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Model selection in beta regression analysis using several information criteria and heuristic optimization
ISSN: 2149 - 1402Publisher: author   
Model selection in beta regression analysis using several information criteria and heuristic optimization
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Science General
ARTICLE-FACTOR
1.3
Article Basics Score: 3
Article Transparency Score: 2
Article Operation Score: 3
Article Articles Score: 3
Article Accessibility Score: 2
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International Category Code (ICC):
ICC-1402
Publisher: Journal Of New Theory Naim Çağman
International Journal Address (IAA):
IAA.ZONE/214974821402
eISSN
:
2149 - 1402
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ISSN Validator
Abstract
In the context of generalized linear modeling (GLM), the beta regression analysis is used to estimate regression models when the dependent variable lies between (0,1). In this paper, we carried out a model selection process using several information criteria with heuristic optimization. We employed the differential evolution algorithm as a heuristic optimization method to select the best model for beta regression analysis. The results show that the alternative-type information criteria provide competitive results during the model selection process in beta regression analysis.