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Flexible Bivariate Count Data Regression Models

机译:灵活的双变量计数数据回归模型

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The article develops a semiparametric estimation method for the bivariate count data regression model. We develop a series expansion approach in which dependence between count variables is introduced by means of stochastically related unobserved heterogeneity components, and in which, unlike existing commonly used models, positive as well as negative correlations are allowed. Extensions that accommodate excess zeros, censored data, and multivariate generalizations are also given. Monte Carlo experiments and an empirical application to tobacco use confirms that the model performs well relative to existing bivariate models, in terms of various statistical criteria and in capturing the range of correlation among dependent variables. This article has supplementary materials online.
机译:本文为双变量计数数据回归模型开发了一种半参数估计方法。我们开发了一种级数展开方法,其中通过随机相关的未观察到的异质性成分引入计数变量之间的依赖性,并且其中与现有的常用模型不同,允许正相关和负相关。还给出了容纳多余零,检查数据和多元概括的扩展。蒙特卡罗实验和对烟草使用的经验应用证实,就各种统计标准和捕获因变量之间的相关范围而言,该模型相对于现有的双变量模型表现良好。本文在线提供了补充材料。

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