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Coarsened Exact Matching aumentado con Aprendizaje Automático (ML-CEM)×Estimador por emparejamiento×
CampoInferencia causalInferencia causal
FamiliaRegression modelRegression model
Año de origen2012-20191973
Autor originalExtension of Iacus, King & Porro (2012) CEM; ML integration developed in subsequent causal ML literatureRubin (1973); large-sample theory by Abadie & Imbens (2006)
TipoMatching / quasi-experimentalNonparametric matching / causal inference
Fuente seminalIacus, S. M., King, G., & Porro, G. (2012). Causal Inference without Balance Checking: Coarsened Exact Matching. Political Analysis, 20(1), 1-24. DOI ↗Abadie, A., & Imbens, G. W. (2006). Large Sample Properties of Matching Estimators for Average Treatment Effects. Econometrica, 74(1), 235-267. DOI ↗
AliasML-augmented CEM, ML-CEM, automated coarsened exact matching, ML-assisted CEMnearest-neighbor matching, NNM, matching on covariates, covariate matching
Relacionados66
ResumenMachine Learning-Augmented Coarsened Exact Matching extends Coarsened Exact Matching (Iacus, King & Porro, 2012) by using supervised machine learning to automate and optimise the coarsening step — the discretisation of continuous covariates into bins — rather than relying on researcher-specified cutpoints. This reduces both ad hoc subjectivity in coarsening decisions and residual imbalance, while preserving CEM's core logic of exact matching within coarsened strata.The matching estimator identifies the causal effect of a treatment by pairing each treated unit with one or more untreated units that have similar observed characteristics. Formalised by Rubin (1973) and given rigorous large-sample theory by Abadie and Imbens (2006), it constructs a credible control group from observational data without requiring a parametric model for the outcome.
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ScholarGateComparar métodos: Machine Learning-Augmented Coarsened Exact Matching · Matching Estimator. Recuperado el 2026-06-18 de https://scholargate.app/es/compare