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有序多变量失效时间数据生存函数的非参数估计:一项比较研究。

Nonparametric estimation of the survival function for ordered multivariate failure time data: A comparative study.

作者信息

Meira-Machado Luís, Sestelo Marta, Gonçalves Andreia

机构信息

Centre of Mathematics and Department of Mathematics and Applications, University of Minho, Campus de Azurem, 4800-058 Guimarães, Portugal.

SiDOR Research Group and CINBIO, University of Vigo, Spain.

出版信息

Biom J. 2016 May;58(3):623-34. doi: 10.1002/bimj.201500038. Epub 2015 Oct 12.

Abstract

In longitudinal studies of disease, patients may experience several events through a follow-up period. In these studies, the sequentially ordered events are often of interest and lead to problems that have received much attention recently. Issues of interest include the estimation of bivariate survival, marginal distributions, and the conditional distribution of gap times. In this work, we consider the estimation of the survival function conditional to a previous event. Different nonparametric approaches will be considered for estimating these quantities, all based on the Kaplan-Meier estimator of the survival function. We explore the finite sample behavior of the estimators through simulations. The different methods proposed in this article are applied to a dataset from a German Breast Cancer Study. The methods are used to obtain predictors for the conditional survival probabilities as well as to study the influence of recurrence in overall survival.

摘要

在疾病的纵向研究中,患者在随访期间可能会经历多个事件。在这些研究中,顺序排列的事件通常是研究的重点,并且引发了一些近期备受关注的问题。感兴趣的问题包括双变量生存估计、边际分布以及间隔时间的条件分布。在这项工作中,我们考虑对先前事件条件下的生存函数进行估计。将考虑不同的非参数方法来估计这些量,所有方法均基于生存函数的Kaplan-Meier估计器。我们通过模拟探索估计器的有限样本行为。本文提出的不同方法应用于来自德国乳腺癌研究的数据集。这些方法用于获得条件生存概率的预测因子,并研究复发对总生存的影响。

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