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Hierarchical Transmuted Log-Logistic Model: A Subjective Bayesian Analysis

机译:分层Trans变Log-Logistic模型:主观贝叶斯分析

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In this study, we propose to apply the transmuted log-logistic (TLL) model which is a generalization of log-logistic model, in a Bayesian context. The log-logistic model has been used it is simple and has a unimodal hazard rate, important characteristic in survival analysis. Also, the TLL model was formulated by using the quadratic transmutation map, that is a simple way of derivating new distributions, and it adds a new parameter λ , which one introduces a skewness in the new distribution and preserves the moments of the baseline model. The Bayesian model was formulated by using the half-Cauchy prior which is an alternative prior to a inverse Gamma distribution. In order to fit the model, a real data set, which consist of the time up to first calving of polled Tabapua race, was used. Finally, after the model was fitted, an influential analysis was made and excluding only 0.1 % of observations (influential points), the reestimated model can fit the data better.
机译:在这项研究中,我们建议在贝叶斯环境中应用对数逻辑模型的泛化对数逻辑模型。已使用对数逻辑模型,该模型简单且具有单峰危害率,这是生存分析中的重要特征。此外,TLL模型是通过使用二次变换图来公式化的,这是推导新分布的一种简单方法,并且它添加了一个新参数λ,该参数引入了新分布中的偏度并保留了基线模型的矩。贝叶斯模型是通过使用半Cauchy先验公式来确定的,它是反伽马分布之前的替代方法。为了拟合模型,使用了一个实际数据集,其中包括直到第一次产犊的塔巴布亚族产犊的时间。最后,在拟合模型之后,进行了影响分析,仅排除了0.1%的观测值(影响点),重新估算的模型可以更好地拟合数据。

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