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Przybliżone wnioskowanie bayesowskie z błędem pomiaru×Przybliżone Obliczenia Bayesa×
DziedzinaStatystyka bayesowskaSymulacja
RodzinaBayesian methodsProcess / pipeline
Rok powstania2013 (measurement-error extension); ABC: 1997-20022002
TwórcaWilkinson, R. D. (formal treatment); ABC roots: Tavaré, Diggle, Beaumont et al. (1997-2002)
Typlikelihood-free Bayesian inferenceSimulation-based Bayesian inference
Źródło pierwotneWilkinson, R. D. (2013). Approximate Bayesian computation (ABC) gives exact results under the assumption of model error. Statistical Applications in Genetics and Molecular Biology, 12(2), 129-141. DOI ↗Beaumont, M.A., Zhang, W. & Balding, D.J. (2002). Approximate Bayesian Computation in Population Genetics. Genetics, 162(4), 2025-2035. DOI ↗
Inne nazwyABC with measurement error, ABC-ME, likelihood-free inference with measurement error, simulation-based inference under measurement errorABC, likelihood-free inference, simulation-based inference, Yaklaşık Bayesçi Hesaplama (ABC)
Pokrewne55
PodsumowanieApproximate Bayesian Computation with measurement error (ABC-ME) extends the standard ABC likelihood-free framework to settings where observed data are themselves noisy or imprecisely recorded. By explicitly incorporating a measurement-error kernel into the acceptance step, ABC-ME targets the correct posterior over model parameters even when the true data-generating process cannot be directly observed.Approximate Bayesian Computation (ABC) is a family of simulation-based inference methods that estimate posterior distributions without requiring an analytically tractable likelihood function. Introduced by Beaumont, Zhang and Balding (2002) in the context of population genetics, ABC replaced the intractable likelihood with repeated model simulation and a comparison of summary statistics between simulated and observed data.
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ScholarGatePorównaj metody: Approximate Bayesian Computation with Measurement Error · Approximate Bayesian Computation. Pobrano 2026-06-17 z https://scholargate.app/pl/compare