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Bayesian variable selection for a semi-competing risks model with three hazard functions

机译:贝叶斯变量选择半竞争风险模型,具有三个危险功能

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摘要

A variable selection procedure is developed for a semi-competing risks regression model with three hazard functions that uses spike-and-slab priors and stochastic search variable selection algorithms for posterior inference. A rule is devised for choosing the threshold on the marginal posterior probability of variable inclusion based on the Deviance Information Criterion (DIC) that is examined in a simulation study. The method is applied to data from esophageal cancer patients from the MD Anderson Cancer Center, Houston, TX, where the most important covariates are selected in each of the hazards of effusion, death before effusion, and death after effusion. The DIC procedure that is proposed leads to similar selected models regardless of the choices of some of the hyperparameters. The application results show that patients with intensity-modulated radiation therapy have significantly reduced risks of pericardial effusion, pleural effusion, and death before either effusion type. (C) 2017 Elsevier B.V. All rights reserved.
机译:为半竞争风险回归模型开发了可变选择过程,其中具有三个危险功能,该函数使用Spike-and Slab Priors和随机搜索变量选择算法进行后部推理。根据在模拟研究中检查的偏差信息标准(DIC),设计了一个规则选择对变量夹杂物的边缘后概率概率的阈值。该方法应用于来自卫生部,休斯顿,德克萨斯州休斯顿癌症中心的食管癌患者的数据,其中在每个积累的每个危险中选择最重要的协变量,在积累后死亡和死亡死亡。不管某些超参数的选择如何,所提出的DIC程序导致类似选定的模型。施用结果表明,强度调节的放射治疗的患者显着降低了Precuct型之前的心包积液,胸腔积液和死亡的风险。 (c)2017 Elsevier B.v.保留所有权利。

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