Publication | Open Access
Generalized Additive Models for Location Scale and Shape (GAMLSS) in<i>R</i>
1.3K
Citations
22
References
2007
Year
EngineeringStatistical Shape AnalysisExponential FamilySpatial StatisticsRegression AnalysisResponse VariableLocalizationData SciencePublic HealthStatistical ModelingStatisticsGeometric ModelingSpatial ScienceSpatial Statistical AnalysisGeometric Feature ModelingFunctional Data AnalysisQuantitative Spatial ModelStatistical InferenceGeneralized Additive ModelsSpatio-temporal ModelRegression Type ModelsData Modeling
GAMLSS is a general framework for fitting regression type models where the distribution of the response variable does not have to belong to the exponential family and includes highly skew and kurtotic continuous and discrete distribution. GAMLSS allows all the parameters of the distribution of the response variable to be modelled as linear/non-linear or smooth functions of the explanatory variables. This paper starts by defining the statistical framework of GAMLSS, then describes the current implementation of GAMLSS in R and finally gives four different data examples to demonstrate how GAMLSS can be used for statistical modelling.
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