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Cálculo bayesiano aproximado con datos faltantes×Inferencia bayesiana con datos faltantes×
CampoBayesianoBayesiano
FamiliaBayesian methodsBayesian methods
Año de origen2002 (ABC); 1987 (missing data theory)1976–1987
Autor originalBeaumont, Zhang & Balding (ABC); Rubin (missing data framework)Rubin, D. B. (missing-data mechanisms); Tanner & Wong (data augmentation)
Tipolikelihood-free Bayesian inferenceBayesian probabilistic model
Fuente seminalBeaumont, M. A., Zhang, W. & Balding, D. J. (2002). Approximate Bayesian computation in population genetics. Genetics, 162(4), 2025–2035. link ↗Little, R. J. A. & Rubin, D. B. (2002). Statistical Analysis with Missing Data (2nd ed.). Wiley-Interscience. ISBN: 978-0471183860
AliasABC with missing data, likelihood-free inference with missing data, simulation-based inference for incomplete data, ABC-MDBayesian missing data analysis, Bayesian data augmentation, Bayesian imputation, missing data Bayesian model
Relacionados66
ResumenApproximate Bayesian Computation with missing data extends the likelihood-free ABC framework to settings where observations are incomplete or partially recorded. By simulating data under a posited model and accepting parameter draws whose simulated summary statistics are close to the observed ones, it bypasses the need to evaluate an intractable likelihood — even when some data values are absent.Bayesian inference with missing data treats unobserved values as unknown parameters and integrates them out of the posterior distribution. Rather than deleting or ad hoc imputing incomplete records, the method jointly models observed and missing data under an explicit missing-data mechanism, producing fully calibrated posterior uncertainty that honestly reflects what the data cannot tell us.
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ScholarGateComparar métodos: Approximate Bayesian Computation with Missing Data · Bayesian Inference with Missing Data. Recuperado el 2026-06-15 de https://scholargate.app/es/compare