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Tobit删失回归模型×负二项回归×
领域计量经济学计量经济学
方法族Regression modelRegression model
起源年份19582011
提出者James TobinHilbe (textbook treatment); generalized linear model framework
类型Censored regression (limited dependent variable)Generalized linear model for count data
开创性文献Tobin, J. (1958). Estimation of Relationships for Limited Dependent Variables. Econometrica, 26(1), 24-36. DOI ↗Hilbe, J. M. (2011). Negative Binomial Regression (2nd ed.). Cambridge University Press. DOI ↗
别名censored regression, limited dependent variable model, Tobit Modeli (Sansürlü Regresyon)NB regression, NB2 regression, negatif binom regresyonu
相关44
摘要The Tobit model is a regression for outcomes that are censored at a threshold, estimating the relationship by maximum likelihood. Introduced by James Tobin in 1958, it addresses the pile-up of observations at a limit (typically zero) in data such as spending, wages, or duration.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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ScholarGate方法对比: Tobit Model · Negative Binomial Regression. 于 2026-06-17 检索自 https://scholargate.app/zh/compare