Variable selection for skew-normal mixture of joint location and scale models

IF 1 4区 数学
Liu-cang Wu, Song-qin Yang, Ye Tao
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引用次数: 0

Abstract

Although there are many papers on variable selection methods based on mean model in the finite mixture of regression models, little work has been done on how to select significant explanatory variables in the modeling of the variance parameter. In this paper, we propose and study a novel class of models: a skew-normal mixture of joint location and scale models to analyze the heteroscedastic skew-normal data coming from a heterogeneous population. The problem of variable selection for the proposed models is considered. In particular, a modified Expectation-Maximization(EM) algorithm for estimating the model parameters is developed. The consistency and the oracle property of the penalized estimators is established. Simulation studies are conducted to investigate the finite sample performance of the proposed methodologies. An example is illustrated by the proposed methodologies.

节理位置和比例模型的斜法向混合变量选择
虽然在有限混合回归模型中基于均值模型的变量选择方法的研究有很多,但在方差参数建模中如何选择显著性解释变量的研究却很少。本文提出并研究了一类新的模型:联合位置模型和比例模型的斜正态混合模型,用于分析来自异质种群的异方差斜正态数据。考虑了模型的变量选择问题。特别地,提出了一种改进的期望最大化(EM)算法来估计模型参数。建立了惩罚估计量的一致性和预言性。进行了仿真研究,以调查所提出的方法的有限样本性能。所提出的方法说明了一个例子。
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来源期刊
自引率
10.00%
发文量
33
期刊介绍: Applied Mathematics promotes the integration of mathematics with other scientific disciplines, expanding its fields of study and promoting the development of relevant interdisciplinary subjects. The journal mainly publishes original research papers that apply mathematical concepts, theories and methods to other subjects such as physics, chemistry, biology, information science, energy, environmental science, economics, and finance. In addition, it also reports the latest developments and trends in which mathematics interacts with other disciplines. Readers include professors and students, professionals in applied mathematics, and engineers at research institutes and in industry. Applied Mathematics - A Journal of Chinese Universities has been an English-language quarterly since 1993. The English edition, abbreviated as Series B, has different contents than this Chinese edition, Series A.
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