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Generalized Linear Models and Extensions

Generalized Linear Models and Extensions

986 kr

986 kr

På lager

On., 22 jan. - fr., 24 jan.


Sikker betaling

14 dagers åpent kjøp


Selges og leveres av

Adlibris


Produktbeskrivelse

Generalized linear models (GLMs) extend linear regression to models with a non-Gaussian, or even discrete, response. GLM theory is predicated on the exponential family of distributions—a class so rich that it includes the commonly used logit, probit, and Poisson models. Although one can fit these models in Stata by using specialized commands (for example, logit for logit models), fitting them as GLMs with Stata’s glm command offers some advantages. For example, model diagnostics may be calculated and interpreted similarly regardless of the assumed distribution.

This text thoroughly covers GLMs, both theoretically and computationally, with an emphasis on Stata. The theory consists of showing how the various GLMs are special cases of the exponential family, showing general properties of this family of distributions, and showing the derivation of maximum likelihood (ML) estimators and standard errors. Hardin and Hilbe show how iteratively reweighted least squares, another method of parameter estimation, are a consequence of ML estimation using Fisher scoring.

Artikkel nr.

c23853ee-9bc3-4452-baa3-5f14eab20c8d

Generalized Linear Models and Extensions

986 kr

986 kr

På lager

On., 22 jan. - fr., 24 jan.


Sikker betaling

14 dagers åpent kjøp


Selges og leveres av

Adlibris