量的截断和审查中的索引系数。此外,提出了一种有效的计算算法,用于最大化构建的目标函数的计算。开发的方法可以扩展到包括在反向时间危险回归模型下的右截断和左审查。基于文献中的最大秩相关估计,我们建立了最大部分秩相关估计器的一致性和渐近常态。一系列模拟表明,与其竞争对手的竞争对手相比,建议的估计器具有令人满意的有限样本。最后,我们通过将其应用于来自美国健康和退休研究的数据来展示我们的方法。

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