Sensitivity Analysis for Survival Prognostic Prediction with Gene Selection: A Copula Method for Dependent Censoring.

IF 3.9 3区 工程技术 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Chih-Tung Yeh, Gen-Yih Liao, Takeshi Emura
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引用次数: 0

Abstract

Prognostic analysis for patient survival often employs gene expressions obtained from high-throughput screening for tumor tissues from patients. When dealing with survival data, a dependent censoring phenomenon arises, and thus the traditional Cox model may not correctly identify the effect of each gene. A copula-based gene selection model can effectively adjust for dependent censoring, yielding a multi-gene predictor for survival prognosis. However, methods to assess the impact of various types of dependent censoring on the multi-gene predictor have not been developed. In this article, we propose a sensitivity analysis method using the copula-graphic estimator under dependent censoring, and implement relevant methods in the R package "compound.Cox". The purpose of the proposed method is to investigate the sensitivity of the multi-gene predictor to a variety of dependent censoring mechanisms. In order to make the proposed sensitivity analysis practical, we develop a web application. We apply the proposed method and the web application to a lung cancer dataset. We provide a template file so that developers can modify the template to establish their own web applications.

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利用基因选择进行生存预后预测的敏感性分析:依赖性校正的 Copula 方法。
患者生存预后分析通常采用高通量筛选患者肿瘤组织获得的基因表达。在处理生存数据时,会出现依赖性删减现象,因此传统的 Cox 模型可能无法正确识别每个基因的影响。基于 copula 的基因选择模型可以有效地调整依赖性删减,从而得出多基因生存预后预测结果。然而,目前还没有开发出评估各种依赖性删减对多基因预测指标影响的方法。在本文中,我们提出了一种在依赖性删减下使用 copula 图形估计器的敏感性分析方法,并在 R 软件包 "compound.Cox "中实现了相关方法。所提方法的目的是研究多基因预测因子对各种依赖性删减机制的敏感性。为了使提出的敏感性分析实用化,我们开发了一个网络应用程序。我们将提出的方法和网络应用程序应用于肺癌数据集。我们提供了一个模板文件,开发人员可以修改模板,建立自己的网络应用程序。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Biomedicines
Biomedicines Biochemistry, Genetics and Molecular Biology-General Biochemistry,Genetics and Molecular Biology
CiteScore
5.20
自引率
8.50%
发文量
2823
审稿时长
8 weeks
期刊介绍: Biomedicines (ISSN 2227-9059; CODEN: BIOMID) is an international, scientific, open access journal on biomedicines published quarterly online by MDPI.
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