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Examine os métodos selecionados lado a lado; as linhas que diferem ficam destacadas.

AUC de Precisão-Revocação×Precisão×Sensibilidade×
ÁreaAvaliação de modelosAvaliação de modelosAvaliação de modelos
FamíliaMCDMMCDMMCDM
Ano de origem200620th century20th century
Autor originalDavis and GoadrichHistorical statistical foundationsHistorical statistical foundations
TipoEvaluation metricEvaluation metricEvaluation metric
Fonte seminalDavis, J., & Goadrich, M. (2006). The relationship between precision-recall and ROC curves. Proceedings of the 23rd International Conference on Machine Learning, 233-240. DOI ↗Fawcett, T. (2006). An introduction to ROC analysis. Pattern Recognition Letters, 27(8), 861-874. DOI ↗Fawcett, T. (2006). An introduction to ROC analysis. Pattern Recognition Letters, 27(8), 861-874. DOI ↗
Outros nomesPR AUC, PR CurvePositive Predictive Value, PPVSensitivity, True Positive Rate, TPR
Relacionados455
ResumoThe Precision-Recall Area Under the Curve (PR AUC) is the area under the curve formed by plotting recall on the x-axis and precision on the y-axis. It is particularly useful for evaluating classifiers on imbalanced datasets, where it is often more informative than ROC AUC.Precision measures the proportion of positive predictions that were actually correct. It answers the question: 'Of all the cases we predicted as positive, how many were truly positive?' Precision is critical in scenarios where false positives are costly.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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ScholarGateComparar métodos: Precision-Recall AUC · Precision · Recall (Sensitivity). Recuperado em 2026-06-19 de https://scholargate.app/pt/compare