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On the FernándezSteel distribution: Inference and application

机译:关于FernándezSteel分布:推断和应用

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摘要

In this article, we perform statistical inference on a skew model that belongs to a class of distributions proposed by Fernández and Steel (1998). Specifically, we introduce two ways to represent this model by means of which moments and generation of random numbers can be obtained. In addition, we carry out estimation of the model parameters by moment and maximum likelihood methods. Asymptotic inference based on both of these methods is also produced. We analyze the expected Fisher information matrix associated with the model and highlight the fact that this does not have the singularity problem, as occurs with the corresponding information matrix of the skew-normal model introduced by Azzalini (1985). Furthermore, we conduct a simulation study to compare the performance of the moment and maximum likelihood estimators. Finally, an application based on real data is carried out.
机译:在本文中,我们对倾斜模型进行统计推断,该模型属于Fernández和Steel(1998)提出的一类分布。具体来说,我们介绍了两种表示此模型的方法,借助这些方法可以获得矩和随机数的生成。另外,我们通过矩和最大似然法进行模型参数的估计。还产生了基于这两种方法的渐进推断。我们分析了与模型相关的期望的Fisher信息矩阵,并强调了这一事实,因为Azzalini(1985)引入的偏正态模型的相应信息矩阵不存在奇点问题。此外,我们进行了仿真研究,比较了矩和最大似然估计器的性能。最后,基于实际数据的应用程序被执行。

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