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Zero-Inflated Negative Binomial (ZINB) Regression×Negative Binomial Regression×
FachgebietStatistikÖkonometrie
FamilieRegression modelRegression model
Entstehungsjahr19942011
UrheberGreene (1994)Hilbe (textbook treatment); generalized linear model framework
TypCount regression (mixture model)Generalized linear model for count data
Wegweisende QuelleGreene, W. H. (1994). Accounting for Excess Zeros and Sample Selection in Poisson and Negative Binomial Regression Models. NYU Working Paper. link ↗Hilbe, J. M. (2011). Negative Binomial Regression (2nd ed.). Cambridge University Press. DOI ↗
AliasnamenZINB, ZINB regression, zero-inflated negative binomial model, Sıfır-Şişirilmiş Negatif Binom Regresyonu (ZINB)NB regression, NB2 regression, negatif binom regresyonu
Verwandt54
ZusammenfassungZero-Inflated Negative Binomial regression is a count model, introduced by Greene (1994), that handles count data showing both an excess of zeros and overdispersion. It combines a binary inflation process that generates structural zeros with a negative binomial count process, making it one of the most widely used distributions for real-world count data.Negative Binomial Regression is a generalized linear model for count outcomes that extends Poisson regression to handle overdispersion, where the variance of the counts exceeds their mean. Developed in the GLM tradition and treated in depth by Hilbe (2011), it adds a dispersion parameter so that inference stays valid when Poisson would understate the spread of the data.
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ScholarGateMethoden vergleichen: Zero-Inflated Negative Binomial Regression · Negative Binomial Regression. Abgerufen am 2026-06-15 von https://scholargate.app/de/compare