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首页> 外文期刊>Journal of applied statistics >Modelling interval data with Normal and Skew-Normal distributions
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Modelling interval data with Normal and Skew-Normal distributions

机译:使用正态分布和偏正态分布建模间隔数据

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摘要

A parametric modelling for interval data is proposed, assuming a multivariate Normal or Skew-Normal distribution for the midpoints and log-ranges of the interval variables. The intrinsic nature of the interval variables leads to special structures of the variance-covariance matrix, which is represented by five different possible configurations. Maximum likelihood estimation for both models under all considered configurations is studied. The proposed modelling is then considered in the context of analysis of variance and multivariate analysis of variance testing. To access the behaviour of the proposed methodology, a simulation study is performed. The results show that, for medium or large sample sizes, tests have good power and their true significance level approaches nominal levels when the constraints assumed for the model are respected; however, for small samples, sizes close to nominal levels cannot be guaranteed. Applications to Chinese meteorological data in three different regions and to credit card usage variables for different card designations, illustrate the proposed methodology.
机译:提出了间隔数据的参数化模型,假设间隔变量的中点和对数范围为多元正态或偏正态分布。区间变量的固有性质导致方差-协方差矩阵的特殊结构,该结构由五种可能的配置表示。研究了在所有考虑的配置下这两个模型的最大似然估计。然后在方差分析和方差测试的多变量分析的背景下考虑所建议的建模。为了访问所提出方法的行为,进行了仿真研究。结果表明,对于中型或大型样本,检验均具有良好的功效,并且在尊重模型假设的约束的前提下,其真实显着性水平接近标称水平。但是,对于小样本,不能保证接近标称水平。应用于三个不同地区的中国气象数据以及针对不同卡号的信用卡使用变量的应用说明了所提出的方法。

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