Performance Measures for Statistical Learning


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Documentation for package ‘measures’ version 0.3

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ACC Accuracy
ARSQ Adjusted coefficient of determination
AUC Area under the curve
BAC Balanced accuracy
BER Balanced error rate
Brier Brier score
BrierScaled Brier scaled
EXPVAR Explained variance
F1 F1 measure
FDR False discovery rate
FN False negatives
FNR False negative rate
FP False positives
FPR False positive rate
GMEAN G-mean
GPR Geometric mean of precision and recall.
KAPPA Cohen's kappa
KendallTau Kendall's tau
listAllMeasures List all measures
Logloss Logarithmic loss
LSR Logarithmic Scoring Rule
MAE Mean of absolute errors
MAPE Mean absolute percentage error
MCC Matthews correlation coefficient
MEDAE Median of absolute errors
MEDSE Median of squared errors
MMCE Mean misclassification error
MSE Mean of squared errors
MSLE Mean squared logarithmic error
multiclass.AU1P Weighted average 1 vs. 1 multiclass AUC
multiclass.AU1U Average 1 vs. 1 multiclass AUC
multiclass.AUNP Weighted average 1 vs. rest multiclass AUC
multiclass.AUNU Average 1 vs. rest multiclass AUC
multiclass.Brier Multiclass Brier score
MultilabelACC Accuracy (multilabel)
MultilabelF1 F1 measure (multilabel)
MultilabelHamloss Hamming loss
MultilabelPPV Positive predictive value (multilabel)
MultilabelSubset01 Subset-0-1 loss
MultilabelTPR TPR (multilabel)
NPV Negative predictive value
PPV Positive predictive value
QSR Quadratic Scoring Rule
RAE Relative absolute error
RMSE Root mean squared error
RMSLE Root mean squared logarithmic error
RRSE Root relative squared error
RSQ Coefficient of determination
SAE Sum of absolute errors
SpearmanRho Spearman's rho
SSE Sum of squared errors
SSR Spherical Scoring Rule
TN True negatives
TNR True negative rate
TP True positives
TPR True positive rate
WKAPPA Mean quadratic weighted kappa