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This category contains 34 nodes.

OneClassClassifier (3.7) 

Performs one-class classification on a dataset. Classifier reduces the class being classified to just a single class, and learns the datawithout using any […]

OrdinalClassClassifier (3.7) 

Meta classifier that allows standard classification algorithms to be applied to ordinal class problems. For more information see: Eibe Frank, Mark Hall: A […]

RacedIncrementalLogitBoost (3.7) 

Classifier for incremental learning of large datasets by way of racing logit-boosted committees. For more information see: Eibe Frank, Geoffrey Holmes, […]

RandomCommittee (3.7) 

Class for building an ensemble of randomizable base classifiers

RandomSubSpace (3.7) 

This method constructs a decision tree based classifier that maintains highest accuracy on training data and improves on generalization accuracy as it grows […]

RealAdaBoost (3.7) 

Class for boosting a 2-class classifier using the Real Adaboost method. For more information, see J

RegressionByDiscretization (3.7) 

A regression scheme that employs any classifier on a copy of the data that has the class attribute discretized

RotationForest (3.7) 

Class for construction a Rotation Forest

Stacking (3.7) 

Combines several classifiers using the stacking method

StackingC (3.7) 

Implements StackingC (more efficient version of stacking). For more information, see A.K