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Semiparametric Estimation and Panel Data Clustering Analysis Based on D-Vine and C-Vine

机译:基于D型藤和C型藤的半参数估计和面板数据聚类分析

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摘要

This paper proposed a panel data clustering model based on D-vine and C-vine and supported a semiparametric estimation for parameters. These models include a two-step inference function for margins, two-step semiparameter estimation, and stepwise semiparametric estimation. In similarity measurement, similarity coefficients are constructed by a multivariate Hierarchical Nested Archimedean Copula (HNAC) model and compound PCC models, which are HNAC and D-vine compound model and HNAC and C-vine compound model. Estimation solutions and models evaluation are given for these models. In the case study, the clustering results of HNAC and D-vine compound model and HNAC and C-vine compound model are given, and the effect of different copula families on clustering results is also discussed. The result shows the models are effective and useful.
机译:本文提出了一种基于D-vine和C-vine的面板数据聚类模型,并支持参数的半参数估计。这些模型包括用于边距的两步推断函数,两步半参数估计和逐步半参数估计。在相似性测量中,相似性系数是由多元层次嵌套阿基米德Copula(HNAC)模型和复合PCC模型(即HNAC和D-vine复合模型以及HNAC和C-vine复合模型)构建的。给出了这些模型的估计解和模型评估。在案例研究中,给出了HNAC和D-vine复合模型以及HNAC和C-vine复合模型的聚类结果,并讨论了不同系群对聚类结果的影响。结果表明该模型是有效和有用的。

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  • 来源
    《Mathematical Problems in Engineering》 |2018年第11期|5840296.1-5840296.10|共10页
  • 作者单位

    Chinese Acad Sci & Technol Dev, Inst Comprehens Dev, Beijing, Peoples R China;

    Univ Int Business & Econ, Sch Insurance & Econ, Beijing, Peoples R China;

    Peking Univ, Sch Econ, Beijing, Peoples R China;

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