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Distributions for Modeling Location, Scale, and Shape-Using...

Distributions for Modeling Location, Scale, and Shape-Using GAMLSS in R

Robert A. Rigby (Author), Mikis D. Stasinopoulos (Author), Gillian Z. Heller (Author), Fernanda De Bastiani (Author)
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This is a book about statistical distributions, their properties, and their application to modelling the dependence of the location, scale, and shape of the distribution of a response variable on explanatory variables. It will be especially useful to applied statisticians and data scientists in a wide range of application areas, and also to those interested in the theoretical properties of distributions. This book follows the earlier book ‘Flexible Regression and Smoothing: Using GAMLSS in R’, [Stasinopoulos et al., 2017], which focused on the GAMLSS model and software.  GAMLSS (the Generalized Additive Model for Location, Scale, and Shape, [Rigby and Stasinopoulos, 2005]), is a regression framework in which the response variable can have any parametric distribution and all the distribution parameters can be modelled as linear or smooth functions of explanatory variables. The current book focuses on distributions and their application.This book will be useful for applied statisticians and data scientists in selecting a distribution for a univariate response variable and modelling its dependence on explanatory variables, and to those interested in the properties of distributions.
Catégories:
Année:
2019
Edition:
1
Editeur::
Chapman and Hall/CRC
Langue:
english
ISBN 10:
1000700577
ISBN 13:
9781000701180
Fichier:
PDF, 28.74 MB
IPFS:
CID , CID Blake2b
english, 2019
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