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The Poisson Inverse Gaussian Regression Model in the Analysis of Clustered Counts Data
Volume 2, Issue 1 (2004), pp. 17–32
M. M. Shoukri   M. H. Asyali   R. VanDorp     All authors (4)

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https://doi.org/10.6339/JDS.2004.02(1).135
Pub. online: 4 August 2022      Type: Research Article      Open accessOpen Access

Published
4 August 2022

Abstract

Abstract: We explore the possibility of modeling clustered count data using the Poisson Inverse Gaussian distribution. We develop a regression model, which relates the number of mastitis cases in a sample of dairy farms in Ontario, Canada, to various farm level covariates, to illustrate the method ology. Residual plots are constructed to explore the quality of the fit. We compare the results with a negative binomial regression model using max imum likelihood estimation, and to the generalized linear mixed regression model fitted in SAS.

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