The Poisson regression model is the most common framework for modeling count data, but it is constrained by its equidispersion assumption. The hyper-Poisson regression model described in this paper generalizes it and allows for over- and under-dispersion, although, unlike other models with the same property, it introduces the regressors in the equation of the mean. Additionally, regressors may also be introduced in the equation of the dispersion parameter, in such a way that it is possible to fit data that present overdispersion and underdispersion in different levels of the observations. Two applications illustrate that the model can provide more accurate fits than those provided by alternative usual models. (C) 2012 Elsevier B.V. All rights reserved.
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Northeastern Univ, Sydney Smart Technol Coll, Shenyang 110004, Peoples R ChinaNortheastern Univ, Sydney Smart Technol Coll, Shenyang 110004, Peoples R China
Xu, Jiaqi
Lu, Yu
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Northeastern Univ, Sydney Smart Technol Coll, Shenyang 110004, Peoples R ChinaNortheastern Univ, Sydney Smart Technol Coll, Shenyang 110004, Peoples R China
Lu, Yu
Su, Yuanshen
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Northeastern Univ, Sydney Smart Technol Coll, Shenyang 110004, Peoples R ChinaNortheastern Univ, Sydney Smart Technol Coll, Shenyang 110004, Peoples R China
Su, Yuanshen
Liu, Tao
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Northeastern Univ Qinhuangdao, Sch Math & Stat, Qinhuangdao 066004, Peoples R ChinaNortheastern Univ, Sydney Smart Technol Coll, Shenyang 110004, Peoples R China
Liu, Tao
Qi, Yunfei
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Hebei Ctr Marine Geol Resources Survey, Geol Brigade Hebei Bur Geol & Mineral Resources Ex, Qinhuangdao 066000, Peoples R ChinaNortheastern Univ, Sydney Smart Technol Coll, Shenyang 110004, Peoples R China
Qi, Yunfei
Xie, Wu
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Hebei Ctr Marine Geol Resources Survey, Geol Brigade Hebei Bur Geol & Mineral Resources Ex, Qinhuangdao 066000, Peoples R ChinaNortheastern Univ, Sydney Smart Technol Coll, Shenyang 110004, Peoples R China