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계열Bayesian methodsBayesian methods
기원 연도2013 (measurement-error extension); ABC: 1997-20021993
창시자Wilkinson, R. D. (formal treatment); ABC roots: Tavaré, Diggle, Beaumont et al. (1997-2002)Richardson & Gilks (Bayesian formulation); Carroll et al. (comprehensive framework)
유형likelihood-free Bayesian inferenceBayesian errors-in-variables model
원전Wilkinson, 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 ↗Carroll, R. J., Ruppert, D., Stefanski, L. A., & Crainiceanu, C. M. (2006). Measurement Error in Nonlinear Models: A Modern Perspective (2nd ed.). Chapman & Hall/CRC. ISBN: 978-1584886433
별칭ABC with measurement error, ABC-ME, likelihood-free inference with measurement error, simulation-based inference under measurement errorBayesian errors-in-variables model, Bayesian EIV model, Bayesian measurement error model, Bayesian misclassification model
관련55
요약Approximate 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.Bayesian inference with measurement error extends the standard Bayesian framework to situations where one or more covariates or outcomes are observed with noise or misclassification. By treating the true unobserved values as latent variables and assigning them priors, the model jointly estimates the true exposure distribution and the structural parameters of interest, propagating all uncertainty through the posterior.
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ScholarGate방법 비교: Approximate Bayesian Computation with Measurement Error · Bayesian Inference with Measurement Error. 2026-06-17에 다음에서 검색함: https://scholargate.app/ko/compare