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首页> 外文期刊>Journal of applied statistics >A bivariate Sarmanov regression model for count data with generalised Poisson marginals
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A bivariate Sarmanov regression model for count data with generalised Poisson marginals

机译:具有广义泊松边际的计数数据的双变量Sarmanov回归模型

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摘要

We present a bivariate regression model for count data that allows for positive as well as negative correlation of the response variables. The covariance structure is based on the Sarmanov distribution and consists of a product of generalised Poisson marginals and a factor that depends on particular functions of the response variables. The closed form of the probability function is derived by means of the moment-generating function. The model is applied to a large real dataset on health care demand. Its performance is compared with alternative models presented in the literature. We find that our model is significantly better than or at least equivalent to the benchmark models. It gives insights into influences on the variance of the response variables.
机译:我们为计数数据提供了一个双变量回归模型,该模型允许响应变量的正相关和负相关。协方差结构基于Sarmanov分布,由广义Poisson边际乘积和取决于响应变量的特定函数的因数组成。概率函数的闭合形式是通过矩生成函数得出的。该模型被应用于有关医疗需求的大型真实数据集。将其性能与文献中提供的替代模型进行比较。我们发现我们的模型明显优于或至少等于基准模型。它提供了对响应变量方差影响的见解。

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