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The log-Weibull-negative-binomial regression model under latent failure causes and presence of randomized activation schemes

机译:潜在失效原因和存在随机激活方案的情况下的log-Weibull负二项式回归模型

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The purpose of this paper is to develop a Bayesian approach for the log-Weibull-negative-binomial regression model under latent failure causes and presence of a randomized activation mechanism. We assume the number of competing causes of the event of interest follows a negative binomial distribution while the latent lifetimes are assumed to follows a Weibull distribution. Markov chain Monte Carlo methods are used to develop a Bayesian approach. Model selection to compare the fitted models is discussed. Moreover, we develop case deletion influence diagnostics for the joint posterior distribution based on the psi-divergence, which has several divergence measures as particular cases. The developed procedures are illustrated on artificial and real data sets.
机译:本文的目的是为潜在失败原因和存在随机激活机制的情况下的log-Weibull负二项式回归模型开发贝叶斯方法。我们假设感兴趣事件的竞争原因数量遵循负二项式分布,而潜在寿命则遵循魏布尔分布。马尔可夫链蒙特卡罗方法用于发展贝叶斯方法。讨论了用于比较拟合模型的模型选择。此外,我们基于psi散度开发了针对关节后部分布的病例删除影响诊断,该psi散度具有针对特定病例的多种散度测量方法。在人工和真实数据集上说明了已开发的过程。

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