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Variable selection in semiparametric nonmixture cure model with interval‐censored failure time data: An application to the prostate cancer screening study

机译:Semiparametric非混蛋固化模型的可变选择,间隔缩短的失效时间数据:用于前列腺癌筛查研究的应用

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摘要

Censored failure time data with a cured subgroup is frequently encountered in many scientific areas including the cancer screening research, tumorigenicity studies, and sociological surveys. Meanwhile, one may also encounter an extraordinary large number of risk factors in practice, such as patient's demographic characteristics, clinical measurements, and medical history, which makes variable selection an emerging need in the data analysis. Motivated by a medical study on prostate cancer screening, we develop a variable selection method in the semiparametric nonmixture or promotion time cure model when interval‐censored data with a cured subgroup are present. Specifically, we propose a penalized likelihood approach with the use of the least absolute shrinkage and selection operator, adaptive least absolute shrinkage and selection operator, or smoothly clipped absolute deviation penalties, which can be easily accomplished via a novel penalized expectation‐maximization algorithm. We assess the finite‐sample performance of the proposed methodology through extensive simulations and analyze the prostate cancer screening data for illustration.
机译:许多科学领域经常遇到审查具有治愈子组的失效时间数据,包括癌症筛查研究,肿瘤性研究和社会学调查。同时,人们也可能在实践中遇到非凡的大量风险因素,例如患者的人口统计特征,临床测量和病史,这使得可变选择在数据分析中的新兴需求。通过对前列腺癌筛查的医学研究,当存在具有固化子组的间隔删除的数据时,我们在半甲状腺非混合物或促销时间固化模型中开发一种可变选择方法。具体地,我们提出了利用最低绝对收缩和选择操作员的惩罚似然方法,适应性最小绝对收缩和选择操作员,或者可以通过新的惩罚期望最大化算法容易地完成。我们通过广泛的模拟评估所提出的方法的有限样本性能,并分析插图的前列腺癌筛查数据。

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