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Précision équilibrée×Score F1×Rappel (Sensibilité)×
DomaineÉvaluation de modèlesÉvaluation de modèlesÉvaluation de modèles
FamilleMCDMMCDMMCDM
Année d'origine2010197920th century
Auteur d'origineBrodersen, Ong, Stephan, and BuhmannC. J. van RijsbergenHistorical statistical foundations
TypeEvaluation metricEvaluation metricEvaluation metric
Source fondatriceBrodersen, K. H., Ong, C. S., Stephan, K. E., & Buhmann, J. M. (2010). The balanced accuracy and its posterior distribution. 20th International Conference on Pattern Recognition (ICPR), 3121-3124. DOI ↗van Rijsbergen, C. J. (1979). Information Retrieval (2nd ed.). Butterworth-Heinemann. link ↗Fawcett, T. (2006). An introduction to ROC analysis. Pattern Recognition Letters, 27(8), 861-874. DOI ↗
AliasAverage Recall, Equal-weight Average SensitivityF-measure, Harmonic MeanSensitivity, True Positive Rate, TPR
Apparentées555
RésuméBalanced accuracy is the average of recall values computed for each class separately. It corrects for class imbalance by giving equal weight to the performance on each class, regardless of class frequency in the dataset.The F1-score is the harmonic mean of precision and recall, providing a single metric that balances both concerns. It was introduced by van Rijsbergen in information retrieval and has become a standard metric for evaluating classification models where both precision and recall are important.Recall measures the proportion of actual positive cases that were correctly identified by the classifier. It answers the question: 'Of all the cases that were truly positive, how many did we find?' Recall is critical in scenarios where missing positive cases is costly.
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ScholarGateComparer des méthodes: Balanced Accuracy · F1-Score · Recall (Sensitivity). Consulté le 2026-06-18 sur https://scholargate.app/fr/compare