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Coeficient de determinació (R²)×Criteri d'Informació Bayesiana (BIC)×
CampAvaluació de modelsAvaluació de models
FamíliaMCDMMCDM
Any d'origen18961978
Autor originalKarl PearsonGideon E. Schwarz
TipusGoodness-of-fit metricBayesian model selection metric
Font seminalPearson, K. (1896). Mathematical contributions to the theory of evolution. Philosophical Transactions of the Royal Society A, 187, 253-318. link ↗Schwarz, G. (1978). Estimating the dimension of a model. Annals of Statistics, 6(2), 461-464. DOI ↗
ÀliesR², coefficient of determination, r2 scoreBIC, Schwarz criterion, Schwarz information criterion
Relacionats54
ResumThe coefficient of determination, denoted R², measures the proportion of variance in the dependent variable explained by the independent variables in a regression model. Introduced by Karl Pearson in the late 19th century, R² is one of the most widely used metrics for assessing how well a model fits observed data.The Bayesian Information Criterion is an information-theoretic model selection criterion that approximates Bayesian model comparison. Introduced by Gideon Schwarz in 1978, BIC penalizes model complexity more heavily than AIC by using a sample-size-dependent penalty, making it particularly suitable for identifying the true underlying model structure.
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ScholarGateCompara mètodes: R-squared · Bayesian Information Criterion. Recuperat el 2026-06-17 de https://scholargate.app/ca/compare