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A Bayesian Approach to Competing Risks Model with Masked Causes of Failure and Incomplete Failure Times

机译:贝叶斯竞争风险模型的探险态度,失败的原因和不完全失败时期

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We present a Bayesian approach for analysis of competing risks survival data with masked causes of failure. This approach is often used to assess the impact of covariates on the hazard functions when the failure time is exactly observed for some subjects but only known to lie in an interval of time for the remaining subjects. Such data, known as partly interval-censored data, usually result from periodic inspection in production engineering. In this study, Dirichlet and Gamma processes are assumed as priors for masking probabilities and baseline hazards. Markov chain Monte Carlo (MCMC) technique is employed for the implementation of the Bayesian approach. The effectiveness of the proposed approach is illustrated with simulated and production engineering applications.
机译:我们展示了一种贝叶斯方法,用于分析竞争风险的竞争数据,失败的掩蔽原因。这种方法通常用于评估协调因子对一些受试者的故障时间观察到的危险函数的影响,但仅在剩余科目的时间间隔内躺在时间间隔内。这种数据,称为部分间隔缩短的数据,通常由生产工程中的周期性检查产生。在该研究中,假设Dirichlet和γ过程作为用于掩蔽概率和基线危险的前沿。马尔可夫链Monte Carlo(MCMC)技术用于实施贝叶斯方法。采用模拟和生产工程应用说明了该方法的有效性。

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