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Survival Impact Index and Ultrahigh-Dimensional Model-Free Screening with Survival Outcomes

机译:生存影响指数和具有生存结果的超高维无模型筛查

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摘要

Motivated by ultrahigh-dimensional biomarkers screening studies, we propose a model-free screening approach tailored to censored lifetime outcomes. Our proposal is built upon the introduction of a new measure, survival impact index (SII). By its design, SII sensibly captures the overall influence of a covariate on the outcome distribution, and can be estimated with familiar nonparametric procedures that do not require smoothing and are readily adaptable to handle lifetime outcomes under various censoring and truncation mechanisms. We provide large sample distributional results that facilitate the inference on SII in classical multivariate settings. More importantly, we investigate SII as an effective screener for ultrahigh-dimensional data, not relying on rigid regression model assumptions for real applications. We establish the sure screening property of the proposed SII-based screener. Extensive numerical studies are carried out to assess the performance of our method compared with other existing screening methods. A lung cancer microarray data is analyzed to demonstrate the practical utility of our proposals.
机译:受超高维生物标志物筛选研究的影响,我们提出了一种针对审查终生结果的无模型筛选方法。我们的建议是基于引入一种新的方法,即生存影响指数(SII)。通过其设计,SII可以明智地捕获协变量对结果分布的总体影响,并且可以使用熟悉的非参数过程进行估算,该过程不需要平滑,并且很容易适应各种检查和截断机制下的生命周期结果。我们提供大量的样本分布结果,以方便在经典多变量设置中推断SII。更重要的是,我们调查了SII作为超高维数据的有效筛选器,而不依赖于实际应用中的刚性回归模型假设。我们建立了基于SII的筛选器的确定筛选属性。与其他现有的筛选方法相比,进行了广泛的数值研究以评估我们方法的性能。肺癌微阵列数据进行了分析,以证明我们的建议的实用性。

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