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Exactitud×Coeficiente de Correlación de Matthews×Sensibilidad×
CampoEvaluación de modelosEvaluación de modelosEvaluación de modelos
FamiliaMCDMMCDMMCDM
Año de origen20th century197520th century
Autor originalHistorical statistical foundationsBrian W. MatthewsHistorical statistical foundations
TipoEvaluation metricEvaluation metricEvaluation metric
Fuente seminalFawcett, T. (2006). An introduction to ROC analysis. Pattern Recognition Letters, 27(8), 861-874. DOI ↗Matthews, B. W. (1975). Comparison of predicted and observed secondary structure of T4 phage lysozyme. Biochimica et Biophysica Acta (BBA)-Protein Structure, 405(2), 442-451. DOI ↗Fawcett, T. (2006). An introduction to ROC analysis. Pattern Recognition Letters, 27(8), 861-874. DOI ↗
AliasOverall Accuracy, Correct Classification RatePhi Coefficient, Binary Classification CorrelationSensitivity, True Positive Rate, TPR
Relacionados555
ResumenAccuracy is the proportion of correct predictions among the total number of predictions made by a classification model. It is the most intuitive performance metric and measures how often the classifier makes correct predictions overall, regardless of class.The Matthews Correlation Coefficient (MCC) is a correlation measure between predicted and actual binary classifications. It ranges from -1 to 1 and is considered one of the most reliable single-score metrics for evaluating binary classifiers, especially on imbalanced datasets.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: Accuracy · Matthews Correlation Coefficient · Recall (Sensitivity). Recuperado el 2026-06-18 de https://scholargate.app/es/compare