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Zero-Inflated Model×일반화 선형 모형 (GLM)×
분야통계학통계학
계열Regression modelRegression model
기원 연도19921972
창시자Diane LambertJohn A. Nelder & Robert W. M. Wedderburn
유형Count regression with excess zerosRegression framework
원전Lambert, D. (1992). Zero-inflated Poisson regression, with an application to defects in manufacturing. Technometrics, 34(1), 1–14. DOI ↗Nelder, J. A., & Wedderburn, R. W. M. (1972). Generalized linear models. Journal of the Royal Statistical Society: Series A (General), 135(3), 370–384. DOI ↗
별칭ZIP model, ZINB model, zero-inflated Poisson, zero-inflated negative binomialGLM, generalized regression, exponential family regression, link-function model
관련66
요약A zero-inflated model is a two-component mixture regression designed for count outcomes that contain more zero values than a standard Poisson or negative binomial distribution can accommodate. One component is a binary process that generates structural zeros; the other is a count process that generates both zeros and positive counts.The Generalized Linear Model is a unified regression framework that extends ordinary linear regression to outcomes from the exponential family — including binary, count, proportion, and continuous positive outcomes. A link function connects the linear predictor to the mean of the response, enabling principled modelling beyond the Gaussian case.
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