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F1 ponderado×F1-macro×
CampoEvaluación de modelosEvaluación de modelos
FamiliaMCDMMCDM
Año de origen2000s2000s
Autor originalMulti-class evaluation communityMulti-class evaluation community
TipoEvaluation metricEvaluation metric
Fuente seminalPowers, D. M. (2011). Evaluation: From Precision, Recall and F-Measure to ROC, Informedness, Markedness and Correlation. Journal of Machine Learning Technologies, 2(1), 37-63. link ↗Powers, D. M. (2011). Evaluation: From Precision, Recall and F-Measure to ROC, Informedness, Markedness and Correlation. Journal of Machine Learning Technologies, 2(1), 37-63. link ↗
AliasSupport-weighted F1Macro F1, Unweighted average F1
Relacionados33
ResumenWeighted F1 computes the F1-score for each class and then takes a weighted average, where weights are proportional to the number of samples in each class (support). It provides a middle ground between macro and micro-averaging.Macro-averaged F1 computes the F1-score independently for each class and then takes the unweighted arithmetic mean. It treats all classes equally, regardless of their frequency in the dataset, making it useful for imbalanced multi-class problems.
ScholarGateConjunto de datos
  1. v1
  2. 2 Fuentes
  3. PUBLISHED
  1. v1
  2. 2 Fuentes
  3. PUBLISHED

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ScholarGateComparar métodos: Weighted F1 · Macro-averaged F1. Recuperado el 2026-06-19 de https://scholargate.app/es/compare