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Regresión de Supervivencia Paramétrica de Weibull×Análisis de Supervivencia Bayesiano×
CampoSupervivenciaBayesiano
FamiliaSurvival analysisBayesian methods
Año de origen19512001
Autor originalWaloddi WeibullIbrahim, Chen & Sinha
TipoFully parametric survival regression modelBayesian time-to-event model
Fuente seminalKalbfleisch, J. D. & Prentice, R. L. (2002). The Statistical Analysis of Failure Time Data (2nd ed.). Wiley. DOI ↗Ibrahim, J.G., Chen, M.-H. & Sinha, D. (2001). Bayesian Survival Analysis. Springer. DOI ↗
Aliasweibull aft model, weibull survival model, parametric survival regression, Weibull Regresyonu — Parametrik Hayatta Kalmabayesian sağkalım analizi, bayesian time-to-event analysis, bayesian hazard model
Relacionados44
ResumenWeibull regression is a fully parametric survival model, formalised by Kalbfleisch and Prentice, that assumes survival times follow a Weibull distribution. A shape parameter controls whether the hazard increases, decreases, or remains constant over time, while covariates shift the scale of the distribution to express how predictors affect survival.Bayesian survival analysis applies Bayesian inference to time-to-event models — Cox proportional hazards, parametric (Weibull, exponential), and cure models. Formalised comprehensively by Ibrahim, Chen and Sinha (2001), the approach encodes prior knowledge about hazard rates and regression coefficients, then updates it with censored survival data to yield posterior hazard ratios and credible intervals rather than single point estimates.
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ScholarGateComparar métodos: Weibull Regression · Bayesian Survival Analysis. Recuperado el 2026-06-17 de https://scholargate.app/es/compare