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An EDA based on Bayesian networks constructed with Archimedean copulas

机译:基于基于Archimedean copulas的贝叶斯网络的EDA

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In this paper, an estimation of distribution algorithm that adopts a copula Bayesian network as probabilistic graphic model is presented. Multivariate Archimedean copula functions with one parameter are used to model the dependences between variables and the beta distribution is used to describe the univariate marginals. The learning process of the Bayesian network is assisted through a simple technique that relies on the associative property of Archimedean copulas, the use of Kendall's tau coefficient for measuring relations between variables and the relation between tau coefficients and bivariate Archimedean copulas. This paper presents the proposal, together with some initial experiments, which show encouraging results.
机译:本文提出了一种基于copula贝叶斯网络作为概率图形模型的分布算法估计。具有一个参数的多变量阿基米德关联函数用于建模变量之间的依存关系,β分布用于描述单变量边际。贝叶斯网络的学习过程通过一种简单的技术来辅助,该技术依赖于Archimedean copulas的关联属性,使用Kendall的tau系数来测量变量之间的关系以及tau系数与双变量Archimedean copulas之间的关系。本文介绍了该提案以及一些初步实验,这些实验显示出令人鼓舞的结果。

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