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Negative Binomial Regression×Logistische Regression×
FachgebietÖkonometrieForschungsstatistik
FamilieRegression modelProcess / pipeline
Entstehungsjahr20111958
UrheberHilbe (textbook treatment); generalized linear model frameworkDavid Roxbee Cox
TypGeneralized linear model for count dataMethod
Wegweisende QuelleHilbe, J. M. (2011). Negative Binomial Regression (2nd ed.). Cambridge University Press. DOI ↗Cox, D. R. (1958). The regression analysis of binary sequences. Journal of the Royal Statistical Society, Series B, 20(2), 215–242. DOI ↗
AliasnamenNB regression, NB2 regression, negatif binom regresyonulogit model, binomial logistic regression, LR
Verwandt43
ZusammenfassungNegative 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.Logistic regression is a statistical method for modeling the probability of a binary outcome (disease present/absent, success/failure) as a function of continuous and categorical predictors. Developed by David Roxbee Cox (1958), it solves the problem of predicting categorical outcomes by applying a logistic transformation to constrain predictions to the [0,1] probability interval, enabling accurate risk stratification, diagnostic prediction, and causal inference in epidemiology, medicine, and social science.
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ScholarGateMethoden vergleichen: Negative Binomial Regression · Logistic Regression. Abgerufen am 2026-06-17 von https://scholargate.app/de/compare